WO2007020193A2 - Antiviral phosphoramidates of 4 ' -substituted pronucleotides - Google Patents

Antiviral phosphoramidates of 4 ' -substituted pronucleotides Download PDF

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Publication number
WO2007020193A2
WO2007020193A2 PCT/EP2006/065021 EP2006065021W WO2007020193A2 WO 2007020193 A2 WO2007020193 A2 WO 2007020193A2 EP 2006065021 W EP2006065021 W EP 2006065021W WO 2007020193 A2 WO2007020193 A2 WO 2007020193A2
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Prior art keywords
azido
tetrahydro
ylmethoxy
pyrimidin
dihydroxy
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French (fr)
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WO2007020193A3 (en
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Klaus Klumpp
Joseph Armstrong Martin
Christopher Mcguigan
David Bernard Smith
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F Hoffmann La Roche AG
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F Hoffmann La Roche AG
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Priority to JP2008526475A priority Critical patent/JP2009504704A/en
Priority to EP06778153.4A priority patent/EP1928475B1/en
Priority to CA2618335A priority patent/CA2618335C/en
Priority to CN2006800382387A priority patent/CN101287472B/en
Publication of WO2007020193A2 publication Critical patent/WO2007020193A2/en
Publication of WO2007020193A3 publication Critical patent/WO2007020193A3/en
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    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07HSUGARS; DERIVATIVES THEREOF; NUCLEOSIDES; NUCLEOTIDES; NUCLEIC ACIDS
    • C07H19/00Compounds containing a hetero ring sharing one ring hetero atom with a saccharide radical; Nucleosides; Mononucleotides; Anhydro-derivatives thereof
    • C07H19/02Compounds containing a hetero ring sharing one ring hetero atom with a saccharide radical; Nucleosides; Mononucleotides; Anhydro-derivatives thereof sharing nitrogen
    • C07H19/04Heterocyclic radicals containing only nitrogen atoms as ring hetero atom
    • C07H19/06Pyrimidine radicals
    • C07H19/10Pyrimidine radicals with the saccharide radical esterified by phosphoric or polyphosphoric acids
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P31/00Antiinfectives, i.e. antibiotics, antiseptics, chemotherapeutics
    • A61P31/12Antivirals
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07HSUGARS; DERIVATIVES THEREOF; NUCLEOSIDES; NUCLEOTIDES; NUCLEIC ACIDS
    • C07H19/00Compounds containing a hetero ring sharing one ring hetero atom with a saccharide radical; Nucleosides; Mononucleotides; Anhydro-derivatives thereof
    • C07H19/02Compounds containing a hetero ring sharing one ring hetero atom with a saccharide radical; Nucleosides; Mononucleotides; Anhydro-derivatives thereof sharing nitrogen
    • C07H19/04Heterocyclic radicals containing only nitrogen atoms as ring hetero atom

Definitions

  • the invention relates to the field of antiviral therapy and in particular to nucleoside derivatives for treating Hepatitis C Virus (HCV) mediated diseases.
  • HCV Hepatitis C Virus
  • the invention provides novel chemical compounds, pharmaceutical compositions comprising these compounds, methods for treatment or prophylaxis of HCV mediated diseases employing said compounds in monotherapy or in combination therapy.
  • the invention relates to nucleoside derivatives that inhibitor HCVreplicon RNA replication.
  • the invention is concerned with the use of phosphoramidate esters of 4' -substituted nucleosides that inhibitor of subgenomic HCV RNA replication and pharmaceutical compositions containing such compounds.
  • Hepatitis C virus is the leading cause of chronic liver disease throughout the world.
  • HCV Hepatocellular carcinoma
  • HCV has been classified as a member of the virus family Flaviviridae that includes the genera flaviviruses, pestiviruses, and hapaceiviruses which includes hepatitis C viruses (Rice, C. M., Flaviviridae: The viruses and their replication. In: Reids Virology, Editors: B. N. Fields, D. M. Knipe and P. M. Howley, Iippincott-Raven Publishers, Philadelphia, Pa., Chapter 30, 931-959, 1996).
  • HCV is an enveloped virus containing a positive- sense single- stranded RNA genome of approximately 9.4 kb.
  • the viral genome consists of a 5' untranslated region (UTR), a long open reading frame encoding a polyprotein precursor of- approximately 3011 amino acids, and a short 3' UTR.
  • the 5' UTR is the most highly conserved part of the HCV genome and is important for the initiation and control of polyprotein translation.
  • HCV Hastolica virus
  • Type Ib is the most prevalent subtype in Asia. (X Forns and J. Bukh, Clinics in liver Disease 1999 3:693-716; J. Bukh et al, Semin. Uv. Dis. 1995 15:41-63). Unfortunately Type 1 infectious is more resistant to therapy than either type 2 or 3 genotypes (N. N. Zein, Clin. Microbiol. Rev., 2000 13:223-235).
  • Viral structural proteins include a nucleocapsid core protein (C) and two envelope glycoproteins, El and E2.
  • HCV also encodes two proteases, a zinc-dependent metalloproteinase encoded by the NS2-NS3 region and a serine protease encoded in the NS3 region. These proteases are required for cleavage of specific regions of the precursor polyprotein into mature peptides.
  • the carboxyl half of nonstructural protein 5, NS5B contains the RNA-dependent RNA polymerase.
  • the function of the remaining nonstructural proteins, NS4Aand NS4B, and that of NS5A(the amino -terminal half of nonstructural protein 5) remain unknown. It is believed that most of the non- structural proteins encoded by the HCV RNA genome are involved in RNA replication
  • the development of resistance by HCV strains along with existing strains which are refractive to current therapy make new anti- HCV compounds very desirable.
  • RNA-dependent RNApolymerase is absolutely essential for replication of the single- stranded, positive sense, RNA genome. Consequently, this enzyme has elicited significant interest among medicinal chemists.
  • Nucleoside inhibitors of RNA polymerase can act either as a chain terminator during DNA synthesis or as a competitive inhibitor which interferes with nucleotide binding to the polymerase.
  • nucleoside analog To function as a chain terminator the nucleoside analog must be taken up be the cell and converted in vivo to a triphosphate to compete for the polymerase nucleotide binding site.
  • the required conversion of nucleosides to the corresponding triphosphate is commonly mediated by cellular kinases imparting additional structural requirements on a potential nucleoside polymerase inhibitor. In addition this limits the direct evaluation of nucleosides as inhibitors of HCV replication to cell-based assays.
  • Modification of the furanose ring of nucleosides has afforded compounds with an ti- viral activity. Modification of the 2'- and 3'-positions of the sugar ring has been extensively investigated. Modification of the 4'-position of the furanose ring has been explored to a lesser extent because of the difficulties associated with introduction of substituents at this position.
  • R. R. Devos et al. disclose 4'-substituted nucleoside compounds that exhibit HCV activity.
  • Four compounds explicitly identified include the 4'-azido compound, Ia, the 4'-ethynyl compound Ib, the 4'-ethoxy compound Ic and the 4'-acetyl compound Id.
  • Other exemplified modifications of the ribose moiety exemplified include the 2'-deoxy 2a derivative, 3'-deoxy derivative 2b, the 3'-methoxy derivative 2e, the 3'-fluoro derivative 2c and the 2',3'-difluoro derivative 2d.
  • 4-Ethynyl- cytarabine (6a) exhibits good anti-HIV activity while the corresponding nucleoside wherein the base was thymine 6b was inactive.
  • Several 4'-C-ethylnyl-2'-deoxy-D-D-nbo- pentofuranosyl pyrimidines and -purines were potent inhibitors of HIV reverse transcriptase (HIV-RT).
  • 4'-Azidocytidine, 4'-azidouridine, 4'-ethynylcytidine, 4'-ethynyluridine, 4'azido- arabinose see e.g. U.S. Ser. No. 60/603,778 which is incorporate by reference in its entirety
  • 4'-(Z-2-chlorovinyl)cytidine and 4'-(Z-2-chlorovinyl)uridine have exhibited activity against HCV and Flaviviridiae in cell culture or phosphorylated analogs were active against HCV polymerase in vitro.
  • more potent compounds are desirable to provide safe therapeutically effective levels in vivo.
  • certain phosphoramidate derivatives have now been found to exhibit useful biological activity against Flaviviridae.
  • nucleoside derivatives Although nucleoside derivatives have proven to be effective inhibitors of HCV polymerase, their practical utility is often limited by two factors. Firstly, suboptimal physical properties and poor pharmacokinetics frequently limit the intracellular concentration of the nucleoside derivative.
  • the present invention relates to phosphoramidate derivatives of 4' -substituted nucleosides compounds with improved physiochemical and pharmacokinetic properties. These derivatives more efficiently permeate the intestinal mucosa and ultimately are transported into the cell. These "pronucleotides” enhance biological activity, bioavailability or stability of the parent nucleotide (for reviews, see e.g., R. J. Jones and N. Bischofberger, Antiviral Res. 1995 27; 1-15 and C. R. Wagner et al, Med. Res. Rev. 200020:417-451).
  • nucleoside triphosphate if the prodrug successfully penetrates an infected cell and is converted to the parent nucleoside, the biologically activity of these compounds depends upon kinase- mediated phosphorylation to generate the nucleoside triphosphate.
  • Chemically modified nucleosides that are effective enzyme inhibitors are frequently poor substrates for endogenous nucleoside kinases resulting in the inefficient product of the triphosphate.
  • cells with low levels of nucleoside kinases are unable to phosphorylate the nucleoside analog. Formation of the monophosphate by a nucleoside kinase is normally rate-limiting and the second and third phosphorylations are less sensitive to modifications to the nucleoside.
  • R 3 alkyl or aralkyl
  • R 5 is H or a substituent
  • R 6 is cytidine, uridine or a 5-substituted derivative thereof
  • Aryloxy phosphoramidate derivatives 7a afford a mechanism to overcome both problems.
  • the phosphate moiety is masked with neutral lipophilic groups to obtain a suitable partition coefficient to optimize uptake and transport into the cell.
  • Enzyme- mediated hydrolysis of the ester produces a nucleoside monophosphate 7e wherein the rare limiting initial phosphorylation is unnecessary and the second and third phosphorylation are less sensitive to structural modifications of the nucleoside moiety.
  • Phosphoramidate diesters of nucleoside compounds have been reported including AZT (zidovudine), d4T (stauvidine), FudR (5-fluorodeoxyuridine), 2'-deoxyuridine, thymidine, d4A (2',3'-didedehydro-2',3'-dideoxyadenosine), isoddA (2',3'-dideoxy-3'- oxoadensoine), FLT (alovudine, 3-deoxy-3-fluorothymidine), ddC (2' ,3'- dideoxycytosine), ddA (dideoxyadenosine), hypoxallene, 2',3'-dideoxy-3'-thiacytidine (3TC) and Ara-C (Wagner , id., p. 438).
  • AZT zidovudine
  • d4T stauvidine
  • FudR 5-fluorodeoxy
  • the present invention is directed toward novel phosphoramidate derivatives of 4'- substituted nucleoside compounds that inhibit HCV polymerase, methods of treating a disorder mediated by HCV with said compounds and pharmaceutical compositions containing said compounds.
  • One object of the present invention is (i) A compound according to formula I
  • R 1 is hydrogen, C 1-6 haloalkyl, or aryl wherein said aryl is phenyl or naphthyl optionally substituted with one to three substituents independently selected from the group consisting of C 1-6 alkyl, C 2 _ 6 alkenyl, C 2 _ 6 alkynyl, C 1-6 alkoxy, halogen, C 1- 6 haloalkyl, -N(R la ) 2 , Ci_ 6 acylamino, -NHSO 2 C 1-6 alkyl, -SO 2 N(R la ) 2 , -SO 2 C 1-6 alkyl, COR lb , nitro and cyano;
  • R la is independently hydrogen or C 1-6 alkyl
  • R lb is -OR la or -N(R la ) 2 ;
  • R 4 is hydrogen, Ci_ 3 alkyl, or R 2b and R 4 together are (CH 2 ) 3 ;
  • R 6 is A, B, C or D wherein R 11 is hydrogen or C 1-3 alkyl
  • R 7 is hydrogen, methyl, halomethyl or halogen
  • R 9 is OR 8b and R 10 is hydrogen wherein R 8a and R 8b are (Q independently hydrogen, benzoyl or C 1-6 acyl or (Q together R 8a and R 8b are C(Me) 2 , C(CH 2 ) 4 , CHPh, or
  • R 9 is hydrogen and R 10 is OR 8b wherein R 8a and R 8b are independently hydrogen or Ci_ 6 acyl;
  • n 0 to 3;
  • n 4 or 5;
  • p 0 to 2;
  • r 1 to 6;
  • R 1 is hydrogen, C 1-6 haloalkyl, or aryl wherein said aryl is phenyl or naphthyl optionally substituted with one to three substituents independently selected from the group consisting of C 1-6 alkyl, C 1-6 alkoxy and halogen;
  • R 2a and R 2b are (/) independently selected from the group consisting of hydrogen, C 1-1 O alkyl, -(CH 2 )DiCO 2 C 1-6 alkyl , -(CH 2 ) m S Ci_ 6 alkyl, aryl and aryl Q_3 alkyl wherein said aryl is phenyl;
  • R 2a is hydrogen and R 2b and R 4 together are (CH 2 ) 3 ;
  • (Hi) R 2a and R 2b together are (CH 2 ) n ; or, (iv) R 2a and R 2b both are C 1-6 alkyl;
  • R 3 is hydrogen, C 1 - M alkyl, C 1-1 O haloalkyl, aryl or aryl-Ci-3 alkyl wherein said aryl is phenyl;
  • R 4 is hydrogen, Ci_ 3 alkyl, or R 4 together with R 2a or R 2b are (CH 2 ) 3 ;
  • R 6 is A, B, C or D
  • R 9 is OR 8b and R 10 is hydrogen wherein R 8a and R 8b are hydrogen or R 8a and R 8b together are C(Me) 2 ;
  • n 0 to 3;
  • n 4 or 5;
  • R 1 is hydrogen or aryl wherein said aryl is phenyl or naphthyl optionally substituted with one to three substituents independently selected from the group consisting of C 1 -O alkyl, C 1-6 alkoxy and halogen;
  • R 2a and R 2b are (/) independently selected from the group consisting of hydrogen, C 1 ⁇ o alkyl, -(CH 2 )U 1 CO 2 C 1 -O alkyl , -(CH 2 ) m S C 1-6 alkyl, aryl and aryl C 1-3 alkyl wherein said aryl is phenyl;
  • (U) R 2a is hydrogen and R 2b and R 4 together are (CH 2 ) 3 ; or
  • R 2a and R 2b together are (CH 2 ) n ;
  • R 3 is hydrogen, C 1 -M alkyl, C 1-1 O haloalkyl, aryl or aryl-Ci- 3 alkyl wherein said aryl is phenyl;
  • R 4 is hydrogen, C 1-3 alkyl, or R 4 together with R 2a or R 2b are (CH 2 ) 3 ;
  • R 6 is A
  • R 9 is OR 8b and R 10 is hydrogen wherein R 8a and R 8b are hydrogen;
  • R 11 is hydrogen
  • n 0 to 3;
  • n 4 or 5.
  • R 1 is hydrogen, phenyl, 4-Cl-phenyl, 3,4-di-Cl-phenyl, 4-methyl-phenyl, 4-methoxy-phenyl, 1-naphthyl or 3-bromo-naphthyl;
  • R 2a and R 2b are (/) independently selected from the group consisting of hydrogen, methyl,
  • R 2a is hydrogen and R 2b and R 4 together are (CH 2 ) 3 ; or (Ui) R 2a and R 2b together are
  • R 3 is hydrogen, methyl, ethyl, isopropyl, n-butyl, tert-butyl, CH(ethyl)CH 3 , n-C 12 H 25 , -CH 2 CF 3 , -CH 2 -phenyl;
  • R 4 is hydrogen, methyl, or R 4 together with R 2a or R 2b are (CH 2 ) 3 ;
  • R 6 is A; R 9 is OR 8b and R 10 is hydrogen wherein R 8a and R 8b are hydrogen; and
  • R 11 is hydrogen
  • R 1 is hydrogen, C 1-6 haloalkyl, or aryl wherein said aryl is phenyl or naphthyl optionally substituted with one to three substituents independently selected from the group consisting of C 1-6 alkyl, C 1-6 alkoxy and halogen;
  • R 2a and R 2b are (/) independently selected from the group consisting of hydrogen, C 1-1 O alkyl, -(CH 2 ) m CO 2 C 1-6 alkyl , -(CH 2 ) m S C 1-6 alkyl, aryl and aryl Ci_ 3 alkyl wherein said aryl is phenyl;
  • R 2a is hydrogen and R 2b and R 4 together are (CH 2 ) 3 ;
  • R 2a and R 2b together are (CH 2 ) n ; or, (iv) R 2a and R 2b both are C 1-6 alkyl;
  • R 3 is hydrogen, C 1 -M alkyl, C 1-1 O haloalkyl, aryl or aryl-Ci- 3 alkyl wherein said aryl is phenyl;
  • R 4 is hydrogen, C 1-3 alkyl, or R 4 together with R 2a or R 2b are (CH 2 ) 3 ;
  • R 6 is B
  • R 9 is OR 8b and R 10 is hydrogen wherein R 8a and R 8b are hydrogen or R 8a and R 8b together are C(Me) 2 ;
  • n 0 to 3;
  • n 4 or 5.
  • R 1 is hydrogen, -CH 2 CF 3 , phenyl, 4-Cl-phenyl, 3,4-di-Cl-phenyl, 4-methyl-phenyl, 4- methoxy-phenyl or 1-naphthyl;
  • R 2a and R 2b are (/) independently selected from the group consisting of hydrogen, methyl, -CHMe 2 ; -CH 2 CHMe 2 ; -CH(ethyl)CH 3 , -CH 2 CO 2 Et, -(CH 2 ) 2 CO 2 Et ; (CH 2 ) 2 SMe; -CH 2 -phenyl; (K) R 2a is hydrogen and R 2b and R 4 together are (CH 2 ) 3 ; or (Ui) R 2a and R 2b together are (CH 2 ) 4 ;
  • R 3 is hydrogen, methyl, ethyl, isopropyl, n-butyl, tert-butyl, -CH(ethyl)CH 3 , n-C 12 H 25 , -CH 2 -phenyl;
  • R 4 is hydrogen, methyl, or R 4 together with R 2a or R 2b are (CH 2 ) 3 ;
  • R 5 is azide
  • R 6 is B
  • R 9 is OR 8b and R 10 is hydrogen wherein R 8a and R 8b are hydrogen or R 8a and R 8b together are C(Me) 2 .
  • R 1 is hydrogen or aryl wherein said aryl is phenyl or naphthyl optionally substituted with one to three substituents independently selected from the group consisting of C 1 -O alkyl, C 1-6 alkoxy and halogen;
  • R 2a and R 2b are independently selected from the group consisting of hydrogen, C 1-6 alkyl;
  • R 3 is hydrogen, C 1 - M alkyl, aryl or aryl-Ci- 3 alkyl wherein said aryl is phenyl;
  • R 4 is hydrogen, C 1-3 alkyl
  • R 5 is azide; R 6 is C;
  • R 8a is H
  • R 9 is hydroxyl
  • R 10 is hydrogen
  • R 1 is hydrogen or naphthyl
  • R 2a and R 2b are independently selected from the group consisting of hydrogen and methyl;
  • R 3 is hydrogen or -CH 2 -phenyl
  • R 4 is hydrogen
  • R 5 is azide
  • R 6 is C
  • R 8a is H
  • R 9 is hydroxyl
  • R 10 is hydrogen
  • R 1 is hydrogen or aryl wherein said aryl is phenyl or naphthyl optionally substituted with one to three substituents independently selected from the group consisting of
  • R 2a and R 2b are independently selected from the group consisting of hydrogen, C 1-6 alkyl;
  • R 3 is hydrogen, C 1 - M alkyl, aryl or aryl-Ci_3 alkyl wherein said aryl is phenyl;
  • R 4 is hydrogen, C 1-3 alkyl
  • R 5 is azide
  • R 6 is D
  • R 8a is H
  • R 9 is hydroxyl
  • R 10 is hydrogen
  • R 1 is hydrogen or naphthyl
  • R 2a and R 2b are independently selected from the group consisting of hydrogen and methyl;
  • R 3 is hydrogen or -CH 2 -phenyl
  • R 4 is hydrogen
  • R 5 is azide
  • R 6 is D
  • R 8a is H
  • R 9 is hydroxyl
  • R 10 is hydrogen
  • a pharmaceutical composition comprising a therapeutically effective quantity of a compound according to any one of (i) to (x) admixed with at least one pharmaceutically acceptable carriers, diluents or excipients.
  • a compound according to formula I wherein I, A, B, C, D, R 1 , R la , R lb , R 2a , R 2b , R 3 , R 4 , R 5 , R 6 , R 7 , R 8a , R 8b , R 9 , R 10 , m, n, p and r are as defined hereinabove and pharmaceutically acceptable salts thereof.
  • Ci_ 3 alkyl; R 3 is hydrogen, C 1-10 alkyl or benzyl; R 5 is azide, R 9 is OR 8b ; R 4 , R 7 , R 8a , R 8b , R and R i ll are hydrogen.
  • Other substituents not specifically limited in this embodiment are aass ddeeffiinneedd iinn tthhee ssuummmmaarryy ooff tthhee iinnvveennttiioonn..
  • WWhheenn F R 3 is hydrogen it optionally can be replaced with a pharmaceutically acceptable cation.
  • R 2a and R 2b are (/) independently hydrogen, methyl, u propyl, ⁇ o-butyl, sec-butyl, -CH 2 OH, -CH(OH)CH 3 , -CH 2 SH, -CH 2 CH 2 S(O) p Me, -
  • R 3 is hydrogen it optionally can be replaced with a alkylammonium cation.
  • R 2a is hydrogen and R 2b is hydrogen, methyl, /so-propyl, /so-butyl, sec-butyl;
  • R 3 is hydrogen, C 1-1 O alkyl or benzyl, R 5 is azide or -C ⁇ CH;
  • R 9 is OR 8b ;
  • R 4 , R 7 , R 8a , R 8b , R 10 and R 11 are hydrogen.
  • R 3 is hydrogen it optionally can be replaced with a pharmaceutically acceptable cation.
  • R 2a is hydrogen and R 2b is hydrogen, methyl, /so-propyl, /so-butyl, sec-butyl;
  • R 3 is hydrogen, C 1-1 O alkyl or benzyl, R 5 is azide;
  • R 9 is OR 8b ;
  • R 4 , R 7 , R 8a , R 8b , R 10 and R 11 are hydrogen.
  • R 3 is hydrogen it optionally can be replaced with a pharmaceutically acceptable cation.
  • R and R are Me or R and R together are (CH 2 ) n wherein n is 4; R 3 is hydrogen, C 1-1 O alkyl or benzyl, R 5 is azide or -C ⁇ CH; R 9 is OR 8b ; R 4 , R 7 , R 8a , R 8b , R 10 and R 11 are hydrogen.
  • R 3 is hydrogen it optionally can be replaced with a pharmaceutically acceptable cation.
  • R and R are Me or R and R together are (CH 2 ) n wherein n is 4; R 3 is hydrogen, C 1-10 alkyl or benzyl, R 5 is azide; R 9 is OR 8b ; R 4 , R 7 , R 8a , R 8b , R 10 and R 11 are hydrogen.
  • R 2a is hydrogen and R 2b is hydrogen, methyl, /sopropyl, iso-buty ⁇ , sec-butyl;
  • R 3 is hydrogen, C 1 ⁇ o alkyl or benzyl;
  • R 5 is azide or -C ⁇ CH;
  • R 10 is OR 8b ;
  • R 4 , R 7 , R 8a , R 8b , R 9 and R 11 are hydrogen.
  • R 3 is hydrogen it optionally can be replaced with a pharmaceutically acceptable cation.
  • R 2a and R 2b are Me or R 2a and R 2b together are (CH 2 ) n wherein n is 4;
  • R 3 is hydrogen, C 1 ⁇ o alkyl or benzyl;
  • R 5 is azide or -C ⁇ CH;
  • R 10 is OR 8b ;
  • R 4 , R 7 , R 8a , R 8b , R 9 and R 11 are hydrogen.
  • R 3 is hydrogen it optionally can be replaced with a pharmaceutically acceptable cation.
  • a method for treating a disease caused by hepatitis C virus comprising treating a patient in need thereof with a therapeutically effective amount of a compound according to formula I wherein A, B, C, D, R 1 , R la , R lb , R 2a , R 2b , R 3 , R 4 , R 5 , R 6 , R 7 , R 8a , R 8b , R 9 , R 10 , R 11 , m, n, p and r are as defined in the summary of the invention and pharmaceutically acceptable salts thereof.
  • HCV hepatitis C virus
  • a method for treating a disease caused by hepatitis C virus comprising treating a patient in need thereof with a therapeutically effective amount of a compound according to formula I wherein R 9 is OR 8b ; R 10 and R 11 are hydrogen.
  • R 9 is OR 8b ; R 10 and R 11 are hydrogen.
  • R 9 is OR 8b ; R 10 and R 11 are hydrogen.
  • R 3 is hydrogen it optionally can be replaced with a pharmaceutically acceptable cation.
  • a method for treating a disease caused by hepatitis C virus comprising treating a patient in need thereof with a therapeutically effective amount of a compound according to formula I wherein R 9 is OR 8b ; R 10 is hydrogen; R 5 is azide or -C ⁇ CH; Other substituents not specifically limited in this embodiment are as defined in the summary of the invention.
  • R 3 is hydrogen it optionally can be replaced with a pharmaceutically acceptable cation.
  • a method for treating a disease caused by hepatitis C virus comprising treating a patient in need thereof with a therapeutically effective amount of a compound according to formula I wherein R 10 is OR 8b ; R 9 and R 11 are hydrogen.
  • R 10 is OR 8b ; R 9 and R 11 are hydrogen.
  • R 3 is hydrogen it optionally can be replaced with a pharmaceutically acceptable cation.
  • a method for treating a disease caused by hepatitis C virus comprising treating a patient in need thereof with a therapeutically effective amount of a compound according to formula I wherein R 2a is hydrogen and R 2b is hydrogen, methyl, /so-propyl, iso-butyl, sec-butyl; R 3 is hydrogen, C M0 alkyl or benzyl, R 5 is azide or -C ⁇ CH; R 9 is OR 8b ; R 4 , R 7 , R 8a , R 8b , R 10 and R i ll are hydrogen.
  • HCV hepatitis C virus
  • a method for treating a disease caused by Flaviviridae virus comprising treating a patient in need thereof with a therapeutically effective amount of a compound according to formula I wherein I, Ia, Ib, R 1 , R la , R lb , R 2a , R 2b , R 3 , R 4 , R 5 , R 6 , R 7 , R 8a , R 8b , R 9 , R 10 , R 11 , m, n, p and r are as defined in the summary of the invention and pharmaceutically acceptable salts thereof.
  • a method for treating a disease caused by hepatitis C virus comprising treating a patient in need thereof with a therapeutically effective amount of a compound according to formula I wherein A, B, C, D, R 1 , R la , R lb , R 2a , R 2b , R 3 , R 4 , R 5 , R 6 , R 7 , R 8a , R 8b , R 9 , R 10 , R 11 , m, n, p and r are as defined and pharmaceutically acceptable salts thereof, in combination with at least one immune system modulator and/or at least one antiviral agent that inhibits replication of HCV.
  • HCV hepatitis C virus
  • a method for treating a disease caused by hepatitis C virus comprising treating a patient in need thereof with a therapeutically effective amount of a compound according to formula I wherein A, B, C, D, R 1 , R la , R lb , R 2a , R 2b , R 3 , R 4 , R 5 , R 6 , R 7 , R 8a , R 8b , R 9 , R 10 , R 11 , m, n, p and r are as defined and pharmaceutically acceptable salts thereof, in combination with an immune system modulator selected from the group consisting of an interferon, interleukin, tumor necrosis factor and colony stimulating factor
  • a method for treating a disease caused by hepatitis C virus comprising treating a patient in need thereof with a therapeutically effective amount of a compound according to formula I wherein A, B, C, D, R 1 , R la , R lb , R 2a , R 2b , R 3 , R 4 , R 5 , R 6 , R 7 , R 8a , R 8b , R 9 , R 10 , R 11 , m, n, p and r are as defined in the summary of the invention and pharmaceutically acceptable salts thereof, in combination with an interferon, or a chemically derivatized interferon.
  • HCV hepatitis C virus
  • a method for treating a disease caused by hepatitis C virus comprising treating a patient in need thereof with a therapeutically effective amount of a compound according to formula I wherein A, B, C, D, R 1 , R la , R lb , R 2a , R 2b , R 3 , R 4 , R 5 , R 6 , R 7 , R 8a , R 8b , R 9 , R 10 , R 11 , m, n, p and r are as defined in the summary of the invention and pharmaceutically acceptable salts thereof, in combination with PEGASYS®or PEG-INTRON®
  • a method for treating a disease caused by hepatitis C virus comprising treating a patient in need thereof with a therapeutically effective amount of a compound according to formula I wherein A, B, C, D, R 1 , R la , R lb , R 2a , R 2b , R 3 , R 4 , R 5 , R 6 , R 7 , R 8a , R 8b , R 9 , R 10 , R 11 , m, n, p and r are as defined in the summary of the invention and pharmaceutically acceptable salts thereof, in combination with at least one antiviral agent that inhibits replication of HCV
  • a method for treating a disease caused by hepatitis C virus (HCV) comprising treating a patient in need thereof with a therapeutically effective amount of a compound according to formula I wherein A, B, C, D, R 1 , R la , R lb ,
  • a pharmaceutical composition for treating a disease caused by hepatitis C virus comprising treating a patient in need thereof with a therapeutically effective amount of a compound according to formula I wherein A, B, C, D, R 1 , R la , R lb , R 2a , R 2b , R 3 , R 4 , R 5 , R 6 , R 7 , R 8a , R 8b , R 9 , R 10 , R 11 , m, n, p and r are as defined in the summary of the invention and pharmaceutically acceptable salts thereof, in admixture with at least one pharmaceutically acceptable carrier, diluent or excipient.
  • HCV hepatitis C virus
  • a or “an” entity refers to one or more of that entity; for example, a compound refers to one or more compounds or at least one compound.
  • a compound refers to one or more compounds or at least one compound.
  • the terms “a” (or “an”), “one or more”, and “at least one” can be used interchangeably herein.
  • alkyl denotes an unbranched or branched chain, saturated, monovalent hydrocarbon residue, preferably containing 1 to 14 carbon atoms, more preferably containing 1 to 10 carbon atoms.
  • lower alkyl denotes a straight or branched chain hydrocarbon residue containing 1 to 6 carbon atoms.
  • Cyl 1 O alkyl refers to an alkyl composed of 1 to 10 carbons.
  • alkyl groups include, but are not limited to, lower alkyl groups include methyl, ethyl, propyl, i- propyl, n-butyl, /-butyl, r-butyl or pentyl, isopentyl, neopentyl, hexyl, heptyl, and octyl.
  • alkenyl as used herein denotes an unsubstituted hydrocarbon chain radical having from 2 to 10 carbon atoms having one or two olefinic double bonds unless designated otherwise.
  • C 2 -io alkenyl refers to an alkenyl composed of 2 to 10 carbons. Examples are vinyl, 1-propenyl, 2-propenyl (allyl) or 2-butenyl (crotyl).
  • alkynyl denotes an unbranched or branched hydrocarbon chain radical having from 2 to 10 carbon atoms, and having one or where possible two triple bonds unless otherwise designated.
  • C 2 -io alkenyl refers to an alkenyl composed of 2 to 10 carbons. Examples are ethynyl, 1-propynyl, 2- propynyl, 1-butynyl, 2-butynyl or 3-butynyl.
  • alkoxy as used herein means an -O-alkyl group, wherein alkyl is as defined above such as methoxy, ethoxy, n-propyloxy, z-propyloxy, n-butyloxy, z-butyloxy, t-butyloxy, pentyloxy, hexyloxy, including their isomers.
  • Lower alkoxy as used herein denotes an alkoxy group with a "lower alkyl” group as previously defined.
  • Cyr 1 O alkoxy as used herein refers to an-O-alkyl wherein alkyl is C 1-1 O.
  • halogen or "halo” as used herein means fluorine, chlorine, bromine, or iodine.
  • haloalkyl denotes a unbranched or branched chain alkyl group as defined above wherein 1, 2, 3 or more hydrogen atoms are substituted by a halogen.
  • Q-3 haloalkyl refers to an haloalkyl composed of 1 to 3 carbons and 1-8 halogen substituents.
  • Examples are 1-fluoromethyl, 1-chloromethyl, 1- bromomethyl, 1-iodomethyl, trifluoromethyl, trichloromethyl, tribromomethyl, triiodomethyl, 1-fluoroethyl, 1-chloroethyl, 1-bromoethyl, 1-iodoethyl, 2-fluoroethyl, 2- chloroethyl, 2-bromoethyl, 2-iodoethyl, 2,2-dichloroethyl, 3-bromopropyl or 2,2,2- trifluoroethyl.
  • hydroxyalkyl and “alkoxyalkyl” as used herein denotes the radical RR" where R is an hydroxy radical or a alkoxy radical respectively and R" is as defined herein and the attachment point of the hydroxyalkyl radical will be on the alkylene radical.
  • alkylene as used herein denotes a divalent saturated linear hydrocarbon radical of 1 to 6 carbon atoms or a branched saturated divalent hydrocarbon radical of 3 to 6 carbon atoms, unless otherwise indicated. Examples of alkylene radicals include, but are not limited to, methylene, ethylene, propylene, 2-methyl-propylene, butylene and 2- ethylbutylene.
  • hydroxyalkyl herein also includes the threonine side chain - CH(OH)Me and C 3 _s homologs thereof.
  • aryl denotes a phenyl or naphthyl radical optionally substituted with one or more, preferably one or three substituents independently selected from hydroxy, thio, cyano, alkyl, alkoxy, lower haloalkoxy, alkylthio, halogen , haloalkyl, hydroxyalkyl, nitro, alkoxycarbonyl, amino, alkylamino, dialkylamino, aminoalkyl, alkylamino alkyl, and dialkylamino alkyl, alkylsulfonyl, arylsulfinyl, alkylaminosulfonyl, arylaminosulfonyl, alkylsulfonylamino, arylsulfonylamino, carbamoyl, alkylcarbamoyl and dialkylcarbamoyl, arylcarbamoyl, alkylcarbonylamino
  • arylalkyl or "aralkyl” as used herein denotes the radical R'R"-, wherein R is an aryl radical as defined herein, and R" is an alkylene radical as defined herein with the understanding that the attachment point of the arylalkyl moiety will be on the alkylene radical.
  • arylalkyl radicals include, but are not limited to, benzyl (aryl-Ci alkyl), phenylethyl, 3-phenylpropyl.
  • alkylammonium cation refers to a radical NR 1 R 2 R 3 R 4+ where R*-R 4 are indendently hydrogen or alkyl.
  • Interferons have been available for the treatment of chronic hepatitis for nearly a decade. IFNs are glycoproteins produced by immune cells in response to viral infection. Two distinct types of interferon are recognized: Type 1 includes several interferon alphas and one interferon ⁇ , type 2 includes interferon ⁇ . Type 1 interferons are produced mainly by infected cells and protect neighboring cells from de novo infection. IFNs inhibit viral replication of many viruses, including HCV, and when used as the sole treatment for hepatitis C infection, IFN suppresses serum HCV-RNA to undetectable levels. Additionally, IFN normalizes serum amino transferase levels. Unfortunately, the effects of IFN are temporary.
  • PEGASYS® is a conjugate interferon ⁇ -2a and a 40 kD branched mono-methoxy PEG and PEG- INTRON®is a conjugate of interferon ⁇ -2b and a 12 kD mono-methoxy PEG.
  • chemically- derivatized interferon refers to an interferon molecule covalently linked to a polymer which alters the physical and/or pharmacokinetic properties of the interferon.
  • a non-limiting list of such polymers include polyalkylene oxide homopolymers such as polyethylene glycol (PEG) or polypropylene glycol (PPG), polyoxyethylenated polyols, copolymers thereof and block copolymers thereof, provided that the water solubility of the block copolymers is maintained.
  • a non-limiting list of chemically derivatized IFN ⁇ contemplated in the present patent include peginterferon- ⁇ -2a (PEGASYS®) and peginterferon- ⁇ -2b (PEGINTRON®).
  • NS2-NS3 autoprotease the N3 protease
  • N3 helicase the N3 helicase
  • NS5B polymerase The RNS- dependent RNApolymerase is absolutely essential for replication of the single- stranded, positive sense, RNA genome. This enzyme has elicited significant interest among medicinal chemists.
  • Nucleoside inhibitors can act either as a chain terminator or as a competitive inhibitor which interferes with nucleotide binding to the polymerase.
  • To function as a chain terminator the nucleoside analog must be taken up be the cell and converted in vivo to a triphosphate to compete for the polymerase, nucleotide binding site. This conversion to the triphosphate is commonly mediated by cellular kinases which imparts additional limitations on any nucleoside. In addition this limits the direct evaluation of nucleosides as inhibitors of HCV replication to cell-based assays.
  • Non-nucleoside allosteric inhibitors of HIV reverse transcriptase have proven effective therapeutics alone and in combination with nucleoside inhibitors and with protease inhibitors.
  • Several classes of non-nucleoside HCV NS5B inhibitors have been described and are currently at various stages of development including: benzimidazoles, (H. Hashimoto et al. WO 01/47833, H. Hashimoto et al. WO 03/000254, P. L. Beaulieu et al. WO 03/020240 A2; P. L. Beaulieu et al. US 6,448,281 Bl; P. L. Beaulieu et al. WO 03/007945 Al); indoles, (P.
  • Abbreviations used in this application include: acetyl (Ac), acetic acid (HOAc), azo- Ms'-isobutyrylnitrile (AIBN), 1-N-hydroxybenzotriazole (HOBt), atmospheres (Atm), high pressure liquid chromatography (HPLC), 9-borabicyclo[3.3.1]nonane (9-BBN or BBN), methyl (Me), t ⁇ t-butoxycarbonyl (Boc), acetonitrile (MeCN), di-t ⁇ t-butyl pyrocarbonate or boc anhydride (BOC 2 O), l-(3-dimethylaminopropyl)-3- ethylcarbodiimide hydrochloride (EDCI), benzyl (Bn), m-chloroperbenzoic acid (MCPBA), butyl (Bu), methanol (MeOH), benzyloxycarbonyl (cbz or Z), melting point (mp), carbony
  • Phosphoramidate compounds of the present invention can be prepared by condensation of a 4' -substituted nucleoside with a suitably substituted phosphochloridate compound 12 in the presence of a strong base (Scheme 2) .
  • Examples of 4' -substituted nucleosides used to prepare compounds of the present invention can be found in Table 3, which is not intended to be limiting, and the scope of the nucleosides of the present invention can be found in the claims.
  • the condensation can be carried out on the unprotected nucleoside (e.g., 13a-e; R. Devos et al. US 6,784,166 filed June 11, 2002; H. Ohrui et al. WO 2000069876 filed Nov. 11, 2000; E.-I. Kodama et al. Antimicrob. Agents Chemother.
  • nucleoside can be protected as an acetonide (13f; J. A Martin et al. US20040121980 filed Nov. 19, 2003) or other diol protecting group known in the art.
  • Deprotection of a nucleoside after the condensation is carried out utilizing standard protocols for nucleic acid chemistry. General experimental procedures for the condensation are described in Examples 1 to 7.
  • the requisite substituted phosphochloridate compounds 12 utilized to prepare compounds of the present invention are prepared by a two-step sequence comprising condensation of phosphorus oxychloride (10) with a suitably substituted phenol to afford an aryloxyphosphorodichloridates 11 (see Example 2) which are subsequently treated with a acid addition salt of an ⁇ - amino acid ester in the presence of TEA to afford an aryloxyphosphorochloridate 12 (for representative procedure see, e.g., D. Curley et al. Antiviral Res. 1990 14:345-356; C. McGuigan et al. Antiviral Res. 1992 17:311-321; McGuigan et al. Antiviral Chem. Chemother 1990 l(2):107-113).
  • Representative aryloxy phosphorodichloridates and aryloxy phosphorochloridates are listed in Tables 1 and 2 respectively.
  • R a is hydrogen and one of R and R is hydroxyl and the other of R and R is hydrogen.
  • R 8a is hydrogen and R 9 is hydroxyl the resulting 3',4'-diol can form an acetal or ketal protecting group.
  • Treating a nucleoside with an aryloxy phosphoramidate in the presence of strong base affords the phosphoramidate derivatives of the invention (for representative procedures see, e.g. K. S. Gudmundsson, Nucleosides, Nucleotides & Nucleic Acids 2003 22(10):1953-1961).
  • a subsequent deprotection step is required which steps are know in the art.
  • Tautomeric compounds can exist as two or more interconvertable species.
  • Prototropic tautomers result from the migration of a covalently bonded hydrogen atom between two atoms.
  • Tautomers generally exist in equilibrium and attempts to isolate an individual tautomers usually produce a mixture whose chemical and physical properties are consistent with a mixture of compounds. The position of the equilibrium is dependent on chemical features within the molecule. For example, in many aliphatic aldehydes and ketones, such as acetaldehyde, the keto form predominates while; in phenols, the enol form predominates.
  • amino acid refers to naturally occurring ⁇ amino carboxylic acids, as well as to optical isomers (enantiomers and diastereomers), synthetic analogs and derivatives thereof, ⁇ - Amino acids comprise a carbon atom bonded to a carboxyl group, an amino group, a hydrogen atom and a unique "side chain” group.
  • naturally occurring amino acids means the L-isomers of the naturally occurring amino acids.
  • the naturally occurring amino acids are glycine, alanine, valine, leucine, iso leu cine, serine, methionine, threonine, phenylalanine, tyrosine, tryptophan, cysteine, proline, histidine, aspartic acid, asparagine, glutamic acid, glutamine, ⁇ -carboxyglutamic acid, arginine, ornithine and lysine.
  • Compounds of the present invention may have asymmetric centers located on the side chain of a carboxylic ester, amide or carbonate moiety that produce diastereomers when linked to the nucleoside. All stereoisomers of a side chain of compounds of the instant invention are contemplated, either in admixture or in pure or substantially pure form.
  • the definition of the compounds according to the invention embraces all both isolated optical isomers enantiomers and their mixtures including the racemic form.
  • the pure optical isomer can be prepared by stereo specific synthesis from ⁇ -D-ribose or the racemic form can be resolved by physical methods, such as, for example, fractional crystallization, separation or crystallization of diastereomeric derivatives or separation by chiral column chromatography.
  • the individual optical isomers can be obtained from the racemates by conventional methods, such as, for example, salt formation with an optically active acid followed by crystallization.
  • the nomenclature used for the compounds in Table I- IV is based on AUTON OMTM v.4.0, a Beilstein Institute computerized system for the generation of IUPAC systematic nomenclature. If there is a discrepancy between a depicted structure and a name given that structure, the depicted structure is to be accorded more weight. In addition, if the stereochemistry of a structure or a portion of a structure is not indicated with, for example, bold or dashed lines, the structure or portion of the structure is to be interpreted as encompassing all stereoisomers of it.
  • the compounds of the present invention may be formulated in a wide variety of oral administration dosage forms and carriers.
  • Oral administration can be in the form of tablets, coated tablets, dragees, hard and soft gelatine capsules, solutions, emulsions, syrups, or suspensions.
  • Compounds of the present invention are efficacious when administered by other routes of administration including continuous (intravenous drip) topical parenteral, intramuscular, intravenous, subcutaneous, transdermal (which may include a penetration enhancement agent), buccal, nasal, inhalation and suppository administration, among other routes of administration.
  • the preferred manner of administration is generally oral using a convenient daily dosing regimen which can be adjusted according to the degree of affliction and the patient's response to the active ingredient.
  • a compound or compounds of the present invention, as well as their pharmaceutically useable salts, together with one or more conventional excipients, carriers, or diluents, maybe placed into the form of pharmaceutical compositions and unit dosages.
  • the pharmaceutical compositions and unit dosage forms may be comprised of conventional ingredients in conventional proportions, with or without additional active compounds or principles, and the unit dosage forms may contain any suitable effective amount of the active ingredient commensurate with the intended daily dosage range to be employed.
  • compositions may be employed as solids, such as tablets or filled capsules, semisolids, powders, sustained release formulations, or liquids such as solutions, suspensions, emulsions, elixirs, or filled capsules for oral use; or in the form of suppositories for rectal or vaginal administration; or in the form of sterile injectable solutions for parenteral use.
  • Atypical preparation will contain from about 5% to about 95% active compound or compounds (w/w).
  • preparation or “dosage form” is intended to include both solid and liquid formulations of the active compound and one skilled in the art will appreciate that an active ingredient can exist in different preparations depending on the target organ or tissue and on the desired dose and pharmacokinetic parameters.
  • excipient refers to a compound that is useful in preparing a pharmaceutical composition, generally safe, non-toxic and neither biologically nor otherwise undesirable, and includes excipients that are acceptable for veterinary use as well as human pharmaceutical use.
  • excipient includes both one and more than one such excipient.
  • a “pharmaceutically acceptable salt” form of an active ingredient may also initially confer a desirable pharmacokinetic property on the active ingredient which were absent in the non-salt form, and may even positively affect the pharmacodynamics of the active ingredient with respect to its therapeutic activity in the body.
  • pharmaceutically acceptable salt of a compound means a salt that is pharmaceutically acceptable and that possesses the desired pharmacological activity of the parent compound.
  • Such salts include: (1) acid addition salts, formed with inorganic acids such as hydrochloric acid, hydrobromic acid, sulfuric acid, nitric acid, phosphoric acid, and the like; or formed with organic acids such as acetic acid, propionic acid, hexanoic acid, cyclopentanepropionic acid, glycolic acid, pyruvic acid, lactic acid, malonic acid, succinic acid, malic acid, maleic acid, fumaric acid, tartaric acid, citric acid, benzoic acid, 3- (4- hydroxybenzoyl)benzoic acid, cinnamic acid, mandelic acid, methanesulfonic acid, ethanesulfonic acid, 1,2-ethane-disulfonic acid, 2-hydroxyethanesulfonic acid, benzenesulfonic acid, 4-hlorobenzenesulfonic acid, 2-naphthalenesulfonic acid, 4- toluenesulfonic acid, cam
  • Solid form preparations include powders, tablets, pills, capsules, cachets, suppositories, and dispersible granules.
  • a solid carrier may be one or more substances which may also act as diluents, flavoring agents, solubilizers, lubricants, suspending agents, binders, preservatives, tablet disintegrating agents, or an encapsulating material.
  • the carrier In powders, the carrier generally is a finely divided solid which is a mixture with the finely divided active component.
  • the active component In tablets, the active component generally is mixed with the carrier having the necessary binding capacity in suitable proportions and compacted in the shape and size desired.
  • Suitable carriers include but are not limited to magnesium carbonate, magnesium stearate, talc, sugar, lactose, pectin, dextrin, starch, gelatin, tragacanth, methylcellulose, sodium carboxymethylcellulose, a low melting wax, cocoa butter, and the like.
  • Solid form preparations may contain, in addition to the active component, colorants, flavors, stabilizers, buffers, artificial and natural sweeteners, dispersants, thickeners, solubilizing agents, and the like.
  • liquid formulations also are suitable for oral administration include liquid formulation including emulsions, syrups, elixirs, aqueous solutions, aqueous suspensions. These include solid form preparations which are intended to be converted to liquid form preparations shortly before use.
  • Emulsions may be prepared in solutions, for example, in aqueous propylene glycol solutions or may contain emulsifying agents such as lecithin, sorbitan monooleate, or acacia.
  • Aqueous solutions can be prepared by dissolving the active component in water and adding suitable colorants, flavors, stabilizing, and thickening agents.
  • Aqueous suspensions can be prepared by dispersing the finely divided active component in water with viscous material, such as natural or synthetic gums, resins, methylcellulose, sodium carboxymethylcellulose, and other well known suspending agents.
  • the compounds of the present invention maybe formulated for parenteral administration (e.g., by injection, for example bolus injection or continuous infusion) and may be presented in unit dose form in ampoules, pre- filled syringes, small volume infusion or in multi-dose containers with an added preservative.
  • the compositions may take such forms as suspensions, solutions, or emulsions in oily or aqueous vehicles, for example solutions in aqueous polyethylene glycol.
  • oily or nonaqueous carriers, diluents, solvents or vehicles examples include propylene glycol, polyethylene glycol, vegetable oils (e.g., olive oil), and injectable organic esters (e.g., ethyl oleate), and may contain formulatory agents such as preserving, wetting, emulsifying or suspending, stabilizing and/or dispersing agents.
  • the active ingredient may be in powder form, obtained by aseptic isolation of sterile solid or by lyophilisation from solution for constitution before use with a suitable vehicle, e.g., sterile, pyrogen-free water.
  • the compounds of the present invention may be formulated for topical administration to the epidermis as ointments, creams or lotions, or as a transdermal patch.
  • Ointments and creams may, for example, be formulated with an aqueous or oily base with the addition of suitable thickening and/or gelling agents.
  • Lotions may be formulated with an aqueous or oily base and will in general also containing one or more emulsifying agents, stabilizing agents, dispersing agents, suspending agents, thickening agents, or coloring agents.
  • Formulations suitable for topical administration in the mouth include lozenges comprising active agents in a flavored base, usually sucrose and acacia or tragacanth; pastilles comprising the active ingredient in an inert base such as gelatin and glycerin or sucrose and acacia; and mouthwashes comprising the active ingredient in a suitable liquid carrier.
  • the compounds of the present invention maybe formulated for administration as suppositories.
  • Alow melting wax such as a mixture of fatty acid glycerides or cocoa butter is first melted and the active component is dispersed homogeneously, for example, by stirring. The molten homogeneous mixture is then poured into convenient sized molds, allowed to cool, and to solidify.
  • the compounds of the present invention maybe formulated for vaginal administration. Pessaries, tampons, creams, gels, pastes, foams or sprays containing in addition to the active ingredient such carriers as are known in the art to be appropriate.
  • the compounds of the present invention maybe formulated for nasal administration.
  • the solutions or suspensions are applied directly to the nasal cavity by conventional means, for example, with a dropper, pipette or spray.
  • the formulations may be provided in a single or multidose form. In the latter case of a dropper or pipette, this may be achieved by the patient administering an appropriate, predetermined volume of the solution or suspension. In the case of a spray, this may be achieved for example by means of a metering atomizing spray pump.
  • the compounds of the present invention maybe formulated for aerosol administration, particularly to the respiratory tract and including intranasal administration.
  • the compound will generally have a small particle size for example of the order of five (5) microns or less.
  • Such a particle size may be obtained by means known in the art, for example by micronization.
  • the active ingredient is provided in a pressurized pack with a suitable propellant such as a chlorofluorocarbon (CFC), for example, dichlorodifluoromethane, trichlorofluoromethane, or dichlorotetrafluoroethane, or carbon dioxide or other suitable gas.
  • CFC chlorofluorocarbon
  • the aerosol may conveniently also contain a surfactant such as lecithin.
  • the dose of drug may be controlled by a metered valve.
  • the active ingredients may be provided in a form of a dry powder, for example a powder mix of the compound in a suitable powder base such as lactose, starch, starch derivatives such as hydroxypropylmethyl cellulose and polyvinylpyrrolidine (PVP).
  • a suitable powder base such as lactose, starch, starch derivatives such as hydroxypropylmethyl cellulose and polyvinylpyrrolidine (PVP).
  • the powder carrier will form a gel in the nasal cavity.
  • the powder composition may be presented in unit dose form for example in capsules or cartridges of e.g., gelatin or blister packs from which the powder may be administered by means of an inhaler.
  • formulations can be prepared with enteric coatings adapted for sustained or controlled release administration of the active ingredient.
  • the compounds of the present invention can be formulated in transdermal or subcutaneous drug delivery devices. These delivery systems are advantageous when sustained release of the compound is necessary and when patient compliance with a treatment regimen is crucial.
  • Compounds in transdermal delivery systems are frequently attached to an skin- adhesive solid support.
  • the compound of interest can also be combined with a penetration enhancer, e.g., Azone (l-dodecylaza-cycloheptan-2-one).
  • Sustained release delivery systems are inserted subcutaneously into to the subdermal layer by surgery or injection.
  • the subdermal implants encapsulate the compound in a lipid soluble membrane, e.g., silicone rubber, or a biodegradable polymer, e.g., polyactic acid.
  • Suitable formulations along with pharmaceutical carriers, diluents and expcipients are described in Remington: The S ⁇ ence and Practice of Pharmacy 1995, edited by E. W. Martin, Mack Publishing Company, 19th edition, Easton, Pennsylvania.
  • a skilled formulation scientist may modify the formulations within the teachings of the specification to provide numerous formulations for a particular route of administration without rendering the compositions of the present invention unstable or compromising their therapeutic activity.
  • the modification of the present compounds to render them more soluble in water or other vehicle may be easily accomplished by minor modifications (salt formulation, esterification, etc.), which are well within the ordinary skill in the art. It is also well within the ordinary skill of the art to modify the route of administration and dosage regimen of a particular compound in order to manage the pharmacokinetics of the present compounds for maximum beneficial effect in patients.
  • terapéuticaally effective amount means an amount required to reduce symptoms of the disease in an individual.
  • the dose will be adjusted to the individual requirements in each particular case. That dosage can vary within wide limits depending upon numerous factors such as the severity of the disease to be treated, the age and general health condition of the patient, other medicaments with which the patient is being treated, the route and form of administration and the preferences and experience of the medical practitioner involved.
  • a daily dosage of between about 0.01 and about 100 mg/kg body weight per day should be appropriate in monotherapy and/or in combination therapy.
  • a preferred daily dosage is between about 0.1 and about 500 mg/kg body weight, more preferred 0.1 and about 100 mg/kg body weight and most preferred 1.0 and about 10 mg/kg body weight per day.
  • the dosage range would be about 7 mg to 0.7 g per day.
  • the daily dosage can be administered as a single dosage or in divided dosages, typically between 1 and 5 dosages per day. Generally, treatment is initiated with smaller dosages which are less than the optimum dose of the compound. Thereafter, the dosage is increased by small increments until the optimum effect for the individual patient is reached.
  • One of ordinary skill in treating diseases described herein will be able, without undue experimentation and in reliance on personal knowledge, experience and the disclosures of this application, to ascertain a therapeutically effective amount of the compounds of the present invention for a given disease and patient.
  • the active compound or a salt can be administered in combination with another antiviral agent such as ribavirin, a nucleoside HCV polymerase inhibitor, another HCV non-nucleoside polymerase inhibitor or HCV protease inhibitor.
  • another antiviral agent such as ribavirin, a nucleoside HCV polymerase inhibitor, another HCV non-nucleoside polymerase inhibitor or HCV protease inhibitor.
  • the activity may be increased over the parent compound.
  • the treatment is combination therapy, such administration may be concurrent or sequential with respect to that of the nucleoside derivatives.
  • Concurrent administration as used herein thus includes administration of the agents at the same time or at different times. Administration of two or more agents at the same time can be achieved by a single formulation containing two or more active ingredients or by substantially simultaneous administration of two or more dosage forms with a single active agent.
  • references herein to treatment extend to prophylaxis as well as to the treatment of existing conditions, and that the treatment of animals includes the treatment of humans as well as other animals.
  • treatment of a HCV infection also includes treatment or prophylaxis of a disease or a condition associated with or mediated by HCV infection, or the clinical symptoms thereof.
  • the pharmaceutical preparations are preferably in unit dosage forms.
  • the preparation is subdivided into unit doses containing appropriate quantities of the active component.
  • the unit dosage form can be a packaged preparation, the package containing discrete quantities of preparation, such as packeted tablets, capsules, and powders in vials or ampoules.
  • the unit dosage form can be a capsule, tablet, cachet, or lozenge itself, or it can be the appropriate number of any of these in packaged form.
  • TLC TLC was carried out on precoated, aluminium backed plates (60 F- 54, 0.2 mm thickness; supplied by E. Merck AG, Darmstad, Germany) developed by ascending method. After solvent evaporation, compounds were detected by irradiation with an UV lamp at 254 nm or 366 nm observation of quenching of the fluorescence. Chromatography columns were slurry packed in the appropriate eluent under pressure, with silica gel, 60A, 40-60 ⁇ m, Phase Sep, UK). Samples were applied as a concentrated solution in the same eluent, or pre-adsorbed on silica gel.
  • the solvents used were anhydrous and used as purchased from Aldrich. All glassware was oven dried at 130°C for several hours and allowed to cool under a stream of dry nitrogen.
  • Aryloxy-phosphodichloridate (15, 1.0 mol. equivalents) and the appropriate amino ester (14, 1.0 mol. equivalents) were suspended in anhydrous DCM (123 mol. equivalent). The reaction was cooled to -78° C and anhydrous TEA was added dropwise and after 30 to 60 min the reaction was allowed to warm to RT and stirred overnight. The formation of the corresponding phosphochloridate was monitored by 31 P NMR. The solvent was removed in vacuo and the crude residue was purified by filtration through silica eluting with EtOAc/hexane (7:3). The fractions containing the product were then collected and the solvent evaporated under reduced pressure to afford the phosphorochloridates 12. All phosphorochloridates were used as solutions in dry THF in subsequent reactions.
  • the nucleoside 13 (wherein R 5 , R 6 , R 8a , R 9 and R 10 are as defined in claim 1) was dried in under reduced pressure at 40° C for 5 h before being used as in the reaction, t- BuMgCl (2.5 mol equivalents) was added to a solution/suspension of the nucleoside analogue (1.0 mol equivalents) in anhydrous THF and the reaction mixture was stirred for 15 min. A solution of the appropriate phosphorochloridate (12, 2.5 mol equivalents) in dry THF (0.5 M) was added dropwise and the reaction mixture was stirred overnight. A saturated solution Of NH 4 Cl was added and the mixture was stirred for 30 min. The solvent was removed in vacuo and the crude was purified by column chromatography and/or preparative thin layer chromatography.
  • Phosphorus oxychloride (1.5 mol. equivalent) was added to a solution of the appropriate modified nucleoside (13, 1 mol equivalent) and DMAP (1.5 mol equivalent) in (EtO) 3 PO (0.5 mL) at 0° C. The solution was stirred for 30 min to 5 h, then NH 4 HCO 3 was added to the solution. Triethyl phosphate was removed by extraction with Et 2 O and water. The aqueous layer was concentrated in vacuo under reduced pressure to afford a yellow solid.
  • the title compound was prepared as described in Example 4. 4'-azido-cytidine monohydrate (13b, 200 mg, 0.66 mmol) was dissolved in anhydrous pyridine (3 mL) and the solvent was evaporated. This procedure was repeated three times before using the nucleoside analogue as starting material. A solution of the nucleoside 13b and anhydrous THF (15 mL) was treated with ten- BuMgCl (1.65 mL of a IM solution in THF, 1.65 mmol) and phenyl-(ethoxy-L-phenylalaninyl)-phosphorochloridate (12u; 364 mg dissolved in 1 niL of THF; 2.46 mmol).
  • step 1 phenylalanine /io-propyl ester phosphororchloridate (12v)
  • the title compound was prepared as described in Example 3 utilizing phenyl dichlorophosphate (0.36 mL, 2.4 mmol), L-phenylalanine wo-propyl ester hydrochloride (14v, 1.003 g, 2.4 mmol), dry TEA (0.67 mL, 4.8 mmol) and dry DCM (20 mL).
  • the phosphorochloridate 12v was obtained as a yellow oil (1.50 g, yield 91%).
  • step 2 4'-Azido-5'-[phenyl-(/s' ⁇ -propoxy-L-phenylalaninyl)]-phosphate uridine (1-9)
  • the title compound was prepared as described in Example 4 utilizing 4'-azido- uridine (200 mg, 0.7 mmol), ten- BuMgCl (1.4 mL IM solution in T ⁇ F, 1.4 mmol), 12v (0.53 g, 1.4 mmol) and dry T ⁇ F (10 mL).
  • the crude was purified by column chromatography eluting with C ⁇ Cl 3 /MeO ⁇ (90:10) followed preparative TLC chromatography developed with CHQ 3 /Me0H (85:15) which afforded 1-9 as a colorless oil that dried to form a white foam (0.012 g, yield 3%).
  • the title compound was prepared as described in Example 4 utilizing 4'-azido- cytidine (13b, 200 mg, 0.66 mmol), tert-BuMgCl (1.3 mL IM solution in T ⁇ F, 1.3 mmol), 12v (0.505 g, 1.3 mmol) and dry T ⁇ F (10 mL).
  • the crude was purified by two column chromatographies eluting with C ⁇ Cl 3 /MeO ⁇ (90:10) followed three preparative TLC chromatographies developed with CHCl 3 /MeOH (85:15) which afforded 1-18 as a white solid (0.04 g, yield 35%) .
  • the title compound was synthesized by the procedure in Example 4 utilizing 4'- azido-cytidine monohydrate (13a, 200.0 mg, 0.66 mmol) dissolved in anhydrous T ⁇ F ( 10 mL), ten- BuMgCl (1.65 mL of solution IM in T ⁇ F, 1.65 mmol) and 12w (1.65 mL of a 1.0 M solution in T ⁇ F, 1.65 mmol).
  • the crude was purified by two column chromatographies eluting a DCM/MeO ⁇ gradient (90:10 to 80:20).
  • step 1 Benzyl 2-amino-2-methylpropanoate hydrochloride salt ( 14p).
  • the title compound was prepared as described in Example 1 utilizing 2-amino- isobutyric acid (10.0 g, 0.097 mmol), /?-TsO ⁇ (20.3 g, 0.107 mmol), benzyl alcohol (40.0 mL, 0.388 mmol) and toluene (200 mL).
  • the benzyl ester (14p) was isolated as a white solid (13.0 g, yield 59%).
  • step 2 Phenyl-(benzyloxy-2-amino-2-methylpropanoate)phosphorochloridate
  • step 3- 4'- azido-5'-[phenyl-(benzyloxy- ⁇ , ⁇ -dimethylglycinyl)] -phosphate cytidine (1-3) 4'-azido-cytidine monohydrate (13b, 300 mg, 1.00 mmol) was dissolved in anhydrous pyridine (4 mL) and the solvent was evaporated. This procedure was repeated for three times. The nucleoside 13a was dissolved in a mixture of anhydrous THF ( 10 mL) and anhydrous pyridine (4 mL).
  • tert- BuMgCl 2.0 mL of solution IM in THF, 2.0 mmol
  • phenyl- (benzyloxy- ⁇ , ⁇ - dimethylglycinyl) - phosphorochloridate 12p ; 4 mL of a 0.5 M solution in THF, 2.00 mmol
  • the reaction was monitored by TLC (CHCl 3 ZMeOH 8:2).
  • the crude was purified by column chromatography eluting with a CHCl 3 MeOH gradient (15 to 20% MeOH).
  • the recovered product rechromatographed utilizing the same conditions and subsequently purified by preparative TLC and developed with CHCl 3 /MeOH (85:15) to afford 1-3 as a white solid (13.4 mg, yield 2%).
  • step 1 Ethyl 2-amino-2-methylpropanoate hydrochloride salt
  • step 2 phenyl-(ethyl-2-amino-2-methylpropanoate)phosphorochloridate
  • the title compound was synthesized by the procedure in Example 3 utilizing 14n (2.50 g, 10.9 mmol), phenyl dichlorophosphate (Ha, 1.6 mL, 10.9 mmol), and TEA(3.0 mL, 21.8 mmol) in DCM (60 mL) to afford 3.18g (80%) of pure 12n as an oil.
  • step 3 azido-5'-[phenyl-(ethyloxy- ⁇ , ⁇ -dimethylglycinyl)]-phosphate cytidine
  • the phosphoramidate I- 10 (223.4 mg, 0.40 mmol) was dissolved in a mixture of TEA/H 2 O (4/1) (6 mL) and the reaction mixture was stirred at RT for 7 days. The solvent was removed in vacuo and the crude product was purified by a flash chromatography and eluted with a /-PrOH/NH 3 /H 2 O gradient (9:0.3:0.7 to 8:0.7:1.3) to afford 1-69 as a white solid (29.5 mg, yield 16%).
  • the title compound 1-6 was prepared according to Example 4 utilizing 4'-azido- uridine (13a; 400 mg, 1.40 mmol) dissolved in anhydrous THF (15 mL), tert-BuMgCl (2.8 mL of solution 1 M in THF, 1.5 mmol) and 12n (5.6 mL of a 0.5 M solution in THF, 2.8 mmol).
  • the reaction was monitored by TLC developed with CHCl 3 MeOH (9:1).
  • the crude was purified by column chromatography and eluted with CHCl 3 MeOH (9:1).
  • the recovered product was further purified by preparative TLC and developed with CHCl 3 MeOH (9:1) to afford 1-6 as a white solid (203.5 mg, yield 26%).
  • the bis- ammonium salt 1-67 was prepared by hydrolysis of 1-6 (154.5 mg, 0.28 mmol) in a mixture of TEA/H 2 O (4/1, 7.5 mL) and the reaction mixture was stirred at RT for 4 days. The solvent was removed in vacuo and the crude was purified by a flash chromatography and eluted with iPrOH/NH 3 /H 2 O (8:0.7:1.3) to afford 1-67 as a white solid (55.2 mg, yield 41%).
  • step 1 - /i ⁇ -propyl 2-amino-2-methylpropanoate hydrochloride salt (14o)
  • the title compound was synthesised according to Example l(A) utilizing 2-amino- isobutyric acid (8.0 g, 77.6 mmol), thionyl chloride (11.3 mL, 155.2 mmol) and anhydrous IPA (8.0g, 77.6 mmol).
  • the ester 14o was isolated as a white solid (9.12 g, yield 70%).
  • the crude product was triturated with Et 2 O, however, the solid retained traces of /-PrOH, the compound was dissolved in MeOH and the solvent removed under reduced pressure. The product was then triturated with Et 2 O and recovered as a white solid (10.23g, yield 72%).
  • step 3 4'-azido-5'-[phenyl-(/i ⁇ -propyloxy- ⁇ , ⁇ -dimethylglycinyl)] -phosphate cytidine (I-15)
  • the title compound was prepared according to Example 4 utilizing 4'-azido-uridine (13a, 212.4 mg, 0.75 mmol) dissolved in anhydrous T ⁇ F (13 mL) ten- BuMgCl ( 1.5 mL of solution 1 M in T ⁇ F, 1.5 mmol) and 12o (3.0 mL of a 0.5 M solution in T ⁇ F, 1.5 mmol).
  • the reaction was monitored by TLC developed with CHCl 3 MeOH (9:1).
  • the crude was purified by column chromatography and eluted with CHCl 3 MeOH (9:1).
  • the recovered product was further purified by preparative TLC developed with CHCl 3 MeOH (9:1) to afford 1-12 as a white solid (114.0 mg, yield 26%).
  • Example l(A) The title compound was synthesised as described in Example l(A) utilizing L- alanine (8.0 g, 89.8 mmol), thionyl chloride (11.3 mL, 180. mmol), anhydrous 2-(R,S)- butanol (82 mL, 98 mmol) and toluene (200 mL).
  • the 2-butyl ester (14g) was isolated as a yellow foam (13.92 g, yield 85%) which was used in the next step without additional purification.
  • the title compound was synthesized by the procedure in Example 3 utilizing 14g (2.0 g, 9.36 11.0 mmol), phenyl dichlorophosphate (Ha, 1.6 mL, 11.0 mmol), and TEA (3.1 mL, 22.0 mmol) in DCM (40 mL) to afford 2.33 g (66%) of 12g as an oil.
  • step 3 4'-azido-5'-[phenyl-(2-butyloxy-L-alaninyl)]-phosphate cytidine (1-28)
  • the title compound was synthesized by the procedure in Example 4 utilizing 4'- azido-cytidine monohydrate (13b, 400.0 mg, 1.32 mmol) dissolved in anhydrous THF (15 mL), tert- BuMgCl (3.3 mL of solution IM in THF, 2.9 mmol) and 12g (6.6 mL of a 0.5M solution in THF, 3.3 mmol).
  • the reaction was monitored by TLC developed with CHCl 3 MeOH (8:2).
  • the crude was purified by column chromatography and eluted with CHCl 3 MeOH (85:15).
  • the recovered product was further purified by preparative TLC developed with CHCl 3 MeOH (85:15) to afford 1-28 as a white solid (23.1 mg, yield 3%).
  • step 1- 4'-Azido-2',3'-isopropylidenecytidine-5'-O-[phenyl-(isopropoxy-L- alaninyl)] -phosphate (IV- 2)
  • the title compound was prepared according to Example 4 utilizing 4'-azido-2',3'-isopropylidenecytidine (13f, 500 mg, 1.54 mmol), 1 BuMgCl (3.85 mL, 1 M solution in T ⁇ F, 3.85 mmol) and phenyl-(isopropoxy-L-alaninyl)- phosphorochloridate (12e, 3.85 mmol, 3.85 mL, 1 M solution in T ⁇ F) in dry T ⁇ F (10 mL).
  • the title compound was prepared according to Example 7 utilizing 4'-azido-2',3'- isopropylidenecytidine-5'-[phenyl-(isopropoxy-L-alaninyl)]-phosphate (IV-2, 76 mg, 0.128 mmol) dissolved in a 60/40 HOAc/water mixture, and heated to 90 0 C. Removal of the solvents in vacuo and purification by preparative TLC purification developed with DCM/MeOH (9:1) afforded 1-35 as a white solid (21 mg, 30 %).
  • the title compound was prepared according to Example 7 by dissolving 2- ⁇ [6-(4- amino-2-oxo-2H-pyrimidin-l-yl)-4-azido-2,2-dimethyl-tetrahydro-furo[3,4- d] [ 1,3] dioxol-4-ylmethoxy] -phenoxy-phosphorylamino ⁇ -propionic acid ethyl ester (40 mg, 0.07 mmol) in a 60/40 HOAc/water mixture and heating to 90 0 C. Removal of the solvents in vacuo and purification by preparative TLC purification developed with DCM/MeOH (9:1) afforded 1-43 as a white solid (12 mg, 32 %).
  • the title compound was synthesized by the procedure in Example 4 utilizing 4'- azido-cytidine monohydrate (13b, 500.0 mg, 1.643 mmol) dissolved in anhydrous T ⁇ F (13 mL), tert- BuMgCl (4.11 mL of solution IM in T ⁇ F, 4.11 mmol) and 12an (4.11 mL of a 1.0 M solution in T ⁇ F, 4.11 mmol).
  • the crude was purified by two column chromatographies eluting a DCM/MeO ⁇ gradient (10 to 20% MeOH).
  • the product was further purified by a preparative TLC developed with DCM/MeO ⁇ (90:10) to afford 1-20 as a white solid (49 mg, yield 5%).
  • step 2 4'-azido-5'-[phenyl-(?-butyloxy-L-alaninyl)]-phosphate cytidine (1-29)
  • the title compound was synthesized by the procedure in Example 4 utilizing 4'- azido-cytidine monohydrate (13b, 350.0 mg, 1.15 mmol) dissolved in anhydrous THF (13 mL), ten- BuMgCl (2.9 mL of solution IM in THF, 2.9 mmol) and 12f (5.8 mLof a 0.5M solution in THF, 2.9 mmol).
  • the reaction was monitored by TLC (8:2 CHCl 3 MeOH).
  • the crude was purified by column chromatography eluting with a CHCl 3 MeOH (85:15).
  • the recovered product was further purified by preparative TLC (85:15 CHCl 3 MeOH) to afford 1-29 as a white solid (18.6 mg, yield 3%).
  • step 1 phenyl (benzyloxy-glyciny ⁇ -phosphorochloridate (12a)
  • the title compound was synthesized by the procedure in Example 3 utilizing benzyl glycinate hydrochloride (14a, 2.00 g, 9.91 mmol), phenyl dichlorophosphate (Ha, 1.5 mL, 9.91 mmol), and TEA (2.8 mL, 19.8 mmol) in DCM (50 mL) to afford 2.42 g (72%) of 12a as an oil.
  • step 2 4'- azido-5'- [phenyl (benzyloxy-glycinyl)] -phosphate uridine (1-33)
  • the title compound was synthesized by the procedure in Example 4 utilizing 4'- azido-uridine (13a 300.0 mg, 1.05 mmol) dissolved in anhydrous THF (13 mL), tert- BuMgCl (2.1 mL of solution IM in THF, 2.10 mmol) and 12a (4.2 mL of a 0.5M solution in THF, 2.10 mmol).
  • the reaction was monitored by TLC (9:1 CHCl 3 MeOH).
  • the crude was purified by column chromatography eluting with a CHCl 3 MeOH (9:1).
  • the recovered product was further purified by preparative TLC (9:1 CHCl 3 Me OH) to afford 1-33 as a white solid (78.2 mg, yield 13%).
  • the title compound was prepared as described in Example 4 utilizing 4'-azido- uridine (13a, 200 mg, 0.7 mmol), t ⁇ t-BuMgCl (1.8 mL IM solution in T ⁇ F, 1.8 mmol), 12b (0.51 g, 1.75 mmol) and dry T ⁇ F (10 mL).
  • the crude was purified by two column chromatographies eluting with C ⁇ Q 3 /Me0 ⁇ (90:10) followed by two preparative TLC chromatographies developed with CHQ 3 /Me0H (90:10) which afforded 1-61 as a white solid (0.02 g, yield 5.4%).
  • the title compound was synthesized by the procedure in Example 4 utilizing 4'- azido-uridine (13a, 200.0 mg, 0.70 mmol) dissolved in anhydrous T ⁇ F (10 mL), tert- BuMgCl ( 1.4 mL of solution IM in T ⁇ F, 1.40 mmol) and 12f (2.8 mL of a 0.5M solution in T ⁇ F, 1.40 mmol).
  • the reaction was monitored by TLC (9:1 C ⁇ Cl 3 :MeO ⁇ ).
  • the crude was purified by column chromatography eluting with a CHCl 3 MeOH (9:1).
  • the recovered product was further purified by preparative TLC and eluted with CHCl 3 MeOH (9:1) to afford 1-50 as a white solid (45.2 mg, yield 11%).
  • the title compound was synthesized by the procedure in Example 4 utilizing 4'- ethynyl-uridine (13c 150.0 mg, 0.56 mmol) dissolved in anhydrous T ⁇ F (10 mL), tert- BuMgCl (1.1 mL of solution IM in T ⁇ F, 1.10 mmol) and 12f (2.2 mL of a 0.5M solution in T ⁇ F, 1.12 mmol).
  • the reaction was monitored by TLC (9:1 C ⁇ Cl 3 :MeO ⁇ ).
  • the crude was purified by column chromatography eluting with a CHCl 3 MeOH (9:1).
  • the recovered product was further purified twice by preparative thin layer chromatography. The first plate was developed with a CHCl 3 MeOH (9:1) and the second plate with a CHCl 3 MeOH (95:5) to afford 1-42 as a white solid (43.9 mg, yield 14%).
  • the title compound was synthesized by the procedure in Example 4 utilizing 4'- ethynyl-uridine (13a, 106.7 mg, 0.40 mmol) dissolved in anhydrous T ⁇ F (10 mL), tert- BuMgCl (0.8O mL of solution IM in T ⁇ F, 0.80 mmol) and 12a (1.6 mL of a O.5M solution in T ⁇ F, 0.80 mmol).
  • the reaction was monitored by TLC developed with CHCl 3 MeOH (9:1).
  • the crude was purified by column chromatography eluting with a CHCl 3 MeOH (95:5).
  • the recovered product was further purified twice by preparative thin layer chromatography. The first plate was developed two times with CHCl 3 MeOH (95:5), and the second plate was developed four times with CHCl 3 MeOH (95:5), to afford 1-49 as a white solid (25.2 mg, yield 11%).
  • the title compound was synthesized by the procedure in Example 4 utilizing 4'- ethynyl-uridine (13c, 150 mg, 0.559 mmol), tert-BuMgCl (1.1 mL of solution IM in T ⁇ F, 1.119 mmol) and phenyl (benzyloxy-D-alaninyl)phosphorochloridate (12m, 1.1 mLof solution IM in T ⁇ F, 1.119 mmol)).
  • the crude was purified by column chromatography eluting with a C ⁇ Cl 3 :MeO ⁇ (90:10).
  • the recovered product was further purified by preparative silica gel thin layer chromatography developed with CHCl 3 /MeOH (9:1) which afforded 1-41 as a white solid (100 mg, 0.1723 mmol, yield 17%).
  • the title compound 1-71 was synthesized by the procedure in Example 4 utilizing 4'-azido-uridine (13a, 300 mg, 1.05 mmol) dissolved in anhydrous THF (13 mL), tert- BuMgCl (2.1 mL of solution IM in THF, 2.1 mmol) and 12u (4.2 mL of a 0.5M solution in THF, 2.1 mmol).
  • the reaction was monitored by TLC (9:1 CHCl 3 MeOH).
  • PS- Trisamine resin 1.5g, 6.16 mmol
  • the title compound was prepared as described in Example 4 utilizing 4'-azido- uridine (13a, 200 mg, 0.701 mmol), t ⁇ t-BuMgCl (1.75 mL IM solution in T ⁇ F, 1.75 mmol), dry T ⁇ F (10 mL), dry T ⁇ F (10 mL) and 12w (1.75 mL IM solution of T ⁇ F, 1.75 mmol).
  • the crude was purified by column chromatography and eluted with a CHCl 3 /MeOH gradient (10 to 20% MeOH) followed by a preparative TLC developed with CHCl 3 /MeOH (90:10) which afforded 1-8 as a white solid (20 mg, yield 15%).
  • step 1 cyclopentylglycine benzyl ester p- toluene sulfonate salt
  • Cyclopentylglycine benzyl ester p- toluene sulfonate salt was prepared by the procedure in Example l(C) from cyclopentylglycine (5.0 g, 39.0 mmol), TsOH monohydrate (8.159 g, 42.9 mmol), benzyl alcohol (20.4 mL, 194 mmol) and toluene (50 mL).
  • the product 14al was isolated as white solid (9.15 g, 23.4 mmol, 60%)
  • step 2 phenyl-(benzyloxy-cyclopentylglycinyl) phosphorochloridate
  • step 3 azido-cytidine S'-O-fpheny ⁇ benzyloxy-cyclopentylglycinyl)] phosphate (II-3)
  • the title compound was prepared as described in Example 4 utilizing 4'-azido- cytidine (13b, 300 mg, 0.986 mmol), tert-BuMgCl (2.46 mL, IM solution in THF, 2.46 mmol) and phenyl-(benzyloxy-cyclopentylglycinyl) phosphorochloridate (12al, 2.46 mL of solution IM in THF, 2.46 mmol).
  • the crude was purified twice by column chromatography, using CHQ 3 /Me0H (95:5) as eluent for the first column and CHQ 3 /Me0H (80:20) for the second column.
  • the product from the second chromatography was further purified by preparative silica TLC developed with CHCl 3 /MeOH (9:1) to afford II-3 a white solid (30 mg, 0.047 mmol, 5%).
  • step 1 cyclopentylglycine ethyl ester hydrochloride salt
  • Example l(B) utilizing cyclopentylglycine (5.0 g, 38.7 mmol), thionyl chloride (6.0 mL, 77.4 mmol) and EtOH (34.10 mL, 58.1 mmol).
  • the ethyl ester 14aj was obtained as a white solid (2.25 g, 10.86 mmol, 56%).
  • step 2 phenyl-(ethoxy-cyclopentylglycinyl) phosphorochloridate
  • the title compound was prepared as described in Example 3 utilizing phenyl dichlorophosphate (Ha, 2.64 mL, 12.9 mmol), 14aj (2.5 g, 12.9 mmol), dry TEA (3.60 mL, 25.8 mmol) and dry DCM (15 mL).
  • the phosphorochloridate 12aj was obtained as a clear white solid (3.37 g, 10.19 mmol, 79%).
  • step 3 azido-cytidine 5'-O-[phenyl(ethoxy-cyclopentylglycinyl) phosphate (II-l)
  • the title compound was prepared as described in Example 4 utilizing 4'-azido- cytidine (13b, 300 mg, 0.986 mmol), ten- BuMgCl (2.46 mL IM solution in THF, 2.46 mmol) and 12aj (2.46 mL IM solution of THF, 2.46 mmol).
  • the crude was purified by column chromatography and eluted with CHCl 3 /MeOH (95:5) followed by a preparative TLC developed with CHCl 3 /MeOH (85:15) which afforded II-l as a white solid (100 mg, 0.172 mmol, 18%).
  • the title compound was prepared as described in Example 4 utilizing 4'-azido- uridine (13a, 300 mg, 1.052 mmol), t ⁇ t-BuMgCl (2.10 mL IM solution in T ⁇ F, 2.10 mmol) and phenyl (benzyloxy-cyclopentylglycinyl)phosphorochloridate (12al, 2.10 mL IM solution of T ⁇ F, 2.10 mmol) .
  • the title compound was prepared as described in Example 4 utilizing 4'-azido- uridine (13a, 300 mg, 1.052 mmol), tert-BuMgCl (2.10 mL IM solution in T ⁇ F, 2.10 mmol) and phenyl-(ethoxy-cyclopentylglycinyl) phosphorochloridate (12aj, 2.10 mL IM solution of T ⁇ F, 2.10 mmol).
  • the title compound was prepared as described in Example 4 utilizing 4'-azido- uridine (13a, 300 mg, 1.052 mmol), t ⁇ t-BuMgCl (2.10 mL IM solution in THF, 2.10 mmol) and phenyl-(ethoxy-cyclopentylglycinyl) phosphorochloridate (12ak, 2.10 mL IM solution of THF, 2.10 mmol).
  • step 1 leucine ethyl ester phosphororchloridate (12q)
  • step 2 Azido-uridine 5'-O-[phenyl(ethoxy-L-leucinyl) phosphate (1-5)
  • the title compound was prepared as described in Example 4 utilizing 4'-azido- uridine (13a, 200 mg, 0.7 mmol), tert-BuMgCl (1.4 mL IM solution in THF, 1.4 mmol), 12q (2.5 mLof a 0.27/ g/mLTHF solution, 2.1 mmol) and dry THF (10 mL).
  • the crude was purified by two column chromatographies eluting with CHCl 3 /MeOH (90:10) followed by a preparative TLC developed with CHCl 3 /MeOH (85:15) which afforded 1-5 as a clear, colorless oil, which solidified to a white foam (0.01 g, yield 35%).
  • the title compound was prepared as described in Example 4 utilizing 4'-azido- cytidine (13b, 400 mg, 1.32 mmol), tert-BuMgCl (3.3 mL IM solution in T ⁇ F, 3.3 mmol), 12q (1.05 g mL, 3.31 mmol) and dry T ⁇ F (10 mL).
  • the crude was purified by two column chromatographies eluting with C ⁇ Cls/MeO ⁇ (90:10) followed by a preparative TLC developed with C ⁇ Cl 3 /MeO ⁇ (85:15) which afforded 1-27 as a clear, colorless oil, which solidified to a white foam (0.01 g, yield 35%).
  • the title compound was prepared as described in Example 4 utilizing 4'-azido- cytidine (13b, 400 mg, 1.32 mmol), t ⁇ t-BuMgCl (3.3 mL IM solution in T ⁇ F, 3.3 mmol), 12r (1.05 g mL, 3.31 mmol) and dry T ⁇ F (10 mL).
  • the crude was purified by two column chromatographies eluting with C ⁇ Q 3 /Me0 ⁇ (85:15) followed by a preparative TLC developed with CHCl 3 /MeOH (90:10) which afforded 1-57 as a white solid (0.024 g, yield 3%).
  • the title compound was prepared as described in Example 4 utilizing 4'-azido- uridine (13a, 400 mg, 1.32 mmol), t ⁇ t-BuMgCl (3.3 mL IM solution in T ⁇ F, 3.3 mmol), 12r (1.26 g mL, 3.33 mmol) and dry T ⁇ F (10 mL).
  • the crude was purified by column chromatography eluting with C ⁇ Cl 3 /MeO ⁇ (90:10) followed by a three preparative TLC chromatographies developed with CHCl 3 /MeOH (90:10) which afforded 1-58 as a white solid (0.06 g, yield 8%).
  • the title compound was prepared as described in Example B utilizing phenyl dichlorophosphate (Ha, 0.55 mL, 3.7 mmol), L- leucine benzyl ester toluenesulfonate (14s 1.01 g, 3.7 mmol), dry TEA (1.0 mL, 7.4 mmol) and dry DCM (20 mL).
  • the phosphorochloridate 12s was obtained as a yellow oil (1.50 g, yield 91%).
  • step 2 Azido-cytidine 5'-O-[phenyl(benzyloxy-L-leucinyl) phosphate (1-19)
  • the title compound was prepared as described in Example 4 utilizing 4'-azido- cytidine (13b, 400 mg, 1.32 mmol), t ⁇ t-BuMgCl (3.3 mL IM solution in THF, 3.3 mmol), 12s (1.41 g, 3.3 mmol) and dry THF (10 mL).
  • the crude was purified by two column chromatographies eluting with CHCl 3 /MeOH (90:10) followed by three preparative TLC chromatographies developed with CHCl 3 /MeOH (85:15) which afforded 1-19 as a white solid (0.04 g, yield 35%).
  • step 1 valine benzyl ester phosphororchloridate (12aq)
  • the title compound was prepared as described in Example 3 utilizing phenyl dichlorophosphate (Ha, 1.22 mL, 8.2 mmol), L-valine benzyl ester hydrochloride (2.000 g, 8.2 mmol), dry TEA (2.3 mL, 16.4 mmol) and dry DCM (20 mL).
  • the phosphorochloridate 12aq was obtained as a yellow oil (2.97 g, yield 95%).
  • the title compound was prepared as described in Example 4 Cl utilizing 4'-azido- uridine (13a, 200 mg, 0.70 mmol), tert-BuMgCl (1.8 mL IM solution in T ⁇ F, 1.8 mmol), 12aq (0.669 g, 1.75 mmol) and dry T ⁇ F (10 mL).
  • the crude was purified twice by column chromatography eluting with C ⁇ Cl 3 /MeO ⁇ (90:10) followed by a preparative TLC chromatography developed with CHCl 3 /MeOH (88:12) which afforded 1-46 as a white solid (0.055 g, yield 15%) .
  • step 1 L-isoleucine ethyl ester hydrochloride salt
  • Example l(B) utilizing L-isoleucine (5.0 g, 38.1 mmol), thionyl chloride (8.3 mL, 11.44 mmol) and EtOH (33.54 mL, 57.15 mmol).
  • the ethyl ester 14t was obtained as a colorless oil (2.5 g, 14.91 mmol, 39%).
  • step 2 phenyl- (ethoxy-L-isoleucinyl) phosphorochloridate (12t)
  • the title compound was prepared as described in Example 3 utilizing phenyl dichlorophosphate (Ha, 1.00 mL, 6.76 mmol), 14t (1.4 g, 6.76 mmol), dry TEA (1.88 mL, 13.52 mmol) and dry DCM (15 mL).
  • the phosphorochloridate 12t was obtained as a clear white solid (1.6 g, 4.8 mmol, 71%).
  • step 3 azido-cytidine 5'-O-[phenyl(ethoxy-L-iso-leucinyl) phosphate (1-11)
  • the title compound was prepared as described in Example 4 utilizing 4'-azido- cytidine (13b, 300 mg, 0.986 mmol), tert-BuMgCl (2.46 mL IM solution in THF, 2.46 mmol) and 12t (2.46 mL IM solution of THF, 2.46 mmol).
  • the crude was purified by column chromatography and eluted with CHCl 3 /MeOH (95:5) followed by a preparative TLC developed with CHCl 3 /MeOH (85:15) which afforded 1-11 as a white solid (20 mg, 0.034 mmol, 3%).
  • the title compound was prepared according to Example 7 utilizing 4'-azido-2',3'- isopropylidenecytidine-5'-[phenyl-(methoxy-L-alaninyl)]-phosphate (IV-4, 140 mg, 0.248 mmol) dissolved in a 60/40 acetic acid/water mixture, and heated to 90° C. Removal of the solvents in vacuo and purification by preparative TLC purification developed with DCM/MeO ⁇ (9:1) afforded 1-1 as a white solid (37 mg, 22 %).
  • the title compound was prepared as described in Example 4 utilizing 4'-azido- uridine (13a, 200 mg, 0.701 mmol), t ⁇ t-BuMgCl (1.4 mL IM solution in T ⁇ F, 1.4 mmol), dry T ⁇ F (10 mL) and 12c (1.4 mL IM solution of T ⁇ F, 1.4 mmol).
  • the crude was purified by column chromatography and eluted with a C ⁇ Cl 3 /MeO ⁇ gradient (90:10 to 80:20) followed by a preparative TLC developed with CHCl 3 /MeOH (90:10) which afforded 1-54 as a white solid (29 mg, yield 10%).
  • step 1 phenyl-(benzyloxy-D-alaninyl) phosphorochloridate (12m)
  • the title compound was prepared as described in Example 3 utilizing phenyl dichlorophosphate (Ha, 0.637 mL, 4.27 mmol) , D-alanine benzyl ester sulfonate salt (14m, 0.9 g, 4.27 mmol), dry TEA (1.19 mL, 8.54 mmol) and dry DCM (15 mL).
  • the phosphorochloridate 12m was obtained as a clear oil (1.15 g, 3.25 mmol, 76%).
  • step 2 azido-cytidine 5'-O-[phenyl(benzyloxy-D-alaninyl) phosphate
  • the title compound was prepared as described in Example 4 utilizing 4'-azido- cytidine (13b, 300 mg, 0.986 mmol), ten- BuMgCl (2.46 mL IM solution in THF, 2.46 mmol) and 12m (2.46 mL IM solution of THF, 2.46 mmol).
  • the crude was purified by column chromatography and eluted with CHCl 3 /MeOH (95:5) followed by a preparative TLC developed with CHCl 3 /MeOH (85:15) which afforded 1-31 as a white solid (20 mg, 0.033 mmol, 3%).
  • step 1 phenyl-(t ⁇ t-butoxy-D-alaninyl) phosphorochloridate
  • the title compound was prepared as described in Example 3 utilizing phenyl dichlorophosphate (Ha, 1.640 mL, 11.00 mmol), D-alanine tert-butyl ester hydrochloride salt (14j, 2.00 g, 11.00 mmol), dry TEA (1.61 mL, 22.00 mmol) and dry DCM (15 mL).
  • the phosphorochloridate 12j was obtained as a clear oil (1.43 g, 4.46 mmol, 41%).
  • step 2 azido-cytidine 5'-O-[phenyl(t ⁇ t-butoxy-D-alaninyl) phosphate
  • the title compound was prepared as described in Example 4 utilizing 4'-azido- cytidine (13b, 250 mg, 0.821 mmol), ten- BuMgCl (2.05 mL IM solution in THF, 2.054 mmol) and 12j (2.05 mL IM solution of THF, 2.054 mmol).
  • the crude was purified by column chromatography and eluted with CHCl 3 /MeOH (95:5) followed by a preparative TLC developed with CHCl 3 /MeOH (85:15) which afforded 1-53 as a white solid (3.5 mg, 0.033 mmol, 1%).
  • the title compound was prepared as described in Example 4 utilizing 4'-azido- uridine (13a, 200 mg, 0.701 mmol), t ⁇ t-BuMgCl (1.75 mL IM solution in T ⁇ F, 1.75 mmol) and 12an (1.75 mL IM solution of T ⁇ F, 1.75 mmol).
  • the crude was purified by column chromatography and eluted with a C ⁇ Cl 3 /MeO ⁇ gradient (90:10 to 80:20) followed by a preparative TLC developed with CHCl 3 /MeOH (90:10) which afforded 1-13 as a white solid (29 mg, yield 7%).
  • step 1 D- alanine /so-propyl ester hydrochloride salt
  • D-alanine /so-propyl ester hydrochloride salt was prepared by the procedure in Example l(B) utilizing D-alanine (7.0 g, 78.6 mmol), thionyl chloride (11.42 mL, 157.2 mmol) and IPA (90 mL, 1.178 mmol).
  • the /io-propyl ester 14ap was obtained as a white solid (8.3 g, 49.70 mmol, 64%).
  • step 2 phenyl-(isopropoxy-D-alaninyl) phosphorochloridate
  • the title compound was prepared as described in Example 3 utilizing phenyl dichlorophosphate (Ha, 1.79 mL, 12.0 mmol), 14ap (2.0 g, 12.0 mmol), dry TEA (3.34 mL, 24.0 mmol) and dry DCM (25 mL).
  • the phosphorochloridate 12ap was obtained as a clear yellow oil (0.77 g, 2.52 mmol, 21%).
  • step 3 azido-uridine 5'-O-[phenyl(isopropoxy-cyclopentylglycinyl)] phosphate (I- 60)
  • the title compound was prepared as described in Example 4 utilizing 4'-azido- uridine (13a, 200 mg, 0.701 mmol), tert-BuMgCl (1.0 mL IM solution in THF, 1.052 mmol) and 12ap (1.0 mL of solution IM in THF, 1.052 mmol).
  • the crude was purified by column chromatography and eluted with CHCl 3 /MeOH (95:5) followed by a preparative TLC developed with CHCl 3 /MeOH (9:1) which afforded 1-60 as a white solid (19.7 mg, 0.0355 mmol, 4%).
  • the title compound was prepared as described in Example 4 utilizing 4'-azido- uridine (13a, 100 mg, 0.35 mmol), tert-BuMgCl (0.87 mL IM solution in T ⁇ F, 0.87 mmol) and 12e (0.87 IM solution of T ⁇ F, 0.87 mmol).
  • the crude was purified by column chromatography and eluted with a C ⁇ Cl 3 /MeO ⁇ gradient (90:10 to 80:20) followed by a preparative TLC developed with CHCl 3 /MeOH (90:10) which afforded 1-14 as a white solid (33.6 mg, yield 17%).
  • step 1 D-alanine 2-butyl ester /?-toluenesulfonate salt
  • D-alanine 2-butyl ester /?-toluenesulfonate salt was prepared by the procedure in Example l(C) from D-alanine (5.0 g, 56.1 mmol), pTsO ⁇ monohydrate (11.747 g, 61.7 mmol), 2-butanol (26 mL, 280 mmol)) and toluene (50 mL).
  • the product 14k was isolated as white solid (12.44 g, 39.2 mmol, 70%)
  • step 2 phenyl-(2-butoxy-D-alaninyl) phosphorochloridate
  • the title compound was prepared as described in Example 3 utilizing phenyl dichlorophosphate (Ha, 1.40 mL, 9.45 mmol), 14k (3.0 g, 9.45 mmol), dry TEA (2.63 mL, 18.90 mmol) and dry DCM (15 mL).
  • the phosphorochloridate 12k was obtained as a clear yellow oil (2.70 g, 8.44 mmol, 71.93%).
  • step 3 azido-uridine 5'-O-[phenyl(2-butoxy-D-alaninyl) phosphate (1-62)
  • the title compound was prepared as described in Example 4 utilizing 4'-azido- uridine (13a 200 mg, 0.701 mmol), tert-BuMgCl (1.4 mL IM solution in THF, 1.402 mmol) and 12k (1.40 mL of solution IM in THF, 1.402 mmol).
  • the crude product was purified by column chromatography and eluted with CHCl 3 /MeOH (85:15) followed by a preparative TLC developed with CHCl 3 /MeOH (9:1) which afforded 1-62 as a white solid (18.2 mg, 0.033 mmol, 5%).
  • step 1 D-alanine dodecyl ester/?- toluene sulfonate salt
  • D-alanine dodecyl ester p- toluene sulfonate salt (141) was prepared by the procedure in Example l(C) from D-alanine (2.5 g, 28.0 mmol), TsOH monohydrate (5.87 g, 30.9 mmol), dodecyl alcohol (13.0 g, 280 mmol) and toluene (50 mL). The product was isolated as white solid (7.92 g, 18.48 mmol, 66%)
  • step 2 phenyl-(dodecyloxy-D-alaninyl) phosphorochloridate
  • the title compound was prepared as described in Example 3 utilizing phenyl dichlorophosphate (Ha, 0.521 mL, 3.49 mmol), D-alanine dodecyl ester tosylate salt (141, 1.5 g, 3.49 mmol), dry TEA (0.959 mL, 6.88 mmol) and dry DCM (15 mL).
  • the phosphorochloridate 121 was obtained as a clear oil (1.00 g, 2.34 mmol, 67%).
  • the title compound was prepared as described in Example 4 utilizing 4'-azido- cytidine (13b, 200 mg, 0.657 mmol), ten- BuMgCl (1.64 mL IM solution in THF, 1.640 mmol) and 121 (1.64 mL IM solution of THF, 1.64 mmol).
  • the crude was purified by column chromatography and eluted with CHQ 3 /Me0H (85:15) followed by a preparative TLC developed with CHCl 3 /MeOH (85:15) which afforded 1-64 as a white solid (22.6 mg, 0.033 mmol, 5%).
  • the title compound was prepared as described in Example 4 utilizing 4'-azido- uridine (13a, 200 mg, 0.701 mmol), t ⁇ t-BuMgCl (1.40 mL IM solution in T ⁇ F, 1.402 mmol) and phenyl (dodecyl-D-alaninyl)phosphorochloridate (121, 1.40 ml of solution IM in T ⁇ F, 1.402 mmol).
  • the title compound was prepared as described in Example 4 utilizing 4'-azido- uridine (13a, 200 mg, 0.70 mmol), tert-BuMgCl (1.80 mL IM solution in THF, 1.8 mmol), phenyl (ethoxy-L-methinonyl)phosphorochloridate (12x, 0.615 g 1.75 mmol) and THF (10 mL).
  • the crude was purified by column chromatography and eluted with CHCl 3 /MeOH (90:10) followed by a preparative TLC developed with CHCl 3 /MeOH (90:10) which afforded 1-48 as a white solid (0.42 g, 0.07 mmol, 10%).
  • the title compound was prepared as described in Example 4 utilizing 4'-azido- cytidine (13b, 400 mg, 1.32 mmol), tert-BuMgCl (3.3 mL IM solution in T ⁇ F, 3.3 mmol), phenyl (ethoxy-L-methinonyl)phosphorochloridate (12x, 1.16 g, 3.3 mmol) and T ⁇ F (10 mL).
  • step 1 phenyl-(ethoxy-L-ethylaspartyl)phosphorochloridate
  • the title compound was prepared as described in Example 3 utilizing phenyl dichlorophosphate (Ha, 0.670 mL, 4.49 mmol), L-ethylasparatate ethyl ester hydrochloride salt (14y, 1.0 g, 4.49 mmol), dry TEA (1.25 niL, 8.98 mmol) and dry DCM (15 mL).
  • the phosphorochloridate 12y was obtained as a clear oil (1.137 g, 3.143 mmol, 70%).
  • step 2 azido-cytidine 5'-O-[phenyl(ethoxy-L-ethylaspartyl) phosphate
  • the title compound was prepared as described in Example 4 utilizing 4'-azido- cytidine (13b, 300 mg, 0.986 mmol), ten- BuMgCl (1.97 mL IM solution in THF, 1.972 mmol) and 12y (1.97 mL IM solution of THF, 1.972 mmol).
  • the crude was purified by column chromatography and eluted with CHCl 3 /MeOH (85:15) which afforded 1-83 as a white solid (30.15 mg, 0.0493 mmol, 5%).
  • the title compound was prepared according to Example 7 from 4'-azido-2',3'- isopropylidenecytidine-5'-[phenyl-(ethoxy-L-prolinyl)]-phosphate (70 mg, 0.105 mmol) dissolved in a 60/40 acetic acid/water mixture, and heated to 90° C. Removal of the solvents in vacuo and purification by preparative TLC purification developed with DCM/MeOH (9:1) afforded III-l as a white solid (14 mg, 35 %).
  • the title compound was prepared as described in Example 4 utilizing 4'-azido- uridine (13a, 200 mg, 0.701 mmol), tert-BuMgCl (1.440 mL IM solution in THF, 1.40 mmol), dry THF (10 mL), dry THF (10 mL) and 12am (1.40 mL IM solution of THF, 1.40 mmol).
  • the crude was purified by column chromatography and eluted with a CHCl 3 /MeOH gradient (90:10 to 80:20) followed by a preparative TLC developed with CHCl 3 /MeOH (90:10) which afforded III-2 as a white solid (17 mg, yield 5%).
  • step 1 - /?-chloro-phenyl dichlorophosphate
  • the title compound was prepared as described in Example 3B utilizing p- chlorophenyl dichlorophosphate (lib, 1.88 mL, 7.66 mmol), L-leucine ethyl ester hydrochloride salt (14q, 1.5 g, 7.66 mmol), dry TEA (2.14 mL, 15.32 mmol) and dry DCM (15 mL).
  • the phosphorochloridate 12ab was obtained as a clear oil (2.16 g, 5.87 mmol, 77%).
  • step 3 azido-cytidine 5'-O-[/?-chloro-phenyl(ethoxy-L-leucinyl) phosphate
  • the title compound was prepared as described in Example 4 utilizing 4'-azido- cytidine (13b, 350 mg, 1.15 mmol), tert-BuMgCl (2.87 mL IM solution in THF, 2.876 mmol) and 12ab (1.06 g, 2.88 mmol).
  • the crude was purified by column chromatography and eluted with CHCl 3 /MeOH (90:10) which afforded 1-16 as a white solid (100 mg, 0.162 mmol, 14%).
  • the title compound was prepared as described in Example 4 utilizing 4'-azido- uridine (13a, 250 mg, 0.876 mmol), t ⁇ t-BuMgCl (1.75 mL IM solution in T ⁇ F, 1.753 mmol) and 12ab (0.644 g, 1.753 mmol).
  • the crude was purified by column chromatography and eluted with CHQ 3 /Me0H (90:10) which afforded 1-30 as a white solid (100 mg, 0.162 mmol, 14%).
  • the title compound was prepared as described in Example 4 utilizing 4'-azido- uridine (13a, 200 mg, 0.701 mmol), t ⁇ t-BuMgCl (1.4 mL IM solution in T ⁇ F, 1.4 mmol), dry T ⁇ F (10 mL) and 12z (1.4 mL IM solution of T ⁇ F, 1.4 mmol).
  • the crude was purified by column chromatography and eluted with a C ⁇ Cl 3 /MeO ⁇ gradient (90:10 to 80:20) followed by a preparative TLC developed with CHCl 3 /MeOH (90:10) which afforded 1-45 as a white solid (25 mg, yield 6%).
  • step 1 p-chloro-phenyl-Cbenzyloxy-D-alaninyl) phosphorochloridate
  • the title compound was prepared as described in Example 3 utilizing 5.7 mL of a solution IM in DCM of/?-chlorophenyl dichlorophosphate (lib, 1.40 mL, 5.69 mmol), D-alanine benzyl ester tosylate salt (14m, 2 g, 5.69 mmol), dry TEA (1.6 mL, 11.38 mmol) and dry DCM (15 mL).
  • the phosphorochloridate 12aa was obtained as a clear oil (2.16 g, 5.87 mmol, 77%).
  • step 2 azido-uridine 5'-O-[p-chloro-phenyl(benzyloxy-L-alaninyl) phosphate
  • the title compound was prepared as described in Example 4 utilizing 4'-azido- uridine (13a, 215 mg, 0.754 mmol), t ⁇ t-BuMgCl (1.1 mL IM solution in THF, 1.130 mmol) and 1.1 mLof a IM solution of/?-chloro-phenyl-(benzyloxy-D-alaninyl) phosphorochloridate (12aa, 0.400 g, 2.88 mmol).
  • the crude was purified by column chromatography and eluted with CHCl 3 /MeOH (90:10).
  • the product was further purified by preparative tic on silica gel and developed with CHCl 3 /MeOH (90:10) which afforded 1-51 as a white solid (10 mg, 0.162 mmol, 2%).
  • step 1 3,4-dichloro-phenyldichloro phosphate 3,4-Dichloro-phenyl dichlorophosphate was prepared as described in Example 2 fromp-chlorophenol (3.79 g, 0.023 mol), POCl 3 (2.17 mL, 0.023 mol) and TEA (3.25 mL, 0.023 mol) and dry Et 2 O (25 mL).
  • the dichlorophosphate lie was obtained as a yellow clear oil (2.93 g, 0.0105 mol, 45%) and used without further purification.
  • step 2 3,4-dichloro-phenyl-(ethoxy-L-leucinyl) phosphorochloridate
  • the title compound was prepared as described in Example 3 utilizing 3,4-dichloro- phenyl dichlorophosphate (lie, 7.6 mLof a IM solution in DCM, 2.14 g, 7.66 mmol), L- leucine ethyl ester hydrochloride salt (14q, 1.5 g, 7.66 mmol), dry TEA (2.14 mL, 15.32 mmol) and dry DCM (15 mL).
  • the phosphorochloridate 12ac was obtained as a clear oil (2.28 g, 5.66 mmol, 75%).
  • step 3 azido-cytidine 5'-O-[3,4-dichloro-phenyl(ethoxy-L-leucinyl) phosphate
  • the title compound was prepared as described in Example 4 utilizing 4'-azido- uridine (13a, 250 mg, 1.7535 mmol), tert- BuMgCl (1.75 mL IM solution in T ⁇ F, 1.753 mmol) and 2.87 mL of solution IM of 3,4-dichloro-phenyl-(ethoxy-L-leucinyl) phosphorochloridate (12ac, 0.706 g, 1.753 mmol).
  • the crude was purified by column chromatography and eluted with C ⁇ Cl 3 /MeO ⁇ (90:10).
  • the product was further purified by preparative tic on silica gel and developed with CHCl 3 /MeOH (90:10) which afforded 1-31 as a white solid (40 mg, 0.061 mmol, 5%).
  • step 1 3,4-dichloro-phenyl-(benzyloxy-D-alaninyl) phosphorochloridate
  • step 2 azido-uridine 5'-O-[3,4-dichloro-phenyl(benzyloxy-L-alaninyl) phosphate
  • the title compound was prepared as described in Example 4 utilizing 4'-azido- uridine (13a, 215 mg, 0.754 mmol), t ⁇ t-BuMgCl (1.1 mL IM solution in THF, 1.130 mmol) and 1.1 mLof a IM solution of 3,4-dichloro-phenyl(benzyloxy-D-alaninyl) phosphorochloridate (12ad, 0.400 g, 2.88 mmol).
  • the crude was purified by column chromatography and eluted with CHCl 3 /MeOH (90:10).
  • the product was further purified by preparative tic on silica gel and developed with CHCl 3 /MeOH (90:10) which afforded 1-52 as a white solid ( 10 mg, 0.162 mmol, 2%) .
  • the crude was purified by two column chromatographies and eluting with a CHQ 3 /Me0H gradient (90:10 to 80:20).
  • the product was further purified by preparative TLC and developed with CHCl 3 /MeOH (90:10) which afforded 1-77 as a white solid (31 mg, 8%).
  • step 1 - /?-methyl-phenyl dichloro phosphate
  • step 2 p-methvl-phenvHethoxv-L-leucinvl) phosphorochloridate
  • the title compound was prepared as described in Example 3 utilizing /?-methyl phenyl dichlorophosphate (lie, 7.6 mLof a IM solution in DCM, 1.72 g, 7.66 mmol), L- leucine ethyl ester hydrochloride salt (14q, 1.5 g, 7.66 mmol), dry TEA (2.14 mL, 15.32 mmol) and dry DCM (15 mL).
  • the phosphorochloridate 12ag was obtained as a clear oil (2.28 g, 5.66 mmol, 75%).
  • step 3 azido-cytidine 5'-O-[/?-methyl-phenyl(ethoxy-L-leucinyl) phosphate
  • the title compound was prepared as described in Example 4 utilizing 4'-azido- uridine (13a, 250 mg, 1.753 mmol), tert-BuMgCl (1.75 mL IM solution in T ⁇ F, 1.753 mmol) and/?-methyl-phenyl-(ethoxy-L-leucinyl)phosphorochloridate (12ae, 1.75 mL of a solution IM solution, 0.610 g, 1.753 mmol).
  • the crude was purified by column chromatography and eluted with CHQ 3 /Me0H (90:10) which afforded 1-37 as a white solid (50 mg, 0.084 mmol, 5%).
  • step 1 - /?-methoxy-phenyl dichloro phosphate
  • step 2 - /?-methoxy-phenyl-(ethoxy-L-leucinyl) phosphorochloridate
  • the title compound was prepared as described in Example 3 utilizing p- methoxyphenyl dichlorophosphate (Hd, 7.6 mL of a solution IM in THF, 1.85 g, 7.66 mmol)), L- leucine ethyl ester hydrochloride salt (14q, 1.5 g, 7.66 mmol), dry TFA (2.14 mL, 15.32 mmol) and dry DCM (15 mL).
  • the phosphorochloridate 12ai was obtained as a clear oil (1.71 g, 4.70 mmol, 61%).
  • step 3 azido-cytidine 5'-O-[/?-methoxy-phenyl(ethoxy-L-leucinyl) phosphate
  • the title compound was prepared as described in Example 4 utilizing 4'-azido- cytidine (13b, 350 mg, 1.15 mmol), t ⁇ t-BuMgCl (2.87 mL IM solution in THF, 2.876 mmol) and of/?-methoxy-phenyl-(ethoxy-L-leucinyl) phosphorochloridate (12ai, 2.87 mL of a IM solution in THF, 1.05 g, 2.876 mmol.
  • the crude was purified by column chromatography and eluted with CHCl 3 /MeOH (90:10) which afforded 1-26 as a white solid (20 mg, 0.032 mmol, 3%).
  • the title compound was prepared as described in Example 4 utilizing 4'-azido- cytidine (13b, 300 mg, 0.999 mmol), tert-BuMgCl (2.0 mL IM solution in T ⁇ F, 2.876 mmol),/?-methoxyphenyl-(benzyloxy-L-alaninyl)-phosphorochloridate (12ah, 2.0 mLof a IM solution in T ⁇ F, 2.0 mmol) and dry T ⁇ F (15 mL).
  • the crude was purified by two column chromatographies and eluting with a C ⁇ O 3 /Me0 ⁇ gradient (90:10 to 80:20).
  • the product was further purified by preparative TLC and developed with C ⁇ Q 3 /Me0 ⁇ (90:10) which afforded 1-66 as a white solid (40 mg, 6%).
  • the title compound was prepared as described in Example 4 utilizing 4'-azido- uridine (13a, 250 mg, 1.753 mmol), tert-BuMgCl (1.75 mL IM solution in T ⁇ F, 1.753 mmol) and/?-methoxy-phenyl-(ethoxy-L-leucinyl) phosphorochloridate (12ai 0.638 g, 1.75 mL of a IM solution in T ⁇ F, 1.753 mmol).
  • the crude was purified by column chromatography and eluted with C ⁇ Cl 3 /MeO ⁇ (90:10) which afforded 1-38 as a white solid (42 mg, 0.069 mmol, 4%) .
  • the title compound was prepared as described in Example 4 utilizing 4'-azido- uridine (13a, 200 mg, 0.701 mmol), tert-BuMgCl (1.4 mL IM solution in T ⁇ F, 1.4 mmol), dry T ⁇ F (10 mL) and 12ah (1.4 mL IM solution of T ⁇ F, 1.4 mmol).
  • the crude was purified by column chromatography and eluted with a C ⁇ Cl 3 /MeO ⁇ gradient (90:10 to 80:20) followed by a preparative TLC developed with CHCl 3 /MeOH (90:10) which afforded 1-65 as a white solid (55 mg, yield 12%).
  • step 1 azido-cytidine 5'-monophosphate
  • the title compound was prepared as described in Example 5 utilizing 4'-azido- cytidine (13b, 200 mg, 0.657 mmol), POCl 3 (0.092 mL, 0.985 mmol), DMAP (120.34 mg, 0.985 mmol) in PO(OEt) 3 (1 mL).
  • the crude was purified by column chromatography, eluting with iso-PrOH/con N ⁇ 3 / ⁇ 2 O (8:1.2:0.8) to afford azido-cytidine monophosphate as a yellow pure solid (180 mg, 0.497 mmol, 76%).
  • step 2 azido-cytidine 5'-O-(benzyloxy-D-alaninyl) phosphate
  • the title compound was prepared as described in Example 5 utilizing azido-cytidine monophosphate (100 mg, 0.294 mmol), D-alanine benzyl ester tosylate salt (14m 368.83 mg, 2.058 mmol), DCC (302.82 mg, 1.47 mmol) in t ⁇ t-BuOH (5 mL) and H 2 O.
  • the crude was purified by column chromatography eluting with a gradient starting from iso- PrOH, to iso-PrOH/con NH 3 /H 2 O (90:7:3, 85:10:5 and 80:12:8) to 1-68 afford a white solid (7.8 mg, 0.0139 mmol, 7%).
  • the title compound was prepared as described in Example 4 utilizing ds i -4'-(2- chloroethenyl)-uridine (13e, 100 mg, 0.33 mmol), tert-BuMgCl (0.7 mL IM solution in THF, 0.7 mmol), phenyl- (benzylo xy- L- alaninyl)-phosphorochloridate (12an, 0.7 mLof a IM THF solution, 0.7 mmol) and dry THF (10 mL).
  • the crude was purified by column chromatography eluting with a CHCl 3 /MeOH gradient (90:10 to 80:20).
  • the product was further purified by preparative TLC and developed with CHCl 3 /MeOH (90:10) which afforded 1-39 as a white solid (19 mg, yield 9%) .
  • step 1 Protection of the 2',3'-diols of a ribose sugar as a cyclopentylidene ketal is readily accomplished from the nucleoside using standard methodology (T. W. Greene and P. G. M. Wuts; Protecting Groups in Organic Synthesis, 3 rd Ed., J. T. Wiley & Sons: New York, NY, 1999, pp. 215-217).
  • the phosphoramidate 21 was prepared as described in Example 4 utilizing 13h (140 mg, 0.4 mmol ), tert- BuMgCl (0.8 mL, IM in THF, 0.8 mmol), 12ar (387 mg, 0.8 mmol) and dry THF (8 mL). The crude was purified by column chromatography on SiO 2 eluting with CHQ 3 /Me0H (98:2) which afforded 310 mg (97%) of 21 as a white foam.
  • step 2 A solution of 21 (310 mg, 0.39 mmol) and 60/40 HCO 2 H/H 2 O mixture (15 mL), and stirred at RT for 8 h.
  • the crude was purified by column chromatography on SiO 2 eluting with CHCl 3 /MeOH (gradient, 100:0 to 97:3) which afforded 186 mg (64%) of 1-86 as a white foam.
  • step 1 Iodine (35.43 g, 0.140 mol) and Ph 3 P (36.80 g, 0.140 mol) were added to a solution of adenosine (24, 25 g, 0.093 mol) in pyridine (200 mL). After 2 h a saturated solution OfNa 2 S 2 O 3 was added, the solvent was removed in vacuo and the yellow solid was purified by column chromatography on SiO 2 eluting with CHCl 3 /MeOH (9:1) to afford 60 g (>100%) of 25 which was sufficiently pure to use in the subsequent step.
  • step 2 To a solution of 5'-deoxy-5'-iodo-adenosine (25, 35 g, 0.093 mol) in pyridine (200 mL) was added potassium t ⁇ t-butoxide (47.0 g, 0.418 mol), and the reaction stirred for 1 h at 80° C. The solvent was removed under reduced pressure and the black solid was purified by column chromatography on SiO 2 eluting with a CHCl 3 /MeOH gradient (90% to 70 % CHCl 3 ) to afford 18.54 g (80 %) of 26 as a brown solid.
  • step 3 Sodium azide (11.73 g, 0.1804 mol) was added to a solution of ICl (14.65 g, 0.0902 mol) in DMF (50 mL) and the resulting solution was stirred for 20 min at 30° C. A solution of l-(5-deoxy- ⁇ -D-glycero-pent-4-enofuranosyl)-adenosine (26, 9 g, 0.0361 mmol) in DMF (200 mL) then was added dropwise over a 30 min interval. After 1 h a saturated solution OfNa 8 S 2 O 3 was added and the solvent was removed under reduced pressure. The resulting solid was dissolved in MeOH and any precipitate was removed by filtration. The MeOH was removed in vacuo and the yellow solid was purified by column chromatography on SiO 2 eluting with CHCl 3 /MeOH (9:1) to afford 19 g (> 100%) of 27 as a yellow solid.
  • step 4 To a solution of 27 in pyridine was added benzoyl chloride. After 15 h the solvent was removed in vacuo and the resulting dark solid was purified by column chromatography on SiO 2 eluting with EtOAc/Hexane (3:7) to afford 8.5 g (35%) of 28a as a yellow solid.
  • step 5 To a solution of 4-N,N-dibenzoyl, 2',3'-O,O-dibenzoyl-4'-azido-5'-deoxy- 5'-iodo-adenosine (28a, 2.20 g, 2.64 mmol) in 20 mL of DCM (saturated with 1% of water), 85% MCPBA (3.63 g, 15.84 mmol) was added and the reaction stirred at 40°C for 1 h. EtOAc was added and the resulting solution was washed with a saturated solution of Na 8 S 2 O 3 . The EtOAc solution was dried (MgSO 4 ), filtered, and the solvents removed in vacuo.
  • step 6 The title compound was prepared as described in Example 4 utilizing 4'- azido-adenosine (13i, 165.6 mg, 0.0537 mmol), 1 BuMgCl (1.34 mL IM solution of THF, 1.343 mmol) and ⁇ -naphthyl-(benzyloxy-L-alaninyl) phosphorochloridate (1.34 mLof solution IM in THF, 1.343 mmol). The crude was purified by preparative HPLC on SiO 2 eluting with CHCl 3 /MeOH (85:15) to afford 20.2 mg (6%) of 1-87 as a white solid.
  • step 1 To a suspension of inosine (20.00 g, 74.56 mmol) in pyridine (200 mL) was added Ph 3 P (30.40 g, 113.34 mmol) and I 2 (28.77, 113.34 mmol). The mixture was stirred at RT overnight, MeOH was added and the solvent evaporated in vacuo. The crude purified by column chromatography on SiO 2 eluting with a CHCl 3 /MeOH gradient (10 to 20% MeOH). The solid obtained was suspended in EtOH, refluxed for 0.5 h and filtered to afford 20.32 g (72%) of 30 as a white solid.
  • step 2 A 1 M solution of sodium methoxide (32 mL) was added to a suspension of 5'-deoxy-5'-iodoinosine (30, 3.11 g, 8.22 mmol) in MeOH (100 mL). The solution was heated at reflux for 5 h, cooled at RT and purified by column chromatography on SiO 2 eluting with a CHCl 3 MeOH gradient (10 to 20% MeOH) to afford 1.25 g (61%) of 31 as a white solid.
  • step 3 Sodium azide (1.55 g, 23.9 mmol) was added under argon to a stirred solution of iodine monochloride (1.94 g, 11.95 mmol) in DMF (30 mL) at room temperature. The mixture was stirred at room temperature for 20 min and after this time a solution of 9-(5-deoxy- ⁇ -D-erythro-pent-4-enofuranosyl)hypoxanthine (31, 1.20 g, 4.78 mmol) in DMF (300 mL) was added drop wise over 30 min. The mixture was stirred for 4 h then saturated solution of sodium bicarbonate was added followed by sodium thiosulfate.
  • step 4 To a solution of 32 (1.10 g, 2.62 mmol) and PTSA (81 mg, 0.66 mmol) in pyridine (20 mL) was added benzoyl chloride (1.47 g, 10.48 mmol, 1216 ⁇ L) and the reaction stirred at RT for 3.5 h. The solvent was removed in vacuo and the crude product purified by column chromatography on SiO 2 eluting with a CHQ 3 /Me0H gradient (2 to 5% MeOH) to afford 1.49 g (91%) of 33 as a yellow solid.
  • step 5 A solution of 33 (4.08 g, 6.50 mmol) and MCPBA (5.83 g, 4.49 mmol) in water- saturated DCM was heated at reflux and stirred for 4 h. The reaction mixture was diluted with EtOAc, washed with sodium meto-bisulfite solution followed by saturated NaHCO 3 . The organic phase was dried (MgSO4), and evaporated to provide a foam. The foam was dissolved in MeOH (30 mL) and a IM solution of sodium methoxide in methanol was added (5 mL) and the reaction stirred at RT for 1 h. The reaction was neutralized with DOWEX ® resin, filtered and the solvent removed in vacuo. The crude was purified by two successive column chromatographies on SiO 2 eluting with EtOAc/IPA/H 2 O (88/10/2) to afford 217 mg (11%) of 13j.
  • step 6 The cyclopentylidene protected group was incorporated by treating 13j with cyclopentanone, HC(OMe) 3 and pTSAin MeCN.
  • the phosphoramidate was introduced using the procedure in Example 4 utilizing 13j (65 mg, 0.17 mmol), 1- naphthyl(benzyloxy-L-alaninyl)-phosphochloridate (12as, IM solution in THF, 0.433 mmol, 433 ⁇ L), t ⁇ t-butylmagnesium choride (1 M solution in THF, 433 ⁇ L) and THF (15 mL) .
  • step 7 A solution of 35 (75 mg, 0.101 mmol) and HCOOH (80 % v/v solution in water, 10 mL) was stirred at RT for 10 h. The solvent was removed and the crude purified by SiO 2 column chromatography eluting with a CHQ 3 /Me0H gradient (from 5 to 8% MeOH) to afford 45 mg (66%) of 1-88 as a white solid.
  • This assay measures the ability of the compounds of formula I to inhibit HCV RNA replication, and therefore their potential utility for the treatment of HCV infections.
  • the assay utilizes a reporter as a simple readout for intracellular HCV replicon RNA level.
  • the Renilla luciferase gene was introduced into the first open reading frame of a replicon construct NK5.1 (Krieger et al, J. Virol. 75:4614), immediately after the internal ribosome entry site (IRES) sequence, and fused with the neomycin phosphotransferase (NPTII) gene via a self-cleavage peptide 2Afrom foot and mouth disease virus (Ryan & Drew, EMBO VoI 13:928-933).
  • RNA was electr op orated into human hepatoma Huh7 cells, and G418-resistant colonies were isolated and expanded.
  • Stably selected cell line 2209-23 contain replicative HCV subgenomic RNA, and the activity of Renilla luciferase expressed by the replicon reflects its RNA level in the cells.
  • the assay was carried out in duplicate plates, one in opaque white and one in transparent, in order to measure the an ti- viral activity and cytotoxicity of a chemical compound in parallel ensuring the observed activity is not due to decreased cell proliferation.
  • Renilla luciferase HCV replicon cells 2209-23) cultured in Dulbecco's MEM (GibcoBRLcat no. 31966-021) with 5 % fetal calf serum (FCS, GibcoBRLcat. no. 10106- 169) were plated onto a 96- well plate at 5000 cells per well, and incubated overnight. Twenty-four hours later, different dilutions of chemical compounds in the growth medium were added to the cells, which were then further incubated at 37°C for three days. At the end of the incubation time, the cells in white plates were harvested and luciferase activity was measured by using Dual-Luciferase reporter assay system (Promega cat no. E1960).
  • WST-I reagent from Roche Diagnostic (cat no. 1644807) was used for the cytotoxicity assay. Ten microlitre of WST-I reagent was added to each well including wells that contain media alone as blanks. Cells were then incubated for 1 to 1.5 hours at 37 0 C, and the OD value was measured by a 96- well plate reader at 450 nm (reference filter at 650 nm). Again CC 5 O, the concentration of the drug required for reducing cell proliferation by 50% in relation to the untreated cell control value, can be calculated from the plot of percentage reduction of the WST-I value vs. drug concentration.
  • compositions of the subject Compounds for administration via several routes were prepared as described in this Example.
  • composition for Oral Administration (A)
  • the ingredients are mixed and dispensed into capsules containing about 100 mg each; one capsule would approximate a total daily dosage.
  • the ingredients are combined and granulated using a solvent such as methanol.
  • the formulation is then dried and formed into tablets (containing about 20 mg of active compound) with an appropriate tablet machine.
  • composition for Oral Administration (C)
  • the ingredients are mixed to form a suspension for oral administration.
  • the active ingredient is dissolved in a portion of the water for injection. A sufficient quantity of sodium chloride is then added with stirring to make the solution isotonic. The solution is made up to weight with the remainder of the water for injection, filtered through a 0.2 micron membrane filter and packaged under sterile conditions.
  • the ingredients are melted together and mixed on a steam bath, and poured into molds containing 2.5 g total weight.

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Abstract

The invention provides novel nucleoside compounds of formula I wherein R1, R2a, R2b, R3, R4, R5, R6, R8a, R9 and R10 are as defined herein which are useful for the treatment of Hepatitis C Virus (HCV) mediated diseases. The invention further provides methods for treatment or prophylaxis of HCV mediated diseases with compounds of formula I and pharmaceutical compositions comprising these compounds.

Description

Case 23380
ANTIVIRALPHOSPHORAMIDATES
The invention relates to the field of antiviral therapy and in particular to nucleoside derivatives for treating Hepatitis C Virus (HCV) mediated diseases. The invention provides novel chemical compounds, pharmaceutical compositions comprising these compounds, methods for treatment or prophylaxis of HCV mediated diseases employing said compounds in monotherapy or in combination therapy.
The invention relates to nucleoside derivatives that inhibitor HCVreplicon RNA replication. In particular, the invention is concerned with the use of phosphoramidate esters of 4' -substituted nucleosides that inhibitor of subgenomic HCV RNA replication and pharmaceutical compositions containing such compounds.
Hepatitis C virus is the leading cause of chronic liver disease throughout the world.
(Boyer, N. et al. J. Hepatol. 200032:98-112). Patients infected with HCV are at risk of developing cirrhosis of the liver and subsequent hepatocellular carcinoma and hence HCV is the major indication for liver transplantation.
HCV has been classified as a member of the virus family Flaviviridae that includes the genera flaviviruses, pestiviruses, and hapaceiviruses which includes hepatitis C viruses (Rice, C. M., Flaviviridae: The viruses and their replication. In: Reids Virology, Editors: B. N. Fields, D. M. Knipe and P. M. Howley, Iippincott-Raven Publishers, Philadelphia, Pa., Chapter 30, 931-959, 1996). HCV is an enveloped virus containing a positive- sense single- stranded RNA genome of approximately 9.4 kb. The viral genome consists of a 5' untranslated region (UTR), a long open reading frame encoding a polyprotein precursor of- approximately 3011 amino acids, and a short 3' UTR. The 5' UTR is the most highly conserved part of the HCV genome and is important for the initiation and control of polyprotein translation.
Genetic analysis of HCV has identified six main genotypes which diverge by over 30% of the DNA sequence. More than 30 subtypes have been distinguished. In the US approximately 70% of infected individuals have Type Ia and Ib infection. Type Ib is the most prevalent subtype in Asia. (X Forns and J. Bukh, Clinics in liver Disease 1999 3:693-716; J. Bukh et al, Semin. Uv. Dis. 1995 15:41-63). Unfortunately Type 1 infectious is more resistant to therapy than either type 2 or 3 genotypes (N. N. Zein, Clin. Microbiol. Rev., 2000 13:223-235).
JZ/23.06.2006 Viral structural proteins include a nucleocapsid core protein (C) and two envelope glycoproteins, El and E2. HCV also encodes two proteases, a zinc-dependent metalloproteinase encoded by the NS2-NS3 region and a serine protease encoded in the NS3 region. These proteases are required for cleavage of specific regions of the precursor polyprotein into mature peptides. The carboxyl half of nonstructural protein 5, NS5B, contains the RNA-dependent RNA polymerase. The function of the remaining nonstructural proteins, NS4Aand NS4B, and that of NS5A(the amino -terminal half of nonstructural protein 5) remain unknown. It is believed that most of the non- structural proteins encoded by the HCV RNA genome are involved in RNA replication
Currently there are a limited number of approved therapies are currently available for the treatment of HCV infection. Existing therapies and new therapies currently in development for treating HCV and inhibition of HCV NS5B polymerase have been reviewed: R. G. Gish, Sem. Liver. Dis., 1999 19:5; Di Besceglie, A M. and Bacon, B. R., Scientific American, October: 1999 80-85; G. Lake-Bakaar, Current and Future Therapy or Chronic Hepatitis C Virus liver Disease, Curr. Drug Targ. Infect Dis. 2003 3(3) :247-253; P. Hoffmann et al, Recent patents on experimental therapy for hepatitis C virus infection (1999-2002), Exp. Opin. Ther. Patents 2003 13(ll):1707-1723; M. P. Walker et al, Promising Candidates for the treatment of chronic hepatitis C, Exp. Opin. Investig. Drugs 2003 12(8): 1269- 1280; S.-L. Tan et al., Hepatitis C Therapeutics .-Current Status and Emerging Strategies, Nature Rev. DrugDiscov. 2002 1:867-881; J. Z. Wu and Z. Hong, Targeting N S5B RN A-Dependent RNA Polymerase for And- H CV Chemotherapy, Curr. Drug Targ. - Infect. Dis. 2003 3(3):207-219. The development of resistance by HCV strains along with existing strains which are refractive to current therapy make new anti- HCV compounds very desirable.
A number of potential molecular targets for drug development as anti-HCV therapeutics have now been identified including, but not limited to, the NS2-NS3 autoprotease, the N3 protease, the N3 helicase and the NS5B polymerase. The RNA- dependent RNApolymerase is absolutely essential for replication of the single- stranded, positive sense, RNA genome. Consequently, this enzyme has elicited significant interest among medicinal chemists. Nucleoside inhibitors of RNA polymerase can act either as a chain terminator during DNA synthesis or as a competitive inhibitor which interferes with nucleotide binding to the polymerase. To function as a chain terminator the nucleoside analog must be taken up be the cell and converted in vivo to a triphosphate to compete for the polymerase nucleotide binding site. The required conversion of nucleosides to the corresponding triphosphate is commonly mediated by cellular kinases imparting additional structural requirements on a potential nucleoside polymerase inhibitor. In addition this limits the direct evaluation of nucleosides as inhibitors of HCV replication to cell-based assays. Modification of the furanose ring of nucleosides has afforded compounds with an ti- viral activity. Modification of the 2'- and 3'-positions of the sugar ring has been extensively investigated. Modification of the 4'-position of the furanose ring has been explored to a lesser extent because of the difficulties associated with introduction of substituents at this position.
Maag et al. (Anti-HIV Activity of4'-Azido and 4 '-Methoxynucleosid.es, J. Med. Chem. 1992 35:1440-1451) disclose the synthesis of 4'-azido-2-deoxyribonucleosides and 4- azido nucleosides. C. O'Yang et al. {Tetrahedron Lett. 1992 33(l):37-40 and 33(l):41-44) disclose the synthesis 4'-cyano, 4'-hydroxymethyl- and 4'-formyl nucleoside compounds substituted nucleosides. These compounds were evaluated as anti-HIV compounds.
In WO02/100415 published December 19, 2002 (US 2003/0236216 Al), R. R. Devos et al. disclose 4'-substituted nucleoside compounds that exhibit HCV activity. Four compounds explicitly identified include the 4'-azido compound, Ia, the 4'-ethynyl compound Ib, the 4'-ethoxy compound Ic and the 4'-acetyl compound Id. Other exemplified modifications of the ribose moiety exemplified include the 2'-deoxy 2a derivative, 3'-deoxy derivative 2b, the 3'-methoxy derivative 2e, the 3'-fluoro derivative 2c and the 2',3'-difluoro derivative 2d. In WO2004/046159 published June 3, 2004 (US 2004121980), J. A Martin et al. disclose mono-, di-, tri- and tetra-acyl prodrugs of Ia useful for treating HCV-mediated diseases. Both US applications are hereby incorporated by reference in their entirety.
Figure imgf000004_0001
Ia: R = N3 2a: R1 = OH, R2 = R3 = R4 = H lb: R = ethynyl 2b: R3 = OH, Ri = R2 = R4 = H lc: R = OEt 2c: R3 = OH, R2 = F, Ri = R4 = H
Id: R = C(=O)Me 2d: R1 = R2 = H, R3 = R4 = F
2e: R1 = OMe, R3 = OH, R2 = R4 = H
Y.-H. Yun et al. (Arch. Pharm. Res. 1985 18(5):364-35) disclose the synthesis and antiviral activity of 4'-azido-2'-deoxy-2'-fluoro-arabinofuranosyl nucleosides (3: R= H, Me and Cl).
Figure imgf000005_0001
3 4
B = adenine, uracil, thymine
G. S. Jeon and V. Nair (Tetrahedron 1996 52(39) :12643-50) disclose the synthesis 4'-azidomethyl-2',3'-deoxyribonucleosides 4 (B = adenine, thymine and uracil) as HIV reverse transcriptase inhibitors.
I. Sugimoto et al. disclosed the synthesis and the HIV and H. simplex bioassay of 4'- ethynyl-2'-deoxycytidine (5) and other two-carbon substituents at the 4'-position (Nucleosides and Nucleotides. 183. Synthesis of 4' D- Branched Thymidines as a New Type of Antiviral Agent, Bioorg. Med. Chem. Lett. 1999 9:385-88). T. Wada et al. (Nucleosides & Nucleotides 1996 15 (l-3):287-304) disclose the synthesis and anti-HIV activity of 4'-C- methyl nucleosides.
In WO02/18404 published March 7, 2002, R. Devos et al. disclose novel and known purine and pyrimidine nucleoside derivatives and their use as inhibitors of subgenomic HCV replication and pharmaceutical compositions containing said nucleoside derivatives. The compounds disclosed consist of nucleosides with substituted purine and pyrimidine bases.
6a: B = cytosine 6b: B = thymine
Figure imgf000005_0002
H. Ohrui et al. (Antimicrobial Agents and Chemother. 2001 45(5) :1539- 1546; see also S. Koghgo et al, Tennen Yuki Kagobutsu Toronkai Koen Yoshishu 200042:835 (Chem. Abs. 2001:102156 and H. Ohrui et al. WO2000069876 published November 23, 2000) disclose the synthesis and anti-HIV activity of 4'-C-ethynyl-D-D-αrabmo- and 4'-C- ethynyl-2'-deoxy-D-D-nbo-pentofuranosyl pyrimidines and -purines. 4-Ethynyl- cytarabine (6a) exhibits good anti-HIV activity while the corresponding nucleoside wherein the base was thymine 6b was inactive. Several 4'-C-ethylnyl-2'-deoxy-D-D-nbo- pentofuranosyl pyrimidines and -purines were potent inhibitors of HIV reverse transcriptase (HIV-RT).
K Kitano et al. {Tetrahedron 1997 53(39) :13315- 13322) disclose the synthesis 4'- fluoromethyl 2-deoxy-D-erythro-, ribo- and αrabmo-pentofuranosyl cytosines and anti- neoplastic activity.
4'-Azidocytidine, 4'-azidouridine, 4'-ethynylcytidine, 4'-ethynyluridine, 4'azido- arabinose (see e.g. U.S. Ser. No. 60/603,778 which is incorporate by reference in its entirety), 4'-(Z-2-chlorovinyl)cytidine and 4'-(Z-2-chlorovinyl)uridine have exhibited activity against HCV and Flaviviridiae in cell culture or phosphorylated analogs were active against HCV polymerase in vitro. However, more potent compounds are desirable to provide safe therapeutically effective levels in vivo. Surprisingly, certain phosphoramidate derivatives have now been found to exhibit useful biological activity against Flaviviridae.
Although nucleoside derivatives have proven to be effective inhibitors of HCV polymerase, their practical utility is often limited by two factors. Firstly, suboptimal physical properties and poor pharmacokinetics frequently limit the intracellular concentration of the nucleoside derivative. The present invention relates to phosphoramidate derivatives of 4' -substituted nucleosides compounds with improved physiochemical and pharmacokinetic properties. These derivatives more efficiently permeate the intestinal mucosa and ultimately are transported into the cell. These "pronucleotides" enhance biological activity, bioavailability or stability of the parent nucleotide (for reviews, see e.g., R. J. Jones and N. Bischofberger, Antiviral Res. 1995 27; 1-15 and C. R. Wagner et al, Med. Res. Rev. 200020:417-451).
Secondly, if the prodrug successfully penetrates an infected cell and is converted to the parent nucleoside, the biologically activity of these compounds depends upon kinase- mediated phosphorylation to generate the nucleoside triphosphate. Chemically modified nucleosides that are effective enzyme inhibitors are frequently poor substrates for endogenous nucleoside kinases resulting in the inefficient product of the triphosphate. Furthermore, cells with low levels of nucleoside kinases are unable to phosphorylate the nucleoside analog. Formation of the monophosphate by a nucleoside kinase is normally rate-limiting and the second and third phosphorylations are less sensitive to modifications to the nucleoside.
Scheme 1
Figure imgf000007_0001
7c
7a: R3 = alkyl or aralkyl
7b: R3 = H
Figure imgf000007_0002
7e 7d
R5 is H or a substituent
R6 is cytidine, uridine or a 5-substituted derivative thereof
Aryloxy phosphoramidate derivatives 7a afford a mechanism to overcome both problems. The phosphate moiety is masked with neutral lipophilic groups to obtain a suitable partition coefficient to optimize uptake and transport into the cell. Enzyme- mediated hydrolysis of the ester produces a nucleoside monophosphate 7e wherein the rare limiting initial phosphorylation is unnecessary and the second and third phosphorylation are less sensitive to structural modifications of the nucleoside moiety. (Scheme I) C. McGuigan et al., Antiviral Res. 1992 17 '(4) :311-321; Antiviral. Res.1991 15:255-263; J. Med. Chem. 1993 36(9) :1048- 1052; Antiviral Res. 199424:69-77; J. Med. Chem. 1996 39:1748-1753; Bioorg. Med.. Chem. Lett. 1996 6:2359-2361; P. Franchetti et al. J. Med. Chem. 199437:3534-3541 ;G. Valette et al. J. Med. Chem. 1996 39:1981-1990; J. Balzarini et al. FEBS Lett. 1997410: 324-328; D. Saboulard et al. MoI. Pharmacol. 1999 56:693-704; A D. Siddiqui et al. Bioorg. Med. Chem. Lett. 1999 9:2555-2260; S. C. Tobias and R. F. Borch J. Med. Chem. 2001 44:4475-4480; K S. Gudmundsson et al. Nucleosides, Nucleotides & Nucleic Acids 2003 22( 10) :1953- 1961; D. Siccardi et al.Eur. J. Pharm. Sd. 200422:25-31. Phosphoramidate diesters of nucleoside compounds have been reported including AZT (zidovudine), d4T (stauvidine), FudR (5-fluorodeoxyuridine), 2'-deoxyuridine, thymidine, d4A (2',3'-didedehydro-2',3'-dideoxyadenosine), isoddA (2',3'-dideoxy-3'- oxoadensoine), FLT (alovudine, 3-deoxy-3-fluorothymidine), ddC (2' ,3'- dideoxycytosine), ddA (dideoxyadenosine), hypoxallene, 2',3'-dideoxy-3'-thiacytidine (3TC) and Ara-C (Wagner , id., p. 438).
The present invention is directed toward novel phosphoramidate derivatives of 4'- substituted nucleoside compounds that inhibit HCV polymerase, methods of treating a disorder mediated by HCV with said compounds and pharmaceutical compositions containing said compounds.
One object of the present invention is (i) A compound according to formula I
Figure imgf000008_0001
I A B C D
wherein:
R1 is hydrogen, C1-6 haloalkyl, or aryl wherein said aryl is phenyl or naphthyl optionally substituted with one to three substituents independently selected from the group consisting of C1-6 alkyl, C2_6 alkenyl, C2_6 alkynyl, C1-6 alkoxy, halogen, C1- 6 haloalkyl, -N(Rla)2, Ci_6 acylamino, -NHSO2C1-6 alkyl, -SO2N(Rla)2, -SO2C1-6 alkyl, CORlb, nitro and cyano;
Rla is independently hydrogen or C1-6 alkyl;
Rlb is -ORla or -N(Rla)2;
R2aand R2b are (/) independently selected from the group consisting of hydrogen, C1-1O alkyl, -(CH2)rNRla 2, Ci_6 hydroxyalkyl, -CH2SH, -(CH2)2S(O)pMe, -(CH2)3NHC(=NH)NH2, ( lH-indol-3-yl)methyl, ( lH-imidazol-4-yl)methyl, -(CΗ2)mCORlb, aryl and aryl C1-3 alkyl, said aryl groups optionally substituted with a group selected from the group consisting of hydroxyl, C1-1O alkyl, C1-6 alkoxy, halogen, nitro and cyano,; (H) R2a is hydrogen and R2b and R4 together are (CH2)3; (Ui) R2a and R2b together are (CH2)n; or, (iv) R2a and R2b both are C1-6 alkyl; R3 is hydrogen, C1-1O alkyl, C1-1O haloalkyl, aryl or aryl-Ci_3 alkyl wherein said aryl is phenyl;
R4 is hydrogen, Ci_3 alkyl, or R2b and R4 together are (CH2)3;
R5 is azide, -C≡CH or -(Z)-CH=CHCl;
R6 is A, B, C or D wherein R11 is hydrogen or C1-3 alkyl;
R7 is hydrogen, methyl, halomethyl or halogen;
either
(a) R9 is OR8b and R10 is hydrogen wherein R8a and R8b are (Q independently hydrogen, benzoyl or C1-6 acyl or (Q together R8a and R8b are C(Me)2, C(CH2)4, CHPh, or
(b) R9 is hydrogen and R10 is OR8b wherein R8a and R8b are independently hydrogen or Ci_6 acyl;
m is 0 to 3;
n is 4 or 5;
p is 0 to 2;
r is 1 to 6; and,
pharmacologically acceptable salts thereof.
Other objects of the present invention are:
(ii) A compound of formula I according to (i)
Figure imgf000009_0001
wherein: R1 is hydrogen, C1-6 haloalkyl, or aryl wherein said aryl is phenyl or naphthyl optionally substituted with one to three substituents independently selected from the group consisting of C1-6 alkyl, C1-6 alkoxy and halogen;
R2aand R2b are (/) independently selected from the group consisting of hydrogen, C1-1O alkyl, -(CH2)DiCO2C1-6 alkyl , -(CH2)mS Ci_6 alkyl, aryl and aryl Q_3 alkyl wherein said aryl is phenyl; (H) R2a is hydrogen and R2b and R4 together are (CH2)3; (Hi) R2a and R2b together are (CH2)n; or, (iv) R2a and R2b both are C1-6 alkyl;
R3 is hydrogen, C1-M alkyl, C1-1O haloalkyl, aryl or aryl-Ci-3 alkyl wherein said aryl is phenyl;
R4 is hydrogen, Ci_3 alkyl, or R4 together with R2a or R2b are (CH2)3;
R5 is azide, -C≡CH or -(Z)-CH=CHCl;
R6 is A, B, C or D;
R9 is OR8b and R10 is hydrogen wherein R8a and R8b are hydrogen or R8a and R8b together are C(Me)2;
m is 0 to 3;
n is 4 or 5; and,
pharmacologically acceptable salts thereof.
(iii) A compound of formula I according to (ii),
Figure imgf000010_0001
wherein:
R1 is hydrogen or aryl wherein said aryl is phenyl or naphthyl optionally substituted with one to three substituents independently selected from the group consisting of C1-O alkyl, C1-6 alkoxy and halogen; R2aand R2b are (/) independently selected from the group consisting of hydrogen, C1^o alkyl, -(CH2)U1CO2C1-O alkyl , -(CH2)mS C1-6 alkyl, aryl and aryl C1-3 alkyl wherein said aryl is phenyl; (U) R2a is hydrogen and R2b and R4 together are (CH2)3; or (Ui) R2a and R2b together are (CH2)n;
R3 is hydrogen, C1-M alkyl, C1-1O haloalkyl, aryl or aryl-Ci-3 alkyl wherein said aryl is phenyl;
R4 is hydrogen, C1-3 alkyl, or R4 together with R2a or R2b are (CH2)3;
R5 is azide, -C≡CH or -(Z)-CH=CHCl;
R6 is A;
R9 is OR8b and R10 is hydrogen wherein R8a and R8b are hydrogen;
R11 is hydrogen
m is 0 to 3;
n is 4 or 5.
(iv) A compound according to (iii),
wherein:
R1 is hydrogen, phenyl, 4-Cl-phenyl, 3,4-di-Cl-phenyl, 4-methyl-phenyl, 4-methoxy-phenyl, 1-naphthyl or 3-bromo-naphthyl;
R2aand R2b are (/) independently selected from the group consisting of hydrogen, methyl,
-CHMe2; -CH2CHMe2; -(CH2)2CO2Et ; -(CH2)2SMe; -CH2-phenyl; (H) R2a is hydrogen and R2b and R4 together are (CH2)3; or (Ui) R2a and R2b together are
(CH2)4;
R3 is hydrogen, methyl, ethyl, isopropyl, n-butyl, tert-butyl, CH(ethyl)CH3, n-C12H25, -CH2CF3, -CH2-phenyl;
R4 is hydrogen, methyl, or R4 together with R2a or R2b are (CH2)3;
R5 is azide, -C≡CH or -(Z)-CH=CHCl;
R6 is A; R9 is OR8b and R10 is hydrogen wherein R8a and R8b are hydrogen; and
R11 is hydrogen.
(v) A compound of formula I according to (ii),
Figure imgf000012_0001
I B
wherein:
R1 is hydrogen, C1-6 haloalkyl, or aryl wherein said aryl is phenyl or naphthyl optionally substituted with one to three substituents independently selected from the group consisting of C1-6 alkyl, C1-6 alkoxy and halogen;
R2aand R2b are (/) independently selected from the group consisting of hydrogen, C1-1O alkyl, -(CH2)mCO2C1-6 alkyl , -(CH2)mS C1-6 alkyl, aryl and aryl Ci_3 alkyl wherein said aryl is phenyl; (U) R2a is hydrogen and R2b and R4 together are (CH2)3; (Ui) R2a and R2b together are (CH2)n; or, (iv) R2a and R2b both are C1-6 alkyl;
R3 is hydrogen, C1-M alkyl, C1-1O haloalkyl, aryl or aryl-Ci-3 alkyl wherein said aryl is phenyl;
R4 is hydrogen, C1-3 alkyl, or R4 together with R2a or R2b are (CH2)3;
R5 is azide, -C≡CH or -(Z)-CH=CHCl;
R6 is B;
R9 is OR8b and R10 is hydrogen wherein R8a and R8b are hydrogen or R8a and R8b together are C(Me)2;
m is 0 to 3; and
n is 4 or 5.
(vi). A compound according to (v),
wherein: R1 is hydrogen, -CH2CF3, phenyl, 4-Cl-phenyl, 3,4-di-Cl-phenyl, 4-methyl-phenyl, 4- methoxy-phenyl or 1-naphthyl;
R2aand R2b are (/) independently selected from the group consisting of hydrogen, methyl, -CHMe2; -CH2CHMe2; -CH(ethyl)CH3, -CH2CO2Et, -(CH2)2CO2Et ; (CH2)2SMe; -CH2-phenyl; (K) R2a is hydrogen and R2b and R4 together are (CH2)3; or (Ui) R2a and R2b together are (CH2)4;
R3 is hydrogen, methyl, ethyl, isopropyl, n-butyl, tert-butyl, -CH(ethyl)CH3, n-C12H25, -CH2-phenyl;
R4 is hydrogen, methyl, or R4 together with R2a or R2b are (CH2)3;
R5 is azide;
R6 is B; and
R9 is OR8b and R10 is hydrogen wherein R8a and R8b are hydrogen or R8a and R8b together are C(Me)2.
(vii) A compound of formula I according to (ii)
Figure imgf000013_0001
I C wherein:
R1 is hydrogen or aryl wherein said aryl is phenyl or naphthyl optionally substituted with one to three substituents independently selected from the group consisting of C1-O alkyl, C1-6 alkoxy and halogen;
R2aand R2b are independently selected from the group consisting of hydrogen, C1-6 alkyl;
R3 is hydrogen, C1-M alkyl, aryl or aryl-Ci-3 alkyl wherein said aryl is phenyl;
R4 is hydrogen, C1-3 alkyl;
R5 is azide; R6 is C;
R8a is H;
R9 is hydroxyl; and
R10 is hydrogen.
(viii) A compound according to (vii),
wherein:
R1 is hydrogen or naphthyl;
R2aand R2b are independently selected from the group consisting of hydrogen and methyl;
R3 is hydrogen or -CH2-phenyl;
R4 is hydrogen;
R5 is azide;
R6 is C;
R8a is H;
R9 is hydroxyl; and
R10 is hydrogen.
(ix) A compound of formula I according to (ii)
Figure imgf000014_0001
T D
wherein:
R1 is hydrogen or aryl wherein said aryl is phenyl or naphthyl optionally substituted with one to three substituents independently selected from the group consisting of
C1-O alkyl, C1-6 alkoxy and halogen; R2aand R2b are independently selected from the group consisting of hydrogen, C1-6 alkyl;
R3 is hydrogen, C1-M alkyl, aryl or aryl-Ci_3 alkyl wherein said aryl is phenyl;
R4 is hydrogen, C1-3 alkyl;
R5 is azide;
R6 is D;
R8a is H;
R9 is hydroxyl; and
R10 is hydrogen.
(x) A compound according to (ix),
wherein:
R1 is hydrogen or naphthyl;
R2aand R2b are independently selected from the group consisting of hydrogen and methyl;
R3 is hydrogen or -CH2-phenyl;
R4 is hydrogen;
R5 is azide;
R6 is D;
R8a is H;
R9 is hydroxyl; and
R10 is hydrogen.
(xi) A compound according to any one of (i) to (x), which is
(S)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy]-phenoxy-phosphorylamino}-propionic acid methyl ester, (S)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-3-phenyl-propionic acid ethyl ester,
2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-2-methyl-propionic acid benzyl ester,
2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-2-methyl- propionic acid benzyl ester,
(S)-2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-4-methyl- pentanoic acid ethyl ester ,
2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-2-methyl- propionic acid ethyl ester,
(S)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-3-phenyl-propionic acid benzyl ester,
(S)-2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-3-phenyl- propionic acid benzyl ester,
(S)-2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-3-phenyl- propionic acid isopropyl ester,
2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-2-methyl-propionic acid ethyl ester,
(2S,3S)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4- dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-3-methyl- pentanoic acid ethyl ester, 2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy]-phenoxy-phosphorylamino}-2-methyl- propionic acid isopropyl ester,
(S)-2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-diriydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid benzyl ester,
(S)-2-{[(2R3S,4R5R)-2-Azido-5-(2,4-dioxo-3,4-diriydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid isopropyl ester,
2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-2-methyl-propionic acid isopropyl ester,
(S)-2-[[(2R3S,4R5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy]-(4-chloro-phenoxy)-phosphorylamino]-4-methyl- pentanoic acid ethyl ester ,
(S)-2-[[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy]-(3,4-dichloro-phenoxy)-phosphorylamino]-4-methyl- pentanoic acid ethyl ester ,
(S)-2-{[(2R3S,4R5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-3-phenyl-propionic acid isopropyl ester,
(S)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-4-methyl-pentanoic acid benzyl ester ,
(S)-2-{[(2R3S,4R5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid benzyl ester,
2-{[(2R3S,4R5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -hydroxy-phosphorylamino }-2-methyl-propionic acid ethyl estertriethyl- amine;, 2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy]-hydroxy-phosphorylamino}-2-methyl- propionatetriethyl- amine;,
(S)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-succinic acid diethyl ester,
(S)-2-{[(2R3S,4R5R)-2-Azido-5-(2,4-dioxo-3,4-diriydro-2H-pyrimidin-l-yl)-3,4- dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid ethyl ester,
(S)-2-{[(2R3S,4R5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -p-tolyloxy-phosphorylamino }-4-methyl-pentanoic acid ethyl ester ,
(S)-2-[[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy]-(4-methoxy-phenoxy)-phosphorylamino]-4-methyl- pentanoic acid ethyl ester ,
(S)-2-{[(2R3S,4R5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-4-methyl-pentanoic acid ethyl ester ,
(S)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid sec-butyl ester,
(S)-2-{[(2R3S,4R5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid tert-butyl ester,
(S)-2-[[(2R3S,4R5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy- tetrahydro-furan-2-ylmethoxy] -(4-chloro-phenoxy)-phosphorylamino] -A- methyl-pentanoic acid ethyl ester ,
(S)-2-[[(2R3S,4R5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy]-(3,4-dichloro-phenoxy)-phosphorylamino]- 4-methyl-pentanoic acid ethyl ester ,
(R)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid benzyl ester, {[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy]-phenoxy-phosphorylamino}- acetic acid benzyl ester,
(S)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-diriydroxy- tetrahydro-furan-2-ylmethoxy]-phenoxy-phosphorylamino}-propionic acid ethyl ester,
(S)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-diriydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid isopropyl ester,
(S)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-3-methyl-butyric acid benzyl ester ,
(S)-2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy]-p-tolyloxy-phosphorylamino}-4-methyl- pentanoic acid ethyl ester ,
(S)-2-[[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy- tetrahydro-furan-2-ylmethoxy] -(4-methoxy-phenoxy)-phosphorylamino] -A- methyl-pentanoic acid ethyl ester ,
(S)-2-{[(2R,3S,4R,5R)-2-((Z)-2-Chloro-vinyl)-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin- l-yl)-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }- propionic acid benzyl ester,
(R)-2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid benzyl ester,
(R)-2-{[(2R,3S,4R,5R)-5-(2,4-Dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-2-ethynyl-3,4- dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid benzyl ester,
(S)-2-{[(2R,3S,4R,5R)-5-(2,4-Dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-2-ethynyl-3,4- dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid tert-butyl ester,
(R)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid ethyl ester, (S)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy]-hydroxy-phosphorylamino}-propionatetriethyl-amine,
(S)-2-[[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy]-(4-chloro-phenoxy)-phosphorylamino]- propionic acid benzyl ester,
(S)-2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-diriydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-mran-2-ylmethoxy] -phenoxy-phosphorylamino }-3-methyl- butyric acid benzyl ester ,
(S)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-diriydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-4-methylsulfanyl-butyric acid ethyl ester,
(S)-2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-diriydro-2H-pyrimidin-l-yl)-3,4- dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-4- methylsulfanyl-butyric acid ethyl ester,
{[(2R,3S,4R,5R)-5-(2,4-Dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-2-ethynyl-3,4- dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }- acetic acid benzyl ester,
(S)-2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid tert-butyl ester,
(R)-2-[[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy]-(4-chloro-phenoxy)-phosphorylamino]- propionic acid benzyl ester,
(R)-2-[[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy- tetrahydro-furan-2-ylmethoxy] -(3,4-dichloro-phenoxy)-phosphorylamino] - propionic acid benzyl ester,
(R)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid tert-butyl ester, (S)-2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid methyl ester,
(S)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid methyl ester,
(S)-2-{[(2R,3S,4R,5R)-5-(2,4-Dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-2-ethynyl-3,4- dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid benzyl ester,
(S)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-4-methyl-pentanoic acid isopropyl ester,
(S)-2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-4-methyl- pentanoic acid isopropyl ester ,
{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino}- acetic acid benzyl ester,
(R)-2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid isopropyl ester,
({[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphoryl}-methyl-amino)-acetic acid ethyl ester,
(R)-2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid sec-butyl ester,
(R)-2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid dodecyl ester,
(R)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid dodecyl ester, (S)-2-[[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy]-(4-methoxy-phenoxy)-phosphorylamino]- propionic acid benzyl ester,
(S)-2-[[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -(4-methoxy-phenoxy)-phosphorylamino] -propionic acid benzyl ester,
2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-diriydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-mran-2-ylmethoxy] -hydroxy-phosphorylamino }-2-methyl- propionic acid; compound with ammonia,
(R)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-mran-2-ylmethoxy] -hydroxy-phosphorylamino }-propionic acid benzyl ester; compound with ammonia,
2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -hydroxy-phosphorylamino }-2-methyl-propionic acid; compound with ammonia,
({[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphoryl}-methyl-amino)-acetic acid ethyl ester,
(S)-2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy- tetrahydro-furan-2-ylmethoxy] -hydroxy-phosphorylamino }-3-phenyl- propionic acid ethyl ester; compound with ammonia,
(S)-2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy- tetrahydro-furan-2-ylmethoxy] -hydroxy-phosphorylamino }-3-phenyl- propionic acid; compound with ammonia,
(S)-2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy]-phenoxy-phosphorylamino}-3-phenyl- propionic acid ethyl ester,
(S)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-3-phenyl-propionic acid ethyl estertrifluoro- acetic acid;, (S)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-3-phenyl-propionic acid ethyl esterformic acid;,
(S)-2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy] -hydroxy-phosphorylamino }-propionic acid; compound with ammonia,
(S)-2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy] -p-tolyloxy-phosphorylamino }-propionic acid ethyl ester,
(S)-2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-pen tan edioic acid diethyl ester,
(R)-2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid butyl ester,
(S)-2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid butyl ester,
(R)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid butyl ester,
(S)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -p-tolyloxy-phosphorylamino }-propionic acid ethyl ester,
(S)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-pen tan edioic acid diethyl ester,
(S)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -hydroxy-phosphorylamino }-3-phenyl-propionic acid ethyl ester; compound with ammonia,
(S)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -hydroxy-phosphorylamino }-3-phenyl-propionic acid; compound with ammonia, (S)-2-[[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-mran-2-ylmethoxy]-(l-bromo-naphthalen-2-yloxy)- phosphorylamino] -propionic acid benzyl ester,
(S)-2-[[(2R,3S,4R,5R)-5-(6-Amino-purin-9-yl)-2-azido-3,4-diriydroxy-tetrahydro- furan-2-ylmethoxy] -(naphthalen- l-yloxy)-phosphorylamino] -propionic acid benzyl ester,
(S)-2-[[(2R,3S,4R,5R)-2-Azido-3,4-diriydroxy-5-(6-oxo-l,6-diriydro-purin-9-yl)- tetrahydro-furan-2-ylmethoxy] -(naphthalen- l-yloxy)-phosphorylamino] -propionic acid benzyl ester,
(S)-2-[[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy] -(naphthalen- l-yloxy)-phosphorylamino] - propionic acid 2,2,2- trifluoro- ethyl ester,
(S)-2-[[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy]-(2,2,2-trifluoro-ethoxy)-phosphorylamino] -propionic acid benzyl ester,
Pentanoic acid (2R,3R,4S,5R)-2-(4-amino-2-oxo-2H-pyrimidin-l-yl)-5-azido-5-[((S)-l- benzyloxycarbonyl-ethylamino)-phenoxy-phosphoryloxymethyl]-4-pentanoyloxy- tetrahydro-furan-3-yl ester,
l-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-cyclopentanecarboxylic acid ethyl ester,
l-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-cyclopentanecarboxylic acid isopropyl ester,
l-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-cyclopentanecarboxylic acid benzyl ester,
l-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }- cyclopentanecarboxylic acid benzyl ester, l-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-mran-2-ylmethoxy] -phenoxy-phosphorylamino }- cyclopentanecarboxylic acid ethyl ester,
l-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -hydroxy-phosphorylamino }-cyclopentanecarboxylic acid ethyl estertriethyl- amine;,
l-{[(2R3S,4R5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-mran-2-ylmethoxy] -phenoxy-phosphorylamino }- cyclopentanecarboxylic acid isopropyl ester,
l-{[(2R3S,4R5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy- tetrahydro-furan-2-ylmethoxy] -hydroxy-phosphorylamino }- cyclopentanecarboxylic acid isopropyl ester,
l-{[(2R3S,4R5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy]-phenoxy-phosphoryl}-pyrrolidine-2-carboxylic acid ethyl ester,
(S)-l-{[(2R3S,4R5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy]-phenoxy-phosphoryl}-pyrrolidine-2- carboxylic acid ethyl ester,
(S)-2-{[(3aS,4R6R6aR)-6-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-4-azido-2,2-dimethyl- tetrahydro-furo[3,4-d] [1,3] dioxol-4-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid benzyl ester,
(S)-2-{[(3aS,4R6R6aR)-6-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-4-azido-2,2-dimethyl- tetrahydro-furo[3,4-d] [1,3] dioxol-4-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid isopropyl ester.
(xii) A compound according to any one of (i) to (x) for the use as medicament.
13. Use of a compound according to any one of (i) to (x) for the manufacture of a medicament for the treatment of diseases mediated by Hepatitis C Virus (HCV).
14. A pharmaceutical composition comprising a therapeutically effective quantity of a compound according to any one of (i) to (x) admixed with at least one pharmaceutically acceptable carriers, diluents or excipients. In one embodiment of the present invention there is provided a compound according to formula I wherein I, A, B, C, D, R1, Rla, Rlb, R2a, R2b, R3, R4, R5, R6, R7, R8a, R8b, R9, R10, m, n, p and r are as defined hereinabove and pharmaceutically acceptable salts thereof.
In one embodiment of the present invention there is provided a compound according to formula I wherein R11 is hydrogen and R3 is R3 is hydrogen, C1. io alkyl, aryl or aryl-Ci-3 alkyl wherein said aryl is phenyl;
I, A, B, C, D, R1, Rla, Rlb, R2a, R2b, R3, R4, R5, R6, R7, R8a, R8b, R9, R10, m, n, p and r are as defined hereinabove and pharmaceutically acceptable salts thereof.
In another embodiment of the present invention there is provided a compound according to formula I wherein R2a and R2b are (/) independently hydrogen, methyl, iso- propyl, /sø-butyl, sec-butyl, -CH2OH, -CH(OH)CH3, -CH2SH, -CH2CH2S(O)pMe, - (CH2)mCORlb wherein m is 1 or 2, -(CH2)r-NH2 wherein r is 3 or 4, -(CH2)3- NHC(=NH)NH2, -CH2C6H5, -CH2-/?-C6H4-OH, (3-indolinyl)methylene, (4- imidazolyl) methylene; (//) R2a and R2b together are (CH2)n; or, (///) R2a and R2b both are Ci_3 alkyl; R3 is hydrogen, CM0 alkyl or benzyl; R9 is OR8b; R4, R7, R8a, R8b, R10 and R11 are hydrogen. Other substituents not specifically limited in this embodiment are as defined in the summary of the invention. When R3 is hydrogen it optionally can be replaced with a pharmaceutically acceptable cation.
]In another embodiment of the present invention there is provided a compound according to formula I wherein R2a and R2b are (/) independently hydrogen, methyl, iso- propyl, /sø-butyl, sec-butyl, -CH2OH, -CH(OH)CH3, -CH2SH, -CH2CH2S(O)pMe, - (CH2)mCORlb wherein m is 1 or 2, -(CH2)r-NH2 wherein r is 3 or 4, -(CH2)3- NHC(=NH)NH2, -CH2C6H5, -CH2-/?-C6H4-OH, (3-indolinyl)methylene, (4- imidazolyl) methylene; (//) R2a and R2b together are (CH2)n; or, (///) R2a and R2b both are
10
Ci_3 alkyl; R3 is hydrogen, C1-10 alkyl or benzyl; R5 is azide, R9 is OR8b; R4, R7, R8a, R8b, R and R i ll are hydrogen. Other substituents not specifically limited in this embodiment are aass ddeeffiinneedd iinn tthhee ssuummmmaarryy ooff tthhee iinnvveennttiioonn.. WWhheenn F R3 is hydrogen it optionally can be replaced with a pharmaceutically acceptable cation.
In another embodiment of the present invention there is provided a compound according to formula I wherein R2a and R2b are (/) independently hydrogen, methyl, u propyl, ύo-butyl, sec-butyl, -CH2OH, -CH(OH)CH3, -CH2SH, -CH2CH2S(O)pMe, -
(CH2)mCOR l ib wherein m is 1 or 2, -(CH2)r-NH2 wherein r is 3 or 4, -(CH2)3- NHC(=NH)NH2, -CH2C6H5, -CH2-/?-C6H4-OH, (3-indolinyl)methylene, (4- imidazolyl) methylene; (U) R2a and R2b together are (CH2)n; or, (Ui) R2a and R2b both are Ci_3 alkyl; R3 is hydrogen, C1-10 alkyl or benzyl; R5 is azide, R6 is A or B, R9 is OR8b; R4, R7, R8a, R8b, R10 and R11 are hydrogen. Other substituents not specifically limited in this embodiment are as defined in the summary of the invention. When R3 is hydrogen it optionally can be replaced with a pharmaceutically acceptable cation.
In another embodiment of the present invention there is provided a compound according to formula I wherein R2a and R2b are (/) independently hydrogen, methyl, iso- propyl, iso-butyl, sec-butyl, -CH2OH, -CH(OH)CH3, -CH2SH, -CH2CH2S(O)pMe, - (CH2)mCORlb wherein m is 1 or 2, -(CH2)r-NH2 wherein r is 3 or 4, -(CH2)3- NHC(=NH)NH2, -CH2C6H5, -CH2-/?-C6H4-OH, (3-indolinyl)methylene, (4- imidazolyl) methylene; (U) R2a and R2b together are (CH2)n; or, (Ui) R2a and R2b both are Ci_3 alkyl; R3 is hydrogen, C1-10 alkyl or benzyl; R5 is azide, R6 is C or D, R9 is OR8b; R4, R7, R8a, R8b, R10 and R11 are hydrogen. Other substituents not specifically limited in this embodiment are as defined in the summary of the invention. When R3 is hydrogen it optionally can be replaced with a pharmaceutically acceptable cation.
In another embodiment of the present invention there is provided a compound according to formula I wherein R2a is hydrogen and R2b is hydrogen, methyl, /so-propyl, ύo-butyl, sec-butyl, -CH2OH, -CH(OH)CH3, -CH2SH, -CH2CH2SMe, -(CH2)mCORlb wherein m is 1 or 2, -(CH2)r-NH2 wherein r is 3 or 4, -(CH2)3-NHC(=NH)NH2, - CH2C6H5, -CH2-/?-C6H4-OH, (3-indolinyl)methylene or (4-imidazolyl)methylene; R3 is hydrogen, C1-10 alkyl or benzyl; R5 is azide or -C≡CH; R9 is OR8b; R4, R7, R8a, R8b, R10 and R11 are hydrogen. Other substituents not specifically limited in this embodiment are as defined in the summary of the invention. When R3 is hydrogen it optionally can be replaced with a pharmaceutically acceptable cation.
In another embodiment of the present invention there is provided a compound according to formula I wherein R2a is hydrogen and R2b is hydrogen, methyl, /sø-propyl, «ϋ-butyl, sec-butyl, -CH2OH, -CH(OH)CH3, -CH2SH, -CH2CH2SMe, -(CH2)mCORlb wherein m is 1 or 2, -(CH2)r-NH2 wherein r is 3 or 4, -(CH2)3-NHC(=NH)NH2, - CH2C6H5, -CH2-P-C6H4-OH, (3-indolinyl)methylene or (4-imidazolyl)methylene; R3 is hydrogen, CM0 alkyl or benzyl; R5 is azide or -C≡CH; R9 is 0R8b; R4, R7, R8a, R8b, R10 and R11 are hydrogen. Other substituents not specifically limited in this embodiment are as ddeefifinneedd iinn tthhee ssuummmmaarryy ooff tthhee iinnvveennttiioonn. When R3 is hydrogen it optionally can be replaced with a alkylammonium cation.
In another embodiment of the present invention there is provided a compound according to formula I wherein R2a is hydrogen and R2b is hydrogen, methyl, /so-propyl, /so-butyl, sec-butyl; R3 is hydrogen, C1-1O alkyl or benzyl, R5 is azide or -C≡CH; R9 is OR8b; R4, R7, R8a, R8b, R10 and R11 are hydrogen. Other substituents not specifically limited in this embodiment are as defined in the summary of the invention. When R3 is hydrogen it optionally can be replaced with a pharmaceutically acceptable cation.
In another embodiment of the present invention there is provided a compound according to formula I wherein R2a is hydrogen and R2b is hydrogen, methyl, /so-propyl, /so-butyl, sec-butyl; R3 is hydrogen, C1-1O alkyl or benzyl, R5 is azide; R9 is OR8b; R4, R7, R8a, R8b, R10 and R11 are hydrogen. Other substituents not specifically limited in this embodiment are as defined in the summary of the invention. When R3 is hydrogen it optionally can be replaced with a pharmaceutically acceptable cation.
In another embodiment of the present invention there is provided a compound according to formula I wherein both R and R are Me or R and R together are (CH2)n wherein n is 4; R3 is hydrogen, C1-1O alkyl or benzyl, R5 is azide or -C≡CH; R9 is OR8b; R4, R7, R8a, R8b, R10 and R11 are hydrogen. Other substituents not specifically limited in this embodiment are as defined in the summary of the invention. When R3 is hydrogen it optionally can be replaced with a pharmaceutically acceptable cation.
In another embodiment of the present invention there is provided a compound according to formula I wherein both R and R are Me or R and R together are (CH2)n wherein n is 4; R3 is hydrogen, C1-10 alkyl or benzyl, R5 is azide; R9 is OR8b; R4, R7, R8a, R8b, R10 and R11 are hydrogen.
In another embodiment of the present invention there is provided a compound according to formula I wherein R2a and R2b are (/) independently hydrogen, methyl, iso- propyl, /sø-butyl, sec-butyl, -CH2OH, -CH(OH)CH3, -CH2SH, -CH2CH2S(O)pMe, - (CH2)mCORlb wherein m is 1 or 2, -(CH2)r-NH2 where r is 3 or 4, -(CH2)3- NHC(=NH)NH2, -CH2C6H5, -CH2-/?-C6H4-OH, (3-indolinyl)methylene, (4- imidazo IyI) methylene; (H) R and R together are (CH2)n; or, (Hi) R and R both are Ci_3 alkyl; R3 is hydrogen, C1-10 alkyl or benzyl; R10 is OR8b; R4, R7, R8a, R8b and R9 are hydrogen. Other substituents not specifically limited in this embodiment are as defined in the summary of the invention. When R3 is hydrogen it optionally can be replaced with a pharmaceutically acceptable cation.
In another embodiment of the present invention there is provided a compound according to formula I wherein R2a is hydrogen and R2b is hydrogen, methyl, /so-propyl,
/sø-butyl, sec-butyl, -CH2OH, -CH(OH)CH3, -CH2SH, -CH2CH2SMe, -(CH2)mCOR Ib wherein m is 1 or 2, -(CH2)r-NH2 wherein r is 3 or 4, -(CH2)3-NHC(=NH)NH2, - CH2C6H5, -CH2-P-C6H4-OH, (3-indolinyl)methylene or (4-midazolyl)methylene; R3 is hydrogen, CM0 alkyl or benzyl; R5 is azide or -C≡CH; R10 is OR8b; R4, R7, R8a, R8b, R9 and R11 are hydrogen. Other substituents not specifically limited in this embodiment are as ddeefifinneedd iinn tthhee ssuummmmaarryy ooff tthhee iinnvveennttiioonn.. WWhheenn RR33 is hydrogen it optionally can be replaced with a pharmaceutically acceptable cation.
In another embodiment of the present invention there is provided a compound according to formula I wherein R2a is hydrogen and R2b is hydrogen, methyl, /sopropyl, iso-buty\, sec-butyl; R3 is hydrogen, C1^o alkyl or benzyl; R5 is azide or -C≡CH; R10 is OR8b; R4, R7, R8a, R8b, R9 and R11 are hydrogen. Other substituents not specifically limited in this embodiment are as defined in the summary of the invention. When R3 is hydrogen it optionally can be replaced with a pharmaceutically acceptable cation.
In another embodiment of the present invention there is provided a compound according to formula I wherein both R2a and R2b are Me or R2a and R2b together are (CH2)n wherein n is 4; R3 is hydrogen, C1^o alkyl or benzyl; R5 is azide or -C≡CH; R10 is OR8b; R4, R7, R8a, R8b, R9 and R11 are hydrogen. Other substituents not limited in this embodiment are as defined in the summary of the invention. When R3 is hydrogen it optionally can be replaced with a pharmaceutically acceptable cation.
In another embodiment of the present invention there is provided a method for treating a disease caused by hepatitis C virus (HCV) comprising treating a patient in need thereof with a therapeutically effective amount of a compound according to formula I wherein A, B, C, D, R1, Rla, Rlb, R2a, R2b, R3, R4, R5, R6, R7, R8a, R8b, R9, R10, R11, m, n, p and r are as defined in the summary of the invention and pharmaceutically acceptable salts thereof.
In another embodiment of the present invention there is provided a method for treating a disease caused by hepatitis C virus (HCV) comprising treating a patient in need thereof with a therapeutically effective amount of a compound according to formula I wherein R9 is OR8b; R10 and R11 are hydrogen. Other substituents not specifically limited in this embodiment are as defined in the summary of the invention. When R3 is hydrogen it optionally can be replaced with a pharmaceutically acceptable cation.
In another embodiment of the present invention there is provided a method for treating a disease caused by hepatitis C virus (HCV) comprising treating a patient in need thereof with a therapeutically effective amount of a compound according to formula I wherein R9 is OR8b; R10 is hydrogen; R5 is azide or -C≡CH; Other substituents not specifically limited in this embodiment are as defined in the summary of the invention. When R3 is hydrogen it optionally can be replaced with a pharmaceutically acceptable cation.
In another embodiment of the present invention there is provided a method for treating a disease caused by hepatitis C virus (HCV) comprising treating a patient in need thereof with a therapeutically effective amount of a compound according to formula I wherein R10 is OR8b; R9 and R11 are hydrogen. Other substituents not specifically limited in this embodiment are as defined in the summary of the invention. When R3 is hydrogen it optionally can be replaced with a pharmaceutically acceptable cation.
In another embodiment of the present invention there is provided a method for treating a disease caused by hepatitis C virus (HCV) comprising treating a patient in need thereof with a therapeutically effective amount of a compound according to formula I wherein R2a is hydrogen and R2b is hydrogen, methyl, /so-propyl, iso-butyl, sec-butyl, - CH2OH, -CH(OH)CH3, -CH2SH, -CH2CH2SMe, -(CH2)mCORlb wherein m is 1 or 2, - (CH2)r-NH2 wherein r is 3 or 4, -(CH2)3-NHC(=NH)NH2, -CH2C6H5, -CH2-/?-C6H4-OH, (3-indolinyl)methylene or (4-imidazolyl)methylene; R3 is hydrogen, C1-1O alkyl or benzyl; R5 is azide or -C≡CH; R9 is OR8b; R4, R7, R8a, R8b, R10 and R11 are hydrogen. Other substituents not specifically limited in this embodiment are as defined in the summary of the invention. When R3 is hydrogen it optionally can be replaced with a pharmaceutically acceptable cation.
In another embodiment of the present invention there is provided a method for treating a disease caused by hepatitis C virus (HCV) comprising treating a patient in need thereof with a therapeutically effective amount of a compound according to formula I wherein R2a is hydrogen and R2b is hydrogen, methyl, /so-propyl, iso-butyl, sec-butyl; R3 is hydrogen, CM0 alkyl or benzyl, R5 is azide or -C≡CH; R9 is OR8b; R4, R7, R8a, R8b, R10 and R i ll are hydrogen. Other substituents not specifically limited in this embodiment are as ddeeffiinneedd iinn tthhee ssuummmmaarryy ooff tthhee iinnvveennttiioonn.. WWhheenn RR33 is hydrogen it optionally can be replaced with a pharmaceutically acceptable cation.
In another embodiment of the present invention there is provided a method for treating a disease caused by Flaviviridae virus comprising treating a patient in need thereof with a therapeutically effective amount of a compound according to formula I wherein I, Ia, Ib, R1, Rla, Rlb, R2a, R2b, R3, R4, R5, R6, R7, R8a, R8b, R9, R10, R11, m, n, p and r are as defined in the summary of the invention and pharmaceutically acceptable salts thereof. In another embodiment of the present invention there is provided a method for treating a disease caused by hepatitis C virus (HCV) comprising treating a patient in need thereof with a therapeutically effective amount of a compound according to formula I wherein A, B, C, D, R1, Rla, Rlb, R2a, R2b, R3, R4, R5, R6, R7, R8a, R8b, R9, R10, R11, m, n, p and r are as defined and pharmaceutically acceptable salts thereof, in combination with at least one immune system modulator and/or at least one antiviral agent that inhibits replication of HCV.
In another embodiment of the present invention there is provided a method for treating a disease caused by hepatitis C virus (HCV) comprising treating a patient in need thereof with a therapeutically effective amount of a compound according to formula I wherein A, B, C, D, R1, Rla, Rlb, R2a, R2b, R3, R4, R5, R6, R7, R8a, R8b, R9, R10, R11, m, n, p and r are as defined and pharmaceutically acceptable salts thereof, in combination with an immune system modulator selected from the group consisting of an interferon, interleukin, tumor necrosis factor and colony stimulating factor
In another embodiment of the present invention there is provided a method for treating a disease caused by hepatitis C virus (HCV) comprising treating a patient in need thereof with a therapeutically effective amount of a compound according to formula I wherein A, B, C, D, R1, Rla, Rlb, R2a, R2b, R3, R4, R5, R6, R7, R8a, R8b, R9, R10, R11, m, n, p and r are as defined in the summary of the invention and pharmaceutically acceptable salts thereof, in combination with an interferon, or a chemically derivatized interferon.
In another embodiment of the present invention there is provided a method for treating a disease caused by hepatitis C virus (HCV) comprising treating a patient in need thereof with a therapeutically effective amount of a compound according to formula I wherein A, B, C, D, R1, Rla, Rlb, R2a, R2b, R3, R4, R5, R6, R7, R8a, R8b, R9, R10, R11, m, n, p and r are as defined in the summary of the invention and pharmaceutically acceptable salts thereof, in combination with PEGASYS®or PEG-INTRON®
In another embodiment of the present invention there is provided a method for treating a disease caused by hepatitis C virus (HCV) comprising treating a patient in need thereof with a therapeutically effective amount of a compound according to formula I wherein A, B, C, D, R1, Rla, Rlb, R2a, R2b, R3, R4, R5, R6, R7, R8a, R8b, R9, R10, R11, m, n, p and r are as defined in the summary of the invention and pharmaceutically acceptable salts thereof, in combination with at least one antiviral agent that inhibits replication of HCV In another embodiment of the present invention there is provided a method for treating a disease caused by hepatitis C virus (HCV) comprising treating a patient in need thereof with a therapeutically effective amount of a compound according to formula I wherein A, B, C, D, R1, Rla, Rlb, R2a, R2b, R3, R4, R5, R6, R7, R8a, R8b, R9, R10, R11, m, n, p and r are as defined in the summary of the invention and pharmaceutically acceptable salts thereof, in combination with at least one antiviral agent that inhibits replication of HCV selected from the group consisting of an HCV protease inhibitor, another nucleoside HCV polymerase inhibitor, a non-nucleoside HCV polymerase inhibitor, an HCVhelicase inhibitor, an HCVprimase inhibitor and an HCV fusion inhibitor.
In another embodiment of the present invention there is provided a pharmaceutical composition for treating a disease caused by hepatitis C virus (HCV) comprising treating a patient in need thereof with a therapeutically effective amount of a compound according to formula I wherein A, B, C, D, R1, Rla, Rlb, R2a, R2b, R3, R4, R5, R6, R7, R8a, R8b, R9, R10, R11, m, n, p and r are as defined in the summary of the invention and pharmaceutically acceptable salts thereof, in admixture with at least one pharmaceutically acceptable carrier, diluent or excipient.
The phrase "a" or "an" entity as used herein refers to one or more of that entity; for example, a compound refers to one or more compounds or at least one compound. As such, the terms "a" (or "an"), "one or more", and "at least one" can be used interchangeably herein.
The phrase "as defined hereinabove" refers to the first and/or broadest definition provided in the Summary of the Invention.
The term "optional" or "optionally" as used herein means that a subsequently described event or circumstance may, but need not, occur, and that the description includes instances where the event or circumstance occurs and instances in which it does not. For example, "optionally substituted" means that the moiety may be hydrogen or a substituent.
The term "alkyl" as used herein denotes an unbranched or branched chain, saturated, monovalent hydrocarbon residue, preferably containing 1 to 14 carbon atoms, more preferably containing 1 to 10 carbon atoms. The term "lower alkyl" denotes a straight or branched chain hydrocarbon residue containing 1 to 6 carbon atoms. "Cr1O alkyl" as used herein refers to an alkyl composed of 1 to 10 carbons. Examples of alkyl groups include, but are not limited to, lower alkyl groups include methyl, ethyl, propyl, i- propyl, n-butyl, /-butyl, r-butyl or pentyl, isopentyl, neopentyl, hexyl, heptyl, and octyl. The term "alkenyl" as used herein denotes an unsubstituted hydrocarbon chain radical having from 2 to 10 carbon atoms having one or two olefinic double bonds unless designated otherwise. "C2-io alkenyl" as used herein refers to an alkenyl composed of 2 to 10 carbons. Examples are vinyl, 1-propenyl, 2-propenyl (allyl) or 2-butenyl (crotyl).
The term "alkynyl" as used herein denotes an unbranched or branched hydrocarbon chain radical having from 2 to 10 carbon atoms, and having one or where possible two triple bonds unless otherwise designated. C2-io alkenyl" as used herein refers to an alkenyl composed of 2 to 10 carbons. Examples are ethynyl, 1-propynyl, 2- propynyl, 1-butynyl, 2-butynyl or 3-butynyl.
The term "alkoxy" as used herein means an -O-alkyl group, wherein alkyl is as defined above such as methoxy, ethoxy, n-propyloxy, z-propyloxy, n-butyloxy, z-butyloxy, t-butyloxy, pentyloxy, hexyloxy, including their isomers. "Lower alkoxy" as used herein denotes an alkoxy group with a "lower alkyl" group as previously defined. "Cr1O alkoxy" as used herein refers to an-O-alkyl wherein alkyl is C1-1O.
The term "halogen" or "halo" as used herein means fluorine, chlorine, bromine, or iodine.
The term "haloalkyl" as used herein denotes a unbranched or branched chain alkyl group as defined above wherein 1, 2, 3 or more hydrogen atoms are substituted by a halogen. "Q-3 haloalkyl" as used herein refers to an haloalkyl composed of 1 to 3 carbons and 1-8 halogen substituents. Examples are 1-fluoromethyl, 1-chloromethyl, 1- bromomethyl, 1-iodomethyl, trifluoromethyl, trichloromethyl, tribromomethyl, triiodomethyl, 1-fluoroethyl, 1-chloroethyl, 1-bromoethyl, 1-iodoethyl, 2-fluoroethyl, 2- chloroethyl, 2-bromoethyl, 2-iodoethyl, 2,2-dichloroethyl, 3-bromopropyl or 2,2,2- trifluoroethyl.
The term "acyl" as used herein denotes a group of formula -C(=O)R wherein R is hydrogen or lower alkyl as defined herein. The term or "alkylcarbonyl" as used herein denotes a group of formula C(=O)R wherein R is alkyl as defined herein. The term "arylcarbonyl" as used herein means a group of formula C(=O)R wherein R is an aryl group; the term "benzoyl" as used herein is an "arylcarbonyl" group wherein R is phenyl.
The term "acylamino" as used herein denotes a group of formula -NHC(=O)R wherein R is hydrogen or lower alkyl as defined herein
The terms "hydroxyalkyl" and "alkoxyalkyl" as used herein denotes the radical RR" where R is an hydroxy radical or a alkoxy radical respectively and R" is as defined herein and the attachment point of the hydroxyalkyl radical will be on the alkylene radical. The term "alkylene" as used herein denotes a divalent saturated linear hydrocarbon radical of 1 to 6 carbon atoms or a branched saturated divalent hydrocarbon radical of 3 to 6 carbon atoms, unless otherwise indicated. Examples of alkylene radicals include, but are not limited to, methylene, ethylene, propylene, 2-methyl-propylene, butylene and 2- ethylbutylene. The term "hydroxyalkyl" herein also includes the threonine side chain - CH(OH)Me and C3_s homologs thereof.
The terms (lH-indol-3-yl)methyl and (lH-imidazol-4-yl)methyl as used herein refer to (a) and (b) respectively:
Figure imgf000034_0001
The term "aryl" as used herein denotes a phenyl or naphthyl radical optionally substituted with one or more, preferably one or three substituents independently selected from hydroxy, thio, cyano, alkyl, alkoxy, lower haloalkoxy, alkylthio, halogen , haloalkyl, hydroxyalkyl, nitro, alkoxycarbonyl, amino, alkylamino, dialkylamino, aminoalkyl, alkylamino alkyl, and dialkylamino alkyl, alkylsulfonyl, arylsulfinyl, alkylaminosulfonyl, arylaminosulfonyl, alkylsulfonylamino, arylsulfonylamino, carbamoyl, alkylcarbamoyl and dialkylcarbamoyl, arylcarbamoyl, alkylcarbonylamino, arylcarbonylamino, unless otherwise indicated. Alternatively two adjacent atoms of the aryl ring may be substituted with a methylenedioxy or ethylenedioxy group.
The term "arylalkyl" or "aralkyl" as used herein denotes the radical R'R"-, wherein R is an aryl radical as defined herein, and R" is an alkylene radical as defined herein with the understanding that the attachment point of the arylalkyl moiety will be on the alkylene radical. Examples of arylalkyl radicals include, but are not limited to, benzyl (aryl-Ci alkyl), phenylethyl, 3-phenylpropyl.
The term "alkylammonium cation" as used herein refers to a radical NR1R2R3R4+ where R*-R4 are indendently hydrogen or alkyl.
Interferons (IFNs) have been available for the treatment of chronic hepatitis for nearly a decade. IFNs are glycoproteins produced by immune cells in response to viral infection. Two distinct types of interferon are recognized: Type 1 includes several interferon alphas and one interferon β, type 2 includes interferon γ. Type 1 interferons are produced mainly by infected cells and protect neighboring cells from de novo infection. IFNs inhibit viral replication of many viruses, including HCV, and when used as the sole treatment for hepatitis C infection, IFN suppresses serum HCV-RNA to undetectable levels. Additionally, IFN normalizes serum amino transferase levels. Unfortunately, the effects of IFN are temporary. Cessation of therapy results in a 70% relapse rate and only 10-15% exhibit a sustained virological response with normal serum alanine transferase levels. (G. Lake-Bakaar, Current and Future Therapy for Chronic Hepatitis C Virus liver Disease, Curr. Drug Targ. Infect Dis. 2003 3(3) :247-253)
One limitation of early IFN therapy was rapid clearance of the protein from the blood. Chemical derivatization of IFN with polyethyleneglycol (PEG) has resulted in proteins with substantially improved pharmacokinetic properties. PEGASYS®is a conjugate interferon α-2a and a 40 kD branched mono-methoxy PEG and PEG- INTRON®is a conjugate of interferon α-2b and a 12 kD mono-methoxy PEG. (B. A Luxon et al., Clin. Therap. 200224(9):13631383; A Kozlowski and J. M. Harris, J. Control. Release, 2001 72:217-224).
The term "chemically- derivatized interferon" as used herein refers to an interferon molecule covalently linked to a polymer which alters the physical and/or pharmacokinetic properties of the interferon. A non-limiting list of such polymers include polyalkylene oxide homopolymers such as polyethylene glycol (PEG) or polypropylene glycol (PPG), polyoxyethylenated polyols, copolymers thereof and block copolymers thereof, provided that the water solubility of the block copolymers is maintained. One skilled in the art will be aware of numerous approaches to linking the polymer and interferon (for example, see A Kozlowski and J. M. Harris J. Control. Release 2001 72( 1-3) :217-24) . A non-limiting list of chemically derivatized IFNα contemplated in the present patent include peginterferon- α-2a (PEGASYS®) and peginterferon- α-2b (PEGINTRON®).
A number of potential molecular targets for drug development as anti -HCV therapeutics have now been identified including, but not limited to, the NS2-NS3 autoprotease, the N3 protease, the N3 helicase and the NS5B polymerase. The RNS- dependent RNApolymerase is absolutely essential for replication of the single- stranded, positive sense, RNA genome. This enzyme has elicited significant interest among medicinal chemists.
Nucleoside inhibitors can act either as a chain terminator or as a competitive inhibitor which interferes with nucleotide binding to the polymerase. To function as a chain terminator the nucleoside analog must be taken up be the cell and converted in vivo to a triphosphate to compete for the polymerase, nucleotide binding site. This conversion to the triphosphate is commonly mediated by cellular kinases which imparts additional limitations on any nucleoside. In addition this limits the direct evaluation of nucleosides as inhibitors of HCV replication to cell-based assays.
Non-nucleoside allosteric inhibitors of HIV reverse transcriptase have proven effective therapeutics alone and in combination with nucleoside inhibitors and with protease inhibitors. Several classes of non-nucleoside HCV NS5B inhibitors have been described and are currently at various stages of development including: benzimidazoles, (H. Hashimoto et al. WO 01/47833, H. Hashimoto et al. WO 03/000254, P. L. Beaulieu et al. WO 03/020240 A2; P. L. Beaulieu et al. US 6,448,281 Bl; P. L. Beaulieu et al. WO 03/007945 Al); indoles, (P. L. Beaulieu et al. WO 03/0010141 A2) ; benzothiadiazines (D. Dhanak et al. WO 01/85172 Al; D. Dhanak et al. WO 03/037262 A2; K J. Duffy et al. WO03/099801 Al, D.Chai et al. WO 2004/0526313, J. K Pratt et al. WO 2004/041818 Al; J. K Pratt et al. WO 2004/087577 Al), thiophenes, (C. K Chan et al. WO 02/100851 A2); benzothiophenes (D. C. Young and T. R. Bailey WO 00/18231); β-ketopyruvates (S. Attamura et al. US 6,492,423 Bl, A Attamura et al. WO 00/06529) ; pyrimidines (C. Gardelli et al. WO 02/06246 Al); pyrimidinediones (T. R. Bailey and D. C. Young WO 00/13708); triazines (K-H. Chung et al. WO 02/079187 Al); rhodanine derivatives (T. R. Bailey and D. C. Young WO 00/10573, J. C. Jean et al. WO 01/77091 A2) ; 2,4- dioxopyrans (R. A Love et al. EP 256628 A2) ; phenylalanine derivatives (M. Wang et al. J. Biol. Chem. 2003 278:2489-2495).
Abbreviations used in this application include: acetyl (Ac), acetic acid (HOAc), azo- Ms'-isobutyrylnitrile (AIBN), 1-N-hydroxybenzotriazole (HOBt), atmospheres (Atm), high pressure liquid chromatography (HPLC), 9-borabicyclo[3.3.1]nonane (9-BBN or BBN), methyl (Me), tøt-butoxycarbonyl (Boc), acetonitrile (MeCN), di-tøt-butyl pyrocarbonate or boc anhydride (BOC2O), l-(3-dimethylaminopropyl)-3- ethylcarbodiimide hydrochloride (EDCI), benzyl (Bn), m-chloroperbenzoic acid (MCPBA), butyl (Bu), methanol (MeOH), benzyloxycarbonyl (cbz or Z), melting point (mp), carbonyl diimidazole (CDI), MeSO2- (mesyl or Ms), l,4-diazabicyclo[2.2.2] octane (DABCO), mass spectrum (ms) diethylaminosulfur trifluoride (DAST), methyl t-butyl ether (MTBE), dibenzylideneacetone (Dba), N-carboxyanhydride (NCA), 1,5- diazabicyclo [4.3.0] non-5-ene (DBN), N-bromosuccinimide (NBS), 1,8- diazabicyclo [5.4.0] undec-7-ene (DBU), N-methylmorpholine (NMM), N- methylpyrrolidone (NMP), 1,2-dichloroethane (DCE), pyridinium chlorochromate (PCC), N,N'-dicyclohexylcarbodiimide (DCC), pyridinium dichromate (PDC), dichloromethane (DCM), propyl (Pr), diethyl azodicarboxylate (DEAD), phenyl (Ph), di- /so-propylazodicarboxylate , DIAD, pounds per square inch (psi), di-iso- propylethylamine (DIPEA), pyridine (pyr), di-zso-butylaluminumhydride , DIBAL-H, room temperature, rt or RT, N,N-dimethyl acetamide (DMA), terf-butyldimethylsilyl or t- BuMe2Si, (TBDMS) , 4-N,N-dimethylaminopyridine (DMAP) , triethylamine (Et3N or TEA), N,N-dimethylformamide (DMF), triflate or CF3SO2- (Tf), dimethyl sulfoxide (DMSO), triflu or o acetic acid (TFA), l,r-Ms-(diphenylphosphino)ethane (dppe), 2,2,6,6- tetramethylheptane-2,6-dione (TMHD), l,l'-b/i-(diphenylphosphino)ferrocene (dppf), thin layer chromatography (TLC), ethyl acetate (EtOAc), tetrahydrofuran (THF), diethyl ether (Et2O) , trimethylsilyl or Me3Si (TMS) , ethyl (Et) , /?-toluenesulfonic acid monohydrate (TsOH or pTsOH), lithium hexamethyl disilazane (IiHMDS), 4-Me- C6H4SO2- or tosyl (Ts), /so-propyl (/-Pr), N-urethane-N-carboxyanhydride (UNCA), ethanol (EtOH). Conventional nomenclature including the prefixes normal (ή), iso (/-), secondary (sec-), tertiary (tert-) and neo have their customary meaning when used with an alkyl moiety. (J. Rigaudy and D. P. Klesney, Nomenclature in Organic Chemistry, IUPAC 1979 Pergamon Press, Oxford.).
Phosphoramidate compounds of the present invention can be prepared by condensation of a 4' -substituted nucleoside with a suitably substituted phosphochloridate compound 12 in the presence of a strong base (Scheme 2) . The nucleosides of the present invention typically contain an optionally substituted pyrimidine (R6 = A or B) or purine (R6 = C or D) and one of R9 and R10 is hydroxyl or acyloxy and the other of R9 and R10 is hydrogen. When R9 is hydroxy, R8 and R9 are optionally part of a dioxolane ring. Examples of 4' -substituted nucleosides used to prepare compounds of the present invention can be found in Table 3, which is not intended to be limiting, and the scope of the nucleosides of the present invention can be found in the claims. The condensation can be carried out on the unprotected nucleoside (e.g., 13a-e; R. Devos et al. US 6,784,166 filed June 11, 2002; H. Ohrui et al. WO 2000069876 filed Nov. 11, 2000; E.-I. Kodama et al. Antimicrob. Agents Chemother. 2001 45(5): 1539- 1546) or, alternatively, the 3',4'- hydroxy groups of the nucleoside can be protected as an acetonide (13f; J. A Martin et al. US20040121980 filed Nov. 19, 2003) or other diol protecting group known in the art. Deprotection of a nucleoside after the condensation is carried out utilizing standard protocols for nucleic acid chemistry. General experimental procedures for the condensation are described in Examples 1 to 7.
SCHEME 2
Figure imgf000038_0001
13
Figure imgf000038_0002
B D
The requisite substituted phosphochloridate compounds 12 utilized to prepare compounds of the present invention are prepared by a two-step sequence comprising condensation of phosphorus oxychloride (10) with a suitably substituted phenol to afford an aryloxyphosphorodichloridates 11 (see Example 2) which are subsequently treated with a acid addition salt of an α- amino acid ester in the presence of TEA to afford an aryloxyphosphorochloridate 12 (for representative procedure see, e.g., D. Curley et al. Antiviral Res. 1990 14:345-356; C. McGuigan et al. Antiviral Res. 1992 17:311-321; McGuigan et al. Antiviral Chem. Chemother 1990 l(2):107-113). Representative aryloxy phosphorodichloridates and aryloxy phosphorochloridates are listed in Tables 1 and 2 respectively.
Figure imgf000038_0003
Figure imgf000039_0001
Figure imgf000039_0002
Figure imgf000040_0001
Figure imgf000040_0002
Condensation of aryloxy phosphorochloridate 12 with a nucleoside 13 wherein R is -N3, - C≡CH or -(Z)-CH=CHCl, R6 is optionally substituted uridine, cytidine, adenosine or
10 ,10 inosine, R a is hydrogen and one of R and R is hydroxyl and the other of R and R is hydrogen. When R8a is hydrogen and R9 is hydroxyl the resulting 3',4'-diol can form an acetal or ketal protecting group. Treating a nucleoside with an aryloxy phosphoramidate in the presence of strong base affords the phosphoramidate derivatives of the invention (for representative procedures see, e.g. K. S. Gudmundsson, Nucleosides, Nucleotides & Nucleic Acids 2003 22(10):1953-1961). When R8 and R9 are protected hydroxyl groups, a subsequent deprotection step is required which steps are know in the art.
Compounds of formula I exhibit tautomerism. Tautomeric compounds can exist as two or more interconvertable species. Prototropic tautomers result from the migration of a covalently bonded hydrogen atom between two atoms. Tautomers generally exist in equilibrium and attempts to isolate an individual tautomers usually produce a mixture whose chemical and physical properties are consistent with a mixture of compounds. The position of the equilibrium is dependent on chemical features within the molecule. For example, in many aliphatic aldehydes and ketones, such as acetaldehyde, the keto form predominates while; in phenols, the enol form predominates. Common prototropic tautomers include keto/enol (-C(=O)-CH- D -C(-OH)=CH-), amide/imidic acid (-C(=O)-NH- D -C(-OH)=N-) and amidine (-C(=NR)-NH- D -C(-NHR)=N-) tautomers. The latter two are particularly common in heteroaryl and heterocyclic rings and the present invention encompasses all tautomeric forms of the compounds.
The term "amino acid" as used herein refers to naturally occurring α amino carboxylic acids, as well as to optical isomers (enantiomers and diastereomers), synthetic analogs and derivatives thereof, α- Amino acids comprise a carbon atom bonded to a carboxyl group, an amino group, a hydrogen atom and a unique "side chain" group. The term "naturally occurring amino acids" means the L-isomers of the naturally occurring amino acids. The naturally occurring amino acids are glycine, alanine, valine, leucine, iso leu cine, serine, methionine, threonine, phenylalanine, tyrosine, tryptophan, cysteine, proline, histidine, aspartic acid, asparagine, glutamic acid, glutamine, γ-carboxyglutamic acid, arginine, ornithine and lysine. The side chains of naturally occurring amino acids include: hydrogen, methyl, /so-propyl, /so-butyl, sec-butyl, -CH2OH, -CH(OH)CH3, - CH2SH, -CH2CH2SMe, -(CH2)PCOR wherein R is -OH or -NH2 and p is 1 or 2, -(CH2),- NH2 where q is 3 or 4, -(CH2)3-NHC(=NH)NH2, -CH2C6H5, -CH2-/?-C6H4-OH, (3- indolinyl)methylene, (4-imidazolyl)methylene.
Compounds of the present invention may have asymmetric centers located on the side chain of a carboxylic ester, amide or carbonate moiety that produce diastereomers when linked to the nucleoside. All stereoisomers of a side chain of compounds of the instant invention are contemplated, either in admixture or in pure or substantially pure form. The definition of the compounds according to the invention embraces all both isolated optical isomers enantiomers and their mixtures including the racemic form. The pure optical isomer can be prepared by stereo specific synthesis from α-D-ribose or the racemic form can be resolved by physical methods, such as, for example, fractional crystallization, separation or crystallization of diastereomeric derivatives or separation by chiral column chromatography. The individual optical isomers can be obtained from the racemates by conventional methods, such as, for example, salt formation with an optically active acid followed by crystallization.
Examples of representative compounds encompassed by the present invention and within the scope of the invention are provided in Table I- IV. These examples and preparations which follow are provided to enable those skilled in the art to more clearly understand and to practice the present invention. They should not be considered as limiting the scope of the invention, but merely as being illustrative and representative thereof.
In general, the nomenclature used for the compounds in Table I- IV is based on AUTON OM™ v.4.0, a Beilstein Institute computerized system for the generation of IUPAC systematic nomenclature. If there is a discrepancy between a depicted structure and a name given that structure, the depicted structure is to be accorded more weight. In addition, if the stereochemistry of a structure or a portion of a structure is not indicated with, for example, bold or dashed lines, the structure or portion of the structure is to be interpreted as encompassing all stereoisomers of it.
Figure imgf000042_0001
Figure imgf000043_0001
Figure imgf000044_0001
Figure imgf000045_0001
Figure imgf000045_0002
Figure imgf000046_0001
Figure imgf000046_0002
The compounds of the present invention may be formulated in a wide variety of oral administration dosage forms and carriers. Oral administration can be in the form of tablets, coated tablets, dragees, hard and soft gelatine capsules, solutions, emulsions, syrups, or suspensions. Compounds of the present invention are efficacious when administered by other routes of administration including continuous (intravenous drip) topical parenteral, intramuscular, intravenous, subcutaneous, transdermal (which may include a penetration enhancement agent), buccal, nasal, inhalation and suppository administration, among other routes of administration. The preferred manner of administration is generally oral using a convenient daily dosing regimen which can be adjusted according to the degree of affliction and the patient's response to the active ingredient.
A compound or compounds of the present invention, as well as their pharmaceutically useable salts, together with one or more conventional excipients, carriers, or diluents, maybe placed into the form of pharmaceutical compositions and unit dosages. The pharmaceutical compositions and unit dosage forms may be comprised of conventional ingredients in conventional proportions, with or without additional active compounds or principles, and the unit dosage forms may contain any suitable effective amount of the active ingredient commensurate with the intended daily dosage range to be employed. The pharmaceutical compositions may be employed as solids, such as tablets or filled capsules, semisolids, powders, sustained release formulations, or liquids such as solutions, suspensions, emulsions, elixirs, or filled capsules for oral use; or in the form of suppositories for rectal or vaginal administration; or in the form of sterile injectable solutions for parenteral use. Atypical preparation will contain from about 5% to about 95% active compound or compounds (w/w). The term "preparation" or "dosage form" is intended to include both solid and liquid formulations of the active compound and one skilled in the art will appreciate that an active ingredient can exist in different preparations depending on the target organ or tissue and on the desired dose and pharmacokinetic parameters.
The term "excipient" as used herein refers to a compound that is useful in preparing a pharmaceutical composition, generally safe, non-toxic and neither biologically nor otherwise undesirable, and includes excipients that are acceptable for veterinary use as well as human pharmaceutical use. The term "excipient" as used herein includes both one and more than one such excipient.
A "pharmaceutically acceptable salt" form of an active ingredient may also initially confer a desirable pharmacokinetic property on the active ingredient which were absent in the non-salt form, and may even positively affect the pharmacodynamics of the active ingredient with respect to its therapeutic activity in the body. The phrase "pharmaceutically acceptable salt" of a compound means a salt that is pharmaceutically acceptable and that possesses the desired pharmacological activity of the parent compound. Such salts include: (1) acid addition salts, formed with inorganic acids such as hydrochloric acid, hydrobromic acid, sulfuric acid, nitric acid, phosphoric acid, and the like; or formed with organic acids such as acetic acid, propionic acid, hexanoic acid, cyclopentanepropionic acid, glycolic acid, pyruvic acid, lactic acid, malonic acid, succinic acid, malic acid, maleic acid, fumaric acid, tartaric acid, citric acid, benzoic acid, 3- (4- hydroxybenzoyl)benzoic acid, cinnamic acid, mandelic acid, methanesulfonic acid, ethanesulfonic acid, 1,2-ethane-disulfonic acid, 2-hydroxyethanesulfonic acid, benzenesulfonic acid, 4-hlorobenzenesulfonic acid, 2-naphthalenesulfonic acid, 4- toluenesulfonic acid, camphorsulfonic acid, 4-ethylbicyclo [2.2.2] -oct-2-ene- 1-carboxylic acid, glucoheptonic acid, 3-phenylpropionic acid, trimethylacetic acid, tertiary butylacetic acid, lauryl sulfuric acid, gluconic acid, glutamic acid, hydroxynaphthoic acid, salicylic acid, stearic acid, muconic acid, and the like; or (2) salts formed when an acidic proton present in the parent compound either is replaced by a metal ion, e.g., an alkali metal ion, an alkaline earth ion, or an aluminum ion; or coordinates with an organic base such as ethanolamine, diethanolamine, triethanolamine, tromethamine, N- methylglucamine, and the like. It should be understood that all references to pharmaceutically acceptable salts include solvent addition forms (solvates) or crystal forms (polymorphs) as defined herein, of the same acid addition salt.
Solid form preparations include powders, tablets, pills, capsules, cachets, suppositories, and dispersible granules. A solid carrier may be one or more substances which may also act as diluents, flavoring agents, solubilizers, lubricants, suspending agents, binders, preservatives, tablet disintegrating agents, or an encapsulating material. In powders, the carrier generally is a finely divided solid which is a mixture with the finely divided active component. In tablets, the active component generally is mixed with the carrier having the necessary binding capacity in suitable proportions and compacted in the shape and size desired. Suitable carriers include but are not limited to magnesium carbonate, magnesium stearate, talc, sugar, lactose, pectin, dextrin, starch, gelatin, tragacanth, methylcellulose, sodium carboxymethylcellulose, a low melting wax, cocoa butter, and the like. Solid form preparations may contain, in addition to the active component, colorants, flavors, stabilizers, buffers, artificial and natural sweeteners, dispersants, thickeners, solubilizing agents, and the like.
liquid formulations also are suitable for oral administration include liquid formulation including emulsions, syrups, elixirs, aqueous solutions, aqueous suspensions. These include solid form preparations which are intended to be converted to liquid form preparations shortly before use. Emulsions may be prepared in solutions, for example, in aqueous propylene glycol solutions or may contain emulsifying agents such as lecithin, sorbitan monooleate, or acacia. Aqueous solutions can be prepared by dissolving the active component in water and adding suitable colorants, flavors, stabilizing, and thickening agents. Aqueous suspensions can be prepared by dispersing the finely divided active component in water with viscous material, such as natural or synthetic gums, resins, methylcellulose, sodium carboxymethylcellulose, and other well known suspending agents.
The compounds of the present invention maybe formulated for parenteral administration (e.g., by injection, for example bolus injection or continuous infusion) and may be presented in unit dose form in ampoules, pre- filled syringes, small volume infusion or in multi-dose containers with an added preservative. The compositions may take such forms as suspensions, solutions, or emulsions in oily or aqueous vehicles, for example solutions in aqueous polyethylene glycol. Examples of oily or nonaqueous carriers, diluents, solvents or vehicles include propylene glycol, polyethylene glycol, vegetable oils (e.g., olive oil), and injectable organic esters (e.g., ethyl oleate), and may contain formulatory agents such as preserving, wetting, emulsifying or suspending, stabilizing and/or dispersing agents. Alternatively, the active ingredient may be in powder form, obtained by aseptic isolation of sterile solid or by lyophilisation from solution for constitution before use with a suitable vehicle, e.g., sterile, pyrogen-free water.
The compounds of the present invention may be formulated for topical administration to the epidermis as ointments, creams or lotions, or as a transdermal patch. Ointments and creams may, for example, be formulated with an aqueous or oily base with the addition of suitable thickening and/or gelling agents. Lotions may be formulated with an aqueous or oily base and will in general also containing one or more emulsifying agents, stabilizing agents, dispersing agents, suspending agents, thickening agents, or coloring agents. Formulations suitable for topical administration in the mouth include lozenges comprising active agents in a flavored base, usually sucrose and acacia or tragacanth; pastilles comprising the active ingredient in an inert base such as gelatin and glycerin or sucrose and acacia; and mouthwashes comprising the active ingredient in a suitable liquid carrier.
The compounds of the present invention maybe formulated for administration as suppositories. Alow melting wax, such as a mixture of fatty acid glycerides or cocoa butter is first melted and the active component is dispersed homogeneously, for example, by stirring. The molten homogeneous mixture is then poured into convenient sized molds, allowed to cool, and to solidify.
The compounds of the present invention maybe formulated for vaginal administration. Pessaries, tampons, creams, gels, pastes, foams or sprays containing in addition to the active ingredient such carriers as are known in the art to be appropriate.
The compounds of the present invention maybe formulated for nasal administration. The solutions or suspensions are applied directly to the nasal cavity by conventional means, for example, with a dropper, pipette or spray. The formulations may be provided in a single or multidose form. In the latter case of a dropper or pipette, this may be achieved by the patient administering an appropriate, predetermined volume of the solution or suspension. In the case of a spray, this may be achieved for example by means of a metering atomizing spray pump. The compounds of the present invention maybe formulated for aerosol administration, particularly to the respiratory tract and including intranasal administration. The compound will generally have a small particle size for example of the order of five (5) microns or less. Such a particle size may be obtained by means known in the art, for example by micronization. The active ingredient is provided in a pressurized pack with a suitable propellant such as a chlorofluorocarbon (CFC), for example, dichlorodifluoromethane, trichlorofluoromethane, or dichlorotetrafluoroethane, or carbon dioxide or other suitable gas. The aerosol may conveniently also contain a surfactant such as lecithin. The dose of drug may be controlled by a metered valve. Alternatively the active ingredients may be provided in a form of a dry powder, for example a powder mix of the compound in a suitable powder base such as lactose, starch, starch derivatives such as hydroxypropylmethyl cellulose and polyvinylpyrrolidine (PVP). The powder carrier will form a gel in the nasal cavity. The powder composition may be presented in unit dose form for example in capsules or cartridges of e.g., gelatin or blister packs from which the powder may be administered by means of an inhaler.
When desired, formulations can be prepared with enteric coatings adapted for sustained or controlled release administration of the active ingredient. For example, the compounds of the present invention can be formulated in transdermal or subcutaneous drug delivery devices. These delivery systems are advantageous when sustained release of the compound is necessary and when patient compliance with a treatment regimen is crucial. Compounds in transdermal delivery systems are frequently attached to an skin- adhesive solid support. The compound of interest can also be combined with a penetration enhancer, e.g., Azone (l-dodecylaza-cycloheptan-2-one). Sustained release delivery systems are inserted subcutaneously into to the subdermal layer by surgery or injection. The subdermal implants encapsulate the compound in a lipid soluble membrane, e.g., silicone rubber, or a biodegradable polymer, e.g., polyactic acid.
Suitable formulations along with pharmaceutical carriers, diluents and expcipients are described in Remington: The Sάence and Practice of Pharmacy 1995, edited by E. W. Martin, Mack Publishing Company, 19th edition, Easton, Pennsylvania. A skilled formulation scientist may modify the formulations within the teachings of the specification to provide numerous formulations for a particular route of administration without rendering the compositions of the present invention unstable or compromising their therapeutic activity.
The modification of the present compounds to render them more soluble in water or other vehicle, for example, may be easily accomplished by minor modifications (salt formulation, esterification, etc.), which are well within the ordinary skill in the art. It is also well within the ordinary skill of the art to modify the route of administration and dosage regimen of a particular compound in order to manage the pharmacokinetics of the present compounds for maximum beneficial effect in patients.
The term "therapeutically effective amount" as used herein means an amount required to reduce symptoms of the disease in an individual. The dose will be adjusted to the individual requirements in each particular case. That dosage can vary within wide limits depending upon numerous factors such as the severity of the disease to be treated, the age and general health condition of the patient, other medicaments with which the patient is being treated, the route and form of administration and the preferences and experience of the medical practitioner involved. For oral administration, a daily dosage of between about 0.01 and about 100 mg/kg body weight per day should be appropriate in monotherapy and/or in combination therapy. A preferred daily dosage is between about 0.1 and about 500 mg/kg body weight, more preferred 0.1 and about 100 mg/kg body weight and most preferred 1.0 and about 10 mg/kg body weight per day. Thus, for administration to a 70 kg person, the dosage range would be about 7 mg to 0.7 g per day. The daily dosage can be administered as a single dosage or in divided dosages, typically between 1 and 5 dosages per day. Generally, treatment is initiated with smaller dosages which are less than the optimum dose of the compound. Thereafter, the dosage is increased by small increments until the optimum effect for the individual patient is reached. One of ordinary skill in treating diseases described herein will be able, without undue experimentation and in reliance on personal knowledge, experience and the disclosures of this application, to ascertain a therapeutically effective amount of the compounds of the present invention for a given disease and patient.
In embodiments of the invention, the active compound or a salt can be administered in combination with another antiviral agent such as ribavirin, a nucleoside HCV polymerase inhibitor, another HCV non-nucleoside polymerase inhibitor or HCV protease inhibitor. When the active compound or its derivative or salt are administered in combination with another antiviral agent the activity may be increased over the parent compound. When the treatment is combination therapy, such administration may be concurrent or sequential with respect to that of the nucleoside derivatives. "Concurrent administration" as used herein thus includes administration of the agents at the same time or at different times. Administration of two or more agents at the same time can be achieved by a single formulation containing two or more active ingredients or by substantially simultaneous administration of two or more dosage forms with a single active agent. It will be understood that references herein to treatment extend to prophylaxis as well as to the treatment of existing conditions, and that the treatment of animals includes the treatment of humans as well as other animals. Furthermore, treatment of a HCV infection, as used herein, also includes treatment or prophylaxis of a disease or a condition associated with or mediated by HCV infection, or the clinical symptoms thereof.
The pharmaceutical preparations are preferably in unit dosage forms. In such form, the preparation is subdivided into unit doses containing appropriate quantities of the active component. The unit dosage form can be a packaged preparation, the package containing discrete quantities of preparation, such as packeted tablets, capsules, and powders in vials or ampoules. Also, the unit dosage form can be a capsule, tablet, cachet, or lozenge itself, or it can be the appropriate number of any of these in packaged form.
General Methodology
TLC was carried out on precoated, aluminium backed plates (60 F- 54, 0.2 mm thickness; supplied by E. Merck AG, Darmstad, Germany) developed by ascending method. After solvent evaporation, compounds were detected by irradiation with an UV lamp at 254 nm or 366 nm observation of quenching of the fluorescence. Chromatography columns were slurry packed in the appropriate eluent under pressure, with silica gel, 60A, 40-60 μm, Phase Sep, UK). Samples were applied as a concentrated solution in the same eluent, or pre-adsorbed on silica gel. 1H and 13C NMR spectra were recorded on a Bruker Advance DPX300 spectrometer (300MHz and 75 MHz respectively) and autocalibrated to the deuterated solvent reference peak. All 13C NMR were proton decoupled. The following abbreviations are used in the assignment of NMR signals: s (singlet), d (doublet), t (triplet), qu (quartet), q (quintet), m (multiplet), bs (broad signal), dd (double doublet), dt (double triplet). Low- resolution mass spectra were run on a VG Platform II Fisons instrument (atmospheric pressure ionization, electro spray mass spectrometry) in either negative or positive mode.
The solvents used were anhydrous and used as purchased from Aldrich. All glassware was oven dried at 130°C for several hours and allowed to cool under a stream of dry nitrogen.
Example 1
(A) General procedure for preparing amino acid benzyl ester hydrochloride salts The amino acid (1.0 mol eq.) was suspended in toluene (10 mol eq.), p-TsOH (1.1 mol eq.) and anhydrous benzyl alcohol (4.0 mol eq.) was added and the resulting mixture was heated at reflux with Dean-Stark trap for 6-24 h (the reaction was quenched when the appropriate amount of water was collected from the Dean-Stark trap). On cooling to RT, Et2O was added and the mixture was left in ice bath for Ih then filtered and washed with Et2O. The solid was dissolved in DCM and washed with 10% K2CO3 and water. The organic layer was dried (MgSO4), filtered and the solvent removed in vacuo. The resulting product was dissolved in acetone and the mixture was neutralized with 1 M HCl. The solvent was then evaporated and the solid was triturated with Et2O to afford the amino benzyl ester hydrochloride salt as a white solid.
(B) General Procedure for preparing amino acid ester hydrochloric salts
Thionyl chloride (2.0 mol. equivalents) was added dropwise to a stirred solution of the appropriate anhydrous alcohol (10.0 mol equivalents). Under argon atmosphere and cooled to 0° C. The mixture was stirred at 0° C for 1 h and then slowly allowed to warm to RT. The appropriate amino acid (1.0 mol. equivalents) was added and the mixture was heated at reflux overnight. The solvent was removed under reduced pressure (last traces of solvent were removed by co-evaporation with increasingly more volatile solvents). The crude product was then triturated with Et2O to afford the pure amino acid ester hydrochloric salt.
(C) General Procedure for preparing amino acid ester sulfonate salts
A mixture of the appropriate amino acid (1.0 mol. equivalent), the appropriate alcohol (15 mol. equivalent) and para- toluene sulfonic acid (p-TSA) monohydrate (1.1 mol equivalent) in toluene was heated at reflux overnight, using Dean-Stark apparatus. The solvent was removed under reduced pressure (last traces of solvent removed by co- evaporation with increasingly volatile solvents) to give the crude product as the solid p- toluene sulfonate salt.
Example 2
General procedure for preparation of phosphorodichloridates
POCl3 + ArOH *- R1OPC=O)Cl2
10 11: (R1 = optionally substituted aryl)
To a stirring solution of phosphorus oxychloride (1.0 mol. eq.) and the appropriate phenol (1.0 mol. eq.) in anhydrous ether cooled to -78° C was added dropwise anhydrous triethylamine (1.0 mol. eq.), and the resultant stirred mixture allowed to reach RT overnight. The triethylamine salt was quickly removed with suction filtration and the filtrate concentrated in vacuo to dryness to afford 11 as an oil which was used without further purification.
Example 3
General procedure for preparation of phosphorochloridates
Figure imgf000054_0001
14: X- = Cl- or Ts" 15 12
Aryloxy-phosphodichloridate (15, 1.0 mol. equivalents) and the appropriate amino ester (14, 1.0 mol. equivalents) were suspended in anhydrous DCM (123 mol. equivalent). The reaction was cooled to -78° C and anhydrous TEA was added dropwise and after 30 to 60 min the reaction was allowed to warm to RT and stirred overnight. The formation of the corresponding phosphochloridate was monitored by 31P NMR. The solvent was removed in vacuo and the crude residue was purified by filtration through silica eluting with EtOAc/hexane (7:3). The fractions containing the product were then collected and the solvent evaporated under reduced pressure to afford the phosphorochloridates 12. All phosphorochloridates were used as solutions in dry THF in subsequent reactions.
Example 4
General procedures for phosphoramidate derivatives
Figure imgf000054_0002
12: R1 = Ph I; Ri = optionally substituted aryl
Figure imgf000054_0003
H
The nucleoside 13 (wherein R5, R6, R8a, R9 and R10 are as defined in claim 1) was dried in under reduced pressure at 40° C for 5 h before being used as in the reaction, t- BuMgCl (2.5 mol equivalents) was added to a solution/suspension of the nucleoside analogue (1.0 mol equivalents) in anhydrous THF and the reaction mixture was stirred for 15 min. A solution of the appropriate phosphorochloridate (12, 2.5 mol equivalents) in dry THF (0.5 M) was added dropwise and the reaction mixture was stirred overnight. A saturated solution Of NH4Cl was added and the mixture was stirred for 30 min. The solvent was removed in vacuo and the crude was purified by column chromatography and/or preparative thin layer chromatography.
Example 5
General procedure for 5'-monophosphate species.
Phosphorus oxychloride (1.5 mol. equivalent) was added to a solution of the appropriate modified nucleoside (13, 1 mol equivalent) and DMAP (1.5 mol equivalent) in (EtO)3PO (0.5 mL) at 0° C. The solution was stirred for 30 min to 5 h, then NH4HCO3 was added to the solution. Triethyl phosphate was removed by extraction with Et2O and water. The aqueous layer was concentrated in vacuo under reduced pressure to afford a yellow solid.
Example 6
General procedure monobasic salts
The appropriate amino acid ester (7 mol equivalent) was added to a solution of the nucleoside 5'-monophosphate species (1 mol equivalent) and DCC (5 mol. equivalent) in tert-BuOH (5 mL) and H2O (2 mL) and the resulting mixture was stirred and heated at reflux for 4 h. The solvent was removed in vacuo to afford the desired salt which was purified as described.
Example 7
General procedure for deprotection of 2',3'-isopropylidene derivatives
The appropriate 4'-azido-2',3'-isopropylidenecytidine phosphoramidate was dissolved in a 60:40 HOAc/water mixture, and the solution heated to 90° C overnight. TLC analysis showed the presence of three spots, in order of increasing polarity: unconsumed starting material, product and baseline material. The solvents were removed in vacuo and the resultant crude mixture purified by preparative TLC (9:1 DCM/MeOH) to yield a white solid. The same procedure can be used with other ketals used as 1,2-diol protecting groups.
Example 8 (S)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy]-phenoxy-phosphorylamino}-3-phenyl- propionic acid ethyl ester (1-2)
Figure imgf000056_0001
11a 12u
Figure imgf000056_0002
13b 1-2
step 1
Phenyl-(ethoxy-L-phenylalaninyl)-phosphorochloridate (12u) was synthesized according to Example 3, using ethyl L-phenylalaninate hydrochloride salt (14u, X=Cl"; 1.5 g, 6.53 mmol), phenyl dichlorophosphate (Ha, 0.98 mL, 6.53 mmol), and TEA (1.8 mL, 13.06 mmol) in DCM (40 mL), to yield 1.70 g (72%) of 12u:
31P-NMR (CDCl3, 121 MHz): δ 9.21, 9.25 1H-NMR (CDCl3; 300 MHz): δ 7.44-7.16
(5H, m, OPh), 4.50-4. (IH, m, CH-Phe), 4.27-4.18 (3H, m, OCH2CH3 and NH), 3.22- 3.16 (CH2-Phe) 1.33-1.26 (3H, m, OCH2CH3); 13C-NMR (CDCl3; 75 MHz): δ 14.7, 14.9 (CH3CH2O), 40.5, 40.6, 40.7, 40.8 (CH2-Phe), 56.2, 56,7 (CH-Phe) 62.5, 62.5 (OCH2CH3), 121.1, 121.2, 121.3, 126.6, 127.9, 128.0, 129.2, 130.3, 130.5, 130.6, 135.7, 135.8 (C-Ph), 150.3, 150.4, 150.5 ('ipso', 0-Ph), 171.7, 171.8, 171.9, 172.0 (C=O).
step 2
The title compound was prepared as described in Example 4. 4'-azido-cytidine monohydrate (13b, 200 mg, 0.66 mmol) was dissolved in anhydrous pyridine (3 mL) and the solvent was evaporated. This procedure was repeated three times before using the nucleoside analogue as starting material. A solution of the nucleoside 13b and anhydrous THF (15 mL) was treated with ten- BuMgCl (1.65 mL of a IM solution in THF, 1.65 mmol) and phenyl-(ethoxy-L-phenylalaninyl)-phosphorochloridate (12u; 364 mg dissolved in 1 niL of THF; 2.46 mmol). The reaction was monitored by TLC and developed with CHCl3MeOH (8:2). The crude was purified by a gradient column chromatography and eluted with a CHCl3MeOH gradient (10 to 20% MeOH). The recovered product was chromatographed twice using the same conditions and further purified by preparative TLC developed with CHCl3MeOH (85:15) to afford pure 1-2 as a white solid (20.0 mg, yield 5%).
31P-NMR (CD3OD, 121 MHz): δ 4.24, 4.52; 1H-NMR (CD3OD, 300 MHz): δ 7.66, 7.46 (IH, d, J=7.5Hz H-6,), 7.45-7.14 (1OH, m, Ph), 6.27-6.20 (IH, m, H-I'), 5.98, 5.91 (IH, d, J=7.5Hz, H-5), 4.33-3.74 (7H, m, H-2', H-3', H-5', CH-Phe, OCH2CH3), 3.22- 2.93 (2H, m, CH2-Phe), 1.29-1.14 (3H, m, OCH2CH3); 13C-NMR (CD3OD; 75 MHz): δ 14.8, 14.8 (OCH2CH3), 41.1, 41.3, 41.4 (CH2-Phe), 58.2, 58.4 (CH-Phe), 62.8, 62.9 (OCH2CH3), 68.6, 68.7, 68.8 (C-5'), 73.7, 74.7, 74.9 (C-T, C-3'), 93.4, 93.8 (C-I'), 97.2 (C-5), 98.7, 98.9, 99.0 (C-4'), 121.4, 121.5, 121.7, 121.8, 126.6, 126.7, 128.4, 128.4, 130.0, 130.9, 131.2, 138.5 (C-Ph), 143.0, 143.3 (C-6), 152.2, 152.3 ('C-ipso' 0-Ph), 158.5 (C-2), 168.0 (C-4), 174.2, 174.3, 174.4 (C=O). MS (ES+) m/e 638.3 (MNa+). Accurate mass: C26H30N7O9NaP requires 638.1740; found 638.1734.
Example 9
(S)-2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-diriydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy]-phenoxy-phosphorylamino}-3-phenyl- propionic acid isopropyl ester (1-9)
step 1 - phenylalanine /io-propyl ester phosphororchloridate (12v)
The title compound was prepared as described in Example 3 utilizing phenyl dichlorophosphate (0.36 mL, 2.4 mmol), L-phenylalanine wo-propyl ester hydrochloride (14v, 1.003 g, 2.4 mmol), dry TEA (0.67 mL, 4.8 mmol) and dry DCM (20 mL). The phosphorochloridate 12v was obtained as a yellow oil (1.50 g, yield 91%).
31P NMR (CDCl3): δ9.48, 9.69.
step 2 - 4'-Azido-5'-[phenyl-(/s'ø-propoxy-L-phenylalaninyl)]-phosphate uridine (1-9)
The title compound was prepared as described in Example 4 utilizing 4'-azido- uridine (200 mg, 0.7 mmol), ten- BuMgCl (1.4 mL IM solution in TΗF, 1.4 mmol), 12v (0.53 g, 1.4 mmol) and dry TΗF (10 mL). The crude was purified by column chromatography eluting with CΗCl3/MeOΗ (90:10) followed preparative TLC chromatography developed with CHQ3/Me0H (85:15) which afforded 1-9 as a colorless oil that dried to form a white foam (0.012 g, yield 3%).
31P NMR (CD4OD) 54.22, 4.25; 1U NMR (CD4OD): δ6.7-7.1(10H, m, Ar-H), 6.28(1H, dd, Hl'), 5.68(1H, dd, H5), 4.23(1H, m, CO2CH(CH3)2), 3.91(1H, t, NH-CH-), 3.5-3.7(2H, m, H2', H3'), 2.99(CH2-Ph), 1.26-1.30(6H, m, CO2CH(CHa)2).
Example 10
(S)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy]-phenoxy-phosphorylamino }-3-phenyl- propionic acid isopropyl ester (1-18)
The title compound was prepared as described in Example 4 utilizing 4'-azido- cytidine (13b, 200 mg, 0.66 mmol), tert-BuMgCl (1.3 mL IM solution in TΗF, 1.3 mmol), 12v (0.505 g, 1.3 mmol) and dry TΗF (10 mL). The crude was purified by two column chromatographies eluting with CΗCl3/MeOΗ (90:10) followed three preparative TLC chromatographies developed with CHCl3/MeOH (85:15) which afforded 1-18 as a white solid (0.04 g, yield 35%) .
31P NMR (CD4OD): 54.27, 4.54; 1H NMR (CD4OD): 5H7.91( 1H, S, H6), 7.0- 7.37(16H, m, Ar-H) 6.15(1H, dd, Hl'), 5.87(1H, dd, H5), 4.19-4.31(2H, m, H2', H3'), 3.86(1H, t, NH-CH), 3.4-3.7 (2H, m, H2', H3'), 3.04 (2H, CH2Ph), 1.18-1.27 (6H, m, CO2CH(CHa)2).
Example 11
(S)-2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy]-phenoxy-phosphorylamino }-3-phenyl- propionic acid isopropyl ester (1-7)
The title compound was synthesized by the procedure in Example 4 utilizing 4'- azido-cytidine monohydrate (13a, 200.0 mg, 0.66 mmol) dissolved in anhydrous TΗF ( 10 mL), ten- BuMgCl (1.65 mL of solution IM in TΗF, 1.65 mmol) and 12w (1.65 mL of a 1.0 M solution in TΗF, 1.65 mmol). The crude was purified by two column chromatographies eluting a DCM/MeOΗ gradient (90:10 to 80:20). The product was further purified by a preparative TLC developed with DCM/MeOΗ (90:10) to afford 1-7 as a white solid ( 18 mg, yield 4% ) . 31P NMR (121.5 MHz, d4-Me0H): 54.45, 4.19; 1H NMR (300 MHz, d4-Me0H): 57.61-7.54 (IH, m, H-6), 7.06-7.03 (13H, m, Ph-CH) 7.06-7.03 (2Η, m, Ph-CH), 6.19- 6.12 (1Η, m, Η-l'), 5.91-5.81 (IH, m, H-5), 5.14-5.09 (2H, m, Bn-CH2), 4.65 (1Η, br, Η- T) 4.30-4.15 (3Η, m, H-3'and H-5'), 3.89-3.80 (IH, m, Phe-CH), 3.16-3.06 (IH, m, Bn- CH2), 3.02-2.84 (1Η, m, Bn-CH2),
Example 12
2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-2-methyl-propionic acid benzyl ester (1-3)
step 1 - Benzyl 2-amino-2-methylpropanoate hydrochloride salt ( 14p).
The title compound was prepared as described in Example 1 utilizing 2-amino- isobutyric acid (10.0 g, 0.097 mmol), /?-TsOΗ (20.3 g, 0.107 mmol), benzyl alcohol (40.0 mL, 0.388 mmol) and toluene (200 mL). The benzyl ester (14p) was isolated as a white solid (13.0 g, yield 59%).
1H-NMR (CDCl3; 300 MHz): 5 9.04 (3H, bs, NH3Cl), 7.42-7.38 (5H, m, Ph), 5.27
(2H, s, CH2Ph), 1.76 (6H, s, [CHa]2C); 13C-NMR (CDCl3; 75 MHz): 5 24.3 ([CH3J2C), 58.0 (C[CH3J2), 68.5 (CH2Ph), 128.6, 129.0, 129.1 (C-Ph), 135.2 ( 'ipso', C-Ph), 171.65 (C=O).
step 2 - Phenyl-(benzyloxy-2-amino-2-methylpropanoate)phosphorochloridate
The title compound was synthesized according to Example 3, using 2- aminoisobutyrate benzyl ester hydrochloride (14p, 2.00 g, 8.7 mmol), phenyl dichlorophosphate (1.3 mL, 8.7 mmol), TEA (2.4 mL, 17.4 mmol) in DCM (5O mL) to afford 2.64g (82%) of (12p) as an oil.
31P-NMR (CDCl3, 121 MHz): 5 6.76 (s); 1H-NMR (CDCl3; 300 MHz): 5 7.48-7.27 (1OH, m, Ph), 5.28 (2H, s, CH2Ph), 4.79, 4.75 (IH, bs, NH), 1.78, 1.75 (6H, s, [CH3]C); 13C-NMR (CDCl3; 75 MHz): 5 26.9, 26.9, 27.3, 27.3 ([CH3]C), 58.9, 58.9 (C[CH3] 2), 68.4 (CH2Ph), 121.0, 121.0, 126.3, 128.6, 129.0, 129.1, 130.3, 135.5 (C-Ph), 150.2, 150.3 ( 'ipso', OPh), 175.0, 175.1 (C=O).
step 3- 4'- azido-5'-[phenyl-(benzyloxy-α,α-dimethylglycinyl)] -phosphate cytidine (1-3) 4'-azido-cytidine monohydrate (13b, 300 mg, 1.00 mmol) was dissolved in anhydrous pyridine (4 mL) and the solvent was evaporated. This procedure was repeated for three times. The nucleoside 13a was dissolved in a mixture of anhydrous THF ( 10 mL) and anhydrous pyridine (4 mL). tert- BuMgCl (2.0 mL of solution IM in THF, 2.0 mmol) was added at 0° C followed by phenyl- (benzyloxy-α,α- dimethylglycinyl) - phosphorochloridate ( 12p ; 4 mL of a 0.5 M solution in THF, 2.00 mmol) . The reaction was monitored by TLC (CHCl3ZMeOH 8:2). The crude was purified by column chromatography eluting with a CHCl3MeOH gradient (15 to 20% MeOH). The recovered product rechromatographed utilizing the same conditions and subsequently purified by preparative TLC and developed with CHCl3/MeOH (85:15) to afford 1-3 as a white solid (13.4 mg, yield 2%).
31P-NMR (CD3OD, 121 MHz): δ 3.04, 3.07; 1H-NMR (CD3OD, 300 MHz): δ 7.64, 7.61 (IH, d, J=7.5Hz H-6,), 7.36-7.16 (1OH, m, Ph), 6.15-6.14 (IH, m, H-I'), 5.84, 5.83 (IH, d, J= 7.5Hz, H-5), 5.16-5.14 (2H, m, CH2-Ph), 4.34-4.13 (4H, m, H-2', H-3', H-5'), 1.51-1.30 (6H, m, [CH3]C); 13C-NMR (CD3OD; 75 MHz): δ 27.9, 28.1, 28.2, 28.3
([CH3]C), 58.6 ([CH3]C), 65.6, 68.7, 68.9, 69.1, 69.2 (C-5\ CH2-Ph), 73.7, 73.8, 74.7, 74.9 (C-2\ C-3'), 93.9, 94.1 (C-I'), 97.2 (C-5), 99.0, 99.1, 99.0 (C-4'), 121.8, 121.9, 122.0, 126.7, 128.4, 129.7, 130.0, 131.2, 137.7 (C-Ph), 143.3, 143.5 (C-6), 152.4, 152.5 ('C-ipso' O-Ph), 158.6 (C-2), 168.0 (C-4), 176.8, 176.8 (C=O). MS (ES+) m/e 638.3 (MNa+). Accurate mass: C26H30N7O9NaP requires 638.1740 found 638.1733.
Example 13
2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy]-phenoxy-phosphorylamino}-2-methyl- propionic acid benzyl ester (1-4)
The title compound was prepared according to Example 4 utilizing 4'-azido-uridine
(13a; 290 mg, 1.01 mmol) dissolved in anhydrous TΗF (13 mL), tøt-BuMgCl (1.5 mLof solution 1 M in TΗF, 1.5 mmol) and phenyl-(benzyloxy-α,α-dimethylglycinyl)- phosphorochloridate (12p, 3.0 mLof a O.5 M solution in TΗF, 1.5 mmol). The reaction was monitored by TLC developed with CΗCl3:MeOΗ (9:1). After one additional hour, ^t-BuMgCl (0.5 mL of solution IM in THF, 0.5 mmol) and 12p ( 1.0 mL of a 0.5 M solution in THF, 0.5 mmol) were added and the reaction was stirred overnight. The crude was purified by column chromatography and eluting with CHCl3MeOH (9:1). The recovered product was further purified by preparative TLC developed with CHCl3MeOH (9:1) to afford 1-4 as a white solid (132.3 mg, yield 21%). 31P-NMR (CD3OD, 121 MHz): δ 3.11, 3.14; 1H-NMR (CD3OD, 300 MHz): δ 7.66, 7.62 (IH, d, J= 8.1 Hz H-6,), 7.41-7.19 (1OH, m, Ph), 6.17-6.16 (IH, m, H-I'), 5.68, 5.66 (IH, d, J= 8.1, H-5), 5.18-5.17 (2H, m, CH2-Ph), 4.43-4.15 (4H, m, H-2', H-3', H-5'), 1.53-1.52 (6H, m, [CH3]C); 13C-NMR (CD3OD; 75 MHz): δ 27.9, 28.1, 28.2, 28.3 ([CH3]C), 58.7 ([CH3]C), 68.7, 69.1, 68.9, 69.2 (C-5\ CH2-Ph), 74.2 (C-T, C-3'), 92.5, 92.7 (C-I'), 99.0, 99.1, 99.2 (C-4'), 104.0 (C-5), 121.8, 121.9, 121.9, 122.0, 126.7, 129.7, 129.7, 130.0, 130.6, 131.2, 137.7 (C-Ph), 143.0, 143.1 (C-6), 152.3, 152.4, 152.6 (C-2, 'C- ipso' O-Ph), 166.0 (C-4), 176.8, 176.9 (C=O). MS (ES+) m/e 639.3 (MNa+). Accurate mass: C26H29N6O10NaP requires 639.1580 found 639.1581
Example 14
2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-2-methyl-propionic acid ethyl ester (1-10) and 2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido- 3,4-dihydroxy-tetrahydro-furan-2-ylmethoxy]-hydroxy-phosphorylamino}-2-methyl- propionic acid; compound with ammonia (1-69)
O NH4 +
Figure imgf000061_0001
step 1 - Ethyl 2-amino-2-methylpropanoate hydrochloride salt
The title compound was prepared according to Example l(A) utilizing 2-amino- isobutyric acid (8.0 g, 77.6 mmol), thionyl chloride (11.3 mL, 155.2 mmol) and anhydrous EtOH (45.5 mL, 776.0 mmol). The product 14n was isolated as a white solid (9.12 g, yield 70%).
1H-NMR (CDCl3; 300 MHz): δ 8.93 (3H, bs, NH3Cl), 4.25 (2H, q, J=7.1 Hz, OCH2CH3), 1.72 (6H, s, [CH3J2C), 1.30 (3H, t, J=7.1 Hz, OCH2CH3); 13C-NMR (CDCl3; 75 MHz): δ 14.4 (OCH2CH3), 24.3 ([CH3J2C), 57.8 (C[CH3J2), 63.0 (OCH2CH3), 171.5 (C=O).
step 2 - phenyl-(ethyl-2-amino-2-methylpropanoate)phosphorochloridate The title compound was synthesized by the procedure in Example 3 utilizing 14n (2.50 g, 10.9 mmol), phenyl dichlorophosphate (Ha, 1.6 mL, 10.9 mmol), and TEA(3.0 mL, 21.8 mmol) in DCM (60 mL) to afford 3.18g (80%) of pure 12n as an oil.
31P-NMR (CDCl3, 121 MHz): δ 6.84 (s); 1H-NMR (CDCl3; 300 MHz): δ 7.43-7.23 (5H, m, Ph), 4.78, 4.75 (IH, bs, NH), 4.27 (2H, q, J=7.1 Hz, OCH2CH3), 1.73, 1.70 (6H, s, [CH3]2C), 1.33 ( 3H, t, J=7.1 Hz, OCH2CH3); 13C-NMR (CDCl3; 75 MHz): δ 14.5, 14.6 (CH3CH2O), 26.9, 27.0, 27.3, 27.3 ([CH3J2C), 58.7, 58.8 (C[CH3J2), 62.8 (OCH2CH3), 121.0, 121.1, 126.3, 126.3, 130.3 (Ph), 150.2, 150.4 ('ipso', OPh), 175.1, 175.3 (C=O).
step 3 - azido-5'-[phenyl-(ethyloxy-α,α-dimethylglycinyl)]-phosphate cytidine
The title compound was synthesized by the procedure in Example 4 utilizing 4'- azido-cytidine monohydrate (13b, 1.00 g, 3.31 mmol) dissolved in a mixture of anhydrous THF (10 mL) and anhydrous pyridine (4 mL), tert-BuMgCl (8.3 mLof solution IM in THF, 8.3 mmol) and 12n (16.6 mLof a 0.5M solution in THF, 8.3 mmol). The reaction was monitored by TLC developed with CHCl3MeOH (8:2). The crude was purified by column chromatography eluting with a CHCl3MeOH gradient ( 15 to 20% MeOH). The recovered product rechromatographed using the same conditions and further purified by preparative TLC developed with CHCl3MeOH (85:15) to afford 1-10 as a white solid (136.4 mg, yield 7%).
31P-NMR (CD3OD, 121 MHz): δ 3.12, 3.15; 1H-NMR (CD3OD, 300 MHz): δ 7.68, 7.64 (IH, d, J=7.5Hz H-6,), 7.41-7.17 (5H, m, Ph), 6.17-6.16 (IH, m, H-I'), 5.88, 5.86 (IH, d, J=7.5Hz, H-5), 4.40-4.12 (6H, m, H-2', H-3', H-5', OCH2CH3), 1.49-1.47 (6H, m, [CH3]C), 1.26, 1.25 (3H, t, J=7.1 Hz, OCH2CH3); 13C-NMR (CD3OD; 75 MHz): δ 14.8 (OCH2CH3), 27.9, 28.1, 28.2 ([CH3]C), 58.6 ([CH3]C), 63.0 (OCH2CH3), 69.0 (C-5'), 73.8, 73.9, 74.8 (C-T, C-3'), 94.0, 94.2 (C-I'), 97.2 (C-5), 99.0, 99.1 (C-4'), 121.8, 121.9, 122.0, 126.7, 131.2 (C-Ph), 143.4, 143.6 (C-6), 152.4 ('C- ipso' 0-Ph), 158.6 (C-2), 168.0 (C-4), 177.1, 177.1 (C=O). MS (ES+) m/e 576.1 (MNa+). Accurate mass: C21H28N7O9NaP requires 576.1584 found 576.1587.
The phosphoramidate I- 10 (223.4 mg, 0.40 mmol) was dissolved in a mixture of TEA/H2O (4/1) (6 mL) and the reaction mixture was stirred at RT for 7 days. The solvent was removed in vacuo and the crude product was purified by a flash chromatography and eluted with a /-PrOH/NH3/H2O gradient (9:0.3:0.7 to 8:0.7:1.3) to afford 1-69 as a white solid (29.5 mg, yield 16%). 31P-NMR (D2O, 121 MHz): δ 6.14; 1H-NMR (D2O, 300 MHz): δ 7.80 (IH, d, J=7.6Hz H-6), 6.12 (IH, d, J=3.5Hz H-I'), 6.01 (IH, d, J=7.6Hz, H-5), 4.39-4.31 (2H, m, H-2', H-3'), 4.00-3.72 (2H, m, H-5'), 1.30 (6H, s, [CH3]C).
Example 15
2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy]-phenoxy-phosphorylamino}-2-methyl- propionic acid ethyl ester (1-6) and
2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-diriydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy]-hydroxy-phosphorylamino}-2-methyl- propionic acid; compound with ammonia (1-67)
O NH4 +
Figure imgf000063_0001
The title compound 1-6 was prepared according to Example 4 utilizing 4'-azido- uridine (13a; 400 mg, 1.40 mmol) dissolved in anhydrous THF (15 mL), tert-BuMgCl (2.8 mL of solution 1 M in THF, 1.5 mmol) and 12n (5.6 mL of a 0.5 M solution in THF, 2.8 mmol). The reaction was monitored by TLC developed with CHCl3MeOH (9:1). The crude was purified by column chromatography and eluted with CHCl3MeOH (9:1). The recovered product was further purified by preparative TLC and developed with CHCl3MeOH (9:1) to afford 1-6 as a white solid (203.5 mg, yield 26%).
31P-NMR (CD3OD, 121 MHz): δ 3.17, 3.20; 1H-NMR (CD3OD, 300 MHz): δ 7.68, 7.64 (IH, d, J=8.1Hz H-6,), 7.42-7.18 (5H, m, Ph), 6.16-6.14 (IH, m, H-I'), 5.69, 5.66 (IH, d, J=8.1Hz, H-5), 4.42-4.11 (6H, m, H-2', H-3', H-5', OCH2CH3), 1.49-1.48 (6H, m, [CH3]C), 1.26, 1.24 (3H, t, J=7.1 Hz, OCH2CH3); 13C-NMR (CD3OD; 75 MHz): δ 14.8 (OCH2CH3), 27.9, 28.1, 28.2 ([CH3]C), 58.6 ([CH3]C), 63.1 (OCH2CH3), 69.2 (C-5'), 74.1 (C-T, C-3'), 92.5 (C-I'), 99.2 (C-5), 103.9, 104.0 (C-4'), 121.9, 121.9, 122.0, 126.7, 131.2 (C-Ph), 143.0, 143.1 (C-6), 152.4, 152.6 (C-'ipso' O-Ph, C-2), 166.3 (C-4), 177.1 (C=O). MS (ES+) m/e 577.0 (MNa+). Accurate mass: C21H27N6O10NaP requires 577.1424 found 577.1431. The bis- ammonium salt 1-67 was prepared by hydrolysis of 1-6 (154.5 mg, 0.28 mmol) in a mixture of TEA/H2O (4/1, 7.5 mL) and the reaction mixture was stirred at RT for 4 days. The solvent was removed in vacuo and the crude was purified by a flash chromatography and eluted with iPrOH/NH3/H2O (8:0.7:1.3) to afford 1-67 as a white solid (55.2 mg, yield 41%).
31P-NMR (D2O, 121 MHz): δ 6.07; 1H-NMR (D2O, 300 MHz): δ 7.69 (IH, d, J=8.1Hz H-6), 5.93 (IH, d, J=3.9Hz H-I'), 5.71 (IH, d, J=8.1Hz, H-5), 4.28-4.22 (2H, m, H-2', H-3'), 3.82-3.68 (2H, m, H-5'), 1.15 (6H, s, [CH3]C); 13C-NMR (D2O; 75 MHz): δ 27.2 ([CH3]C), 57.4 ([CH3]C), 65.3 (C-5'), 71.4, 73.0 (C-T, C-3'), 90.6 (C-I'), 98.2, 98.4 (C-4'), 103.1 (C-4'), 142.2 (C-6), 151.0 (C-2), 166.4 (C-4), 184.7 (C=O). MS (ES") m/e 449.0 (M").
Example 16
2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-2-methyl-propionic acid isopropyl ester (1-15)
step 1 - /iϋ-propyl 2-amino-2-methylpropanoate hydrochloride salt (14o)
The title compound was synthesised according to Example l(A) utilizing 2-amino- isobutyric acid (8.0 g, 77.6 mmol), thionyl chloride (11.3 mL, 155.2 mmol) and anhydrous IPA (8.0g, 77.6 mmol). The ester 14o was isolated as a white solid (9.12 g, yield 70%). The crude product was triturated with Et2O, however, the solid retained traces of /-PrOH, the compound was dissolved in MeOH and the solvent removed under reduced pressure. The product was then triturated with Et2O and recovered as a white solid (10.23g, yield 72%).
1H-NMR (CDCl3; 300 MHz): δ 8.97 (3H, bs, NH3Cl), 5.13 (IH, sept, J=6.2Hz, CH- iPr), 1.75 (6H, s, [CHa]2C), 1.34 (6H, d, J=6.2 Hz, CH3-IPr); 13C-NMR (CDCl3; 75 MHz): δ 21.9, 24.2 ([CH3J2C, CH3-iPr), 57.8 (C[CH3J2), 71.1 (CH-iPr), 171.0 (C=O).
step 2 - Phenyl (ethyl-2-amino-2-methylpropanoate)phosphorochloridate (12o)
The title compound was synthesized by the procedure in Example 3 utilizing 14o (1.7g, 9.36 mmol), phenyl dichlorophosphate (Ha, 1.4 mL, 9.36 mmol), and TEA (2.60 mL, 18.72 mmol) in DCM (40 mL) to afford 1.58g (53%) of 12o as an oil. 31P-NMR (CDCl3, 121 MHz): δ 6.94 (s); 1H-NMR (CDCl3; 300 MHz): δ 7.45-7.23 (5H, m, Ph), 5.13 (IH, sept, J=6.2Hz, CH-iPr), 4.83, 4.79 (IH, bs, NH), 1.74, 1.71 (6H, s, [CH3J2C), 1.34, 1.33 (6H, d, J=6.2Hz, CH3-iPr); 13C-NMR (CDCl3; 75 MHz): δ 22.0 (CH3-iPr), 26.9, 27.3 ([CH3J2C), 58.7, 58.8 (C[CH3]2), 70.5 (CH-iPr), 115.8, 120.6, 121.0, 121, 126.3, 127.0, 129.9, 130.3, 130.3, 130.5 (C-Ph), 150.2, 150.3 ('ipso', OPh), 174.6, 174.8 (C=O).
step 3 - 4'-azido-5'-[phenyl-(/iϋ-propyloxy-α,α-dimethylglycinyl)] -phosphate cytidine (I-15)
The title compound was synthesized by the procedure in Example 4 utilizing 4'- azido-cytidine monohydrate (13b, 350.0 mg, 1.16 mmol) dissolved in anhydrous THF (15 mL), tert-BuMgCl (2.9 mL of solution IM in THF, 2.9 mmol) and 12o (5.8 mLof a 0.5M solution in THF, 2.9 mmol). The reaction was monitored by TLC (8:2 CHCl3MeOH). The crude was purified by column chromatography eluting with a CHCl3MeOH gradient (15 to 20% MeOH). The recovered product rechromatographed with same conditions and further purified by preparative TLC developed with CHCl3MeOH (85:15) to afford 1-15 as a white solid (89.24 mg, yield 13%).
31P-NMR (CD3OD, 121 MHz): δ 3.11, 3.16; 1H-NMR (CD3OD, 300 MHz): δ 7.67, 7.64 (IH, d, J=7.5Hz H-6,), 7.41-7.17 (5H, m, Ph), 6.17-6.16 (IH, m, H-I'), 5.88, 5.85 (IH, d, J=7.5Hz, H-5), 5.51-4.94 (IH, m, H-iPr), 4.41-4.20 (4H, m, H-2', H-3', H-5'), 1.48-1.47 (6H, s, [CH3]C), 1.25, 1.24 (6H, d, J=6.2Hz, CH3-iPr); 13C-NMR (CD3OD; 75 MHz): δ 22.3 (CH3-iPr), 27.8, 27.9, 28.1, 28.2 ([CH3]C), 58.6 ([CH3]C), 69.1 (C-5'), 70.8, 73.8, 73.8, 74.8 (C-T, C-3' CH-iPr), 94.0, 94.1 (C-I'), 97.3 (C-5), 99.1, 99.2 (C-4'), 121.9, 122.0, 122.0, 126.7, 131.2 (C-Ph), 143.4, 143.6 (C-6), 152.5 ('C-ipso' 0-Ph), 158.6 (C-2), 168.0 (C-4), 176.6 (C=O).
Example 17
2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy]-phenoxy-phosphorylamino}-2-methyl- propionic acid isopropyl ester (1-12)
The title compound was prepared according to Example 4 utilizing 4'-azido-uridine (13a, 212.4 mg, 0.75 mmol) dissolved in anhydrous TΗF (13 mL) ten- BuMgCl ( 1.5 mL of solution 1 M in TΗF, 1.5 mmol) and 12o (3.0 mL of a 0.5 M solution in TΗF, 1.5 mmol). The reaction was monitored by TLC developed with CHCl3MeOH (9:1). The crude was purified by column chromatography and eluted with CHCl3MeOH (9:1). The recovered product was further purified by preparative TLC developed with CHCl3MeOH (9:1) to afford 1-12 as a white solid (114.0 mg, yield 26%).
31P-NMR (CD3OD, 121 MHz): δ 3.18, 3.21; 1H-NMR (CD3OD, 300 MHz): δ 7.67, 7.63 (IH, d, J=8.1Hz H-6,), 7.41-7.19 (5H, m, Ph), 6.16-6.14 (IH, m, H-I'), 5.68, 5.65 (IH, d, J=8.1Hz, H-5), 5.02-4.97 (IH, m, H-iPr), 4.40-4.20 (4H, m, H-2', H-3', H-5'), 1.48-1.47 (6H, s, [CH3]C), 1.25, 1.24 (6H, d, J=6.2 Hz, CH3-iPr); 13C-NMR (CD3OD; 75 MHz): δ 22.3 (CH3-iPr), 27.8, 27.9, 28.1, 28.2, 28.2 ([CH3]C), 58.6 ([CH3]C), 69.2 (C-5'), 70.8, 74.2 (C-T, C-3', CH-iPr), 92.5, 92.8 (C-I'), 99.1, 99.1, 99.2, 99.2 (C-5), 104.0, 104.1 (C-4'), 121.9, 121.9, 122.0, 126.7, 131.3 (C-Ph), 143.0, 143.2 (C-6), 152.4, 152.5, 152.6 ('C-ipso' O-Ph, C-2), 166.3 (C-4), 176.6, 176.6 (C=O). MS (ES+) m/e 591.1 (MNa+). Accurate mass: C22H29N6O10NaP requires 591.1580 found 591.1589.
Example 18
2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy]-hydroxy-phosphorylamino}-2-methyl-propionate; triethylamine (1-22)
Figure imgf000066_0001
4'-azido-5'-[phenyl-(ethyl-α,α-dimethylglycinyl)]-phosphate cytidine (1-10, 90.0 mg, 0.16 mmol) was dissolved in 5 mL of TEA/H2O (4/1) and the reaction mixture was stirred at RT for 4 days. The solvent was removed in vacuo and the crude was purified by flash column chromatography and eluted with a CHCl3MeOH gradient (8:2 to 5:5) to afford 1-22 as a white solid (21.0 mg, yield 15%).
31P-NMR (D2O, 121 MHz): δ 6.11; 1H-NMR (D2O, 300 MHz) : δ 7.76 (IH, d, J=7.5Hz H-6), 6.05 (IH, d, J=3.5Hz H-I'), 5.95 (IH, d, J=7.5Hz, H-5), 4.32-4.24 (2H, m, H-2', H-3'), 4.32-4.24 (2H, m, H-5'), 3.05 (12H, q, J=7.3Hz, CH2-Et3NH+), 1.23 (6H, s, [CH3]C), 1.13 (18H, t, J=7.3Hz, CH3-Et3NH+).
4'-azido-5'-(ethyloxy-α,α-dimethylglycinyl)-phosphate cytidine (1-21) also was isolated from the chromatography as a byproduct. 31P-NMR (D2O, 121 MHz): δ 5.51; 1H-NMR (D2O, 300 MHz): δ 7.71 (IH, d, J=7.5Hz, H-6), 6.05 (IH, m, J=3.1Hz, H-I'), 5.97 (IH, d, J=7.5Hz, H-5), 4.35-4.29 (2H, m, H-2', H-3'), 4.04 (H-5', J=7.1Hz, OCH2CH3) 3.97-3.81 (2H, m, H-5'), 3.06 (6H, q, J=7.3Hz, CH2-Et3NH+), 1.30 (6H, s, [CH3]C), 1.18-1.13 (12H, m, CH3-Et3NH+, OCH2CH3) . MS (ES") m/e 476.3 (M") . Accurate mass: C15H23N7O9P requires 476.1295 found 476.1301.
Example 19
(S)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid sec-butyl ester (1-28)
step 1 - 2-butyloxy- L- alanine hydrochloride salt (14g)
The title compound was synthesised as described in Example l(A) utilizing L- alanine (8.0 g, 89.8 mmol), thionyl chloride (11.3 mL, 180. mmol), anhydrous 2-(R,S)- butanol (82 mL, 98 mmol) and toluene (200 mL). The 2-butyl ester (14g) was isolated as a yellow foam (13.92 g, yield 85%) which was used in the next step without additional purification.
1H-NMR (CDCl3; 300 MHz): δ 8.59 (3H, bs, NH3Cl), 4.89-4.83 (IH, m, CH-2- butyl), 4.17 (IH, bs, CH-AIa), 1.65 (3H, d, J=5.5Hz, CH3-AIa), 1.60-1.50 (2H, m, CH2-2- butyl), 1.19-1.16 (3H, m, CHs-2-butyl), 0.86-0.81 (3H, m, CH3-2-butyl); 13C-NMR (CDCl3; 75 MHz): δ 20.8 (CH3-AIa), 27.3 (CH3-2-butyl), 30.4, 30.5 (CH3-2-butyl), 39.8 (CH2-2-butyl), 60.6, 60.7 (CH-AIa), 86.1 (CH-2-butyl), 181.0 (C=O). MS (ES+) m/e 146 (MH+).
step 2 - phenyl (benzyloxy-L-alaninyl)-phosphorochloridate (12g)
The title compound was synthesized by the procedure in Example 3 utilizing 14g (2.0 g, 9.36 11.0 mmol), phenyl dichlorophosphate (Ha, 1.6 mL, 11.0 mmol), and TEA (3.1 mL, 22.0 mmol) in DCM (40 mL) to afford 2.33 g (66%) of 12g as an oil.
31P-NMR (CDCl3, 121 MHz): δ 9.00, 9.35; 1H-NMR (CDCl3; 300 MHz): δ 7.45-7.22 (5H, m, Ph), 5.02-4.94 (IH, m, CH-2-butyl), 4.46, 4.36 (IH, bs, NH), 4.27-4.13 (CH- AIa), 1.73-1.48 (5H, m, CH2-2-butyl, CH3-AIa), 1.39-1.27 (3H, m, CH3-2-butyl), 0.99- 0.94 (3H, m, CH3-2-butyl); 13C-NMR (CDCl3; 75 MHz): δ 10.0 (CH3-AIa), 19.7, 19.8 (CH3-2-butyl), 21.1 (CH3-2-butyl), 29.1 (CH2-2-butyl), 51.0, 51.3 (CH-AIa), 74.8, 74.9 (CH-2-butyl), 120.9, 121.0, 126.4, 130.1, 130.4 (C-Ph), 150.1, 150.2 ( 'ipso', OPh), 172.6 (C=O).
step 3 - 4'-azido-5'-[phenyl-(2-butyloxy-L-alaninyl)]-phosphate cytidine (1-28)
The title compound was synthesized by the procedure in Example 4 utilizing 4'- azido-cytidine monohydrate (13b, 400.0 mg, 1.32 mmol) dissolved in anhydrous THF (15 mL), tert- BuMgCl (3.3 mL of solution IM in THF, 2.9 mmol) and 12g (6.6 mL of a 0.5M solution in THF, 3.3 mmol). The reaction was monitored by TLC developed with CHCl3MeOH (8:2). The crude was purified by column chromatography and eluted with CHCl3MeOH (85:15). The recovered product was further purified by preparative TLC developed with CHCl3MeOH (85:15) to afford 1-28 as a white solid (23.1 mg, yield 3%).
31P-NMR (CD3OD, 121 MHz): δ 4.77, 4.61; 1H-NMR (CD3OD, 300 MHz): δ 7.68, 7.64 (IH, d, J=7.5Hz, H-6), 7.41-7.19 (5H, m, Ph), 6.20-6.16 (IH, d, J=4.7Hz, H-I'), 5.92, 5.87 (IH, d, J=7.5Hz, H-5), 4.86-4.79 (IH, m, CH-2-butyl), 4.62-4.15 (4H, m, H-2', H-3', H-5'), 4.01-3.90 (CH-AIa), 1.66-1.53 (5H, m, CH2-2-bl), 1.38-1.30 (CH3-AIa), 1.23- 1.19 (3H, m, CH3-2-butyl), 0.91, 0.90 (3H, t, J=7.5Hz, CH3-2-butyl). MS (ES+) m/e 590.1 (MNa+). Accurate mass: C22H30N7O9NaP requires 590.1740 found 590.1754.
Example 20
(S)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid isopropyl ester (1-35)
step 1- 4'-Azido-2',3'-isopropylidenecytidine-5'-O-[phenyl-(isopropoxy-L- alaninyl)] -phosphate (IV- 2) The title compound was prepared according to Example 4 utilizing 4'-azido-2',3'-isopropylidenecytidine (13f, 500 mg, 1.54 mmol), 1BuMgCl (3.85 mL, 1 M solution in TΗF, 3.85 mmol) and phenyl-(isopropoxy-L-alaninyl)- phosphorochloridate (12e, 3.85 mmol, 3.85 mL, 1 M solution in TΗF) in dry TΗF (10 mL). The crude was purified by column chromatography eluting with a MeOΗ/DCM gradient ( 10 to 20% MeOH) . The product was further purified by preparative TLC developed with MeOΗ/DCM (10:90) which afforded IV-2 as a white solid (300 mg, 30 %).
31P NMR (121.5 MHz, d4-MeOH): δ4.37, 4.25; 1U NMR (300 MHz, d4-MeOH): δ7.65 (IH, dd, J= 7.8, 4.5 Hz, H-6), 7.36 (2H, m, Ph-CH), 7.28 (3Η, m, Ph-CH), 5.89 (2Η, m, H-I' and H-5), 5.18 (IH, dd, J= 1.7, 6.4 Hz, H-2'), 5.09 (IH, m, H-3'), 4.35 (IH, m, 1Pr-CH), 4.19-4.10 (2H, m, H-5'), 4.00 (IH, m, AIa-CH), 1.65 (3H, s, CH3), 1.38 (6H, s, AIa-CH3 and CH3), 1.23 (6 H, m, 1Pr-CH3); 13C NMR (75.5 MHz, d4-Me0H): 5175.46, 175.40, 175.33, 175.25 (C=O), 168.47 (C-4), 158.06, 158.02 (C-2), 152.07, 152.48, 152.42, 152.38 (Ph-C), 146.17, 145.75 (C-6), 131.22 (Ar-C), 126.7 (Ar-C), 121.96, 121.91, 121.90, 121.84 ((Ar-C), 116.97, 116.92 (C(CH3)2), 100.99, 100.85 (C-5), 97.01, 96.61 (C-4'), 86.03, 85.95 (C-2'), 84.73, 84.75 (C-3'), 70.27, 70.21 (C-5'), 62.87 (/-Pr-CH), 26.57, 26.50 (CH3), 25.65, 25.62 (CH3), 21.02, 20.94, 20.86, 20.77 (AIa-CH3), 14.93 (/-Pr-(CH3)2).
step 2 -
The title compound was prepared according to Example 7 utilizing 4'-azido-2',3'- isopropylidenecytidine-5'-[phenyl-(isopropoxy-L-alaninyl)]-phosphate (IV-2, 76 mg, 0.128 mmol) dissolved in a 60/40 HOAc/water mixture, and heated to 900C. Removal of the solvents in vacuo and purification by preparative TLC purification developed with DCM/MeOH (9:1) afforded 1-35 as a white solid (21 mg, 30 %).
31P NMR (121.5 MHz, d4-MeOH): 53.25, 3.06; 1H NMR (300 MHz, d4-MeOH): 57.67-7.59 (IH, m, H-6), 7.39-7.33 (2H, m, Ph-CH), 7.27-7.17 (3Η, m, Ph-CH), 6.19- 6.13 (1Η, dd, J= 3.7 and 13.5 Hz, H-I'), 5.89-5.83 (IH, m, H-5), 4.97 (IH, m, H-2'), 4.35 (IH, m, H-3'), 4.29-4.16 (3H, m, /-Pr-CH and Η-5'), 3.90 (IH, m, AIa-CH), 1.38-1.32 (3H, m, AIa-CH3), 1.29-1.23 (6H, m, /-Pr-CH3).
Example 21
(R)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid ethyl ester (1-43)
4-Amino-l-(6-azido-6-hydroxymethyl-2,2-dimethyl-tetrahydro-furo[3,4-d] [l,3]dioxol-4-yl)-lΗ-pyrimidin-2-one (13f) was prepared from 4'azido-cytidine by standard methodology (see, e.g. T. W. Greene and P. G. M. Wuts; Protecting Groups in Organic Synthesis, 3rd Ed., J. T. Wiley & Sons: New York, NY, 1999, pp. 207-215) . 2- {[6- (4-Amino-2-oxo-2H-pyrimidin-l-yl)-4-azido-2,2-dimethyl-tetrahydro-furo[3,4- d] [ 1,3] dioxol-4-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid ethyl ester was prepared by condensing 13f and 12h as described in Example 4.
The title compound was prepared according to Example 7 by dissolving 2-{[6-(4- amino-2-oxo-2H-pyrimidin-l-yl)-4-azido-2,2-dimethyl-tetrahydro-furo[3,4- d] [ 1,3] dioxol-4-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid ethyl ester (40 mg, 0.07 mmol) in a 60/40 HOAc/water mixture and heating to 900C. Removal of the solvents in vacuo and purification by preparative TLC purification developed with DCM/MeOH (9:1) afforded 1-43 as a white solid (12 mg, 32 %).
31P NMR (121.5 MHz, d4-Me0H): 54.86, 4.33; 1H NMR (300 MHz, d4-Me0H): §1.69-1.62 (IH, m, H-6), 7.41-7.35 (2H, m, Ph-CH), 7.29-7.19 (3Η, m, Ph-CH), 6.21- 6.15 (m, 1Η, Η-l'), 5.92-5.86 (m, IH, H-5), 4.47-4.06 (6H, m, H-2', H-3', H-5' and CH2CH3), 3.99-3.86 (m, IH, AIa-CH), 1.38-1.28 (m, 3H, AIa-CH3), 1.26-1.23 (m, 3H,
CH2CH3).
Example 22
(S)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid benzyl ester (1-20)
The title compound was synthesized by the procedure in Example 4 utilizing 4'- azido-cytidine monohydrate (13b, 500.0 mg, 1.643 mmol) dissolved in anhydrous TΗF (13 mL), tert- BuMgCl (4.11 mL of solution IM in TΗF, 4.11 mmol) and 12an (4.11 mL of a 1.0 M solution in TΗF, 4.11 mmol). The crude was purified by two column chromatographies eluting a DCM/MeOΗ gradient (10 to 20% MeOH). The product was further purified by a preparative TLC developed with DCM/MeOΗ (90:10) to afford 1-20 as a white solid (49 mg, yield 5%).
31P NMR (121.5 MHz, d4-MeOH): 54.70, 4.49; 1H NMR (300 MHz, d4-MeOH): 57.65-7.58 (IH, m, H-6), 7.36-7.34 (7H, m, Ph-CH), 7.26-7.19 (3Η, m, Ph-CH), 6.20- 6.13 (1Η, dd, J= 4.7 and 14.3 Hz, H-I'), 5.92-5.85 (IH, m, H-5), 5.20 (2H, s, Ph-CH2), 4.37-4.29 (2Η, m, H-2' and H-3'), 4.23-4.11 (2H, m, H-5'), 4.01 (IH, m, AIa-CH), 1.41- 1.25 (3H, m, AIa-CH3). 13C NMR (75.5 MHz, d4-MeOH): 5174.94, 174.88, 174.62, 174.56 (C=O), 167.62 (C-4), 158.34 (C-2), 152.05, 151.97 (Ph-C), 143.12, 142.93 (C-6), 137.41, 137.25 (Ar-C), 130.96, 130.17, 130.31, 130.171 (Ar-C), 129.66, 129.59, 129.41, 129.36, 129.29 (Ar-C), 126.44 (Ar-C), 124.34 (Ar-C), 123.92 (Ar-C) 121.66, 121.60, 121.47, 121.41 (Ar-C), 121.28, 121.22 (Ar-C), 98.83, 98.72, 98.60 (C-5), 97.04 (C-4'), 93.87, 93.42 (C-I'), 74.57, 74.37 (C-3'), 73.50 (C-2'), 68.82, 68.75 (Bn-CH2), 68.12, 67.74 (AIa-CH), 20.52, 20.43, 20.30, 20.20 (AIa-CH3).
Example 23
(S)-2-{[(3aS,4R,6R,6aR)-6-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-4-azido-2,2- dimethyl-tetrahydro-furo[3,4-ύf] [1,3] dioxol-4-ylmethoxy] -phenoxy-phosphorylamino }- propionic acid benzyl ester (IV-I) The title compound was synthesized by the procedure in Example 4 utilizing 4'- azido-2',3'-isopropylidenecytidine (13f, 200 mg, 0.62 mmol) dissolved in anhydrous THF (10 mL), tert-BuMgCl (1.54 mL of solution IM in THF, 1.54 mmol) and 12an (1.54 mL of a 1.0 M solution in THF, 1.54 mmol). The crude was purified by column chromatography eluting a DCM/MeOH gradient (90:10 to 80:20). The product was further purified by a preparative TLC developed with DCM/MeOH (90:10) to afford IV-I as a white solid (170 mg, yield 67%).
31P NMR (121.5 MHz, d4-MeOH): 54.31, 4.19; 1U NMR (300 MHz, d4-MeOH): 57.65-7.60 (IH, m, H-6), 7.32-7.21 (7H, m, Ph-CH), 7.32-7.21 (3Η, m, Ph-CH), 5.88 (2Η, m, H-I' and H-5), 5.15 (2H, m, H-2' and Bn-CH2), 5.05 (2Η, m, H-3' and Bn-CH2), 4.29 (2Η, m, H-5'), 4.06 (IH, m, AIa-CH), 1.66 (3H, s, CH3), 1.38 (6H, m, CH3 and AIa- CH3).
Example 24
(S)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid tert-butyl ester (1-29)
step 1 - Phenyl- (t-butyloxy- L- alaninyl)-phosphorochloridate (12f)
The title compound was synthesized by the procedure in Example 3 utilizing tert- butyloxy- L- alanine hydrochloride (14f, 1.30g, 7.16 mmol), phenyl dichlorophosphate (Ha, 1.1 mL, 7.16 mmol), and TEA (2.O mL, 14.32 mmol) in DCM (40 mL) to afford 1.48 g (66%) of l2f as an oil.
31P-NMR (CDCl3, 121 MHz): 5 9.17, 9.54; 1H-NMR (CDCl3; 300 MHz): 57.52-7.26 (5H, m, Ph), 4.53, 4.41 (IH, bs, NH), 4.18-4.05 (IH, m, CH-AIa), 1.55, 1.54 (3H, s, CH3- r-butyl); 13C-NMR (CDCl3; 75 MHz): 520.9, 21.0 (CH3-AIa), 28.3 (CH3- r-butyl), 51.3, 51.7 (CH-AIa), 83.0, 83.1 (C[CH3]3), 120.9, 121.0, 126.3, 130.3, 130.7 (C-Ph), 150.1, 150.2, 150.2, 150.3 ('ipso', OPh), 172.1, 172.2, 172.3 (C=O).
step 2 - 4'-azido-5'-[phenyl-(?-butyloxy-L-alaninyl)]-phosphate cytidine (1-29)
The title compound was synthesized by the procedure in Example 4 utilizing 4'- azido-cytidine monohydrate (13b, 350.0 mg, 1.15 mmol) dissolved in anhydrous THF (13 mL), ten- BuMgCl (2.9 mL of solution IM in THF, 2.9 mmol) and 12f (5.8 mLof a 0.5M solution in THF, 2.9 mmol). The reaction was monitored by TLC (8:2 CHCl3MeOH). The crude was purified by column chromatography eluting with a CHCl3MeOH (85:15). The recovered product was further purified by preparative TLC (85:15 CHCl3MeOH) to afford 1-29 as a white solid (18.6 mg, yield 3%).
31P-NMR (CD3OD, 121 MHz): δ 3.15, 3.25; 1H-NMR (CD3OD, 300 MHz): δ 7.64, 7.61 (IH, d, J=7.5Hz, H-6), 7.39-7.17 (5H, m, Ph), 6.17, 6.13 (IH, d, J=4.8Hz, H-I'), 5.88, 5.86 (IH, d, J=7.5Hz, H-5), 4.36-4.11 (4H, m, H-2', H-3', H-5'), 3.89-3.78 (IH, m, CH-AIa), 1.43 (3H, s, CH3-r-butyl), 1.32-1.28 (3H, m, CH3-AIa). MS (ES+) m/e 590.0 (MNa+). Accurate mass: C22H30N7O9NaP requires 590.1740 found 590.1751.
Example 25
{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-diriydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }- acetic acid benzyl ester (1-33)
step 1 - phenyl (benzyloxy-glyciny^-phosphorochloridate (12a)
The title compound was synthesized by the procedure in Example 3 utilizing benzyl glycinate hydrochloride (14a, 2.00 g, 9.91 mmol), phenyl dichlorophosphate (Ha, 1.5 mL, 9.91 mmol), and TEA (2.8 mL, 19.8 mmol) in DCM (50 mL) to afford 2.42 g (72%) of 12a as an oil.
31P-NMR (CDCl3, 121 MHz): δ 9.95; 1H-NMR (CDCl3; 300 MHz): δ 7.50-7.24 (5H, m, Ph), 5.29 (2H, s, OCH2-Ph), 4.40, 4.33 (IH, bs, NH), 4.04-3.97 (2H, m, CH2-GIy); 13C-NMR (CDCl3; 75 MHz): δ 43.6 (CH2-GIy), 68.2 (CH2-Ph), 120.9, 121.0, 121.1, 126.5, 126.5, 129.0, 129.1, 129.2, 130.4, 135.2 (C-Ph), 150.1, 150.2 ( 'ipso', OPh), 169.7, 169.8 (C=O).
step 2 - 4'- azido-5'- [phenyl (benzyloxy-glycinyl)] -phosphate uridine (1-33)
The title compound was synthesized by the procedure in Example 4 utilizing 4'- azido-uridine (13a 300.0 mg, 1.05 mmol) dissolved in anhydrous THF (13 mL), tert- BuMgCl (2.1 mL of solution IM in THF, 2.10 mmol) and 12a (4.2 mL of a 0.5M solution in THF, 2.10 mmol). The reaction was monitored by TLC (9:1 CHCl3MeOH). The crude was purified by column chromatography eluting with a CHCl3MeOH (9:1). The recovered product was further purified by preparative TLC (9:1 CHCl3Me OH) to afford 1-33 as a white solid (78.2 mg, yield 13%).
31P-NMR (CD3OD, 121 MHz) : δ 4.23, 4.44; 1H-NMR (CD3OD, 300 MHz) : δ 7.63,
7.61 (IH, d, J=8.1Hz, H-6,), 7.37-7.15 (1OH, m, Ph), 6.14-6.12 (IH, m, H-I'), 5.68, 5.63 (IH, d, J=8.1Hz, H-5), 5.16 (2H, s, OCH2-Ph), 4.37-4.16 (4H, m, H-2', H-3', H-5'), 3.83- 3.78 (2H, m, CH2-GIy). MS (ES+) m/e 611.0 (MNa+). Accurate mass: C24H25N6Oi0NaP requires 611.1267 found 611.1254.
Example 26
({[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-diriydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy]-phenoxy-phosphoryl}-methyl-amino)-acetic acid ethyl ester (1-61)
The title compound was prepared as described in Example 4 utilizing 4'-azido- uridine (13a, 200 mg, 0.7 mmol), tøt-BuMgCl (1.8 mL IM solution in TΗF, 1.8 mmol), 12b (0.51 g, 1.75 mmol) and dry TΗF (10 mL). The crude was purified by two column chromatographies eluting with CΗQ3/Me0Η (90:10) followed by two preparative TLC chromatographies developed with CHQ3/Me0H (90:10) which afforded 1-61 as a white solid (0.02 g, yield 5.4%).
31P NMR (CD4OD): 54.39, 4.64; 1U NMR (CD4OD): δ7.99(lH, d, H6), 6.98- 7.21(5H, m, Ar-H), 6.21(1H, dd, Hl'), 5.83(1H, dd, H5), 4.31-4.42(2H, m, H2', H3'), 4.21(2H, s, CH2-CO2Et), 4.11(2H, q, 0-CH2-CH3), 2.8(3H, bs, N-CH3), 1.46(3H, t, O- CH2-CH3).
Example 27
(S)-2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid tert-butyl ester (1-50)
The title compound was synthesized by the procedure in Example 4 utilizing 4'- azido-uridine (13a, 200.0 mg, 0.70 mmol) dissolved in anhydrous TΗF (10 mL), tert- BuMgCl ( 1.4 mL of solution IM in TΗF, 1.40 mmol) and 12f (2.8 mL of a 0.5M solution in TΗF, 1.40 mmol). The reaction was monitored by TLC (9:1 CΗCl3:MeOΗ). The crude was purified by column chromatography eluting with a CHCl3MeOH (9:1). The recovered product was further purified by preparative TLC and eluted with CHCl3MeOH (9:1) to afford 1-50 as a white solid (45.2 mg, yield 11%).
31P-NMR (CD3OD, 121 MHz) : δ 4.99, 4.73; 1H-NMR (CD3OD, 300 MHz) : δ 7.67, 7.64 (IH, d, J=8.1Hz, H-6,), 7.37-7.15 (5H, m, Ph), 6.20-6.15 (IH, m, H-I'), 5.75, 5.68 (IH, d, J=8.1Hz, H-5), 4.24-4.14 (4H, m, H-2', H-3', H-5'), 3.91-3.84 (IH, m, CH-AIa), 1.48 (3H, s, CH3-r-butyl), 1.46-1.32 (3H, m, CH3-AIa). 13C-NMR (CD3OD; 75 MHz): δ 21.1, 21.2 (CH3-AIa), 28.6 (C[CH3]3) 52.5, 52.7 (CH-AIa), 69.2, 69.3 (C-5'), 74.0, 74.2 (C-T, C-3'), 83.1, 83.2 (C[CH3]3), 92.3, 92.8 (C-I'), 99.0, 99.1 (C-5), 104.0, 104.1 (C-4'), 121.7, 121.8, 126.8, 131.3, (C-Ph), 142.9, 143.0 (C-6), 152.4, 152.6 ('C-ipso' O-Ph, C-2), 166.2 (C-4), 174.4, 174.3 (C=O).
Example 28
(S)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid ethyl ester (1-34)
The title compound was synthesized by the procedure in Example 7. 4'-Azido- 2',3'-isopropylidenecytidine-5'-[phenyl-(ethoxy-L-alaninyl)]-phosphate (IV-3, 95 mg, 0.159 mmol) was dissolved in a 60/40 ΗOAc/water (5 mL), and heated to 900C. After removal of the solvents in vacuo the crude product was purified by preparative TLC purification (9:1 DCM/MeOΗ) which afforded 1-34 as a white solid (40 mg, 45 %).
31P NMR (121.5 MHz, d4-MeOH): 54.75, 4.60; 1U NMR (300 MHz, d4-MeOH): 57.69-7.62 (IH, m, H-6), 7.41-7.35 (2H, m, Ph-CH), 7.29-7.19 (3Η, m, Ph-CH), 6.21- 6.15 (1Η, m, Η-l'), 5.92-5.86 (IH, m, H-5), 4.63-4.11 (6H, m, H'-2, H-3', H-5' and CH2CH3), 3.96 (m, IH, AIa-CH), 1.38-1.28 (m, 3H, AIa-CH3), 1.26-1.23 (m, 3H, CH2CH3); 13C NMR (75.5 MHz, d4-MeOH): 5175.56, 175.51, 175.29, 175.23 (C=O), 168.07 (C-4), 152.38, 152.30 (Ar-C), 143.52, 143.35 (C-6), 131.30 (Ar-C), 126.81 (Ar-C), 121.81, 121.74 (Ar-C), 99.13, 99.00, 98.89 (C-5), 97.34 (C-4'), 94.26, 93.87 (C-I'), 74.87, 74.70 (C-3'), 73.85 (C-2'), 69.22, 69.08, 69.02 (C-5'), 62.93 (CH2CH3), 52.15, 51.98 (AIa- CH, q).
Example 29
(S)-2-{[(2R,3S,4R,5R)-5-(2,4-Dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-2-ethynyl- 3,4-dihydroxy-tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid tert-butyl ester (1-42)
The title compound was synthesized by the procedure in Example 4 utilizing 4'- ethynyl-uridine (13c 150.0 mg, 0.56 mmol) dissolved in anhydrous TΗF (10 mL), tert- BuMgCl (1.1 mL of solution IM in TΗF, 1.10 mmol) and 12f (2.2 mL of a 0.5M solution in TΗF, 1.12 mmol). The reaction was monitored by TLC (9:1 CΗCl3:MeOΗ). The crude was purified by column chromatography eluting with a CHCl3MeOH (9:1). The recovered product was further purified twice by preparative thin layer chromatography. The first plate was developed with a CHCl3MeOH (9:1) and the second plate with a CHCl3MeOH (95:5) to afford 1-42 as a white solid (43.9 mg, yield 14%).
31P-NMR (CD3OD, 121 MHz) : δ 4.73, 4.58; 1H-NMR (CD3OD, 300 MHz) : δ 7.63, 7.60 (IH, d, J=8.1Hz, H-6,), 7.40-7.21 (5H, m, Ph), 6.03-6.00 (IH, m, H-I'), 5.69, 5.65 (IH, d, J=8.1Hz, H-5), 4.34-4.20 (4H, m, H-2', H-3', H-5'), 3.89-3.83 (IH, m, CH-AIa), 3.33-3.32 (IH, m, ≡CH), 1.46 (3H, s, CH3-r-butyl), 1.36-1.33 (3H, m, CH3-AIa). 13C- NMR (CD3OD; 75 MHz): δ 20.3, 20.4, 20.5, 20.6 (CH3-AIa), 28.1, 28.3 (C[CH3]3) 52.0, 52.2 (CH-AIa), 69.5, 69.6, 69.7, 69.7 (C-5'), 71.8, 73.9, 74.0 (C-T, C-3'), 78.6, 79.0, 79.4, 80.1, 82.6, 82.7, 82.9, 83.1, 83.2 (C≡CH, C≡CH, C-4', C[CH3]3), 91.0, 91.1 (C-I'), 103.3, 103.4 (C-5), 121.3, 121.4, 126.2, 130.7, (C-Ph), 142.5, 142.6 (C-6), 151.9, 152.0, 152.1, 152.2 ( 'C-ipso' O-Ph, C-2), 165.8 (C-4), 173.8, 173.9, 174.0, 174.2 (C=O). MS (ES+) m/e 574.1 (MNa+). Accurate mass: C24H30N3O10NaP requires 574.1567 found 574.1575.
Example 30
{[(2R,3S,4R,5R)-5-(2,4-Dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-2-ethynyl-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }- acetic acid benzyl ester (1-49)
The title compound was synthesized by the procedure in Example 4 utilizing 4'- ethynyl-uridine (13a, 106.7 mg, 0.40 mmol) dissolved in anhydrous TΗF (10 mL), tert- BuMgCl (0.8O mL of solution IM in TΗF, 0.80 mmol) and 12a (1.6 mL of a O.5M solution in TΗF, 0.80 mmol). The reaction was monitored by TLC developed with CHCl3MeOH (9:1). The crude was purified by column chromatography eluting with a CHCl3MeOH (95:5). The recovered product was further purified twice by preparative thin layer chromatography. The first plate was developed two times with CHCl3MeOH (95:5), and the second plate was developed four times with CHCl3MeOH (95:5), to afford 1-49 as a white solid (25.2 mg, yield 11%).
31P-NMR (CD3OD, 121 MHz): δ 5.89, 5.60; 1H-NMR (CD3OD, 300 MHz): δ 7.53, 7.48 (IH, d, J=8.1Hz, H-6), 7.32-7.10 (1OH, m, Ph), 5.96-5.92 (IH, m, H-I'), 5.59, 5.54 (IH, d, J=8.1Hz, H-5), 5.43 (2H, s, OCH2-Ph), 4.34-4.09 (4H, m, H-2', H-3', H-5'), 3.78- 3.71 (2H, m, CH2-GIy), 3.33 (IH, m, ≡CH).
Example 31
(S)-2-{[(2R,3S,4R,5R)-5-(2,4-Dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-2-ethynyl- 3,4-dihydroxy-tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid benzyl ester (1-56) The title compound was prepared as described in Example 4 utilizing 4'-ethynyl- uridine (13c, 150 mg, 0.56 mmol), tert-BuMgCl (1.2 mL IM solution in THF, 1.2 mmol), phenyl- (benzylo xy- L- alaninyl)-phosphorochloridate (12an 1.2 mL of a IM solution in THF, 1.2 mmol) and dry THF (10 mL). The crude was purified by column chromatography eluting with a CHCl3/MeOH gradient (90:10 to 80:20). The product was further purified by preparative TLC and developed with CHCl3/MeOH (90:10) which afforded 1-56 as a white solid (40 mg, yield 12%).
31P NMR (121.5 MHz, d4-MeOH): 54.64, 4.42; 1U NMR (300 MHz, d4-MeOH): 57.61-7.54 (IH, dd, J= 8.2, 12.2 Hz, H-6), 7.39-7.29 (7H, m, Ph-CH), 7.26-7.08 (3Η, m, Ph-CH), 6.02-5.99 (1Η, m, Η-l'), 5.70-5.60 (IH, dd, J= 19.7, 8.0 Hz, H-5), 5.16 (2H, m, Bn-CH2), 4.33-4.19 (4Η, m, H-2', H-3' and H-5'), 4.33-3.99 (IH, m, AIa-CH), 3.20 (IH, m, C≡C-H), 1.39-1.31 (3H, m, AIa-CH3); 13C NMR (75.5 MHz, d4-MeOH): 5174.93 (C=O), 166.34 (C-4), 152.36 (C-2 and Ph-C), 143.04 (C-6), 137.60 (Ar-C), 131.27 (Ar- C), 130.01, 129.72 (Ar-C), 126.71 (Ar-C), 121.85, 121.78 (Ar-C), 103.84 (C-5), 91.65, 91.55 (C-I'), 83.57, 83.45 (C≡C), 74.53, 74.43 (C-2'), 72.34, 72.29 (C-3'), 70.19 (C≡C), 68.45 (C-5' and Bn-CH2), 52.01 (AIa-CH), 20.86, 20.78 (AIa-CH3).
Example 32
(R)-2-{[(2R,3S,4R,5R)-5-(2,4-Dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-2-ethynyl- 3,4-dihydroxy-tetrahydro-furan-2-ylmethoxy]-phenoxy-phosphorylamino}-propionic acid benzyl ester (1-41)
The title compound was synthesized by the procedure in Example 4 utilizing 4'- ethynyl-uridine (13c, 150 mg, 0.559 mmol), tert-BuMgCl (1.1 mL of solution IM in TΗF, 1.119 mmol) and phenyl (benzyloxy-D-alaninyl)phosphorochloridate (12m, 1.1 mLof solution IM in TΗF, 1.119 mmol)). The crude was purified by column chromatography eluting with a CΗCl3:MeOΗ (90:10). The recovered product was further purified by preparative silica gel thin layer chromatography developed with CHCl3/MeOH (9:1) which afforded 1-41 as a white solid (100 mg, 0.1723 mmol, yield 17%).
31P NMR (^-CH3OH): 54.80, 4.14; 1U NMR (dr CH3OH): 57.55 (IH, m, H6- uridine), 7.35 (7H, m, CH-phenyl), 7.23 (3H, m, CH-phenyl), 6.00 (IH, m, Hl '-uridine), 5.65 (IH, m, H2-uridine), 5.16 (2H, s, CH2-benzyl), 4.32 (IH, m, H3'-cytidine), 4.28 (IH, m, H2'-cytidine), 4.15 (2H, m, H5'-cytidine), 4.05 (IH, m, CHa), 3.18 (IH, CH- ethynyl), 1.36 (3H, m, CH3-alanine); 13C NMR (^-CH3OH): 5175.33, 175.28, 175.08, 175.01 (1C, C=O ester), 166.37 (1C, C4-uridine), 152.68, 152.58, 152.39, 152.32 (1C, C2- uridine), 143.13, 143.06 (1C, C6-uridine), 137.62, 137.55 (1C, C-phenyl), 131.30, 131.27 (2C, CH-phenyl), 130.01 (2C, CH-phenyl), 129.78, 129.76, 129.71 (2C, CH-phenyl), 127.42 (1C, C-ethynyl), 126.77 (1C, CH- phenyl), 121.91, 121.85, 121.77, 121.70 (2C, CH-phenyl), 103.87, 103.82 (1C, C5-uridine), 99.11, 98.98 (1C, C4'-uridine), 91.97, 91.41 (1C, Cl'-uridine), 74.55, 74.44 (1C, C3'-uridine), 72.40, 71.99 (1C, C2'-uridine), 70.32, 70.25 (1C, CH-ethynyl), 69.62, 69.56 (1C, CH2-benzyl), 68.53, 68.45 (1C, C5'-uridine), 52.17, 51.89 (1C, CHa), 20.87, 20.78, 20.68 (1C, CH3-lateral chain); MS (ES) m/e: 608.1 (MNa+, 100%); Accurate mass: C27H28N3O10NaP required 608.1410, found 608.1402.
Example 33
(S)-2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-3-phenyl- propionic acid ethyl ester (1-73)
(S)-2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy]-hydroxy-phosphorylamino}-3-phenyl- propionic acid; compound with ammonia (1-72) and
(S)-2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy]-hydroxy-phosphorylamino}-3-phenyl- propionic acid ethyl ester; compound with ammonia (1-71)
Figure imgf000077_0001
The title compound 1-71 was synthesized by the procedure in Example 4 utilizing 4'-azido-uridine (13a, 300 mg, 1.05 mmol) dissolved in anhydrous THF (13 mL), tert- BuMgCl (2.1 mL of solution IM in THF, 2.1 mmol) and 12u (4.2 mL of a 0.5M solution in THF, 2.1 mmol). The reaction was monitored by TLC (9:1 CHCl3MeOH). PS- Trisamine resin (1.5g, 6.16 mmol) was added and the reaction mixture was stirred for 1 h. The resin was filtered and the solvent removed in vacuo to afford a crude product which was purified by column chromatography and eluted with CHCl3MeOH (9:1). The recovered product was further purified by column chromatography and eluted with CHCl3MeOH (93:7) to afford 1-73 as a white solid (73.7 mg, yield 11%). 31P-NMR (CD3OD, 121 MHz): δ 4.54, 4.31; 1H-NMR (CD3OD, 300 MHz): δ 7.58, 7.55 (IH, d, J=8.0Hz H-6,), 7.38-7.07 (1OH, m, Ph), 6.17, 6.11 (IH, d, J= 5.3Hz, H-I'), 5.74, 5.64 (IH, d, J=8.0Hz, H-5), 4.33-3.74 (7H, m, H-2', H-3', H-5', CH-Phe, OCH2CH3), 3.55-2.86 (2H, m, CH2-Phe), 1.24-1.16 (3H, m, OCH2CH3); 13C-NMR (CD3OD; 75 MHz): δ 14.8, 14.9 (OCH2CH3), 41.3, 41.4 (CH2-Phe), 58.2, 58.4 (CH-Phe), 62.8, 62.9 (OCH2CH3), 68.8 (C-5'), 74.0, 74.2 (C-T, C-3'), 92.5 (C-I'), 98.7, 98.9 (C-5), 104.0, 104.1 (C-4'), 121.4, 121.5, 121.7, 121.8, 126.7, 128.4, 130.0, 130.9, 131.3, 138.5 (C- Ph), 142.6, 143.0 (C-6), 152.2, 152.3, 152.6 ('C-ipso' O-Ph, C-2), 166.2 (C-4), 174.2, 174.3 (C=O).
1-73 (54.4 mg, 0.089 mmol) was dissolved in a 4:1 TEA/H2O (2.5 niL) solution and the reaction mixture was stirred at RT for 2 days. The solvent was removed in vacuo and the crude was purified by a flash chromatography and eluted with z-PrOH/NH3/H2O (9:0.3:0.7) to afford 1-72 as a white solid (15.8 mg, yield 32%).
31P-NMR (D2O, 121 MHz): δ 7.33; 1H-NMR (D2O, 300 MHz): δ 7.65 (IH, d, J=8.1Hz H-6), 7.21-7.10 (5H, m, H-Ph), 5.99 (IH, d, J=4.5Hz H-I'), 5.78 (IH, d,
J=8.1Hz, H-5), 4.30-4.18 (2H, m, H-2', H-3'), 3.65-3.53 (3H, m, H-5', CH-Phe), 2.80- 2.77 (2H, m, CH2-Phe).
1-71 also was isolated from the hydrolysis of 1-73 as a white solid (20.8 mg, yield
42%).
31P-NMR (D2O, 121 MHz) : δ 6.56; 1H-NMR (D2O, 300 MHz) : δ 7.70 ( IH, d,
J=8.1Hz H-6), 7.29-7.16 (5H, m, H-Ph), 6.09 (IH, d, J=4.1Hz H-I'), 5.84 (IH, d, J=8.1Hz, H-5), 4.69-4.62 (2H, m, H-2', H-3'), 4.40-3.64 (7H, m, H-5', CH-Phe, OCH2CH3), 3.19-3.12 (2H, m, CH2-Phe), 1.14-1.02 (3H, m, OCH2CH3).
Example 34
(S)-2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy]-phenoxy-phosphorylamino}-3-phenyl- propionic acid benzyl ester (1-8)
The title compound was prepared as described in Example 4 utilizing 4'-azido- uridine (13a, 200 mg, 0.701 mmol), tøt-BuMgCl (1.75 mL IM solution in TΗF, 1.75 mmol), dry TΗF (10 mL), dry TΗF (10 mL) and 12w (1.75 mL IM solution of TΗF, 1.75 mmol). The crude was purified by column chromatography and eluted with a CHCl3/MeOH gradient (10 to 20% MeOH) followed by a preparative TLC developed with CHCl3/MeOH (90:10) which afforded 1-8 as a white solid (20 mg, yield 15%).
31P NMR (121.5 MHz, CDCl3): 54.56, 4.47; 1H NMR (300 MHz, d4-Me0H): 57.55 (IH, m, H-6), 7.33-7.01 (15H, m, Ph-CH), 6.15-6.08 (1Η, m, Η-l'), 5.69-5.58 (IH, m, H- 5), 5.08 (2H, m, Bn-CH2), 4.50 (1Η, br, Η-2') 4.29-4.06 (2H, m, H-5'), 3.99-3.66 (2H, m, H-3' and Phe-CH), 3.15-3.00 (IH, m, Bn-CH2), 2.91-2.84 (1Η, m, Bn-CH2).
Example 35
l-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-cyclopentanecarboxylic acid benzyl ester (II-3)
step 1 - cyclopentylglycine benzyl ester p- toluene sulfonate salt
Cyclopentylglycine benzyl ester p- toluene sulfonate salt was prepared by the procedure in Example l(C) from cyclopentylglycine (5.0 g, 39.0 mmol), TsOH monohydrate (8.159 g, 42.9 mmol), benzyl alcohol (20.4 mL, 194 mmol) and toluene (50 mL). The product 14al was isolated as white solid (9.15 g, 23.4 mmol, 60%)
5Η (dr CH3OH): 8.56 (3H, s, NH3 +-amino acid ester), 7.72 (2H, d, tosylate, J= 9.0 Hz), 7.4 (2H, m, CH-phenyl), 7.35-7.30 (5H, m, CH-phenyl), 7.25 (2H, d, CH-phenyl- tosylate, J= 9.0 Hz), 5.28 (2H, s, CH2-benzyl), 2.37 (3H, s, CH3- tosylate), 2.33 (2H, m, CH2-cyclopentyl), 1.93 (2H, m, CH2-cyclopentyl), 1.89 (2H, m, CH2-cyclopentyl).
step 2 - phenyl-(benzyloxy-cyclopentylglycinyl) phosphorochloridate
The title compound was prepared as described in Example 3 utilizing phenyl dichlorophosphate (Ha, 1.56 mL, 7.67 mmol), 14al (3.0 g, 7.67 mmol), dry TEA (2.138 mL, 15.34 mmol) and dry DCM (15 mL). The product 12al was obtained as a clear yellow oil (2.57 g, 6.54 mmol, 85%).
31P NMR(CDCl3): 57.90; 1H NMR (CDCl3): 57.96 (2H, d, CH-phenyl, J= 8.4 Hz),
7.44 (2H, m, CH-phenyl), 7.39 (4H, m, CH-phenyl), 7.27 (2H, d, CH-phenyl, J= 8.4 Hz), 5.24 (2H, s, CH2-benzyl), 4.65 (IH, s, NH), 2.43 (4H, m, CH2-cyclopentyl), 1.98 (4H, CH2-cyclopentyl).
step 3 - azido-cytidine S'-O-fpheny^benzyloxy-cyclopentylglycinyl)] phosphate (II-3) The title compound was prepared as described in Example 4 utilizing 4'-azido- cytidine (13b, 300 mg, 0.986 mmol), tert-BuMgCl (2.46 mL, IM solution in THF, 2.46 mmol) and phenyl-(benzyloxy-cyclopentylglycinyl) phosphorochloridate (12al, 2.46 mL of solution IM in THF, 2.46 mmol). The crude was purified twice by column chromatography, using CHQ3/Me0H (95:5) as eluent for the first column and CHQ3/Me0H (80:20) for the second column. The product from the second chromatography was further purified by preparative silica TLC developed with CHCl3/MeOH (9:1) to afford II-3 a white solid (30 mg, 0.047 mmol, 5%).
31P NMR ((U-CH3OH): δp 3.70, 3.67; 1H NMR ((Lf-CH3OH): 5H 7.55 (IH, m, H6- cytidine, J= 7.3 Hz), 7.24 (7H, m, CH-phenyl), 7.13 (3H, m, CH-phenyl), 6.07 (IH, m, Hl'-cytidine), 5.75 (IH, m, H5-cytidine, J= 7.3 Hz), 5.05 (2H, s, CH2-benzyl), 4.23 (IH, m, H2'-cytidine), 4.15 (IH, m, H3'-cytidine), 4.10 (2H, m, H5'-cytidine), 2.00 (2H, m, CH2-cyclopentyl), 1.92 (2H, m, CH2-cyclopentyl), 1.63 (2H, m, CH2-cyclopentyl), 1.55 (2H, m, CH2-cyclopentyl); 13C NMR ((Lf-CH3OH): δc 176.82 (1C, C=O ester), 167.99 (1C, C4-cytidine) , 158.56 ( 1C, C2-cytidine) , 152.49, 152.42 ( 1C, C-phenyl) , 143.48,
143.36 (1C, C6-cytidine), 137.74, 137.73 (1C, C-phenyl), 131.73, 131.55, 131.20 (2C, CH- phenyl), 130.20, 129.98 (1C, CH-phenyl), 129.73, 129.71, 129.71, 129.69 (2C, CH- phenyl), 129.59, 129.45 (1C, CH-phenyl), 127.37, 126.70 (1C, CH-phenyl), 122.05, 121.99, 121.92 (1C, phenyl), 99.16, 99.04, 99.02 (1C, C5-cytidine), 97.24 (1C, C4'- cytidine), 93.87, 93.75 (1C, Cl '-cytidine), 74.88, 74.84 (1C, C3 '-cytidine), 73.79, 73.70 (1C, C2'-cytidine), 69.16, 69.07, 68.99, 68.76 (1C, C5'-cytidine), 68.72 (1C, C- cyclopentyl), 68.61 (1C, CH2-Ph), 40.34, 40.23, 40.16, 40.05 (1C, CH2-cyclopentyl), 39.62, 39.56, 39.50 (1C, CH2-cyclopentyl), 25.10, 25.00 (1C, CH2-cyclopentyl), 24.98 (1C, CH2-cyclopentyl) .
Example 36
l-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-cyclopentanecarboxylic acid ethyl ester (II- 1)
step 1 - cyclopentylglycine ethyl ester hydrochloride salt
Cyclopentylglycine ethyl ester hydrochloride salt was prepared by the procedure in
Example l(B) utilizing cyclopentylglycine (5.0 g, 38.7 mmol), thionyl chloride (6.0 mL, 77.4 mmol) and EtOH (34.10 mL, 58.1 mmol). The ethyl ester 14aj was obtained as a white solid (2.25 g, 10.86 mmol, 56%). 1H NMR (d6-DMSO): 5H 8.82 (3H, s, NH3 +-amino acid ester), 4.19 (2H, m, CH2- ethyl, J= 7.1 Hz), 2.08 (2H, m, CH2-cyclopentyl), 1.96 (2H, m, CH2-cyclopentyl), 1.89 (2H, m, CH2-cyclopentyl), 1.72 (2H, m, CH2-cyclopentyl), 1.23 (3H, t, CH3-ethyl, J= 7.1 Hz).
step 2 - phenyl-(ethoxy-cyclopentylglycinyl) phosphorochloridate
The title compound was prepared as described in Example 3 utilizing phenyl dichlorophosphate (Ha, 2.64 mL, 12.9 mmol), 14aj (2.5 g, 12.9 mmol), dry TEA (3.60 mL, 25.8 mmol) and dry DCM (15 mL). The phosphorochloridate 12aj was obtained as a clear white solid (3.37 g, 10.19 mmol, 79%).
31P NMR (CDCl3): δp 8.09; 1H NMR (CDCl3): 5H 7.47 (IH, m, CH-phenyl), 7.34
(2H, m, CH-phenyl), 7.30 (2H, m, CH-phenyl), 4.74 (IH, s, NH), 4.27 (2H, m, CH2- ethyl, J= 6.7 Hz), 2.30 (4H, m, CH2-cyclopentyl), 1.92 (2H, m, CH2-cyclopentyl), 1.87 (2H, m, CH2-cyclopentyl), 1.35 (3H, t, CH3-ethyl, J= 6.7 Hz).
step 3 - azido-cytidine 5'-O-[phenyl(ethoxy-cyclopentylglycinyl) phosphate (II-l)
The title compound was prepared as described in Example 4 utilizing 4'-azido- cytidine (13b, 300 mg, 0.986 mmol), ten- BuMgCl (2.46 mL IM solution in THF, 2.46 mmol) and 12aj (2.46 mL IM solution of THF, 2.46 mmol). The crude was purified by column chromatography and eluted with CHCl3/MeOH (95:5) followed by a preparative TLC developed with CHCl3/MeOH (85:15) which afforded II-l as a white solid (100 mg, 0.172 mmol, 18%).
31P NMR (dr CH3OH): δp 3.74; IH NMR (^CH3OH): 5H 7.70 (IH, m, H6- cytidine, J= 7.6 Hz), 7.38 (2H, m, CH-phenyl), 7.36 (IH, m, CH-phenyl), 7.25 (2H, m, CH-phenyl), 6.19 (IH, m, Hl'-cytidine), 5.87 (IH, m, H2-cytidine, J= 7.6 Hz), 4.37 (2H, m, CH2-ethyl), 4.28 (IH, m, H2'-cytidine), 4.26 (IH, m, H3'-cytidine), 4.15 (2H, m, H5'- cytidine), 2.00 (2H, m, CH2-cyclopentyl), 1.92 (2H, m, CH2-cyclopentyl), 1.63 (2H, m, CH2-cyclopentyl), 1.55 (2H, m, CH2-cyclopentyl), 1.25 (3H, m, CH3-ethyl); 13C NMR (^rCH3OH): δc 177.05 (1C, C=O ester), 168.05 (1C, C4-cytidine), 158.62 (1C, C2- cytidine), 152.52, 152.43 (1C, C-phenyl), 143.51, 143.43 (1C, C6-cytidine), 131.00 (2C, CH-phenyl), 126.70 (1C, CH-phenyl), 122.07, 122.00, 121.93 (2C, CH-phenyl), 99.22, 99.19, 99.09, 99.05 (1C, C5-cytidine), 97.21 (1C, C4'-cytidine), 93.86, 93.79 (1C, Cl'- cytidine), 74.86 (1C, C3 '-cytidine), 73.87, 73.79 (1C, C2'-cytidine), 69.20, 69.12, 69.05 (1C, C5'-cytidine), 68.72, 68.69 (1C, C-cyclopentyl), 62.93 (1C, CH2-ethyl), 40.35, 40.23 (IC, CHz-cyclopentyl), 40.10, 39.54 (1C, CHz-cyclopentyl), 25.11, 25.00 (1C, CH2- cyclopentyl), 24.98 (1C, CH2-cyclopentyl), 14.86 (1C, CH3-ethyl).
Example 37
l-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -hydroxy-phosphorylamino }-cyclopentanecarboxylic acid ethyl ester; triethyl- amine; (II-6)
To a stirring solution of TEA (2 mL, 0.014 mmol) and water (8 mL, 0.444 mmol) was added azido-cytidine 5'-O-[phenyl(ethoxy-cyclopentylglycinyl) phosphate (II-l, (240 mg, 0.414 mmol). The reaction was stirred for three days. The solvent was removed in vacuo to give a white solid that was crystallized from acetone to afford II-6 as a white solid precipitate (5.6 mg, 0.0096 mmol, 2%).
31P NMR (D2O): 54.67; 1H NMR (D2O): 57.73 (1Η, d, Η6-cytidine, J= 7.6 Hz), 6.05 (IH, d, Hl'-cytidine), 5.98 (IH, d, H5-cytidine, J= 7.6 Hz), 4.35 (2H, s, H2'-cytidine, H3'-cytidine), 4.05 (2H, m, CH2-ethyl, J= 7.1 Hz), 3.90 (2H, m, H5'-cytidine), 3.08 (6H, m, CH2-NH+- triethylammonium salt), 1.90 (2H, m, CH2-cyclopentyl), 1.78 (2H, m, CH2-cyclopentyl), 1.60 (2H, m, CH2-cyclopentyl), 1.55 (2H, m, CH2-cyclopentyl), 1.18 (3H, m, CH3-ethyl, J= 7.1 Hz), 1.14 (9H, m, CH3- NH+-Et3NH salt).
Example 38
l-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }- cyclopentanecarboxylic acid benzyl ester (II-4)
The title compound was prepared as described in Example 4 utilizing 4'-azido- uridine (13a, 300 mg, 1.052 mmol), tøt-BuMgCl (2.10 mL IM solution in TΗF, 2.10 mmol) and phenyl (benzyloxy-cyclopentylglycinyl)phosphorochloridate (12al, 2.10 mL IM solution of TΗF, 2.10 mmol) . The crude was purified by column chromatography and eluted with CΗCl3/MeOΗ (95:5) followed by a silica gel preparative TLC developed with CHCl3/MeOH (9:1) which afforded II-4 as a white solid (130 mg, 0.202 mmol, 20%).
31P NMR (^rCH3OH): 53.77, 3.74; 1H NMR (dr CH3OH): 57.58 (IH, m, H6- uridine, J= 8.13 Hz), 7.28 (7H, m, 5 CH-phenyl, 2 CH-benzyl), 7.15 (3H, m, CH-benzyl), 6.09 (IH, m, Hl '-uridine), 5.55 (IH, m, H5-uridine, J= 8.13 Hz), 5.08 (2H, s, CH2- phenyl), 4.29 (IH, m, H2'-uridine), 4.24 (IH, m, H3'-uridine), 4.09 (2H, m, H5'- uridine), 2.04 (2H, m, CH2-cyclopentyl), 1.98 (2H, m, CH2-cyclopentyl), 1.64 (2H, m, CH2-cyclopentyl), 1.55 (2H, m, CH2-cyclopentyl); 13C NMR (^-CH3OH): 5176.83 (1C, C=O ester), 166.20 (1C, C4-uridine), 152.62, 152.48, 152.39 (1C, C2-uridine), 143.00, 142.88 (1C, C6-uridine), 137.75, 137.73 (1C, C-phenyl), 131.22 (2C, CH-phenyl), 129.98 (1C, C-benzyl) , 129.73 (2C, CH-phenyl) , 129.69 ( 1C, CH-phenyl) , 126.74 (2C, CH- benzyl), 122.00 (1C, Ch-benzyl), 121.98, 121.93 (2C, CH-benzyl), 103.99, 103.96 (1C, C5-uridine), 99.23, 99.20, 99.06 (1C, C4'-uridine), 92.32, 92.13 (1C, Cl '-uridine), 74.86 (1C, C3 '-uridine), 69.32 (1C, C2'-uridine), 69.25, 68.79, (1C, C5'-uridine), 68.75, 68.62 (2C, CH2-benzyl), 40.35, 40.24 (1C, CH2-cyclopentyl), 40.07, 39.55 (1C, CH2- cyclopentyl) , 25.10 ( 1C, CH2-cyclopentyl) , 24.99 ( 1C, CH2-cyclopentyl) .
Example 39
l-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy]-phenoxy-phosphorylamino}- cyclopentanecarboxylic acid ethyl ester (II-5)
The title compound was prepared as described in Example 4 utilizing 4'-azido- uridine (13a, 300 mg, 1.052 mmol), tert-BuMgCl (2.10 mL IM solution in TΗF, 2.10 mmol) and phenyl-(ethoxy-cyclopentylglycinyl) phosphorochloridate (12aj, 2.10 mL IM solution of TΗF, 2.10 mmol). The crude was purified by column chromatography and eluted with CΗCl3/MeOΗ (95:5) followed by silica gel preparative TLC developed with CHCl3/MeOH (9:1) which afforded II-5 as a white solid (100 mg, 0.1723 mmol, 16%).
31P NMR (^-CH3OH): 53.85, 3.83; 1H NMR (dr CH3OH): 57.69 (IH, m, H6- uridine, J= 8.1 Hz), 7.38 (2H, m, CH-phenyl), 7.27 (IH, m, CH-phenyl), 7.23 (2H, m, CH-phenyl), 6.18 (IH, m, Hl'-uridine), 5.87 (IH, m, H5-uridine, J= 8.1 Hz), 4.40 (2H, m, CH2-ethyl) 4.35 (IH, m, H2'-uridine), 4.22 (IH, m, H3'-uridine), 4.17 (2H, m, H5'- uridine), 2.11 (2H, m, CH2-cyclopentyl), 1.97 (2H, m, CH2-cyclopentyl), 1.73 (2H, m, CH2-cyclopentyl), 1.64 (2H, m, CH2-cyclopentyl), 1.25 (3H, m, CH3-ethyl); 13C NMR (^rCH3OH): 5177.05 (1C, C=O ester), 166.22 (1C, C4-uridine), 152.63, 152.51, 152.42 (1C, C2-uridine), 143.06, 142.94 (1C, C6-uridine), 131.23 (2C, CH-phenyl), 126.75 (1C, CH- phenyl), 122.05, 121.99, 121.93 (2C, CH-phenyl), 103.94 (1C, C5-uridine), 99.29, 99.24, 99.15, 99.10 (1C, C4'-uridine), 92.23, 92.14 (1C, Cl '-uridine), 74.30, 74.24 (1C, C3 '-uridine), 69.34 (1C, C2'-uridine), 68.75 (1C, C5'-uridine), 62.95 (1C, C-cyclopentyl), 55.20 (1C, CH2-ethyl), 40.37, 40.25 (1C, CH2-cyclopentyl), 40.12, 39.52, 39.47 (1C, CH2- cyclopentyl), 25.10, (1C, CH2-cyclopentyl), 24.99 (1C, CH2-cyclopentyl), 14.85 (1C, CH3- ethyl). Example 40
l-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2ff-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-mran-2-ylmethoxy]-phenoxy-phosphorylamino}- cyclopentanecarboxylic acid isopropyl ester (II-7)
The title compound was prepared as described in Example 4 utilizing 4'-azido- uridine (13a, 300 mg, 1.052 mmol), tøt-BuMgCl (2.10 mL IM solution in THF, 2.10 mmol) and phenyl-(ethoxy-cyclopentylglycinyl) phosphorochloridate (12ak, 2.10 mL IM solution of THF, 2.10 mmol). The crude was purified by column chromatography and eluted with CHQ3/Me0H (95:5) followed by silica gel preparative TLC developed with CHCl3/MeOH (9:1) which afforded II-7 as a white solid (110 mg, 0.1995 mmol, 12%).
31P NMR ((U-CH3OH): 53.87, 3.83; 1H NMR ((Lf-CH3OH): 57.69 (IH, m, H6- uridine, J= 8.1 Hz), 7.37 (2H, m, CH-phenyl), 7.27 (IH, m, CH-phenyl), 7.24 (2H, m, CH-phenyl), 6.18 (IH, m, Hl'-uridine), 5.66 (IH, m, H5-uridine, J= 8.1 Hz), 5.01 (IH, m, CH-isopropyl, J= 3.4 Hz), 4.40 (IH, m, H2'-uridine), 4.35 (IH, m, H3'-uridine), 4.24 (2H, m, H5'-uridine), 2.10 (2H, m, CH2-cyclopentyl), 2.02 (2H, m, CH2-cyclopentyl), 1.73 (2H, m, CH2-cyclopentyl), 1.67 (2H, m, CH2-cyclopentyl), 1.24 (6H, d, 2 CH3- isopropyl, J= 3.4 Hz); 13C NMR ((Lt-CH3OH): 5176.58 (1C, C=O ester), 166.20 (1C, C4- uridine), 152.64 (1C, C2-uridine), 152.52, 152.43 (1C, C4-uridine), 143.10, 142.95 (1C, C6-uridine), 131.26 (1C, CH-phenyl), 126.76 (1C, C-phenyl), 122.07, 122.08, 121.95 (1C, C-phenyl) , 104.00, 103.95 ( 1C, C5-uridine) , 99.26, 99.17, 99.12 ( 1C, C4'-uridine) , 92.35, 92.15 (1C, Cl '-uridine), 74.86 (1C, C3 '-uridine), 70.65 (1C, C2'-uridine), 69.37, 69.30, 68.76 (1C, C5'-uridine), 67.31 (1C, C-cyclopentyl), 40.35, 40.24 (1C, CH2-cyclopentyl), 39.51 (1C, CH2-cyclopentyl), 25.19 (1C, CH2-cyclopentyl), 25.1O(1C, CH2-cyclopentyl), 22.35 (2C, 2 CH3-isopropyl).
Example 41
(S)-2-{[(2R3S,4R5R)-2-Azido-5-(2,4-dioxo-3,4-diriydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy]-phenoxy-phosphorylamino}-4-methyl- pentanoic acid ethyl ester (1-5)
step 1 - leucine ethyl ester phosphororchloridate (12q)
The title compound was prepared as described in Example 3 utilizing phenyl dichlorophosphate (0.76 mL, 5.1 mmol), L-leucine ethyl ester hydrochloride (14q, 1.000 g, 5.1 mmol), dry TEA (1.1 mL, 7.6 mmol) and dry DCM (2O mL). The phosphorochloridate 12q was obtained as a yellow oil (1.58 g, yield 93%). 31P NMR (CDCl3): 59.50, 9.72.
step 2 - Azido-uridine 5'-O-[phenyl(ethoxy-L-leucinyl) phosphate (1-5)
The title compound was prepared as described in Example 4 utilizing 4'-azido- uridine (13a, 200 mg, 0.7 mmol), tert-BuMgCl (1.4 mL IM solution in THF, 1.4 mmol), 12q (2.5 mLof a 0.27/ g/mLTHF solution, 2.1 mmol) and dry THF (10 mL). The crude was purified by two column chromatographies eluting with CHCl3/MeOH (90:10) followed by a preparative TLC developed with CHCl3/MeOH (85:15) which afforded 1-5 as a clear, colorless oil, which solidified to a white foam (0.01 g, yield 35%).
31P NMR (CD4OD): 54.22, 4.25; 1H NMR (CD4OD): 58.32(1H, d, H6), 6.9-7.2(5H, m, Ar-H), 6.27(1H, dd, Hl'), 5.68(1H, dd, H5), 4.3-4.5(2H, m, H2', H3'), 4.06(2H, q, CH3-CH2), 3.45(1H, t, NH-CH-CO2Et)), 1.9(3H, m, CH2-CH(CH3)^, 1.24(3H, t, CH3- CH2) 0.97-1.00(6H, m, CH2-CH(CHa)2); 13C NMR (CD4OD): 5173.2,165.8, 156.7, 153.2, 142.1, 130.0, 128.7, 121.3,118.1, 111.1, 87.2, 82.2, 63,2, 58.3, 43.2, 42.8, 34.7, 25.8, 23.2, 22.9, 22.1, 11.1.
Example 42
(S)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy]-phenoxy-phosphorylamino}-4-methyl- pentanoic acid ethyl ester (1-27)
The title compound was prepared as described in Example 4 utilizing 4'-azido- cytidine (13b, 400 mg, 1.32 mmol), tert-BuMgCl (3.3 mL IM solution in TΗF, 3.3 mmol), 12q (1.05 g mL, 3.31 mmol) and dry TΗF (10 mL). The crude was purified by two column chromatographies eluting with CΗCls/MeOΗ (90:10) followed by a preparative TLC developed with CΗCl3/MeOΗ (85:15) which afforded 1-27 as a clear, colorless oil, which solidified to a white foam (0.01 g, yield 35%).
31P NMR (CD4OD): 53.22, 3.53; 1H NMR (CD4OD): 58.1O(1H, d, H6), 6.9-7.2(5H, m, Ar-H), 6.24(1H, dd, Hl'), 5.85(1H, dd, H5), 4.2-4.3(2H, m, H2', H3'), 3.96(2H, q, CH3-CH2), 3.74(1H, t, NH-CH-CO2Et)), 1.6-1.8(3H, m, CH2-CH(CH3)2), 1.43(3H, t, CH3-CH2) 0.96-1.00(6H, m, CH2-CH(CHa)2) ;13C NMR (CD4OD): 5168, 158, 143, 131.3, 126.7, 121.7, 121.6, 98.9, 97.2, 94.0, 74.8, 73.9, 62.7, 54.9, 31.1, 26.0, 23.5, 22.3, 14.8.
Example 43 (S)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy]-phenoxy-phosphorylamino}-4-methyl- pentanoic acid isopropyl ester (1-57)
The title compound was prepared as described in Example 4 utilizing 4'-azido- cytidine (13b, 400 mg, 1.32 mmol), tøt-BuMgCl (3.3 mL IM solution in TΗF, 3.3 mmol), 12r (1.05 g mL, 3.31 mmol) and dry TΗF (10 mL). The crude was purified by two column chromatographies eluting with CΗQ3/Me0Η (85:15) followed by a preparative TLC developed with CHCl3/MeOH (90:10) which afforded 1-57 as a white solid (0.024 g, yield 3%).
31P NMR (CD4OD): 54.35, 4.51; 1U NMR (CD4OD): 58.18(1H, d, H6), 6.72-
7.05(5H, m, Ar-H), 6.32(1H, dd, Hl'), 5.76(1H, dd, H5), 4.15-4.36(2H, m, H2', H3'), 4.29(1H, m, O-CH-(CH3)2), 3.56(1H, t, NH-CH-CO2Et)), 1.79(2H, m, CH2-CH(CHa)2), 1.35-1.48(6H, m, 0-CH-(CH3J)2),) 0.95-1.1(6H, m, CH2-CH(CHs)2).
Example 44
{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy]-phenoxy-phosphorylamino}- acetic acid benzyl ester (I- 58)
The title compound was prepared as described in Example 4 utilizing 4'-azido- uridine (13a, 400 mg, 1.32 mmol), tøt-BuMgCl (3.3 mL IM solution in TΗF, 3.3 mmol), 12r (1.26 g mL, 3.33 mmol) and dry TΗF (10 mL). The crude was purified by column chromatography eluting with CΗCl3/MeOΗ (90:10) followed by a three preparative TLC chromatographies developed with CHCl3/MeOH (90:10) which afforded 1-58 as a white solid (0.06 g, yield 8%).
31P NMR (CD4OD): 54.11, 4.34; 1U NMR (CD4OD): 5H 8.42(1H, d, H6), 6.72- 7.05(5H, m, Ar-H), 6.32(1H, dd, Hl'), 5.76(1H, dd, H5), 4.15-4.36(2H, m, H2', H3'), 4.29(1H, m, O-CH-(CH3)2), 3.56(1H, t, NH-CH-CO2Et)), 1.79(2H, m, CH2-CH(CH3)2), 1.35-1.48(6H, m, 0-CH-(CHs)2),) 0.95-1.1(6H, m, CH2-CH(CHs)2);
Example 45
(S)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-4-methyl- pentanoic acid benzyl ester (1-19) step 1 - leucine benzyl ester phosphororchloridate
The title compound was prepared as described in Example B utilizing phenyl dichlorophosphate (Ha, 0.55 mL, 3.7 mmol), L- leucine benzyl ester toluenesulfonate (14s 1.01 g, 3.7 mmol), dry TEA (1.0 mL, 7.4 mmol) and dry DCM (20 mL). The phosphorochloridate 12s was obtained as a yellow oil (1.50 g, yield 91%).
31P NMR (CDCl3): 59.36, 9.60.
step 2 - Azido-cytidine 5'-O-[phenyl(benzyloxy-L-leucinyl) phosphate (1-19)
The title compound was prepared as described in Example 4 utilizing 4'-azido- cytidine (13b, 400 mg, 1.32 mmol), tøt-BuMgCl (3.3 mL IM solution in THF, 3.3 mmol), 12s (1.41 g, 3.3 mmol) and dry THF (10 mL). The crude was purified by two column chromatographies eluting with CHCl3/MeOH (90:10) followed by three preparative TLC chromatographies developed with CHCl3/MeOH (85:15) which afforded 1-19 as a white solid (0.04 g, yield 35%).
31P NMR (CD4OD): 54.66, 5.00; 1U NMR (CD4OD): 57.82(5H, m, Ar-H, 7.35(1H, s, H6), 7.28(5H, m, Ar-H), 6.31(1H, dd, Hl'), 5.79(1H, dd, H5), 5.19(2H, s, CH2-Ph), 4.1-4.3(2H, m, H2', H3'), 4.1(1H, t, NH-CH-CO2Et)), 3.91(2H, q, CH3-CH2), 1.5- 1.7(3H, m, CH2-CH(CH3)2), 0.98(6H, m, CH2-CH(CHs)2) 175.8, 154.5, 131.33, 131.27, 130.72, 130.42, 129.8, 126.9, 126.8, 124.8, 121.9, 121.8, 121.7, 121.63, 121.57, 26.0, 25.8, 23.6, 23.5, 22.3, 21.9, 14.9, 14.86, 9.6.
Example 46
(S)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy]-phenoxy-phosphorylamino}-3-methyl- butyric acid benzyl ester (1-36)
step 1 - valine benzyl ester phosphororchloridate (12aq)
The title compound was prepared as described in Example 3 utilizing phenyl dichlorophosphate (Ha, 1.22 mL, 8.2 mmol), L-valine benzyl ester hydrochloride (2.000 g, 8.2 mmol), dry TEA (2.3 mL, 16.4 mmol) and dry DCM (20 mL). The phosphorochloridate 12aq was obtained as a yellow oil (2.97 g, yield 95%).
3i P NMR (CDCl3): 510.30, 10.87 step 2 - The title compound was prepared as described in Example 4 utilizing 4'- azido-cytidine (13b, 400 mg, 1.32 mmol), tert-BuMgCl (3.3 mL IM solution in THF, 3.3 mmol), 12aq (1.26 g, 3.3 mmol) and dry THF (10 mL). The crude was purified by column chromatography eluting with CHQ3/Me0H (90:10) followed by a three preparative TLC chromatographies developed with CHQ3/Me0H (85:15) which afforded 1-36 as a white solid (0.08 g, yield 10%).
31P NMR (CD4OD): 55.36, 5.66; 1H NMR (CD4OD): 58.12(1H, s, H6), 7.31(5H, m, Ar-H), 7.2(5H, m, Ar-H), 6.24(1H, m, Hl'), 5.89(1H, m, H5), 5.21(2H, s, CH2-Ph), 4.3- 4.4(2H, m, H2', H3'), 3.52(CH-CH(CH3)2), 2.1O(1H, m, -CH(CH3)2), 0.7-1.0 (m, 6H, - CH(CHa)2),).
Example 47
(S)-2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-diriydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy]-phenoxy-phosphorylamino}-3-methyl- butyric acid benzyl ester (1-46)
The title compound was prepared as described in Example 4 Cl utilizing 4'-azido- uridine (13a, 200 mg, 0.70 mmol), tert-BuMgCl (1.8 mL IM solution in TΗF, 1.8 mmol), 12aq (0.669 g, 1.75 mmol) and dry TΗF (10 mL). The crude was purified twice by column chromatography eluting with CΗCl3/MeOΗ (90:10) followed by a preparative TLC chromatography developed with CHCl3/MeOH (88:12) which afforded 1-46 as a white solid (0.055 g, yield 15%) .
31P NMR (CD4OD): 55.21, 5.40; 1H NMR (CD4OD): 58.2O(1H, s, H6), 7.3-7.4(5H, m, Ar-H), 7.1-7.35(5H, m, Ar-H), 6.1O(1H, m, Hl'), 5.81(1H, m, H5), 5.27(2H, s, CH2- Ph), 4.1-4.4(2H, m, H2', H3'), 3.62(CH-CH(CH3)2), 2.1-2.2(1H, m, -CH(CH3)2), 0.7- 1.0 (m, 6H, -CH(CH3)2),).
Example 48
(2S,3S)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy]-phenoxy-phosphorylamino}-3-methyl- pentanoic acid ethyl ester (I- 11)
step 1 - L-isoleucine ethyl ester hydrochloride salt
L-isoleucine ethyl ester hydrochloride salt was prepared by the procedure in
Example l(B) utilizing L-isoleucine (5.0 g, 38.1 mmol), thionyl chloride (8.3 mL, 11.44 mmol) and EtOH (33.54 mL, 57.15 mmol). The ethyl ester 14t was obtained as a colorless oil (2.5 g, 14.91 mmol, 39%).
1U NMR (CDCl3): 58.71 (3H, s, NH3- amino acid ester), 4.21 (2H, m, CH2-ethyl), 3.97 (IH, m, CHa), 2.15 (IH, m, CH-lateral chain), 1.48 (2H, m, CH2-lateral chain) 1.25 (3H, s, CH3-ethyl), 1.04 (3H, s, CH3-lateral chain), 0.90 (3H, s, CH3-lateral chain).
step 2 - phenyl- (ethoxy-L-isoleucinyl) phosphorochloridate (12t)
The title compound was prepared as described in Example 3 utilizing phenyl dichlorophosphate (Ha, 1.00 mL, 6.76 mmol), 14t (1.4 g, 6.76 mmol), dry TEA (1.88 mL, 13.52 mmol) and dry DCM (15 mL). The phosphorochloridate 12t was obtained as a clear white solid (1.6 g, 4.8 mmol, 71%).
31P NMR (CDCl3): 510.64, 10.01; 1U NMR (CDCl3): δ7.26 (IH, m, CH-phenyl), 7.19 (2H, m, CH-phenyl), 7.16 (2H, m, CH-phenyl), 7.28 (IH, m, CH-phenyl), 4.76 (IH, m, NH), 4.15 (2H, m, CH2-ethyl, J= 7.08 Hz), 3.89 (IH, m, CHa), 1.82 (IH, m, CH- lateral chain), 1.43 (2H, m, CH2-lateral chain), 1.16 (3H, m, CH3-ethyl), 0.87-0.86 (6H, 2 CH3-lateral chain).
step 3 - azido-cytidine 5'-O-[phenyl(ethoxy-L-iso-leucinyl) phosphate (1-11)
The title compound was prepared as described in Example 4 utilizing 4'-azido- cytidine (13b, 300 mg, 0.986 mmol), tert-BuMgCl (2.46 mL IM solution in THF, 2.46 mmol) and 12t (2.46 mL IM solution of THF, 2.46 mmol). The crude was purified by column chromatography and eluted with CHCl3/MeOH (95:5) followed by a preparative TLC developed with CHCl3/MeOH (85:15) which afforded 1-11 as a white solid (20 mg, 0.034 mmol, 3%).
31P NMR (dr CH3OH): 55.55, 5.30; 1H NMR (dr CH3OH): 57.62 (IH, m, H6- cytidine, J= 7.7 Hz), 7.34 (2H, m, CH-phenyl), 7.23 (IH, m, CH-phenyl), 7.17 (2H, m, CH-phenyl), 6.14 (IH, m, Hl'-cytidine, J= 9.51 Hz), 5.83 (IH, m, H5-cytidine, J= 7.7 Hz), 4.31 (2H, m, CH2-ethyl), 4.19 (IH, m, H2'-cytidine), 4.13 (IH, m, H3'-cytidine), 4.08 (2H, m, H5'-cytidine), 3.71 (IH, m, CHa), 1.74 (IH, m, CH-lateral chain), 1.45 (2H, m, CH2-lateral chain) 1.15 (3H, m, CH3-ethyl), 0.85-0.82 (6H, m, 2 CH3-lateral chain).
Example 49 (S)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid methyl ester (1-1)
The title compound was prepared according to Example 7 utilizing 4'-azido-2',3'- isopropylidenecytidine-5'-[phenyl-(methoxy-L-alaninyl)]-phosphate (IV-4, 140 mg, 0.248 mmol) dissolved in a 60/40 acetic acid/water mixture, and heated to 90° C. Removal of the solvents in vacuo and purification by preparative TLC purification developed with DCM/MeOΗ (9:1) afforded 1-1 as a white solid (37 mg, 22 %).
31P NMR (121.5 MHz, d4-MeOH): 54.71, 4.54; 1H NMR (300 MHz, d4-MeOH): 57.71-7.63 (IH, m, H-6), 7.39-7.35 (2H, m, Ph-CH), 7.28-7.20 (3Η, m, Ph-CH), 6.20- 6.14 (1Η, dd, J= 4.5 and 14.5 Hz, H-I'), 5.94-5.87 (IH, m, H-5), 4.40-4.19 (4H, m, H-2', H-3' and H-5'), 4.02-3.97 (IH, m, AIa-CH), 3.71 (3H, m, -OCH3), 1.37-1.33 (3Η, m, AIa-CH3); 13C NMR (75.5 MHz, d4-MeOH): 5175.09, 175.04, 174.81, 174.75 (C=O), 167.17 (C-2), 157.72 (C-4), 151.53, 151.44, 151.43 (Ph-C), 142.62, 142.48 (C-6), 130.41 (Ar-C), 125.92 (Ar-C), 120.94, 120.88 (Ar-C), 98.27, 98.16, 98.14, 98.03 (C-5), 96.46 (C- 4'), 93.36, 92.94 (C-I'), 74.00, 73.83 (C-3'), 72.99 (C-2'), 68.31, 68.24, 68.19, 68.12 (C- 5'), 52.40 (OCH3), 51.16, 51.01 (AIa-CH), 20.02, 19.93, 19.79, 19.69 (AIa-CH3)
Example 50
(S)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid methyl ester (1-54)
The title compound was prepared as described in Example 4 utilizing 4'-azido- uridine (13a, 200 mg, 0.701 mmol), tøt-BuMgCl (1.4 mL IM solution in TΗF, 1.4 mmol), dry TΗF (10 mL) and 12c (1.4 mL IM solution of TΗF, 1.4 mmol). The crude was purified by column chromatography and eluted with a CΗCl3/MeOΗ gradient (90:10 to 80:20) followed by a preparative TLC developed with CHCl3/MeOH (90:10) which afforded 1-54 as a white solid (29 mg, yield 10%).
31P NMR (121.5 MHz, d4-MeOH): 54.78, 4.57; 1U NMR (300 MHz, d4-MeOH): 57.68-7.61 (IH, m, H-6), 7.42-7.36 (2H, m, Ph-CH), 7.28-7.20 (3Η, m, Ph-CH), 6.18- 6.11 (1Η, m, Η-l'), 5.75-5.66 (IH, m, H-5), 4.42-4.35 (2H, m, H-2' and H-3'), 4.23-4.16 (2H, m, H-5'), 4.06-3.95 (IH, m, AIa-CH), 3.70 (3H, m, -OCH3), 1.38-1.33 (3Η, m, AIa- CH3); 13C NMR (75.5 MHz, d4-MeOH): 5176.01, 175.96, 175.70 (C=O), 166.25 (C-2), 152.66, 152.59, 152.40, 152.31 (Ph-C), 143.12 (C-6), 131.32 (Ar-C), 126.82 (Ar-C), 121.80, 121.73 (Ar-C), 104.09, 104.01 (C-5), 99.19, 99.05, 98.92 (C-4'), 92.83, 92.44 (C- 1'), 74.00, 73.84 (C-3'), 74.20, 74.15, 74.04 (C-2'), 69.28, 69.21, 69.13, 69.06 (C-5'), 53.30 (-OCH3), 52.03, 51.87 (AIa-CH), 20.91, 20.83, 20.68, 20.58 (AIa-CH3).
Example 51
(R)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid benzyl ester (1-32)
step 1 - phenyl-(benzyloxy-D-alaninyl) phosphorochloridate (12m)
The title compound was prepared as described in Example 3 utilizing phenyl dichlorophosphate (Ha, 0.637 mL, 4.27 mmol) , D-alanine benzyl ester sulfonate salt (14m, 0.9 g, 4.27 mmol), dry TEA (1.19 mL, 8.54 mmol) and dry DCM (15 mL). The phosphorochloridate 12m was obtained as a clear oil (1.15 g, 3.25 mmol, 76%).
31P NMR (CDCl3): 59.29, 9.05; 1H NMR (CDCl3): 57.41 (6Η, m, 5 CH-phenyl, 1 CH-benzyl), 7.32-7.30 (4H, m, CH-benzyl), 5.26 (2H, d, CH2-benzyl), 4.66 (IH, m, NH), 4.34 (IH, m, CHa), 1.57 (3H, m, CH3-alanine).
step 2 - azido-cytidine 5'-O-[phenyl(benzyloxy-D-alaninyl) phosphate
The title compound was prepared as described in Example 4 utilizing 4'-azido- cytidine (13b, 300 mg, 0.986 mmol), ten- BuMgCl (2.46 mL IM solution in THF, 2.46 mmol) and 12m (2.46 mL IM solution of THF, 2.46 mmol). The crude was purified by column chromatography and eluted with CHCl3/MeOH (95:5) followed by a preparative TLC developed with CHCl3/MeOH (85:15) which afforded 1-31 as a white solid (20 mg, 0.033 mmol, 3%).
31P NMR (^rCH3OH): 54.80, 4.26; 1H NMR (dr CH3OH): 57.63 (IH, m, H6- cytidine, J= 7.6 Hz), 7.35 (6H, m, 5 CH-phenyl, 1 CH-benzyl), 7.23 (4H, m, CH-benzyl), 6.15 (IH, m, Hl'-cytidine), 5.89 (IH, m, H5-cytidine, J= 7.6 Hz), 5.16 (2H, s, CH2- benzyl), 4.35 (2H, m, H5'-cytidine), 4.26 (IH, m, H2'-cytidine), 4.23 (IH, m, H3'- cytidine), 4.16 (IH, m, CHa), 1.34 (3H, m, CH3-alanine).
Example 52
(S)-2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid ethyl ester (1-24) The title compound was prepared as described in Example 4 utilizing 4'-azido- uridine (13a, 200 mg, 0.70 mmol), tøt-BuMgCl (1.74 mL IM solution in THF, 1.74 mmol) and 12d (1.74 mL IM solution of THF, 1.74 mmol). The crude was purified by column chromatography and eluted with a CHCl3/MeOH gradient (90:10 to 80:20) followed by a preparative TLC developed with CHCl3/MeOH (90:10) which afforded 1-24 as a white solid (17 mg, yield 5%).
31P NMR (121.5 MHz, d4-MeOH): 54.84, 4.61; 1U NMR (300 MHz, d4-MeOH): 57.69-7.62 (IH, m, H-6), 7.42-7.36 (2H, m, Ph-CH), 7.29-7.20 (3Η, m, Ph-CH), 6.19- 6.11 (1Η, m, Η-l'), 5.75-5.66 (IH, m, H-5), 4.82 (IH, s, H-2'), 4.25 (IH, m, H-3'), 4.17- 4.12 (2H, m, H-5'), 4.00-3.92 (IH, m, AIa-CH), 1.38-1.32 (3H, m, AIa-CH3), 1.29-1.23 (3H, m, CH2CH3).
Example 53
(R)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid tert-butyl ester (1-53)
step 1 - phenyl-(tøt-butoxy-D-alaninyl) phosphorochloridate
The title compound was prepared as described in Example 3 utilizing phenyl dichlorophosphate (Ha, 1.640 mL, 11.00 mmol), D-alanine tert-butyl ester hydrochloride salt (14j, 2.00 g, 11.00 mmol), dry TEA (1.61 mL, 22.00 mmol) and dry DCM (15 mL). The phosphorochloridate 12j was obtained as a clear oil (1.43 g, 4.46 mmol, 41%).
31P NMR (CDCl3): 59.48, 9.30; 1H NMR (CDCl3): 57.37-7.12 (5Η, m, 5 CH- phenyl), 4.84 (IH, m, NH), 4.80 (IH, m, CHa), 1.93 (9H, s, CH3-tøt-butyl), 1.39 (3H, d, CH3- alanine, J= Al Hz).
step 2 - azido-cytidine 5'-O-[phenyl(tøt-butoxy-D-alaninyl) phosphate
The title compound was prepared as described in Example 4 utilizing 4'-azido- cytidine (13b, 250 mg, 0.821 mmol), ten- BuMgCl (2.05 mL IM solution in THF, 2.054 mmol) and 12j (2.05 mL IM solution of THF, 2.054 mmol). The crude was purified by column chromatography and eluted with CHCl3/MeOH (95:5) followed by a preparative TLC developed with CHCl3/MeOH (85:15) which afforded 1-53 as a white solid (3.5 mg, 0.033 mmol, 1%).
31P NMR (^-CH3OH): 54.91, 4.45; 1U NMR (^-CH3OH): 57.67 (IH, m, H6- cytidine, J= 7.5 Hz), 7.45 (5H, m, CH-phenyl), 6.17 (IH, m, Hl'-cytidine), 5.92 (IH, m, H5-cytidine, J= 7.5 Hz), 4.40-4.18 (2H, m, H2'-cytidine, H3'-cytidine, H5'-cytidine), 3.85 (IH, m, CHa), 1.45 (9, s, CH3-tøt-butyl), 1.37 (3H, m, CH3-alanine); MS(ES) m/e: 590 (MNa+, 100%); Accurate mass: C22H30N7O9NaP required 590.1761, found 590.1740.
Example 54
(S)-2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid benzyl ester (1-13)
The title compound was prepared as described in Example 4 utilizing 4'-azido- uridine (13a, 200 mg, 0.701 mmol), tøt-BuMgCl (1.75 mL IM solution in TΗF, 1.75 mmol) and 12an (1.75 mL IM solution of TΗF, 1.75 mmol). The crude was purified by column chromatography and eluted with a CΗCl3/MeOΗ gradient (90:10 to 80:20) followed by a preparative TLC developed with CHCl3/MeOH (90:10) which afforded 1-13 as a white solid (29 mg, yield 7%).
31P NMR (121.5 MHz, d4-MeOH): 54.80, 4.54; 1H NMR (300 MHz, d4-MeOH): 57.65-7.58 (IH, m, H-6), 7.36-7.34 (7H, m, Ph-CH), 7.26-7.19 (3Η, m, Ph-CH), 6.17- 6.13 (1Η, m, Η-l'), 5.72-5.64 (IH, m, H-5), 5.16 (2H, s, Bn-CH2), 4.35 (2Η, m, H-2' and H-3'), 4.17-4.12 (2H, m, H-5'), 4.05 (IH, m, AIa-CH), 1.41-1.34 (3H, m, AIa-CH3); 13C NMR (75.5 MHz, d4-MeOH): 5176.98, 174.97, 174.89 (C=O), 166.34 (C-4), 152.66, 152.31 (Ph-C), 143.04, 142.82 (C-6), 137.77, 173.58 (Ar-C), 131.30 (Ar-C), 130.51, 130.00, 129.92, 129.70 (Ar-C), 126.77 (Ar-C), 124.25 (Ar-C), 122.02 (Ar-C), 121.96, 1221.82, 121.78, 121.72 (Ar-C), 104.10, 104.00 (C-5), 99.04, 98.91 (C-4'), 92.80, 92.33 (C- 1'), 74.24, 74.14, 74.05 (C-2' and C-3'), 69.28 (C-5'), 68.46, 68.06 (Bn-CH2), 52.20, 52.02 (AIa-CH), 21.89, 21.82, 20.87, 20.78 (AIa-CH3).
Example 55
(R)-2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid benzyl ester (1-40) The title compound was prepared as described in Example 4 utilizing 4'-azido- uridine (13a, 200 mg, 0.701 mmol), tøt-BuMgCl (1.4 mL IM solution in THF, 1.402 mmol) and phenyl (benzyloxy-D-alaninyl)phosphorochloridate (12m, 2.10 mLof solution IM in THF, 2.10 mmol). The crude was purified by column chromatography and eluted with CHCl3/MeOH (95:5) followed by a preparative TLC developed with CHCl3/MeOH (9:1) which afforded 1-40 as a white solid (100 mg, 0.1723 mmol, 16%).
31P NMR (^-CH3OH): 54.89, 4.29; 1U NMR (dr CH3OH): 57.61 (IH, m, H6- uridine), 7.36 (7H, m, CH-phenyl), 7.25 (3H, m, CH-phenyl), 6.15 (IH, m, Hl '-uridine), 5.68 (IH, m, H5-uridine), 5.17 (2H, s, CH2-benzyl), 4.38 (IH, m, H3'-cytidine), 4.32 (IH, m, H2'-cytidine), 4.23 (2H, m, H5'-cytidine), 4.05 (IH, m, CHa), 1.36 (3H, m, CH3- alanine); 13C NMR (^-CH3OH): 5175.34, 175.29, 175.07, 175.01 (1C, C=O ester), 166.22 (1C, C4-uridine), 152.65, 152.56, 152.40, 152.36, 152.31, 152.27 (1C, C2-uridine), 142.94, 142.86 (1C, C6-uridine), 137.60, 137.54 (1C, C-phenyl), 131.31 (2C, CH-phenyl), 130.00 (2C, CH-phenyl), 129.79, 129.76, 129.72 (2C, CH-phenyl), 126.79 (1C, CH- phenyl), 121.83, 121.77, 121.71, 121.64 (2C, CH-phenyl), 104.03,103.99 (1C, C5-uridine), 99.11, 98.98 (1C, C4'-uridine), 92.69, 92.43 (1C, Cl'-uridine), 74.22, 74.16 (1C, C3'- uridine), 74.13, 73.93 (1C, C2'-uridine), 69.28, 69.21 (1C, CH2-benzyl), 68.71, 68.65, 68.54, 68.48 (1C, C5'-uridine), 52.17, 51.92 (1C, CHa), 20.80, 20.70, 20.59 (1C, CH3- lateral chain): MS (ES) m/e: 625.1 (MNa+, 100%); Accurate mass: C25H27N6O10NaP required 625.1424, found 625.1424.
Example 56
(R)-2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid isopropyl ester (1-60)
step 1 - D- alanine /so-propyl ester hydrochloride salt
D-alanine /so-propyl ester hydrochloride salt was prepared by the procedure in Example l(B) utilizing D-alanine (7.0 g, 78.6 mmol), thionyl chloride (11.42 mL, 157.2 mmol) and IPA (90 mL, 1.178 mmol). The /io-propyl ester 14ap was obtained as a white solid (8.3 g, 49.70 mmol, 64%).
1H NMR (^6-DMSO): 58.70 (3Η, s, NH3 +-amino acid ester), 4.87 (IH, m, Cϋ-iso- propyl, J= 6.3 Hz), 1.54 (3H, m, CH3-alanine), 1.25 (6H, d, CH3 /^-propyl, J= 6.3 Hz).
step 2 - phenyl-(isopropoxy-D-alaninyl) phosphorochloridate The title compound was prepared as described in Example 3 utilizing phenyl dichlorophosphate (Ha, 1.79 mL, 12.0 mmol), 14ap (2.0 g, 12.0 mmol), dry TEA (3.34 mL, 24.0 mmol) and dry DCM (25 mL). The phosphorochloridate 12ap was obtained as a clear yellow oil (0.77 g, 2.52 mmol, 21%).
31P NMR (CDCl3): 59.41, 9.09; 1H NMR (CDCl3): 57.43 (2H, m, CH-phenyl), 7.25
(IH, m, CH-phenyl), 6.80 (2H, m, CH-phenyl), 5.00 (IH, m, NH), 4.97 (IH, m, CH- isopropyl), 1.48 (3H, m, CH3-alanine), 1.27 (6H, m, CH3-isopropyl).
step 3 - azido-uridine 5'-O-[phenyl(isopropoxy-cyclopentylglycinyl)] phosphate (I- 60)
The title compound was prepared as described in Example 4 utilizing 4'-azido- uridine (13a, 200 mg, 0.701 mmol), tert-BuMgCl (1.0 mL IM solution in THF, 1.052 mmol) and 12ap (1.0 mL of solution IM in THF, 1.052 mmol). The crude was purified by column chromatography and eluted with CHCl3/MeOH (95:5) followed by a preparative TLC developed with CHCl3/MeOH (9:1) which afforded 1-60 as a white solid (19.7 mg, 0.0355 mmol, 4%).
31P NMR (dr CH3OH): 54.97, 4.41; 1U NMR (dr CH3OH): 57.71 (IH, m, H6- uridine), 7.30 (2H, m, CH-phenyl), 7.27 (IH, m, CH-phenyl), 7.20 (2H, m, CH-phenyl), 6.18 (IH, m, Hl'-uridine), 5.66 (IH, m, H5-uridine), 4.98 (IH, m, CH-isopropyl, J= 3.4 Hz), 4.42 (IH, m, H2'-uridine), 4.37 (IH, m, H3'-uridine), 4.24 (2H, m, H5'-uridine), 1.45 (3H, m, CH3-alanine), 1.24 (6H, d, 2 CH3-isopropyl, J= 3.4 Hz).
Example 57
(S)-2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid isopropyl ester (1-14)
The title compound was prepared as described in Example 4 utilizing 4'-azido- uridine (13a, 100 mg, 0.35 mmol), tert-BuMgCl (0.87 mL IM solution in TΗF, 0.87 mmol) and 12e (0.87 IM solution of TΗF, 0.87 mmol). The crude was purified by column chromatography and eluted with a CΗCl3/MeOΗ gradient (90:10 to 80:20) followed by a preparative TLC developed with CHCl3/MeOH (90:10) which afforded 1-14 as a white solid (33.6 mg, yield 17%).
31P NMR (121.5 MHz, d4-MeOH): 54.87, 4.64; 1H NMR (300 MHz, d4-MeOH): 57.64 (IH, m, H-6), 7.39 (2H, m, Ph-CH), 7.29 (3Η, m, Ph-CH), 6.15 (1Η, m, Η-l'), 5.66 (IH, m, H-5), 4.97 (IH, s, H-2'), 4.37 (2H, m, iso-Pr-CH and H-3'), 4.17-4.12 (2H, m, H- 5'), 3.99-3.92 (IH, m, AIa-CH), 1.34 (3H, m, AIa-CH3), 1.24 (6H, m, WO-Pr-CH3).
Example 58
(R)-2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid sec-butyl ester (1-62)
step 1 - D-alanine 2-butyl ester /?-toluenesulfonate salt
D-alanine 2-butyl ester /?-toluenesulfonate salt was prepared by the procedure in Example l(C) from D-alanine (5.0 g, 56.1 mmol), pTsOΗ monohydrate (11.747 g, 61.7 mmol), 2-butanol (26 mL, 280 mmol)) and toluene (50 mL). The product 14k was isolated as white solid (12.44 g, 39.2 mmol, 70%)
1H NMR (^-CH3OH): 58.49 (3H, s, NH3 +-amino acid ester), 7.85 (2H, d, tosylate, J= 8.0 Hz), 7.15 (2H, d, CH-tosylate, J= 8.0 Hz), 4.20-4.00 (2H, CHa, CH-2-butyl), 2.42 (3H, s, CH3- tosylate), 1.49 (3H, d, CH3-alanine, J= 9.0 Hz), 1.24-1.20 (5H, m, CH2-2- butyl, CH3-2-butyl), 0.94 (3H, m, CH3-2-butyl).
step 2 - phenyl-(2-butoxy-D-alaninyl) phosphorochloridate
The title compound was prepared as described in Example 3 utilizing phenyl dichlorophosphate (Ha, 1.40 mL, 9.45 mmol), 14k (3.0 g, 9.45 mmol), dry TEA (2.63 mL, 18.90 mmol) and dry DCM (15 mL). The phosphorochloridate 12k was obtained as a clear yellow oil (2.70 g, 8.44 mmol, 71.93%).
31P NMR (CDCl3): 59.51, 9.32; 1H NMR (CDCl3): 57.37-7.12 (5H, m, 5 CH- phenyl), 4.96-4.76 (IH, m, NH, CHa), 4.05 (IH, m, CH-2-butyl), 1.41 (3H, d, CH3- alanine), 1.24-1.19 (5H, m, CH2-2-butyl, CH3-2-butyl), 0.92 (3H, m, CH3-2-butyl).
step 3 - azido-uridine 5'-O-[phenyl(2-butoxy-D-alaninyl) phosphate (1-62)
The title compound was prepared as described in Example 4 utilizing 4'-azido- uridine (13a 200 mg, 0.701 mmol), tert-BuMgCl (1.4 mL IM solution in THF, 1.402 mmol) and 12k (1.40 mL of solution IM in THF, 1.402 mmol). The crude product was purified by column chromatography and eluted with CHCl3/MeOH (85:15) followed by a preparative TLC developed with CHCl3/MeOH (9:1) which afforded 1-62 as a white solid (18.2 mg, 0.033 mmol, 5%). 31P NMR Cd4-CH3OH): 54.97, 4.96, 4.45, 4.41; 1H NMR (^-CH3OH): 57.70 (IH, m, H6-cytidine, J= 10.0 Hz), 7.42-7.21 (5H, m, CH-phenyl), 6.15 (IH, m, Hl'-cytidine), 5.72 (IH, m, H5-cytidine, J= 10.0 Hz), 4.40-4.15 (2H, m, H2'-cytidine, H3'-cytidine, H5'-cytidine), 3.91 (IH, m, CHa), 1.61 (3H, d, CH3-alanine), 1.40-1.19 (5H, m, CH2-2- butyl, CH3-2-butyl), 0.91 (3H, m, CH3-2-butyl); 13C NMR dept (dr CH3OH): 5143.03, 142.94 (1C, C6-uridine), 131.32 (1C, CH-phenyl), 121.86, 121.79 (2C, CH-phenyl), 121.72, 121.66 (2C, CH-phenyl), 104.05 (1C, C5-cytidine), 92.60-92.43 (1C, Cl'-uridine), 75.30, 74.84 (1C, C3 '-uridine), 74.27, 74.15, 74.09, 74.04 (1C, C2'-uridine), 69.26 (1C, C5'-uridine), 68.86 (1C, CH-2-butyl), 52.01 (1C, CH-α), 30.20, 30.16 (1C, CH2-2-butyl), 20.53, 20.47 (1C, CH3-lateral chain), 20.18, 20.14 (1C, CH3-2-butyl), 20.05, 19.97 (1C, CH3-2-butyl).
Example 59
(R)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid dodecyl ester (1-64)
step 1 - D-alanine dodecyl ester/?- toluene sulfonate salt
D-alanine dodecyl ester p- toluene sulfonate salt (141) was prepared by the procedure in Example l(C) from D-alanine (2.5 g, 28.0 mmol), TsOH monohydrate (5.87 g, 30.9 mmol), dodecyl alcohol (13.0 g, 280 mmol) and toluene (50 mL). The product was isolated as white solid (7.92 g, 18.48 mmol, 66%)
1H NMR (dr CH3OH): 58.45 (3H, s, NH3 +-amino acid ester), 7.82 (2H, d, tosylate, J= 8.1 Hz), 7.19 (2H, d, CH-tosylate, J= 8.1 Hz), 4.16-4.00 (3H, CHa, CH2-dodecyl), 2.40 (3H, s, CH3- tosylate), 1.49 (3H, d, CH3-alanine, J= 12 Hz), 1.30 (22H, m, CH2-dodecyl), 0.94 (3H, t, CH3-dodecyl, J= 6.3 Hz).
step 2 - phenyl-(dodecyloxy-D-alaninyl) phosphorochloridate
The title compound was prepared as described in Example 3 utilizing phenyl dichlorophosphate (Ha, 0.521 mL, 3.49 mmol), D-alanine dodecyl ester tosylate salt (141, 1.5 g, 3.49 mmol), dry TEA (0.959 mL, 6.88 mmol) and dry DCM (15 mL). The phosphorochloridate 121 was obtained as a clear oil (1.00 g, 2.34 mmol, 67%).
31P NMR (CDCl3): 59.38, 9.15; 1H NMR (CDCl3): 7.41-7.19 (5H, m, 5 CH- phenyl), 4.78 (IH, m, NH), 4.25-4.00 (3H, m, CHa, CH2-dodecyl), 1.54 (3H, m, CH3- alanine), 1.28 (22H, m, 11 CH2-dodecyl), 0.91 (3H, t, CH3-dodecyl, J= 6.3 Hz). step 3 - azido-cytidine S'-O-fpheny^dodecyloxy-D-alaninyl) phosphate
The title compound was prepared as described in Example 4 utilizing 4'-azido- cytidine (13b, 200 mg, 0.657 mmol), ten- BuMgCl (1.64 mL IM solution in THF, 1.640 mmol) and 121 (1.64 mL IM solution of THF, 1.64 mmol). The crude was purified by column chromatography and eluted with CHQ3/Me0H (85:15) followed by a preparative TLC developed with CHCl3/MeOH (85:15) which afforded 1-64 as a white solid (22.6 mg, 0.033 mmol, 5%).
31P NMR (^-CH3OH): 54.80, 4.33; 1H NMR (dr CH3OH): 5H 7.65 (IH, m, H6- cytidine, J= 9.0 Hz), 7.42-7.18 (5H, m, 5H, CH-phenyl), 6.18 (IH, m, Hl'-cytidine), 5.90 (IH, m, H5-cytidine), 4.40-3.95 (2H, m, H2'-cytidine, H3'-cytidine, H5'-cytidine, CHa, CH2-dodecyl), 1.54 (3H, m, CH3-alanine), 1.30 (22H, m, 11 CH2-dodecyl), 0.92 (3H, t, CH3-dodecyl, ^ 6.5 Hz).
Example 60
(R)-2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid dodecyl ester (1-63)
The title compound was prepared as described in Example 4 utilizing 4'-azido- uridine (13a, 200 mg, 0.701 mmol), tøt-BuMgCl (1.40 mL IM solution in TΗF, 1.402 mmol) and phenyl (dodecyl-D-alaninyl)phosphorochloridate (121, 1.40 ml of solution IM in TΗF, 1.402 mmol). The crude was purified by column chromatography and eluted with CΗCl3/MeOΗ (95:5) followed by a preparative TLC developed with CHCl3/MeOH (85:15) which afforded 1-63 as a white solid (18.2 mg, 0.033 mmol, 4%).
31P NMR (^rCH3OH): 54.92, 4.38; 1H NMR (dr CH3OH): 57.67 (IH, m, H6- uridine, J= 8.7 Hz), 7.42-7.22 (5H, m, 5H, CH-phenyl), 6.15 (IH, m, Hl'-cytidine), 5.73 (IH, m, H5-cytidine, J= 8.7 Hz), 4.40-3.95 (2H, m, H2'-cytidine, H3'-cytidine, H5'- cytidine, CHa, CH2-dodecyl), 1.64 (3H, m, CH3-alanine), 1.30 (22H, m, 11 CH2- dodecyl), 0.92 (3H, t, CH3-dodecyl).
Example 61
(S)-2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-4- methylsulfanyl-butyric acid ethyl ester (1-48). The title compound was prepared as described in Example 4 utilizing 4'-azido- uridine (13a, 200 mg, 0.70 mmol), tert-BuMgCl (1.80 mL IM solution in THF, 1.8 mmol), phenyl (ethoxy-L-methinonyl)phosphorochloridate (12x, 0.615 g 1.75 mmol) and THF (10 mL). The crude was purified by column chromatography and eluted with CHCl3/MeOH (90:10) followed by a preparative TLC developed with CHCl3/MeOH (90:10) which afforded 1-48 as a white solid (0.42 g, 0.07 mmol, 10%).
31P NMR (CD4OD): 54.23, 4.35; 1H NMR (CD4OD): 58.21(1H, d, H6), 6.7-7.1(5H, m, Ar-H), 6.02(1H, dd, Hl'), 5.76(1H, dd, H5), 4.08(2H, q, 0-CH2-CH3), 3.6-3.9(2H, m, H2', H3'), 3.29(1H, t, NH-CH-CO2Et)), 2.3-2.4(4H, m, CH2, CH2-S-CH3), 1.98(3H, s, S- CH3) 1.28(3H, t, OCH2-CH3)
Example 62
(S)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy]-phenoxy-phosphorylamino}-4- methylsulfanyl-butyric acid ethyl ester (1-47)
The title compound was prepared as described in Example 4 utilizing 4'-azido- cytidine (13b, 400 mg, 1.32 mmol), tert-BuMgCl (3.3 mL IM solution in TΗF, 3.3 mmol), phenyl (ethoxy-L-methinonyl)phosphorochloridate (12x, 1.16 g, 3.3 mmol) and TΗF (10 mL). The crude was purified by column chromatography and eluted with CΗCl3/MeOΗ (85:15) followed by a preparative TLC developed with CHCl3/MeOH (90:10) which afforded I-47as a white solid (0.23 g, 0.038 mmol, 3%).
31P NMR (CD4OD): 54.01, 4.27; 1H NMR (CD4OD): δ7.96(lH, d, H6), 6.5-7.1(5H, m, Ar-H), 6.23(1H, dd, Hl'), 5.94(1H, dd, H5), 4.15(2H, q, 0-CH2-CH3), 3.7-3.9(2H, m, H2', H3'), 3.39(1H, t, NH-CH-CO2Et)), 2.2-2.45(4H, m, CH2, CH2-S-CH3), 2.07(3H, s, S-CH3) 1.21(3H, t, OCH2-CH3)
Example 63
(S)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy]-phenoxy-phosphorylamino}-pentanedioic acid diethyl ester (1-83)
step 1 - phenyl-(ethoxy-L-ethylaspartyl)phosphorochloridate
The title compound was prepared as described in Example 3 utilizing phenyl dichlorophosphate (Ha, 0.670 mL, 4.49 mmol), L-ethylasparatate ethyl ester hydrochloride salt (14y, 1.0 g, 4.49 mmol), dry TEA (1.25 niL, 8.98 mmol) and dry DCM (15 mL). The phosphorochloridate 12y was obtained as a clear oil (1.137 g, 3.143 mmol, 70%).
31P NMR (CDCl3): 59.78, 9.54; 1H NMR (CDCl3): 57.31-7.06 (5H, m, 5 CH- phenyl), 4.86 (IH, m, NH), 4.25-4.00 (5H, m, CHa, CH2-ethyl, CH2-ethyl lateral chain), 2.78 (2H, m, CH2-lateral chain), 1.23 (6H, m, CH3-ethyl, CH3-ethyl lateral chain).
step 2 - azido-cytidine 5'-O-[phenyl(ethoxy-L-ethylaspartyl) phosphate
The title compound was prepared as described in Example 4 utilizing 4'-azido- cytidine (13b, 300 mg, 0.986 mmol), ten- BuMgCl (1.97 mL IM solution in THF, 1.972 mmol) and 12y (1.97 mL IM solution of THF, 1.972 mmol). The crude was purified by column chromatography and eluted with CHCl3/MeOH (85:15) which afforded 1-83 as a white solid (30.15 mg, 0.0493 mmol, 5%).
31P NMR (^-CH3OH): 54.67, 4.40; 1U NMR (dr CH3OH): 57.70 (IH, m, H6- cytidine), 7.40-7.16 (5H, m, CH-phenyl), 6.16 (IH, m, Hl'-cytidine), 5.85 (IH, m, H5- cytidine), 4.40-4.00 (8H, m, H2'-cytidine, H3'-cytidine, H5'-cytidine, CHa, CH2-ethyl, CH2-ethyl lateral chain), 2.78 (2H, m, CH2-lateral chain), 1.23 (6H, m, CH3-ethyl, CH3- ethyl lateral chain); MS (ES) m/e: 634.1 (MNa+, 100%); Accurate mass: C23H30N7O11NaP required 634.1639, found 634.1624.
Example 64
(S)-l-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy]-phenoxy-phosphoryl}-pyrrolidine-2- carboxylic acid ethyl ester (III-l)
The title compound was prepared according to Example 7 from 4'-azido-2',3'- isopropylidenecytidine-5'-[phenyl-(ethoxy-L-prolinyl)]-phosphate (70 mg, 0.105 mmol) dissolved in a 60/40 acetic acid/water mixture, and heated to 90° C. Removal of the solvents in vacuo and purification by preparative TLC purification developed with DCM/MeOH (9:1) afforded III-l as a white solid (14 mg, 35 %).
31P NMR (121.5 MHz, d4-MeOH): 52.79, 2.43; 1H NMR (300 MHz, d4-MeOH): §1.12-1.61 (IH, dd, J= 7.1, 25.0 Hz, H-6), 7.42-7.36 (2H, m, Ph-CH), 7.31-7.20 (3Η, m, Ph-CH), 6.21-6.02 (1Η, dd, J= 4.6, 50 Hz, H-I'), 5.93-5.86 (IH, dd, J= 14.2, 8.1 Hz, H- 5), 4.45-4.09 (6H, m, H-5', Pro-CH and AIa-CH), 3.46-3.34 (2H, m, CH2CH3), 2.28-2.14 (IH, m, Pro-CH), 2.05-1.82 (3H, m, Pro-CH), 1.33-1.20 (3H, m, CH2CH3). Example 65
(S)-l-{[(2R,3S,4R,5R)-2-Azido-5-(2, 4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-mran-2-ylmethoxy]-phenoxy-phosphoryl}-pyrrolidine-2- carboxylic acid ethyl ester (III-2)
The title compound was prepared as described in Example 4 utilizing 4'-azido- uridine (13a, 200 mg, 0.701 mmol), tert-BuMgCl (1.440 mL IM solution in THF, 1.40 mmol), dry THF (10 mL), dry THF (10 mL) and 12am (1.40 mL IM solution of THF, 1.40 mmol). The crude was purified by column chromatography and eluted with a CHCl3/MeOH gradient (90:10 to 80:20) followed by a preparative TLC developed with CHCl3/MeOH (90:10) which afforded III-2 as a white solid (17 mg, yield 5%).
31P NMR (121.5 MHz, d4-MeOH): 52.83, 2.46; 1U NMR (300 MHz, d4-MeOH): 57.71-7.61 (IH, dd, J= 8.1, 19.0 Hz, H-6), 7.43-7.38 (2H, m, Ph-CH), 7.31-7.21 (3Η, m, Ph-CH), 6.19-6.05 (1Η, dd, J= 5.4, 37 Hz, H-I'), 5.77-5.65 (IH, dd, J= 25.1, 8.2 Hz, H- 5), 4.43-4.27 (3H, m, H-5' and Pro-CH) 4.26-4.11 (4H, m, Pro-CH and AIa-CH), 3.34- 3.31 (2H, m, CH2CH3), 2.29-2.17 (IH, m, Pro-CH), 2.04-1.85 (3H, m, Pro-CH), 1.32- 1.22 (3H, m, CH2CH3); 13C NMR (75.5 MHz, d4-MeOH): 5175.13 (C=O), 166.22 (C-4), 158.87 (C-2), 152.46 (Ph-C), 142.98, 142.77 (C-6), 131.46, 131.33 (Ar-C), 126.85 (Ar-C), 121.75, 121.69, 121.44, 121.38 (Ar-C), 103.90 (C-5), 98.97, 98.85 (C-4'), 92.83, 92.27 (C- 1'), 74.25, 74.01, 73.83 (C-2' and C-3'), 69.57 (C-5'), 62.93, 62.78 (Pro-CH), 62.25, 62.16 (Pro-CH), 32.84, 32.72 (Pro-CH), 26.54, 26.42 (Pro-CH), 14.85 (CH2CH3).
Example 66
(S)-2-[[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy]-(4-chloro-phenoxy)-phosphorylamino]-4- methyl-pentanoic acid ethyl ester (1-16)
step 1 - /?-chloro-phenyl dichlorophosphate
/?-Chloro-phenyl dichlorophosphate was prepared as described in Example 2 from /?-chlorophenol (3.0 g, 0.023 mol), POCl3 (2.17 mL, 0.023 mol) and TEA (3.25 mL, 0.023 mol) and dry Et2O (25 mL). The dichlorophosphate lib was obtained as a yellow clear oil (4.15 g, 0.0169 mol, 40%) and used without further purification.
31P NMR (CDCl3): 55.00; 1H NMR (CDCl3): 57.44 (2Η, m, CH-phenyl), 7.30 (2H, m, CH-phenyl). step 2 - p-chloro-phenvHethoxy-L-leucinyl) phosphorochloridate (12ab)
The title compound was prepared as described in Example 3B utilizing p- chlorophenyl dichlorophosphate (lib, 1.88 mL, 7.66 mmol), L-leucine ethyl ester hydrochloride salt (14q, 1.5 g, 7.66 mmol), dry TEA (2.14 mL, 15.32 mmol) and dry DCM (15 mL). The phosphorochloridate 12ab was obtained as a clear oil (2.16 g, 5.87 mmol, 77%).
31P NMR (CDCl3): δp 9.75, 9.73; 1H NMR (CDCl3): 5H 7.23 (2H, m, CH-phenyl), 7.12 (2H, m, CH-phenyl), 4.37 (IH, m, NH), 4.13 (2H, m, CH2-ethyl), 3.99 (lH,m, CH- 00, 1.78 (IH, m, CH-lateral chain), 1.53 (2H, m, CH2-lateral chain), 1.16 (6H, m, CH3- lateral chain), 0.82 (3H, m, CH3-ethyl).
step 3 - azido-cytidine 5'-O-[/?-chloro-phenyl(ethoxy-L-leucinyl) phosphate
The title compound was prepared as described in Example 4 utilizing 4'-azido- cytidine (13b, 350 mg, 1.15 mmol), tert-BuMgCl (2.87 mL IM solution in THF, 2.876 mmol) and 12ab (1.06 g, 2.88 mmol). The crude was purified by column chromatography and eluted with CHCl3/MeOH (90:10) which afforded 1-16 as a white solid (100 mg, 0.162 mmol, 14%).
31P NMR (dr CH3OH): δp 5.19, 4.92; 1U NMR (^-CH3OH): δ7.74 (IH, m, H6- cytidine, J= 7.4 Hz), 7.36 (2H, m, CH-phenyl), 7.24 (2H, m, CH-phenyl), 6.15 (IH, m, Hl'cytidine), 5.96 (IH, m, H5-cytidine, J= 7.4 Hz), 4.37 (IH, m, H2'-cytidine), 4.25 (IH, m, H3'-cytidine), 4.15 (2H, m, CH2-ethyl), 4.13 (2H, m, H5'-cytidine), 3.88 (IH, m, CH- α), 1.73 (IH, m, CH-lateral chain), 1.55 (2H, m, CH2-lateral chain), 1.25 (3H, m, CH3- lateral chain), 1.19 (3H, m, CH3-lateral chain), 0.90 (3H, m, CH3-ethyl); MS (ES) m/e: 638.1 (MNa+, 100%); Accurate mass: C23H3IN7O9NaPCl required 638.1495, found 638.1507.
Example 67
(S)-2-[[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-diriydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy]-(4-chloro-phenoxy)-phosphorylamino]-4- methyl-pentanoic acid ethyl ester (1-30)
The title compound was prepared as described in Example 4 utilizing 4'-azido- uridine (13a, 250 mg, 0.876 mmol), tøt-BuMgCl (1.75 mL IM solution in TΗF, 1.753 mmol) and 12ab (0.644 g, 1.753 mmol). The crude was purified by column chromatography and eluted with CHQ3/Me0H (90:10) which afforded 1-30 as a white solid (100 mg, 0.162 mmol, 14%).
31P NMR ((U-CH3OH): 3.76, 3.46; 1H NMR (^-CH3OH): δ7.67 (IH, m, H6- cytidine, J= 10.4 Hz), 7.38 (2H, d, CH-phenyl, J= 9.0 Hz), 7.26 (2H, d, CH-phenyl, J= 9.0 Hz), 6.15 (IH, m, Hl'cytidine), 5.72 (IH, m, H5-cytidine, J= 10.4 Hz), 4.38 (IH, m, H2'-cytidine), 4.36 (IH, m, H3'-cytidine), 4.17 (2H, m, CH2-ethyl), 4.13 (2H, m, H5'- cytidine), 3.89 (IH, m, CH-α), 1.73 (IH, m, CH-lateral chain), 1.55 (2H, m, CH2-lateral chain), 1.26 (3H, m, CH3-lateral chain), 1.23 (3H, m, CH3-lateral chain), 0.91 (3H, m, CH3-ethyl); MS (ES) m/e: 639.1 (MNa+, 100%); Accurate mass: C23H3IN7O9NaPCl required 639.1348, found 639.1347.
Example 68
(S)-2-[[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy]-(4-chloro-phenoxy)-phosphorylamino]- propionic acid benzyl ester (1-45)
The title compound was prepared as described in Example 4 utilizing 4'-azido- uridine (13a, 200 mg, 0.701 mmol), tøt-BuMgCl (1.4 mL IM solution in TΗF, 1.4 mmol), dry TΗF (10 mL) and 12z (1.4 mL IM solution of TΗF, 1.4 mmol). The crude was purified by column chromatography and eluted with a CΗCl3/MeOΗ gradient (90:10 to 80:20) followed by a preparative TLC developed with CHCl3/MeOH (90:10) which afforded 1-45 as a white solid (25 mg, yield 6%).
31P NMR (121.5 MHz, d4-MeOH): 54.81, 4.67; 1U NMR (300 MHz, d4-MeOH): 57.57-7.49 (IH, m, H-6), 7.27-7.20 (7H, m, Ph-CH), 7.16-7.08 (2Η, m, Ph-CH), 6.06- 5.95 (1Η, m, Η-l'), 5.64-5.55 (IH, m, H-5), 5.05 (2H, m, Bn-CH2), 4.28 (2Η, m, H-5'), 4.15-4.03 (2H, m, H-2' and H-3'), 3.99-3.89 (IH, m, AIa-CH), 1.32-1.20 (3H, m, AIa- CH3); 13C NMR (75.5 MHz, d4-MeOH): 5173.19, 173.14, 172.90, 172.83 (C=O), 164.22 (C-2), 150.61, 150.53 (Ph-C), 145.80, 145.70 (C-6), 141.23, 141.01 (Ar-C), 135.54 (Ar-C), 129.98, 129.19, 128.59 (Ar-C), 127.99, 127.76, 127.21, 127.70 (Ar-C), 126.37 (Ar-C), 121.43, 121.36 (Ar-C), 116.05 (Ar-C), 102.04, 101.95 (C-5), 97.08, 96.96, 96.83 (C-4'), 91.21, 90.75 (C-I'), 72.09, 71.93 (C-3'), 67.38, 67.21, 67.15, 66.46 (C-2'), 66.46 (Bn-CH2), 50.15, 50.00 (AIa-CH), 18.86, 18.77, 18.63, 18.52 (AIa-CH3).
Example 69 (R)-2-[[(2R,3S,4R,5R)-2-Azido-5-(2,Φdioxo-3,4-dihydro-2ff-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy]-(4-chloro-phenoxy)-phosphorylamino]- propionic acid benzyl ester (1-51)
step 1 - p-chloro-phenyl-Cbenzyloxy-D-alaninyl) phosphorochloridate
The title compound was prepared as described in Example 3 utilizing 5.7 mL of a solution IM in DCM of/?-chlorophenyl dichlorophosphate (lib, 1.40 mL, 5.69 mmol), D-alanine benzyl ester tosylate salt (14m, 2 g, 5.69 mmol), dry TEA (1.6 mL, 11.38 mmol) and dry DCM (15 mL). The phosphorochloridate 12aa was obtained as a clear oil (2.16 g, 5.87 mmol, 77%).
31P NMR (CDCl3): 59.37, 9.11; 1H NMR 5H (CDCl3): 7.39 (9H, m, CH-phenyl),
5.18 (2H, d, CH2-benzyl), 4.52 (IH, m, NH), 4.18 (IH, m, CH-α), 1.45 (3H, m, CH3- lateral chain).
step 2 - azido-uridine 5'-O-[p-chloro-phenyl(benzyloxy-L-alaninyl) phosphate
The title compound was prepared as described in Example 4 utilizing 4'-azido- uridine (13a, 215 mg, 0.754 mmol), tøt-BuMgCl (1.1 mL IM solution in THF, 1.130 mmol) and 1.1 mLof a IM solution of/?-chloro-phenyl-(benzyloxy-D-alaninyl) phosphorochloridate (12aa, 0.400 g, 2.88 mmol). The crude was purified by column chromatography and eluted with CHCl3/MeOH (90:10). The product was further purified by preparative tic on silica gel and developed with CHCl3/MeOH (90:10) which afforded 1-51 as a white solid (10 mg, 0.162 mmol, 2%).
31P NMR (dr CH3OH): δp 4.92, 4.43; 1H NMR 1H NMR (^-CH3OH): δ7.62 (IH, m, H6-cytidine), 7.36 (6H, m, CH-phenyl), 7.24 (3H, m, CH-phenyl), 6.12 (IH, m, Hl'cytidine), 5.70 (IH, t, H5-cytidine, J= 7.41 Hz), 5.16 (2H, CH2-benzyl), 4.39 (IH, m, H2'-cytidine), 4.22 (IH, m, H3'-cytidine), 4.15 (2H, m, CH2-ethyl), 4.05 (2H, m, H5'- cytidine), 3.68 (IH, m, CH-α), 1.35 (3H, m, CH3-lateral chain); ms (ES) m/e: 659.0 (MNa+, 100%); Accurate mass: C25H26N6O10NaPCl required 659.1029, found 659.1034.
Example 70
(S)-2-[[(2R3S,4R5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy]-(4-chloro-phenoxy)-phosphorylamino]-4- methyl-pen tanoic acid ethyl ester (1-17)
step 1 - 3,4-dichloro-phenyldichloro phosphate 3,4-Dichloro-phenyl dichlorophosphate was prepared as described in Example 2 fromp-chlorophenol (3.79 g, 0.023 mol), POCl3 (2.17 mL, 0.023 mol) and TEA (3.25 mL, 0.023 mol) and dry Et2O (25 mL). The dichlorophosphate lie was obtained as a yellow clear oil (2.93 g, 0.0105 mol, 45%) and used without further purification.
31P NMR (CDCl3): 54.79; 1H NMR (CDCl3): 57.41 (IH, m, CH-phenyl), 7.38 (IH, m, CH-phenyl), 7.33 (IH, m, CH-phenyl).
step 2 - 3,4-dichloro-phenyl-(ethoxy-L-leucinyl) phosphorochloridate
The title compound was prepared as described in Example 3 utilizing 3,4-dichloro- phenyl dichlorophosphate (lie, 7.6 mLof a IM solution in DCM, 2.14 g, 7.66 mmol), L- leucine ethyl ester hydrochloride salt (14q, 1.5 g, 7.66 mmol), dry TEA (2.14 mL, 15.32 mmol) and dry DCM (15 mL). The phosphorochloridate 12ac was obtained as a clear oil (2.28 g, 5.66 mmol, 75%).
31P NMR (CDCl3): 59.84, 9.78;1H NMR (CDCl3): 57.41 (IH, m, CH-phenyl), 7.38 (IH, m, CH-phenyl), 7.33 (IH, m, CH-phenyl), 4.59 (IH, m, NH), 4.28 (IH, m, CHa), 4.09 (2H, m, CH2-ethyl), 3.88 (IH, m, CH-a), 1.70 (IH, m, CH-lateral chain), 1.45 (2H, m, CH2-lateral chain), 1.03 (6H, m, CH3-lateral chain), 0.78 (3H, m, CH3-ethyl).
step 3 - azido-cytidine 5'-O-[3,4-dichloro-phenyl(ethoxy-L-leucinyl) phosphate
The title compound was prepared as described in Example 4 utilizing 4'-azido- cytidine (13b, 350 mg, 1.15 mmol), ^T-BuMgCl (2.87 mL IM solution in THF, 2.876 mmol) and 2.87 mLof solution IM of 3,4-dichloro-phenyl-(ethoxy-L-leucinyl) phosphorochloridate (12ac, 1.06 g, 2.88 mmol). The crude was purified by column chromatography and eluted with CHCl3/MeOH (90:10) which afforded 1-17 as a white solid (40 mg, 0.061 mmol, 5%).
31P NMR (dr CH3OH): 55.27, 4.99; 1U NMR (dr CH3OH): 57.70 (IH, m, H6- cytidine, J= 7.5 Hz), 7.54-7.48 (2H, m, CH-phenyl), 7.25, 7.18 (IH, m, CH-phenyl), 6.13 (IH, m, Hl 'cytidine), 5.93 (IH, t, H5-cytidine, J= 7.5 Hz), 4.39 (IH, m, H2'-cytidine), 4.28 (IH, m, H3'-cytidine), 4.13 (2H, m, CH2-ethyl), 4.11 (2H, m, H5'-cytidine), 3.89 (IH, m, CH-α), 1.74 (IH, m, CH-lateral chain), 1.56 (2H, m, CH2-lateral chain), 1.28 (3H, m, CH3-lateral chain), 0.90 (3H, m, CH3-ethyl); 13C NMR (^-CH3OH): 5175.19 (1C, C=O ester), 168.05 (1C, C4-cytidine), 156.62 (1C, C2-cytidine), 151.31 (1C, C- phenyl), 143.96, 143.49 (1C, C6-cytidine), 132.70 (2C, CH-phenyl), 131.85 (1C, CH- phenyl), 124.17, 124.10 (1C, CH-phenyl), 122.32, 122.13, 122.06 (1C, CH-phenyl), 98.96, 98.83 (1C, C5-cytidine), 97.35, 97.23 (1C, C4'-cytidine), 94.14 (1C, Cl '-cytidine), 74.84, 74.55 (1C, C3'-cytidine), 73.94, 73.81 (1C, C2'-cytidine), 69.65, 69.58 (1C, C5'-cytidine), 62.87, 62.78 (1C, CH2-ethyl), 55.05, 54.98 (1C, CH-α), 44.38, 44.29 (1C, CH2-lateral chain), 26.04, 25.91 (1C, CH-lateral chain), 23.68, 23.62, 23.52 (1C, CH3-lateral chain), 22.23, 21.84 (1C, CH3-lateral chain), 14.86 (1C, CH3-ethyl); MS (ES) m/e: 672.1 (MNa+, 100%), 674.1 (MNa+, 48%); Accurate mass: C23H30N7O9NaPCl2 required 672.1101, found 672.1117.
Example 71
(S)-2-[[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy]-(3,4-dichloro-phenoxy)-phosphorylamino]- 4-methyl-pentanoic acid ethyl ester (1-31)
The title compound was prepared as described in Example 4 utilizing 4'-azido- uridine (13a, 250 mg, 1.7535 mmol), tert- BuMgCl (1.75 mL IM solution in TΗF, 1.753 mmol) and 2.87 mL of solution IM of 3,4-dichloro-phenyl-(ethoxy-L-leucinyl) phosphorochloridate (12ac, 0.706 g, 1.753 mmol). The crude was purified by column chromatography and eluted with CΗCl3/MeOΗ (90:10). The product was further purified by preparative tic on silica gel and developed with CHCl3/MeOH (90:10) which afforded 1-31 as a white solid (40 mg, 0.061 mmol, 5%).
31P NMR (^rCH3OH): 53.84, 3.52; 1U NMR (dr CH3OH): 57.67 (IH, m, H6- cytidine, J= 12.0 Hz), 7.53 (IH, d, CH-phenyl, J= 9.0 Hz), 7.48 (IH, m, CH-phenyl), 7.22 (IH, d, CH-phenyl, J= 9.0 Hz), 6.12 (IH, m, Hl'-cytidine), 5.72 (IH, m, H5- cytidine, J= 12.0 Hz), 4.39 (IH, m, H2'-cytidine), 4.36 (IH, m, H3'-cytidine), 4.22 (2H, m, CH2-ethyl), 4.12 (2H, m, H5'-cytidine), 3.88 (IH, m, CH-α), 1.72 (IH, m, CH-lateral chain), 1.55 (2H, m, CH2-lateral chain), 1.30 (3H, m, CH3-lateral chain), 1.25 (3H, m, CH3-lateral chain), 0.92 (3H, m, CH3-ethyl); 13C NMR dept (^-CH3OH): 5141.92 (1C, C6-uridine), 131.19 (1C, C5-uridine), 122.61, 122.55 (1C, CH-phenyl), 120.56,
12O.49(1C, CH-phenyl), 102.44 (1C, Ch-phenyl), 98.65 (1C, C5-uridine), 92.03 (1C, Cl'- uridine), 72.77, 72.66 (1C, C3 '-uridine), 72.56, 72.41 (1C, C2'-uridine), 68.15 (1C, C5'- uridine), 61.26 (1C, CH2-ethyl), 53.44 (1C, CH-α), 42.85, 42.76 (1C, CH2-lateral chain), 24.53 (1C, CH-lateral chain), 22.15, 22.08 (1C, CH3-lateral chain), 20.68, 20.28 (1C, CH3- lateral chain) , 13.32 ( 1C, CH3-ethyl) ; MS (ES) m/e: 673.1 (MNa+, 100%) ; Accurate mass: C23H30N7O9NaPCl2 required 673.0968, found 673.0958.
Example 72 (R)-2-[[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy]-(3,4-dichloro-phenoxy)-phosphorylamino]- propionic acid benzyl ester (1-52)
step 1 - 3,4-dichloro-phenyl-(benzyloxy-D-alaninyl) phosphorochloridate
The title compound was prepared as described in Example 3 utilizing 4.3 mL of a
IM solution of 3,4-dichlorophenyl dichlorophosphate in DCM (lie, 1.19 g mL, 4.267 mmol), D-alanine benzyl ester tosylate salt (1.5 g, 4.267 mmol), dry TEA (1.2 mL, 8.534 mmol) and dry DCM (15 mL). The phosphorochloridate 12ad was obtained as a clear oil (1.26 g, 3.24 mmol, 76%).
31P NMR (CDCl3): 59.52, 9.35; 1U NMR (CDCl3): 57.40 (8Η, m, CH-phenyl), 5.26
(2H, d, CH2-benzyl), 4.59 (IH, m, NH), 4.28 (IH, m, CH-α), 1.58 (3H, m, CH3-lateral chain).
step 2 - azido-uridine 5'-O-[3,4-dichloro-phenyl(benzyloxy-L-alaninyl) phosphate
The title compound was prepared as described in Example 4 utilizing 4'-azido- uridine (13a, 215 mg, 0.754 mmol), tøt-BuMgCl (1.1 mL IM solution in THF, 1.130 mmol) and 1.1 mLof a IM solution of 3,4-dichloro-phenyl(benzyloxy-D-alaninyl) phosphorochloridate (12ad, 0.400 g, 2.88 mmol). The crude was purified by column chromatography and eluted with CHCl3/MeOH (90:10). The product was further purified by preparative tic on silica gel and developed with CHCl3/MeOH (90:10) which afforded 1-52 as a white solid ( 10 mg, 0.162 mmol, 2%) .
31P NMR (^-CH3OH): 54.85, 4.56; 1H NMR (dr CH3OH): 57.62 (IH, m, H6- cytidine), 7.35 (8H, m, CH-phenyl), 6.08 (IH, m, Hl'cytidine), 5.69 (IH, t, H5- cytidine), 5.17 (2H, CH2-benzyl), 4.39 (IH, m, H2'-cytidine), 4.24 (IH, m, H3'-cytidine), 4.20 (2H, m, CH2-ethyl), 4.05 (2H, m, H5'-cytidine), 3.70 (IH, m, CH-α), 1.38 (3H, m, CH3-lateral chain) ; MS (ES) m/e: 693.0 (MNa+, 100%) ; Accurate mass: C25H25N6O10NaPCl2 required 693.0630, found 693.0645.
Example 73
(S)-2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-diriydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy] -p-tolyloxy-phosphorylamino }-propionic acid ethyl ester (1-77) The title compound was prepared as described in Example 4 utilizing 4'-azido- uridine (13a, 200 mg, 0.701 mmol), tert-BuMgCl (1.4 mL IM solution in THF, 1.4 mmol), 1.4 mL of solution IM of/?-methylphenyl-(benzyloxy-L-alaninyl)- phosphorochloridate (12ae, 1.4 mmol) and dry THF (10 mL). The crude was purified by two column chromatographies and eluting with a CHQ3/Me0H gradient (90:10 to 80:20). The product was further purified by preparative TLC and developed with CHCl3/MeOH (90:10) which afforded 1-77 as a white solid (31 mg, 8%).
31P NMR (121.5 MHz, d4-MeOH): 54.97, 4.73; 1U NMR (300 MHz, d4-MeOH): 57.72-7.63 (IH, m, H-6), 7.25-7.15 (5H, m, Ph-CH), 6.23-6.17 (1Η, m, Η-l'), 5.78-5.69 (IH, m, H-5), 4.41 (2H, m, H-5'), 4.24-4.15 (4H, m, H-2', H-3' and CH2CH3), 4.05-3.98 (IH, m, AIa-CH), 2.38 (3H, br s, Ar-CH3), 1.47-1.38 (3H, m, CH2CH3) 1.32-1.20 (3Η, m, AIa-CH3); 13C NMR (75.5 MHz, d4-MeOH): 5175.52, 175.26, 175.19 (C=O), 166.25 (C- 2), 152.62 (Ph-C), 150.19, 150.10 (C-6), 143.01, 142.83 (Ar-C), 136.66 (Ar-C), 131.68 (Ar-C), 121.51, 121.44 (Ar-C), 104.09, 104.01 (C-5), 99.22, 99.07, 98.94 (C-4'), 92.68, 92.24 (C-I'), 74.25, 74.18, 74.08 (C-3'), 69.23, 69.17 (C-2'), 62.89 (0-CH2), 52.14, 51.96 (AIa-CH), 55.20 (Ar-CH3), 21.14, 20.96, 20.87, 20.63 (AIa-CH3), 14.84 (CH2CH3).
Example 74
(S)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy]-/?-tolyloxy-phosphorylamino}-4-methyl- pentanoic acid ethyl ester (1-25)
step 1 - /?-methyl-phenyl dichloro phosphate
/?-Methylphenyl dichlorophosphate was prepared as described in Example 2 from /?-cresol (4.00 g, 0.037 mol), POCl3 (3.45 mL, 0.037 mol) and TEA (5.15 mL, 0.037 mol) and dry Et2O (25 mL). The dichlorophosphate lie was obtained as a yellow clear oil (7.91 g, 0.027 mol, 72%) and used without further purification.
31P NMR (CHCl3): 54.98; 1U NMR (CHCl3): 57.22 (4H, m, CH-phenyl), 2.39 (3H, s, CH3-/?-cresol).
step 2 - p-methvl-phenvHethoxv-L-leucinvl) phosphorochloridate
The title compound was prepared as described in Example 3 utilizing /?-methyl phenyl dichlorophosphate (lie, 7.6 mLof a IM solution in DCM, 1.72 g, 7.66 mmol), L- leucine ethyl ester hydrochloride salt (14q, 1.5 g, 7.66 mmol), dry TEA (2.14 mL, 15.32 mmol) and dry DCM (15 mL). The phosphorochloridate 12ag was obtained as a clear oil (2.28 g, 5.66 mmol, 75%).
31P NMR (CHCl3): δlθ.06, 9.63; 1H NMR (CHCl3): 57.05 (2H, d, CH-phenyl), 7.00 (2H, m, CH-phenyl), 4.67 (IH, m, NH), 4.26 (IH, m, CHa), 4.12 (2H, m, CH2-ethyl), 1.87 (IH, m, CH-lateral chain), 1.69 (2H, m, CH2-lateral chain), 1.45 (3H, m, CH3- ethyl), 1.32 (3H, m, CH3-lateral chain), 1.02 (3H, m, CH3-lateral chain).
step 3 - azido-cytidine 5'-O-[/?-methyl-phenyl(ethoxy-L-leucinyl) phosphate
The title compound was prepared as described in Example 4 utilizing 4'-azido- cytidine (13b, 350 mg, 1.15 mmol), tert-BuMgCl (2.87 mL IM solution in THF, 2.876 mmol) and/?-methyl-phenyl-(ethoxy-L-leucinyl) phosphorochloridate (12ag, 2.87 mL of a IM solution, 1.06 g, 2.88 mmol). The crude was purified by column chromatography and eluted with CHCl3/MeOH (85:15) which afforded 1-74 as a white solid (14 mg, 0.061 mmol, 4%).
31P NMR (dr CH3OH): 55.24, 4.90; 1H NMR (dr CH3OH): 57.65 (IH, m, H6- cytidine, J= 7.5 Hz), 7.15 (2H, m, CH-phenyl), 7.06 (2H, m, CH-phenyl), 6.20 (IH, m, Hl'cytidine), 5.89 (IH, t, H5-cytidine, J= 7.5 Hz), 4.32 (IH, m, H2'-cytidine), 4.23 (IH, m, H3'-cytidine), 4.17 (2H, m, CH2-ethyl), 4.11 (2H, m, H5'-cytidine), 4.07 (IH, m, CH- α), 2.26 (3H, s, CH3-/?-phenyl), 1.72 (IH, m, CH-lateral chain), 1.55 (2H, m, CH2-lateral chain), 1.25 (3H, m, CH3-lateral chain), 1.18 (3H, m, CH3-lateral chain), 0.91 (3H, m, CH3-ethyl); 13C NMR (^-CH3OH): 5175.31 (1C, C=O ester), 167.97 (1C, C4-cytidine), 150.11 (1C, C2-cytidine), 143.31, 143.08 (1C, C6-cytidine), 131.65, 131.60 (1C, C- phenyl), 130.86 (2C, CH-phenyl), 121.65, 121.59 (1C, C-phenyl), 121.47, 121.41 (2C, CH-phenyl), 98.92 (1C, C5-cytidine), 97.35 (1C, C4'-cytidine), 93.89 (1C, Cl '-cytidine), 75.03, 74.83 (1C, C3 '-cytidine), 73.89 (1C, C2'-cytidine), 69.26, 69.07 (1C, C5'-cytidine), 62.78, 62.72 ( 1C, CH2-ethyl) , 54.96 ( 1C, CHa) , 44.54 ( 1C, CH2-lateral chain) , 26.03, 25.81 (1C, CH-lateral chain), 23.65, 23.56, 23.44 (1C, CH3, lateral chain), 23.18, 22.39 (1C, CH3, lateral chain), 14.67, 14.45 (1C, CH3-ethyl).
Example 75
(S)-2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-diriydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy] -p-tolyloxy-phosphorylamino }-4-methyl- pentanoic acid ethyl ester (1-37)
The title compound was prepared as described in Example 4 utilizing 4'-azido- uridine (13a, 250 mg, 1.753 mmol), tert-BuMgCl (1.75 mL IM solution in TΗF, 1.753 mmol) and/?-methyl-phenyl-(ethoxy-L-leucinyl)phosphorochloridate (12ae, 1.75 mL of a solution IM solution, 0.610 g, 1.753 mmol). The crude was purified by column chromatography and eluted with CHQ3/Me0H (90:10) which afforded 1-37 as a white solid (50 mg, 0.084 mmol, 5%).
31P NMR ((U-CH3OH) : 55.63, 5.22; 1H NMR ((Lf-CH3OH) : 57.55 ( IH, m, H6- cytidine), 7.08 (2H, m, CH-phenyl), 7.04 (2H, m, CH-phenyl), 6.08 (IH, m, Hl'cytidine), 5.60 (IH, m, H5-cytidine), 4.25 (IH, m, H2'-cytidine), 4.23 (IH, m, H3'- cytidine), 4.08 (2H, m, CH2-ethyl), 4.04 (2H, m, H5'-cytidine), 3.79 (IH, m, CH-α), 2.23 (3H, s, CH3-phenyl), 1.64 (IH, m, CH-lateral chain), 1.47 (2H, m, CH2-lateral chain), 1.15 (3H, m, CH3-lateral chain), 1.13 (3H, m, CH3-lateral chain), 0.80 (3H, m, CH3- ethyl); 13C NMR ((Lt-CH3OH): 5175.34 (1C, C=O ester), 166.19 (1C, C4-uridine), 152.71, 152.59 (1C, C2-uridine), 142.95, 142.66 (1C, C6-uridine), 131.68, 131.63 (2C, CH- phenyl), 121.65 (1C, C-phenyl), 121.59 (1C, C-phenyl), 121.43, 121.36 (2C, CH-phenyl), 99.29, 99.04, 98.91 (1C, C5-uridine), 92.52 (1C, C4'-uridine), 91.76 (1C, Cl'-uridine), 74.45, 74.36 (1C, C3 '-uridine), 74.19, 74.13 (1C, C2'-uridine), 69.33, 69.26 (1C, C5'- uridine), 62.81, 62.76, 62.66 (1C, CH2-ethyl), 55.07, 54.93 (1C, CHa), 44.53, 44.44 (1C, CH2-lateral chain), 44.10, 43.99 (1C, CH3-phenyl), 26.22, 26.04, 25.82 (1C, CH2-lateral chain), 23.67, 23.58, 23.46 (1C, CH3, lateral chain), 22.87, 22.39, 21.99, 21.17 (1C, CH3, lateral chain), 14.93, 14.87 (1C, CH3-ethyl); MS (ES) m/e: 619.1 (M+Na)+, 100%; Accurate mass: C24H34N7O9NaP required 619.1891, found 619.1893.
Example 76
(S)-2-[[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy]-(4-methoxy-phenoxy)-phosphorylamino]-4- methyl-pentanoic acid ethyl ester (1-26)
step 1 - /?-methoxy-phenyl dichloro phosphate
/?-methoxyphenyl dichlorophosphate (lid) was prepared as described in Example 2 from /?-methoxyphenol (4.00 g, 0.032 mol), POCl3 (3.00 mL, 0.032 mol) and TEA (4.49 mL, 0.032 mol) and dry Et2O (25 mL). The dichlorophosphate Hd was obtained as a yellow clear oil (5.1 g, 0.021 mol, 67%) and used without further purification.
31P NMR (CHCl3): 55.45; 1H NMR (CHCl3): 57.10 (2H, d, CH-phenyl, J= 9.1 Hz),
6.80 (2H, d, J= 9.1 Hz), 3.69 (3H, s, CH3O-/?-phenol).
step 2 - /?-methoxy-phenyl-(ethoxy-L-leucinyl) phosphorochloridate The title compound was prepared as described in Example 3 utilizing p- methoxyphenyl dichlorophosphate (Hd, 7.6 mL of a solution IM in THF, 1.85 g, 7.66 mmol)), L- leucine ethyl ester hydrochloride salt (14q, 1.5 g, 7.66 mmol), dry TFA (2.14 mL, 15.32 mmol) and dry DCM (15 mL). The phosphorochloridate 12ai was obtained as a clear oil (1.71 g, 4.70 mmol, 61%).
31P NMR (CHCl3): δlθ.54, 10.22; 1U NMR (CHCl3): 57.12 (2H, d, CH-phenyl, J= 9.0 Hz), 6.85 (2H, d, J= 9.0 Hz), 4.46 (IH, m, NH), 4.28 (IH, m, CHa), 3.85 (3H, s, CH3O-/?-phenyl), 1.86 (IH, m, CH-lateral chain), 1.65 (2H, m, CH2-lateral chain), 1.37 (3H, m, CH3-ethyl), 1.32 (3H, m, CH3-lateral chain), 0.96 (3H, m, CH3-lateral chain).
step 3 - azido-cytidine 5'-O-[/?-methoxy-phenyl(ethoxy-L-leucinyl) phosphate
The title compound was prepared as described in Example 4 utilizing 4'-azido- cytidine (13b, 350 mg, 1.15 mmol), tøt-BuMgCl (2.87 mL IM solution in THF, 2.876 mmol) and of/?-methoxy-phenyl-(ethoxy-L-leucinyl) phosphorochloridate (12ai, 2.87 mL of a IM solution in THF, 1.05 g, 2.876 mmol. The crude was purified by column chromatography and eluted with CHCl3/MeOH (90:10) which afforded 1-26 as a white solid (20 mg, 0.032 mmol, 3%).
31P NMR (drCH3OH): 55.59, 5.22; 1H NMR (^CH3OH): 57.71 (IH, m, H6- cytidine, J= 7.6 Hz), 7.17 (2H, m, CH-phenyl), 6.91 (2H, m, CH-phenyl), 6.22 (IH, m, Hl'cytidine), 5.96 (IH, m, H2-cytidine, J= 7.6 Hz), 4.36 (IH, m, H2'-cytidine), 4.34 (IH, m, H3'-cytidine), 4.17 (2H, m, CH2-ethyl), 4.10 (2H, m, H5'-cytidine), 3.91 (IH, m, CH- 00, 3.79 (3H, s, CH3O-phenyl), 1.74 (IH, m, CH-lateral chain), 1.56 (2H, m, CH2-lateral chain), 1.27 (3H, m, CH3-lateral chain), 1.21 (3H, m, CH3-lateral chain), 0.92 (3H, m, CH3-ethyl); 13C NMR (^CH3OH): 5175.33 (1C, C=O ester), 167.50 (1C, C4-cytidine), 158.99 (1C, C2-cytidine), 145.85, 145.76 (1C, C-phenyl), 143.64, 143.42 (1C, C6- cytidine), 122.85, 122.79 (1C, C-phenyl), 122.67, 122.61 (2C, CH-phenyl), 157.11 (1C, C- phenyl), 99.30, 99.10, 98.97 (1C, C5-cytidine), 97.47, 97.39 (1C, C4'-cytidine), 93.90 (1C, Cl '-cytidine), 74.99, 74.75, 74.05 (1C, C3 '-cytidine), 73.90 (1C, C2'-cytidine), 69.22, 69.15 (1C, C5'-cytidine), 62.80, 62.73, 62.23 (1C, CH2-ethyl), 56.53, 56.44 (1C, CH3O- phenyl), 55.10, 54.96 (1C, CHa), 44.55, 44.45 (1C, CH2-lateral chain), 26.04, 25.81 (1C, CH-lateral chain), 23.69, 23.59, 23.46, 23.23 (1C, CH3, lateral chain), 22.41, 21.97 (1C, CH3, lateral chain), 14.78, 14.56 (1C, CH3-ethyl).
Example 77 - Ill -
(S)-2-[[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy]-(4-methoxy-phenoxy)-phosphorylamino]- propionic acid benzyl ester (1-66)
The title compound was prepared as described in Example 4 utilizing 4'-azido- cytidine (13b, 300 mg, 0.999 mmol), tert-BuMgCl (2.0 mL IM solution in TΗF, 2.876 mmol),/?-methoxyphenyl-(benzyloxy-L-alaninyl)-phosphorochloridate (12ah, 2.0 mLof a IM solution in TΗF, 2.0 mmol) and dry TΗF (15 mL). The crude was purified by two column chromatographies and eluting with a CΗO3/Me0Η gradient (90:10 to 80:20). The product was further purified by preparative TLC and developed with CΗQ3/Me0Η (90:10) which afforded 1-66 as a white solid (40 mg, 6%).
31P NMR (121.5 MHz, d4-MeOH): δp5.17, 4.94; 1H NMR (300 MHz, d4-MeOH): 57.64-7.56 (IH, dd, J= 7.1, 14.2 Hz, H-6), 7.35-7.23 (5H, m, Ph-CH), 7.17-7.09 (2Η, m, Ph-CH), 6.89-6.85 (2Η, m, Ph-CH), 6.18-6.12 (1Η, dd, J= 5.3, 13.7 Hz, H-I'), 5.72-5.65 (IH, dd, J= 14.2, 8.1 Hz, H-5), 5.16 (2H, m, Bn-CH2), 4.43-4.30 (2Η, m, H-2' and H-3'), 4.14 (2H, m, H-5'), 4.05-3.99 (IH, m, AIa-CH), 3.83 (3H, m, -OCH3), 1.39-1.31 (3Η, m, AIa-CH3); 13C NMR (75.5 MHz, d4-MeOH): 5175.00, 174.93 (C=O), 168.02 (C-2), 158.89, 158.58 (C-4), 145.80 (C-6), 143.45, 143.27 (Ar-C), 137.60 (Ar-C), 130.00, 129.92, 129.73, 129.69, 129.61 (Ar-C), 122.73, 122.67 (Ar-C), 116.13, 115.53 (Ar-C), 99.16, 99.05, 98.93 (C-4'), 94.14, 93.70 (C-I'), 74.90, 74.72, 73.86 (C-3'), 69.05 (C-2'), 68.43 (Bn-CH2), 56.48 (-OCH3), 52.20, 52.03 (AIa-CH), 20.90, 20.81, 20.57 (AIa-CH3).
Example 78
(S)-2-[[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-diriydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy]-(4-methoxy-phenoxy)-phosphorylamino]-4- methyl-pentanoic acid ethyl ester (1-38)
The title compound was prepared as described in Example 4 utilizing 4'-azido- uridine (13a, 250 mg, 1.753 mmol), tert-BuMgCl (1.75 mL IM solution in TΗF, 1.753 mmol) and/?-methoxy-phenyl-(ethoxy-L-leucinyl) phosphorochloridate (12ai 0.638 g, 1.75 mL of a IM solution in TΗF, 1.753 mmol). The crude was purified by column chromatography and eluted with CΗCl3/MeOΗ (90:10) which afforded 1-38 as a white solid (42 mg, 0.069 mmol, 4%) .
31P NMR (^rCH3OH): 55.64, 5.23; 1H NMR (dr CH3OH): 57.65 (IH, m, Hl- cytidine, J= 16 Hz), 7.18 (2H, m, CH-phenyl), 6.91 (2H, m, CH-phenyl), 7.22 (IH, d, CH-phenyl), 6.17 (IH, m, Hl 'cytidine), 5.71 (IH, m, H2-cytidine, J= 16 Hz), 4.36 (IH, m, H2'-cytidine), 4.34 (IH, m, H3'-cytidine), 4.18 (2H, m, CH2-ethyl), 4.14 (2H, m, H5'- cytidine), 3.89 (IH, m, CH-oø, 3.78 (3H, s, CH3O-phenyl), 1.75 (IH, m, CH-lateral chain), 1.57 (2H, m, CH2-lateral chain), 1.26 (3H, m, CH3-lateral chain), 0.97 (3H, m, CH3-lateral chain), 0.90 (3H, m, CH3-ethyl); 13C NMR dept (^CH3OH): 5142.95, 142.67 (1C, C6-uridine), 122.83, 122.77, 122.63, 122.56 (2C, CH-phenyl), 116.16, 116.12 (2C, CH-phenyl), 104.18, 104.08 (1C, C5-uridine), 92.52 (1C, C4'-uridine), 91.78 (1C, Cl'- uridine), 74.44, 74.37 (1C, C3'-uridine), 74.19, 74.12 (1C, C2'-uridine), 69.33, 69.26 (1C, C5'-uridine), 62.81, 62.76, 62.47 (1C, CH2-ethyl), 56.52 (1C, CH3O-phenyl), 55.08, 54.93 (1C, CHa), 45.16, 44.56 (1C, CH2-lateral chain), 44.46, 43.99 (1C, CH3-phenyl), 26.25, 26.05, 25.82 (1C, CH2-lateral chain), 23.71, 23.61, 23.54 (1C, CH3, lateral chain), 22.90, 22.41, 21.98 (1C, CH3, lateral chain), 14.90 (1C, CH3-ethyl);MS (ES) m/e: 635.1 (MNa+, 100%); Accurate mass: C21H34N7O10NaP required 635.1852, found 635.1843.
Example 79
(S)-2-[[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy] -(4-methoxy-phenoxy)-phosphorylamino] - propionic acid benzyl ester (1-65)
The title compound was prepared as described in Example 4 utilizing 4'-azido- uridine (13a, 200 mg, 0.701 mmol), tert-BuMgCl (1.4 mL IM solution in TΗF, 1.4 mmol), dry TΗF (10 mL) and 12ah (1.4 mL IM solution of TΗF, 1.4 mmol). The crude was purified by column chromatography and eluted with a CΗCl3/MeOΗ gradient (90:10 to 80:20) followed by a preparative TLC developed with CHCl3/MeOH (90:10) which afforded 1-65 as a white solid (55 mg, yield 12%).
31P NMR (121.5 MHz, d4-MeOH): δ= 5.24, 4.97; 1H NMR (300 MHz, d4-MeOH): δ 7.64-7.56 (IH, dd, J= 7.1, 14.2 Hz, H-6), 7.35-7.23 (5H, m, Ph-CH), 7.17-7.09 (2Η, m, Ph-CH), 6.89-6.85 (2Η, m, Ph-CH), 6.18-6.12 (1Η, dd, J= 5.3, 13.7 Hz, H-I'), 5.72-5.65 (IH, dd, J= 14.2, 8.1 Hz, H-5), 5.16 (2H, m, Bn-CH2), 4.38-4.30 (2Η, m, H-2' and H-3'), 4.14 (2H, m, H-5'), 4.05-3.99 (IH, m, AIa-CH), 3.77 (3H, m, -OCH3), 1.39-1.31 (3Η, m, AIa-CH3); 13C NMR (75.5 MHz, d4-MeOH): 5175.33, 175.01, 174.94 (C=O), 166.23 (C- 2), 158.87 (C-4), 152.69, 152.61 (Ph-C), 145.80, 145.70 (C-6), 142.98, 142.77 (Ar-C), 137.58 (Ar-C), 130.00, 129.74, 129.71, 129.68, 129.60 (Ar-C), 128.66, 128.39 (Ar-C), 122.72, 122.69, 122.63 (Ar-C), 116.15 (Ar-C), 104.10, 104.01 (C-5), 99.05, 98.92 (C-4'), 92.67, 92.22 (C-I'), 74.25, 74.16, 74.06 (C-3'), 69.21, 69.15 (C-2'), 68.45 (Bn-CH2), 56.48 (-OCH3), 52.20, 52.02 (AIa-CH), 20.91, 20.82, 20.68 (AIa-CH3).
Example 80 (R)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy] -hydroxy-phosphorylamino }-propionic acid benzyl ester; compound with ammonia (1-68)
step 1 - azido-cytidine 5'-monophosphate
The title compound was prepared as described in Example 5 utilizing 4'-azido- cytidine (13b, 200 mg, 0.657 mmol), POCl3 (0.092 mL, 0.985 mmol), DMAP (120.34 mg, 0.985 mmol) in PO(OEt)3 (1 mL). The crude was purified by column chromatography, eluting with iso-PrOH/con NΗ32O (8:1.2:0.8) to afford azido-cytidine monophosphate as a yellow pure solid (180 mg, 0.497 mmol, 76%).
31P NMR (D2O): 53.56; 1H NMR (D2O): 57.84 (IH, d, H6-cytidine, J= 7.5 Hz), 6.08
(IH, d, Hl'-cytidine, J= 3.9 Hz), 6.00 (IH, d, H5-cytidine, J= 7.5 Hz), 4.39-4.29 (2H, s, H2'-cytidine, H3'-cytidine), 3.95-3.78 (2H, m, H5'-cytidine); 13C NMR (^-CH3OH): 5166.16 (1C, C4-cytidine), 157.34 (1C, C2-cytidine), 142.15 (1C, C6-cytidine), 98.44 (1C, C5-uridine), 96.97 (1C, C4'-uridine), 91.67 (1C, Cl'-uridine), 73.40 (1C, C3'-uridine), 71.14 (1C, C2'-uridine), 65.34 (1C, C5'-uridine); MS (ES) m/e: 363.2 (M", 100%); Accurate mass: C9H12N6O8P required 363.0454 found 363.0454.
step 2 - azido-cytidine 5'-O-(benzyloxy-D-alaninyl) phosphate
The title compound was prepared as described in Example 5 utilizing azido-cytidine monophosphate (100 mg, 0.294 mmol), D-alanine benzyl ester tosylate salt (14m 368.83 mg, 2.058 mmol), DCC (302.82 mg, 1.47 mmol) in tøt-BuOH (5 mL) and H2O. The crude was purified by column chromatography eluting with a gradient starting from iso- PrOH, to iso-PrOH/con NH3/H2O (90:7:3, 85:10:5 and 80:12:8) to 1-68 afford a white solid (7.8 mg, 0.0139 mmol, 7%).
31P NMR (D2O): 56.52; 1U NMR (D2O): 57.63 (IH, d, H6-cytidine, J= 7.8 Hz), 7.25 (5H, CH-benzyl), 5.91 (IH, d, Hl'-cytidine, J= 3.0 Hz), 5.86 (IH, d, H5-cytidine, J= 7.8 Hz), 5.00 (2H, s, CH2-benzyl), 4.25-4.13 (2H, m, H2'-cytidine, H3'-cytidine), 3.84 (2H, m, CH2 (2H, m, H5'-cytidine), 3.71 (IH, m, CHa), 1.37 (3H, d, CH3-lateral chain); MS (ES) m/e: 524.0 (M", 100%); Accurate mass: C19H23N7O9P required 524.1295 found 524.1295.
Example 81 2-{[(2R,3S,4R,5R)-2-((Z)-2-Chloro-vinyl)-5-(2,4-dioxo-3,4-dihydro-2H- pyrimidin-l-yl)-3,4-dihydroxy-tetrahydro-mran-2-ylmethoxy]-phenoxy- phosphorylaminoj-propionic acid benzyl ester (1-39)
The title compound was prepared as described in Example 4 utilizing dsi-4'-(2- chloroethenyl)-uridine (13e, 100 mg, 0.33 mmol), tert-BuMgCl (0.7 mL IM solution in THF, 0.7 mmol), phenyl- (benzylo xy- L- alaninyl)-phosphorochloridate (12an, 0.7 mLof a IM THF solution, 0.7 mmol) and dry THF (10 mL). The crude was purified by column chromatography eluting with a CHCl3/MeOH gradient (90:10 to 80:20). The product was further purified by preparative TLC and developed with CHCl3/MeOH (90:10) which afforded 1-39 as a white solid (19 mg, yield 9%) .
31P NMR (121.5 MHz, d4-MeOH): 54.98, 4.67; 1H NMR (300 MHz, d4-MeOH): 57.73-7.66 (IH, dd, J= 7.1, 13.4 Hz, H-6), 7.39-7.34 (7H, m, Ph-CH), 7.33-7.18 (2Η, m, Ph-CH), 6.89-6.85 (2Η, m, Ph-CH), 6.18-6.12 (1Η, dd, J= 5.3, 13.7 Hz, H-I'), 6.02-5.96 (2H, m, C=C-H), 5.70-5.61 (IH, dd, J= 18.8, 8.1 Hz, H-5), 5.19-5.15 (2H, m, Ph-CH2), 4.45-4.31 (3Η, m, H-5' and H'-3), 4.25-4.22 (IH, t, J= 5.4 Hz, H'-2), 4.07-3.98 (IH, m, AIa-CH), 1.39-1.31 (3H, m, AIa-CH3); 13C NMR (75.5 MHz, d4-MeOH): 5175.24, 174.90 (C=O), 166.37 (C-4), 158.87 (C-2), 152.88, 152.45 (Ph-C), 142.78, 142.73 (C-6), 137.64, 137.59 (Ar-C), 131.29, 131.01, 130.01, 129.74, 129.71, 129.69, 129.58, 129.54 (Ar-C), 128.38 (Ar-C), 126.75 (Ar-C), 122.60, 122.53 (Ar-C), 121.83, 121.79, 121.76, 121.73 (Ar- C), 103.81, 103.75 (C-5), 90.17 (C-I'), 88.56, 88.51, 88.44, 88.40 (C=C), 75.39, 75.32 (C- 3'), 72.99, 72.90 (C-2'), 68.79, 68.44, 68.40 (C-5'), 65.62 (Bn-CH2), 52.19, 52.02 (AIa- CH), 20.95, 20.67, 20.57 (AIa-CH3).
Example 82
2-[[2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -(3-bromo-naphthalen-2-yloxy)-phosphorylamino] - propionic acid benzyl ester (1-86)
Figure imgf000116_0001
step 1 - Protection of the 2',3'-diols of a ribose sugar as a cyclopentylidene ketal is readily accomplished from the nucleoside using standard methodology (T. W. Greene and P. G. M. Wuts; Protecting Groups in Organic Synthesis, 3rd Ed., J. T. Wiley & Sons: New York, NY, 1999, pp. 215-217). The phosphoramidate 21 was prepared as described in Example 4 utilizing 13h (140 mg, 0.4 mmol ), tert- BuMgCl (0.8 mL, IM in THF, 0.8 mmol), 12ar (387 mg, 0.8 mmol) and dry THF (8 mL). The crude was purified by column chromatography on SiO2 eluting with CHQ3/Me0H (98:2) which afforded 310 mg (97%) of 21 as a white foam.
31P NMR (121.5 MHz, d4-MeOH): δp = 2.99; 1H NMR (500 MHz, d4-MeOH): 5H
8.25-8.21 (IH, m, Ar-CH), 7.88-7.84 (5H, m, Ar-CH), 7.69-7.52 (3H, m, Ar-CH and H- 6), 7.34-7.27 (3H, m, Ar-CH), 5.94-5.88 (IH, m, H-I'), 5.66-5.60 (IH, m, H-5), 5.15-4.95 (4H, m, Bn-CH2and Η-5'), 4.39-4.29 (2H, m, H-2' and H-3'), 4.21-4.20 (IH, m, AIa- CH), 2.10-2.06 (2H, m, CyPt-CH), 1.71-1.62 (6H, m, CyPt-H), 1.44-1.42 (3H, m, AIa- CH3); 13C NMR (75.5 MHz, d4-MeOH): δc 174.75, 174.71, 174.61 (C=O), 165.98 (C-4), 151.84, 151.77 (C-2), 147.34 (Ar-C), 145.11, 144.73 (C-6), 137.11 (Ar-C), 134.08, 134.03 (Ar-C), 133.20 (Ar-C), 130.32, 130.28, (Ar-C) 129.64, 129.60, 129.51, 129.39, 129.34, 129.28, 129.25, (Ar-C), 127.78, 127.76, 127.36, (Ar-C), 126.18 (Ar-C), 121.27, 121.24 (Ar- C), 114.04, 113.97 (Ar-C), 103.39, 103.23 (C-5), 100.58, 100.51 (C-4'), 95.20, 94.79 (C- 1'), 85.12, 85.08 (C-2'), 84.77, 83.62 (C-3'), 70.00, 69.95 (C-5'), 68.18, 68.12 (Bn-CH2), 51.80, 51.66 (AIa-CH), 37.28, 37.13 (CyPt-CH2), 36.29, 36.18 (CyPt-CH2), 24.85 (CyPt- CH2), 24.06 (CyPt-CH2), 20.66, 20.61, 20.53, 20.47 (AIa-CH3).
step 2 - A solution of 21 (310 mg, 0.39 mmol) and 60/40 HCO2H/H2O mixture (15 mL), and stirred at RT for 8 h. The crude was purified by column chromatography on SiO2 eluting with CHCl3/MeOH (gradient, 100:0 to 97:3) which afforded 186 mg (64%) of 1-86 as a white foam.
31P NMR (121.5 MHz, d4-Me0H): δp = 3.50, 3.27; 1H NMR (500 MHz, d4-Me0H): 5H 8.25-8.23 (IH, m, Ar-CH), 7.92-7.87 (2H, m, Ar-CH), 7.71-7.63 (3H, m, Ar-CH and H-6), 7.58-7.53 (IH, m, Ar-CH), 7.35-7.27 (5Η, m, Ar-CH), 6.17-6.11 (IH, m, H-I'), 5.69-5.53 (IH, m, H-5), 5.14-5.07 (2H, m, Bn-CH2), 4.43-4.37 (2Η, m, H-5'), 4.36-4.26 (2H, m, H-2' and H-3'), 4.22-4.13 (IH, m, AIa-CH), 1.42-1.40 (3H, m, AIa-CH3); 13C NMR (75.5 MHz, d4-Me0H): δc 174.20 (C=O), 165.78 (C-4), 152.24 (C-2), 147.24, 147.22 (Ar-C), 142.54, 142.40 (C-6), 137.12 (Ar-C), 134.02 (Ar-C), 133.22 (Ar-C), 130.46, 130.42 (Ar-C), 129.62, 129.60, 129.53, 129.53, 129.30 (Ar-C), 127.69, 127.47, 127.44 (Ar-C), 121.02, 120.97 (Ar-C), 113.80 (Ar-C), 103.81, 103.61 (C-5), 98.73, 98.65 (C-4'), 92.33, 91.85 (C-I'), 73.99, 73.86, 73.65 (C-2' and C-3'), 69.31, 69.28 (C-5'), 68.16, 68.12 (Bn-CH2), 51.86, 51.70 (AIa-CH), 20.55, 20.50, 20.32, 20.25 (AIa-CH3).
Example 83
2-[[5-(6-Amino-purin-9-yl)-2-azido-3,4-dihydroxy-tetrahydro-furan-2- ylmethoxy]-(naphthalen-l-yloxy)-phosphorylamino] -propionic acid benzyl ester (1-87)
Figure imgf000117_0001
24 25 26 27
Figure imgf000117_0002
step 1 - Iodine (35.43 g, 0.140 mol) and Ph3P (36.80 g, 0.140 mol) were added to a solution of adenosine (24, 25 g, 0.093 mol) in pyridine (200 mL). After 2 h a saturated solution OfNa2S2O3 was added, the solvent was removed in vacuo and the yellow solid was purified by column chromatography on SiO2 eluting with CHCl3/MeOH (9:1) to afford 60 g (>100%) of 25 which was sufficiently pure to use in the subsequent step.
1H NMR 5H (rf6-(CH3)2SO): 8.82 (IH, s, NH2- adenosine), 8.59 (IH, s, H2- adenosine), 8.36 (IH, s, H8-adenosine), 5.95 (IH, d, Hl '-adenosine, J= 5.6 Hz), 4.75 (IH, t, H2'- adenosine), 4.16 (IH, t, H3'- adenosine), 4.01 (IH, m, H4'- adenosine), 3.60 (IH, m , H5'- adenosine), 3.46 (IH, m, CH5'- adenosine).
step 2 - To a solution of 5'-deoxy-5'-iodo-adenosine (25, 35 g, 0.093 mol) in pyridine (200 mL) was added potassium tøt-butoxide (47.0 g, 0.418 mol), and the reaction stirred for 1 h at 80° C. The solvent was removed under reduced pressure and the black solid was purified by column chromatography on SiO2 eluting with a CHCl3/MeOH gradient (90% to 70 % CHCl3) to afford 18.54 g (80 %) of 26 as a brown solid.
1H NMR 5H (rf6-(CH3)2SO): 8.37 (IH, s, H2- adenosine), 8.16 (IH, s, H8- adenosine), 7.32 (2H, s, NH2- adenosine), 6.16 (IH, d, Hl '-adenosine, J= 5.3 Hz), 5.73 (IH, s, OH 2'- adenosine), 5.58 (IH, s, OH 3'- adenosine), 4.83 (IH, t, H2'- adenosine), 4.73 (IH, t, H3'- adenosine), 4.31 (IH, s, H5'- adenosine), 4.21 (IH, s, H5'- adenosine).
step 3 - Sodium azide (11.73 g, 0.1804 mol) was added to a solution of ICl (14.65 g, 0.0902 mol) in DMF (50 mL) and the resulting solution was stirred for 20 min at 30° C. A solution of l-(5-deoxy-β-D-glycero-pent-4-enofuranosyl)-adenosine (26, 9 g, 0.0361 mmol) in DMF (200 mL) then was added dropwise over a 30 min interval. After 1 h a saturated solution OfNa8S2O3 was added and the solvent was removed under reduced pressure. The resulting solid was dissolved in MeOH and any precipitate was removed by filtration. The MeOH was removed in vacuo and the yellow solid was purified by column chromatography on SiO2 eluting with CHCl3/MeOH (9:1) to afford 19 g (> 100%) of 27 as a yellow solid.
1H NMR 5H (^rCH3OH): 8.86 (IH, s, H2- adenosine), 8.78 (IH, s, H8-adenosine), 6.26 (IH, d, Hl '-adenosine, J= 5.1 Hz), 5.28 (IH, m, H2'- adenosine), 4.73 (IH, t, H3'- adenosine), 3.71 (IH, s, H5'- adenosine), 3.68 (IH, s, H5'- adenosine); 13C NMR δc (d4- CH3OH): 157.39 (1C, C4- adenosine), 154.17 (1C, CH2- adenosine), 153.80 (1C, CH8- adenosine), 150.68 (1C, C6- adenosine), 120.70 (1C, C5-adenosine), 98.77 (1C, CA'- adenosine), 91.22 (1C, CHl '-adenosine), 75.30 (1C, CH3'adenosine), 73.98 (1C, CH2'- adenosine), 9.61 (1C, CH 25'- adenosine). step 4 - To a solution of 27 in pyridine was added benzoyl chloride. After 15 h the solvent was removed in vacuo and the resulting dark solid was purified by column chromatography on SiO2 eluting with EtOAc/Hexane (3:7) to afford 8.5 g (35%) of 28a as a yellow solid.
1H NMR 5H (^-CH3OH): 8.76 (IH, s, H2- adenosine), 8.67 (IH, s, H8-adenosine),
8.06-7.86 (1OH, m, benzoyl) ,7.63-7.40 (1OH, m , benzoyl), 6.88 (IH, d, H3'- adenosine, J= 3.0 Hz), 6.60-6.59 (2H, m, H2'- adenosine, Hl '-adenosine), 3.93 (IH, m, H5'- adenosine); 13C NMR δc (^-CH3OH): 166.46 (1C, C=O-benzoyl), 166.07 (1C, C=O-benzoyl), 153.94 (1C, C=O-benzoyl), 153.32 (1C, C=O-benzoyl), 135.39 (2C, C-benzoyl), 135.15 (1C, CH-benzoyl), 135.08 (1C, CH-benzoyl), 134.38 (1C, CH-benzoyl), 134.03 (1C, CH- benzoyl), 131.07 (2C, CH-benzoyl), 131.07 (2C, CH-benzoyl), 130.90 (4C, CH-benzoyl), 130.74 (2C, CH-benzoyl), 130.55 (2C, CH-benzoyl), 129.91 (2C, CH-benzoyl), 129.80 (2C, CH-benzoyl), 129.73 (2C, CH-benzoyl), 129.46 (2C, CH-benzoyl), 97.93(1C, C4'- adenosine), 89. 94 (1C, CH3'- adenosine), 74.74 (1C, CH2'- adenosine), 74.67 (1C, CHl'- adenosine), 6.70 (1C, CH5'- adenosine).
step 5 - To a solution of 4-N,N-dibenzoyl, 2',3'-O,O-dibenzoyl-4'-azido-5'-deoxy- 5'-iodo-adenosine (28a, 2.20 g, 2.64 mmol) in 20 mL of DCM (saturated with 1% of water), 85% MCPBA (3.63 g, 15.84 mmol) was added and the reaction stirred at 40°C for 1 h. EtOAc was added and the resulting solution was washed with a saturated solution of Na8S2O3. The EtOAc solution was dried (MgSO4), filtered, and the solvents removed in vacuo. The yellow solid was dissolved in 6 mL of 1 N methanolic sodium methoxide and stirred for 1 h. The volatile solvents were removed in vacuo and the resulting crude material was purified by SiO2 chromatography eluting with CHCl3/MeOH (9:1 containing 1% concentrated NH4OH) to afford 200 mg (24%) of 13i.
1H NMR 5H (^-CH3OH): 8.31 (IH, s, H2- adenosine), 8.19 (IH, s, H8-adenosine),
6.25 (IH, d, Hl '-adenosine, J= 6.4 Hz), 5.00 (IH, t, H2'- adenosine), 4.53 (IH, d, H3'- adenosine), 3.77 (IH, d, H5'- adenosine, J= 12.2 Hz), 3.60 (IH, d, H5'- adenosine, J= 12.2 Hz); low resolution ms (ES) m/e: 331.1 (MNa+, 100%); high resolution ms: for C10Hi2N8O4Na, required 331.0879, found 331.0886.
step 6 - The title compound was prepared as described in Example 4 utilizing 4'- azido-adenosine (13i, 165.6 mg, 0.0537 mmol), 1BuMgCl (1.34 mL IM solution of THF, 1.343 mmol) and α-naphthyl-(benzyloxy-L-alaninyl) phosphorochloridate (1.34 mLof solution IM in THF, 1.343 mmol). The crude was purified by preparative HPLC on SiO2 eluting with CHCl3/MeOH (85:15) to afford 20.2 mg (6%) of 1-87 as a white solid. 31P NMR δp (^-CH3OH): 3.71, 3.67; 1H NMR 5H (^-CH3OH): 8.26 (IH, d, H2- adenosine), 8.17 (IH, s, H8-adenosine), 8.17 (IH, s, CH-naphthyl), 7.88 (IH, d, CH- naphthyl, J= 7.9 Hz), 7.69 (IH, m, CH-naphthyl), 7.53-7.43 (4H, m, 3 CH-naphthyl, 1 CH-phenyl), 7.38-7.25 (5H, CH-naphthyl, 4 CH-phenyl), 6.28 (IH, d, Hl '-adenosine, J= 5.1 Hz), 5.05 (2H, m, CH2-benzyl), 4.95 (IH, m, H2'- adenosine), 4.70 (IH, d, H3'- adenosine, J= 5.4 Hz), 4.40 (2H, m, H5'- adenosine), 4.05 (IH, m, CHa), 1.28 (3H, m ,CH3- alanine); low resolution ms (ES) m/e: 698.1 (MNa+, 100%); high resolution ms: for C30H30N9O7Na, required 698.1853, found 698.1852.
Example 84
2-[[2-Azido-3,4-dihydroxy-5-(6-oxo-l,6-dihydro-purin-9-yl)-tetrahydro-furan-2- ylmethoxy]-(naphthalen-l-yloxy)-phosphorylamino] -propionic acid benzyl ester (1-88)
Figure imgf000120_0001
30 31 32
Figure imgf000120_0002
1-88
step 1 - To a suspension of inosine (20.00 g, 74.56 mmol) in pyridine (200 mL) was added Ph3P (30.40 g, 113.34 mmol) and I2 (28.77, 113.34 mmol). The mixture was stirred at RT overnight, MeOH was added and the solvent evaporated in vacuo. The crude purified by column chromatography on SiO2 eluting with a CHCl3/MeOH gradient (10 to 20% MeOH). The solid obtained was suspended in EtOH, refluxed for 0.5 h and filtered to afford 20.32 g (72%) of 30 as a white solid. 1H-NMR (DMSOd6; 500 MHz): δ 12.42 (IH, bs, H-I), 8.35 (IH, s, H-8), 8.10 (IH, s, H-2), 5.91 (IH, d, 3J= 5.8 Hz, H-I'), 4.71 (IH, ψt, 3J=5Λ Hz, H-2'), 4.13 (IH, ψd, 3J=A.6 Hz, H-3'), 4.01 (IH, m, H-4'), 3.62-3.59 and 3.48-3.44 (2H, 2m, H-5'); 13C-NMR (DMSOd6; 125.7 MHz): δ 7.65 (C-5'), 73.08, 73.17 (C-3'+C-2'), 83.98 (C-4'), 87.39 (C- 1'), 124.41 (C-5), 139.02 (C-8), 146.00 (C-2), 148.33 (C-4), 156.51 (C-6).
step 2 - A 1 M solution of sodium methoxide (32 mL) was added to a suspension of 5'-deoxy-5'-iodoinosine (30, 3.11 g, 8.22 mmol) in MeOH (100 mL). The solution was heated at reflux for 5 h, cooled at RT and purified by column chromatography on SiO2 eluting with a CHCl3MeOH gradient (10 to 20% MeOH) to afford 1.25 g (61%) of 31 as a white solid.
1H-NMR (DMSO-^6; 500 MHz): δ 12.44 (IH, bs, H-I), 8.35 (IH, s, H-8), 8.11 (IH, s, H-2), 6.35 (IH, d, 3J= A3 Hz, H-I'), 5.83 (IH, bs, OH-2'), 5.58 (IH, bs, OH-3'), 4.76 (IH, m, H-2'), 4.65 (IH, m, H-3'), 4.33, 4.23 (2H, 2s, H-5'); 13C-NMR (MeOD; 125.7 MHz): δ 69.45 (C-3'), 72.27 (C-2'), 85.01 (C-5'), 87.73 (C-I'), 124.65 (C-5), 139.20 (C- 8), 146.17 (C-2), 148.30 (C-4), 156.52 (C-6), 161.89 (C-4'); MS (ES+) m/e 273.07 (MNa+, 100%).
step 3 - Sodium azide (1.55 g, 23.9 mmol) was added under argon to a stirred solution of iodine monochloride (1.94 g, 11.95 mmol) in DMF (30 mL) at room temperature. The mixture was stirred at room temperature for 20 min and after this time a solution of 9-(5-deoxy-β-D-erythro-pent-4-enofuranosyl)hypoxanthine (31, 1.20 g, 4.78 mmol) in DMF (300 mL) was added drop wise over 30 min. The mixture was stirred for 4 h then saturated solution of sodium bicarbonate was added followed by sodium thiosulfate. The solvent was evaporated in vacuo and the crude product purified by column chromatography on silica gel eluting with a CHCl3/MeOH gradient (20 to 30% MeOH) to afford 1.16 g (58%) of 32 as a white solid (1.16 g, 58%).
1H-NMR (DMSO-^6; 500 MHz): δ 12.41 (IH, bs, H-I), 8.46 (IH, s, H-8), 8.12 (IH, s, H-2), 6.41 (IH, bs, OH-2'), 6.17 (IH, d, 3J= 7.0 Hz, H-I'), 5.88 (IH, bs, OH-3'), 5.02- 4.99 (IH, m, H-2'), 4.47-4.46 (IH, m, H-3'), 3.73, 3.60 (2H, 2d, 2J=ILl Hz, H-5'); 13C- NMR (MeOD; 125.7 MHz): δ 11.33 (C-5'), 72.18 (C-2'), 74.57 (C-3'), 87.51 (C-I'), 97.42 (C-4'), 124.61 (C-5), 139.29 (C-8), 146.28 (C-2), 148.43 (C-4), 156.50 (C-6).
step 4 - To a solution of 32 (1.10 g, 2.62 mmol) and PTSA (81 mg, 0.66 mmol) in pyridine (20 mL) was added benzoyl chloride (1.47 g, 10.48 mmol, 1216 μL) and the reaction stirred at RT for 3.5 h. The solvent was removed in vacuo and the crude product purified by column chromatography on SiO2 eluting with a CHQ3/Me0H gradient (2 to 5% MeOH) to afford 1.49 g (91%) of 33 as a yellow solid.
1H-NMR (MeOD; 500 MHz): δ 8.34 (IH, s, H-8), 8.20 (IH, s, H-2), 8.05-7.38 (1OH, m, Bz), 6.80-6.79 (IH, m, H-I'), 6.54-6.53 (IH, m, H-3'), 6.50-6.48 (IH, m, H-2'), 3.96, 3.90 (2H, 2d, 2^11.4 Hz, H-5').
step 5 - A solution of 33 (4.08 g, 6.50 mmol) and MCPBA (5.83 g, 4.49 mmol) in water- saturated DCM was heated at reflux and stirred for 4 h. The reaction mixture was diluted with EtOAc, washed with sodium meto-bisulfite solution followed by saturated NaHCO3. The organic phase was dried (MgSO4), and evaporated to provide a foam. The foam was dissolved in MeOH (30 mL) and a IM solution of sodium methoxide in methanol was added (5 mL) and the reaction stirred at RT for 1 h. The reaction was neutralized with DOWEX® resin, filtered and the solvent removed in vacuo. The crude was purified by two successive column chromatographies on SiO2 eluting with EtOAc/IPA/H2O (88/10/2) to afford 217 mg (11%) of 13j.
1H-NMR (MeOD; 500 MHz): δ 8.36 (IH, s, H-8), 8.12 (IH, s, H-2), 6.30 (IH, d,
3J=5.8 Hz, H-I'), 4.88-4.86 (IH, m, H-2'), 4.43 (IH, d, 3J=5.4 Hz, H-3'), 3.69 (IH, m, H- 5'); 13C-NMR (MeOD; 125.7 MHz): δ 65.69 (C-5'), 74.31 (C-3'), 75.22 (C-2'), 91.04 (C- 1'), 101.42 (C-4'), 126.10 (C-5), 141.10 (C-8), 147.09 (C-2), 149.81 (C-4), 154.84 (C-6); ms (ES+) m/e 332.08 (MNa+, 100%).
step 6 - The cyclopentylidene protected group was incorporated by treating 13j with cyclopentanone, HC(OMe)3 and pTSAin MeCN. The phosphoramidate was introduced using the procedure in Example 4 utilizing 13j (65 mg, 0.17 mmol), 1- naphthyl(benzyloxy-L-alaninyl)-phosphochloridate (12as, IM solution in THF, 0.433 mmol, 433 μL), tøt-butylmagnesium choride (1 M solution in THF, 433 μL) and THF (15 mL) . The reaction was stirred for 4 h, the solvent removed and the crude purified by SiO2 column chromatography eluting with a CHCl3/MeOH gradient (starting with 5% MeOH). The appropriate fractions were collected and the solvent removed under reduced pressure to afford 75 mg (59%) of 35 as a white solid.
31P-NMR (MeOD; 202.5 MHz): δ 3.69, 3.56; 1H-NMR (MeOD; 500 MHz): δ 8.18, 8.17 (IH, 2s, H-8), 8.15-7.23 (13H, m, naphthyl, PJiCH2 and H-2), 6.45-6.41 (IH, 2s, H- 1'), 5.36-5.02 (2H, m, PhCH2+H-2'+H-3'), 4.37-4.32 (IH, m, H-5'), 4.11-4.04 (IH, m, CH3CH), 2.29-2.12 (2H, m, cyclopentylidene), 1.89-1.61 (6H, m, cyclopentylidene), 1.5- 1.34 (3H, 111, QL2CH). step 7 - A solution of 35 (75 mg, 0.101 mmol) and HCOOH (80 % v/v solution in water, 10 mL) was stirred at RT for 10 h. The solvent was removed and the crude purified by SiO2 column chromatography eluting with a CHQ3/Me0H gradient (from 5 to 8% MeOH) to afford 45 mg (66%) of 1-88 as a white solid.
31P-NMR (MeOD; 202.5 MHz) : δ 3.76, 3.65; 1H-NMR (MeOD; 500 MHz) : δ 8.22,
8.21 (IH, 2s, H-8), 8.13-7.24 (13H, m, naphthyl, PJiCH2 and H-2), 6.28-6.26 (IH, m, H- 1'), 5.09-5.01 (2H, m, PhCH2), 4.92-4.89 (IH, m, H-2'), 4.67-4.64 (IH, m, H-3'), 4.39- 4.28 (IH, m, H-5'), 4.06-4.01 (IH, m, CH3CH), 1.30 (3H, d, 3^7.05, CHjCH); 13C-NMR (MeOD; 125.7 MHz): δ 20.20, 20.26, 20.38, 20.43 (CH3CH), 51.68, 51.79 (CH3CH), 67.97, 68.03 (PhCH2), 68.75, 68.79, 68.91 (C-5'), 73.95, 74.08, 74.16 (C-2'+C+3'), 91.26, 91.37 (C-I'), 99.18, 99.26 (C-4'), 116.16, 116.28, 116.30, 122.53, 122.66, 126.08, 126.30, 126.35, 126.47, 127.48, 127.57, 127.68, 127.73, 127.79, 127.83, 128.83, 128.93, 129.20, 129.24, 129.28, 129.52, 129.54, 136.16, 136.25, 137.10, 137.15 (naphthol, PhCH2 and C- 5), 141.29 (C-8), 146.85, 146.95 (C-2), 147.70, 147.76 ( ϊpso\ naphthol), 149.83 (C-4), 158.81 (C-6), 174.82, 174.85 (COOBn).
Example 85
Renilla luciferase assay
This assay measures the ability of the compounds of formula I to inhibit HCV RNA replication, and therefore their potential utility for the treatment of HCV infections. The assay utilizes a reporter as a simple readout for intracellular HCV replicon RNA level. The Renilla luciferase gene was introduced into the first open reading frame of a replicon construct NK5.1 (Krieger et al, J. Virol. 75:4614), immediately after the internal ribosome entry site (IRES) sequence, and fused with the neomycin phosphotransferase (NPTII) gene via a self-cleavage peptide 2Afrom foot and mouth disease virus (Ryan & Drew, EMBO VoI 13:928-933). After in vitro transcription the RNA was electr op orated into human hepatoma Huh7 cells, and G418-resistant colonies were isolated and expanded. Stably selected cell line 2209-23 contain replicative HCV subgenomic RNA, and the activity of Renilla luciferase expressed by the replicon reflects its RNA level in the cells. The assay was carried out in duplicate plates, one in opaque white and one in transparent, in order to measure the an ti- viral activity and cytotoxicity of a chemical compound in parallel ensuring the observed activity is not due to decreased cell proliferation.
Renilla luciferase HCV replicon cells (2209-23) cultured in Dulbecco's MEM (GibcoBRLcat no. 31966-021) with 5 % fetal calf serum (FCS, GibcoBRLcat. no. 10106- 169) were plated onto a 96- well plate at 5000 cells per well, and incubated overnight. Twenty-four hours later, different dilutions of chemical compounds in the growth medium were added to the cells, which were then further incubated at 37°C for three days. At the end of the incubation time, the cells in white plates were harvested and luciferase activity was measured by using Dual-Luciferase reporter assay system (Promega cat no. E1960). All the reagents described in the following paragraph were included in the manufacturers' kit, and the manufacturers' instructions were followed for preparations of the reagents. The cells were washed twice with 200 μl of phosphate buffered saline (pH 7.0) (PBS) per well and lysed with 25 μl of Ix passive lysis buffer prior to incubation at room temperature for 20 min. One hundred microlitre of LAR II reagent was added to each well. The plate was then inserted into the LB 96V microplate luminometer (MicroLumatPlus, Berthold), and 100 μl of Stop & Glo® reagent was injected into each well and the signal measured using a 2-second delay, 10- second measurement program. IC5O, the concentration of the drug required for reducing replicon level by 50% in relation to the untreated cell control value, can be calculated from the plot of percentage reduction of the luciferase activity vs. drug concentration.
WST-I reagent from Roche Diagnostic (cat no. 1644807) was used for the cytotoxicity assay. Ten microlitre of WST-I reagent was added to each well including wells that contain media alone as blanks. Cells were then incubated for 1 to 1.5 hours at 370C, and the OD value was measured by a 96- well plate reader at 450 nm (reference filter at 650 nm). Again CC5O, the concentration of the drug required for reducing cell proliferation by 50% in relation to the untreated cell control value, can be calculated from the plot of percentage reduction of the WST-I value vs. drug concentration.
Figure imgf000124_0001
Example 86
Pharmaceutical compositions of the subject Compounds for administration via several routes were prepared as described in this Example.
Composition for Oral Administration (A)
Figure imgf000125_0001
The ingredients are mixed and dispensed into capsules containing about 100 mg each; one capsule would approximate a total daily dosage.
Composition for Oral Administration (B)
Figure imgf000125_0002
The ingredients are combined and granulated using a solvent such as methanol. The formulation is then dried and formed into tablets (containing about 20 mg of active compound) with an appropriate tablet machine.
Composition for Oral Administration (C)
Figure imgf000125_0003
The ingredients are mixed to form a suspension for oral administration.
Parenteral Formulation (D)
Figure imgf000126_0001
The active ingredient is dissolved in a portion of the water for injection. A sufficient quantity of sodium chloride is then added with stirring to make the solution isotonic. The solution is made up to weight with the remainder of the water for injection, filtered through a 0.2 micron membrane filter and packaged under sterile conditions.
Suppository Formulation (E)
Figure imgf000126_0002
The ingredients are melted together and mixed on a steam bath, and poured into molds containing 2.5 g total weight.
The features disclosed in the foregoing description, or the following claims, expressed in their specific forms or in terms of a means for performing the disclosed function, or a method or process for attaining the disclosed result, as appropriate, may, separately, or in any combination of such features, be utilized for realizing the invention in diverse forms thereof.
The foregoing invention has been described in some detail by way of illustration and example, for purposes of clarity and understanding. It will be obvious to one of skill in the art that changes and modifications maybe practiced within the scope of the appended claims. Therefore, it is to be understood that the above description is intended to be illustrative and not restrictive. The scope of the invention should, therefore, be determined not with reference to the above description, but should instead be determined with reference to the following appended claims, along with the full scope of equivalents to which such claims are entitled. AIl patents, patent applications and publications cited in this application are hereby incorporated by reference in their entirety for all purposes to the same extent as if each individual patent, patent application or publication were so individually denoted.

Claims

Claims
1. A compound according to formula I
Figure imgf000128_0001
I A B C D
wherein:
R1 is hydrogen, Ci_6 haloalkyl, or aryl wherein said aryl is phenyl or naphthyl optionally substituted with one to three substituents independently selected from the group consisting of Ci_6 alkyl, C2_6 alkenyl, C2_6 alkynyl, Ci_6 alkoxy, halogen, C1- 6 haloalkyl, -N(Rla)2, Ci_6 acylamino, -NHSO2Ci_6 alkyl, -SO2N(Rla)2, -SO2Ci_6 alkyl, CORlb, nitro and cyano;
Rla is independently hydrogen or C1-6 alkyl;
Rlb is -ORla or -N(Rla)2;
R2aand R2b are (/) independently selected from the group consisting of hydrogen, C1-1O alkyl, -(CH2)rNRla 2, Ci_6 hydroxyalkyl, -CH2SH, -(CH2)2S(O)pMe, -(CH2)3NHC(=NH)NH2, ( lH-indol-3-yl)methyl, ( lH-imidazol-4-yl)methyl, -(CΗ2)mCORlb, aryl and aryl C1-3 alkyl, said aryl groups optionally substituted with a group selected from the group consisting of hydroxyl, C1-1O alkyl, C1-6 alkoxy, halogen, nitro and cyano,; (U) R2a is hydrogen and R2b and R4 together are (CH2)3; («0 R2a and R2b together are (CH2)n; or, (iv) R2a and R2b both are C1-6 alkyl;
R3 is hydrogen, C1-1O alkyl, C1-1O haloalkyl, aryl or aryl-Ci_3 alkyl wherein said aryl is phenyl;
R4 is hydrogen, C1-3 alkyl, or R2b and R4 together are (CH2)3;
R5 is azide, -C≡CH or -(Z)-CH=CHCl;
R6 is A, B, C or D wherein R11 is hydrogen or C1-3 alkyl;
R7 is hydrogen, methyl, halomethyl or halogen; either
(a) R9 is OR8b and R10 is hydrogen wherein R8a and R8b are (Q independently hydrogen, benzoyl or C1-6 acyl or (Q together R8a and R8b are C(Me)2, C(CH2)4, CHPh, or
(b) R9 is hydrogen and R10 is OR8b wherein R8a and R8b are independently hydrogen or Ci_6 acyl;
m is 0 to 3;
n is 4 or 5;
p is 0 to 2;
r is 1 to 6; and,
pharmacologically acceptable salts thereof.
2. A compound of formula I according to claim 1
Figure imgf000129_0001
I A B C D
wherein:
R1 is hydrogen, C1-6 haloalkyl, or aryl wherein said aryl is phenyl or naphthyl optionally substituted with one to three substituents independently selected from the group consisting of C1-6 alkyl, C1-6 alkoxy and halogen;
R2aand R2b are (Q independently selected from the group consisting of hydrogen, C1-1O alkyl, -(CH2)U1CO2C1-O alkyl , -(CH2)mS C1-6 alkyl, aryl and aryl C1-3 alkyl wherein said aryl is phenyl; (U) R2a is hydrogen and R2b and R4 together are (CH2)3; (//Q R2a and R2b together are (CH2)n; or, (iv) R2a and R2b both are C1-6 alkyl;
R3 is hydrogen, C1-M alkyl, C1-1O haloalkyl, aryl or aryl-C1-3 alkyl wherein said aryl is phenyl;
R4 is hydrogen, C1-3 alkyl, or R4 together with R2a or R2b are (CH2)3; R5 is azide, -C≡CH or -(Z)-CH=CHCl;
R6 is A, B, C or D;
R9 is OR8b and R10 is hydrogen wherein R8a and R8b are hydrogen or R8a and R8b together are C(Me)2;
m is 0 to 3;
n is 4 or 5; and,
pharmacologically acceptable salts thereof.
3. A compound of formula I according to claim 2,
Figure imgf000130_0001
wherein:
R1 is hydrogen or aryl wherein said aryl is phenyl or naphthyl optionally substituted with one to three substituents independently selected from the group consisting of C1-O alkyl, C1-6 alkoxy and halogen;
R2aand R2b are (/) independently selected from the group consisting of hydrogen, C1-1O alkyl, -(CH2)mCO2C1-6 alkyl , -(CH2)mS C1-6 alkyl, aryl and aryl Ci_3 alkyl wherein said aryl is phenyl; (U) R2a is hydrogen and R2b and R4 together are (CH2)3; or (Ui) R2a and R2b together are (CH2)n;
R3 is hydrogen, C1-M alkyl, C1-1O haloalkyl, aryl or aryl-Ci-3 alkyl wherein said aryl is phenyl;
R4 is hydrogen, C1-3 alkyl, or R4 together with R2a or R2b are (CH2)3;
R5 is azide, -C≡CH or -(Z)-CH=CHCl;
R6 is A;
R9 is OR8b and R10 is hydrogen wherein R8a and R8b are hydrogen; R11 is hydrogen
m is 0 to 3;
n is 4 or 5.
4. A compound according to claim 3,
wherein:
R1 is hydrogen, phenyl, 4-Cl-phenyl, 3,4-di-Cl-phenyl, 4-methyl-phenyl, 4-methoxy-phenyl, 1-naphthyl or 3-bromo-naphthyl;
R2aand R2b are (/) independently selected from the group consisting of hydrogen, methyl,
-CHMe2; -CH2CHMe2; -(CH2)2CO2Et ; -(CH2)2SMe; -CH2-phenyl; (H) R2a is hydrogen and R2b and R4 together are (CH2)3; or (///) R2a and R2b together are
(CH2)4;
R3 is hydrogen, methyl, ethyl, isopropyl, n-butyl, tert-butyl, CH(ethyl)CH3, n-C12H25, -CH2CF3, -CH2-phenyl;
R4 is hydrogen, methyl, or R4 together with R2a or R2b are (CH2)3;
R5 is azide, -C≡CH or -(Z)-CH=CHCl;
R6 is A;
R9 is OR8b and R10 is hydrogen wherein R8a and R8b are hydrogen; and
R11 is hydrogen.
5. A compound of formula I according to claim 2
Figure imgf000131_0001
Σ B wherein: R1 is hydrogen, C1-6 haloalkyl, or aryl wherein said aryl is phenyl or naphthyl optionally substituted with one to three substituents independently selected from the group consisting of C1-6 alkyl, C1-6 alkoxy and halogen;
R2aand R2b are (/) independently selected from the group consisting of hydrogen, C1-1O alkyl, -(CH2)DiCO2C1-6 alkyl , -(CH2)mS Ci_6 alkyl, aryl and aryl C1-3 alkyl wherein said aryl is phenyl; (H) R2a is hydrogen and R2b and R4 together are (CH2)3; (Hi) R2a and R2b together are (CH2)n; or, (iv) R2a and R2b both are C1-6 alkyl;
R3 is hydrogen, C1-M alkyl, C1-1O haloalkyl, aryl or aryl-Ci-3 alkyl wherein said aryl is phenyl;
R4 is hydrogen, C1-3 alkyl, or R4 together with R2a or R2b are (CH2)3;
R5 is azide, -C≡CH or -(Z)-CH=CHCl;
R6 is B;
R9 is OR8b and R10 is hydrogen wherein R8a and R8b are hydrogen or R8a and R8b together are C(Me)2;
m is 0 to 3; and
n is 4 or 5.
6. A compound according to claim 5,
wherein:
R1 is hydrogen, -CH2CF3, phenyl, 4-Cl-phenyl, 3,4-di-Q-phenyl, 4-methyl-phenyl, A- methoxy-phenyl or 1-naphthyl;
R2aand R2b are (/) independently selected from the group consisting of hydrogen, methyl, -CHMe2; -CH2CHMe2; -CH(ethyl)CH3, -CH2CO2Et, -(CH2)2CO2Et ; (CH2)2SMe; -CH2-phenyl; (K) R2a is hydrogen and R2b and R4 together are (CH2)3; or (Ui) R2a and R2b together are (CH2)4;
R3 is hydrogen, methyl, ethyl, isopropyl, n-butyl, tert-butyl, -CH(ethyl)CH3, n-C12H25, -CH2-phenyl;
R4 is hydrogen, methyl, or R4 together with R2a or R2b are (CH2)3; R5 is azide;
R6 is B; and
R9 is OR8b and R10 is hydrogen wherein R8a and R8b are hydrogen or R8a and R8b together are C(Me)2.
>
7. A compound of formula I according to claim 2
Figure imgf000133_0001
wherein:
R1 is hydrogen or aryl wherein said aryl is phenyl or naphthyl optionally substituted with one to three substituents independently selected from the group consisting of C1-O alkyl, C1-6 alkoxy and halogen;
R2aand R2b are independently selected from the group consisting of hydrogen, C1-6 alkyl;
R3 is hydrogen, C1-M alkyl, aryl or aryl-Ci_3 alkyl wherein said aryl is phenyl;
R4 is hydrogen, C1-3 alkyl;
R5 is azide;
R6 is C;
R8a is H;
R9 is hydroxyl; and
R10 is hydrogen.
8. A compound according to claim 7,
wherein:
R1 is hydrogen or naphthyl; R2aand R2b are independently selected from the group consisting of hydrogen and methyl;
R3 is hydrogen or -CH2-phenyl;
R4 is hydrogen;
R5 is azide;
R6 is C;
R8a is H;
R9 is hydroxyl; and
R10 is hydrogen.
9. A compound of formula I according to claim 2
Figure imgf000134_0001
I D wherein:
R1 is hydrogen or aryl wherein said aryl is phenyl or naphthyl optionally substituted with one to three substituents independently selected from the group consisting of C1-O alkyl, C1-6 alkoxy and halogen;
R2aand R2b are independently selected from the group consisting of hydrogen, C1-6 alkyl;
R3 is hydrogen, C1-M alkyl, aryl or aryl-Ci-3 alkyl wherein said aryl is phenyl;
R4 is hydrogen, C1-3 alkyl;
R5 is azide;
R6 is D;
R8a is H;
R9 is hydroxyl; and R10 is hydrogen.
10. A compound according to claim 9,
wherein:
R1 is hydrogen or naphthyl;
R2aand R2b are independently selected from the group consisting of hydrogen and methyl;
R3 is hydrogen or -CH2-phenyl;
R4 is hydrogen;
R5 is azide;
R6 is D;
R8a is H;
R9 is hydroxyl; and
R10 is hydrogen.
11. A compound according to any one of claims 1 to 10, which is
(S)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid methyl ester,
(S)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-3-phenyl-propionic acid ethyl ester,
2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-2-methyl-propionic acid benzyl ester,
2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-2-methyl- propionic acid benzyl ester, (S)-2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy]-phenoxy-phosphorylamino}-4-methyl- pentanoic acid ethyl ester ,
2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-diriydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-2-methyl- propionic acid ethyl ester,
(S)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-3-phenyl-propionic acid benzyl ester,
(S)-2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-3-phenyl- propionic acid benzyl ester,
(S)-2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-3-phenyl- propionic acid isopropyl ester,
2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-2-methyl-propionic acid ethyl ester,
(2S,3S)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-3-methyl- pentanoic acid ethyl ester,
2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-2-methyl- propionic acid isopropyl ester,
(S)-2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid benzyl ester,
(S)-2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid isopropyl ester, 2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-2-methyl-propionic acid isopropyl ester,
(S)-2-[[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -(4-chloro-phenoxy)-phosphorylamino] -4-methyl- pentanoic acid ethyl ester ,
(S)-2-[[(2R3S,4R5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy]-(3,4-dichloro-phenoxy)-phosphorylamino]-4-methyl- pentanoic acid ethyl ester ,
(S)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-3-phenyl-propionic acid isopropyl ester,
(S)-2-{[(2R3S,4R5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-4-methyl-pentanoic acid benzyl ester ,
(S)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid benzyl ester,
2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -hydroxy-phosphorylamino }-2-methyl-propionic acid ethyl estertriethyl- amine;,
2-{[(2R3S,4R5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-mran-2-ylmethoxy] -hydroxy-phosphorylamino }-2-methyl- propionatetriethyl- amine;,
(S)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-succinic acid diethyl ester,
(S)-2-{[(2R3S,4R5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid ethyl ester,
(S)-2-{[(2R3S,4R5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -p-tolyloxy-phosphorylamino }-4-methyl-pentanoic acid ethyl ester , (S)-2-[[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy]-(4-methoxy-phenoxy)-phosphorylamino]-4-methyl- pentanoic acid ethyl ester ,
(S)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-4-methyl-pentanoic acid ethyl ester ,
(S)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid sec-butyl ester,
(S)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid tert-butyl ester,
(S)-2-[[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy]-(4-chloro-phenoxy)-phosphorylamino]-4- methyl-pen tanoic acid ethyl ester ,
(S)-2-[[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy]-(3,4-dichloro-phenoxy)-phosphorylamino]- 4-methyl-pen tanoic acid ethyl ester ,
(R)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid benzyl ester,
{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino}- acetic acid benzyl ester,
(S)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid ethyl ester,
(S)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid isopropyl ester,
(S)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-3-methyl-butyric acid benzyl ester , (S)-2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy]-p-tolyloxy-phosphorylamino}-4-methyl- pentanoic acid ethyl ester ,
(S)-2-[[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-diriydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy] -(4-methoxy-phenoxy)-phosphorylamino] -A- methyl-pentanoic acid ethyl ester ,
(S)-2-{[(2R,3S,4R,5R)-2-((Z)-2-Chloro-vinyl)-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin- l-yl)-3,4-dihydroxy-tetrahydro-mran-2-ylmethoxy] -phenoxy-phosphorylamino }- propionic acid benzyl ester,
(R)-2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid benzyl ester,
(R)-2-{[(2R,3S,4R,5R)-5-(2,4-Dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-2-ethynyl-3,4- dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid benzyl ester,
(S)-2-{[(2R,3S,4R,5R)-5-(2,4-Dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-2-ethynyl-3,4- dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid tert-butyl ester,
(R)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid ethyl ester,
(S)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy]-hydroxy-phosphorylamino}-propionatetriethyl-amine,
(S)-2-[[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy]-(4-chloro-phenoxy)-phosphorylamino]- propionic acid benzyl ester,
(S)-2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-3-methyl- butyric acid benzyl ester ,
(S)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-4-methylsulfanyl-butyric acid ethyl ester, (S)-2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-mran-2-ylmethoxy] -phenoxy-phosphorylamino }-4- methylsulfanyl-butyric acid ethyl ester,
{[(2R,3S,4R,5R)-5-(2,4-Dioxo-3,4-diriydro-2H-pyrimidin-l-yl)-2-ethynyl-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }- acetic acid benzyl ester,
(S)-2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-diriydro-2H-pyrimidin-l-yl)-3,4- dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid tert-butyl ester,
(R)-2-[[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy]-(4-chloro-phenoxy)-phosphorylamino]- propionic acid benzyl ester,
(R)-2-[[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy]-(3,4-dichloro-phenoxy)-phosphorylamino]- propionic acid benzyl ester,
(R)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid tert-butyl ester,
(S)-2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid methyl ester,
(S)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid methyl ester,
(S)-2-{[(2R,3S,4R,5R)-5-(2,4-Dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-2-ethynyl-3,4- dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid benzyl ester,
(S)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-4-methyl-pentanoic acid isopropyl ester, (S)-2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy]-phenoxy-phosphorylamino}-4-methyl- pentanoic acid isopropyl ester ,
{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }- acetic acid benzyl ester,
(R)-2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid isopropyl ester,
({[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphoryl}-methyl-amino)-acetic acid ethyl ester,
(R)-2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid sec-butyl ester,
(R)-2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid dodecyl ester,
(R)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid dodecyl ester,
(S)-2-[[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy]-(4-methoxy-phenoxy)-phosphorylamino]- propionic acid benzyl ester,
(S)-2-[[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -(4-methoxy-phenoxy)-phosphorylamino] -propionic acid benzyl ester,
2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy]-hydroxy-phosphorylamino}-2-methyl- propionic acid; compound with ammonia, (R)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy]-hydroxy-phosphorylamino}-propionic acid benzyl ester; compound with ammonia,
2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -hydroxy-phosphorylamino }-2-methyl-propionic acid; compound with ammonia,
({[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphoryl}-methyl-amino)-acetic acid ethyl ester,
(S)-2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy- tetrahydro-furan-2-ylmethoxy] -hydroxy-phosphorylamino }-3-phenyl- propionic acid ethyl ester; compound with ammonia,
(S)-2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy- tetrahydro-furan-2-ylmethoxy] -hydroxy-phosphorylamino }-3-phenyl- propionic acid; compound with ammonia,
(S)-2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-mran-2-ylmethoxy] -phenoxy-phosphorylamino }-3-phenyl- propionic acid ethyl ester,
(S)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-3-phenyl-propionic acid ethyl estertrifluoro- acetic acid;,
(S)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-3-phenyl-propionic acid ethyl esterformic acid;,
(S)-2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy- tetrahydro-furan-2-ylmethoxy] -hydroxy-phosphorylamino }-propionic acid; compound with ammonia,
(S)-2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy- tetrahydro-furan-2-ylmethoxy] -p-tolyloxy-phosphorylamino }-propionic acid ethyl ester, (S)-2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy]-phenoxy-phosphorylamino}-pentanedioic acid diethyl ester,
(R)-2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid butyl ester,
(S)-2-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-diriydro-2H-pyrimidin-l-yl)-3,4- dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid butyl ester,
(R)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid butyl ester,
(S)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy]-p-tolyloxy-phosphorylamino}-propionic acid ethyl ester,
(S)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-pentanedioic acid diethyl ester,
(S)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -hydroxy-phosphorylamino }-3-phenyl-propionic acid ethyl ester; compound with ammonia,
(S)-2-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -hydroxy-phosphorylamino }-3-phenyl-propionic acid; compound with ammonia,
(S)-2-[[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy]-(l-bromo-naphthalen-2-yloxy)- phosphorylamino] -propionic acid benzyl ester,
(S)-2-[[(2R,3S,4R,5R)-5-(6-Amino-purin-9-yl)-2-azido-3,4-dihydroxy-tetrahydro- furan-2-ylmethoxy] -(naphthalen- l-yloxy)-phosphorylamino] -propionic acid benzyl ester,
(S)-2-[[(2R,3S,4R,5R)-2-Azido-3,4-dihydroxy-5-(6-oxo-l,6-dihydro-purin-9-yl)- tetrahydro-furan-2-ylmethoxy] -(naphthalen- l-yloxy)-phosphorylamino] -propionic acid benzyl ester, (S)-2-[[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy] -(naphthalen- l-yloxy)-phosphorylamino] - propionic acid 2,2,2- trifluoro- ethyl ester,
(S)-2-[[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -(2,2,2-trifluoro-ethoxy)-phosphorylamino] -propionic acid benzyl ester,
Pentanoic acid (2R,3R,4S,5R)-2-(4-amino-2-oxo-2H-pyrimidin-l-yl)-5-azido-5-[((S)-l- benzyloxycarbonyl-ethylamino)-phenoxy-phosphoryloxymethyl]-4-pentanoyloxy- tetrahydro-furan-3-yl ester,
l-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-cyclopentanecarboxylic acid ethyl ester,
l-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-cyclopentanecarboxylic acid isopropyl ester,
l-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }-cyclopentanecarboxylic acid benzyl ester,
l-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }- cyclopentanecarboxylic acid benzyl ester,
l-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }- cyclopentanecarboxylic acid ethyl ester,
l-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -hydroxy-phosphorylamino }-cyclopentanecarboxylic acid ethyl estertriethyl- amine;,
l-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphorylamino }- cyclopentanecarboxylic acid isopropyl ester, l-{[(2R,3S,4R,5R)-2-Azido-5-(2,4-dioxo-3,4-dihydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-mran-2-ylmethoxy]-hydroxy-phosphorylamino}- cyclopentanecarboxylic acid isopropyl ester,
l-{[(2R,3S,4R,5R)-5-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-2-azido-3,4-dihydroxy- tetrahydro-furan-2-ylmethoxy] -phenoxy-phosphoryl}-pyrrolidine-2-carboxylic acid ethyl ester,
(S)-l-{[(2R3S,4R5R)-2-Azido-5-(2,4-dioxo-3,4-diriydro-2H-pyrimidin-l-yl)-3,4- dihydroxy-tetrahydro-furan-2-ylmethoxy]-phenoxy-phosphoryl}-pyrrolidine-2- carboxylic acid ethyl ester,
(S)-2-{[(3aS,4R6R6aR)-6-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-4-azido-2,2-dimethyl- tetrahydro-furo[3,4-d] [1,3] dioxol-4-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid benzyl ester,
(S)-2-{[(3aS,4R6R6aR)-6-(4-Amino-2-oxo-2H-pyrimidin-l-yl)-4-azido-2,2-dimethyl- tetrahydro-furo[3,4-d] [1,3] dioxol-4-ylmethoxy] -phenoxy-phosphorylamino }-propionic acid isopropyl ester.
12. A compound according to any one of claims 1 to 10 for the use as medicament.
13. Use of a compound according to any one of claims 1 to 10 for the manufacture of a medicament for the treatment of diseases mediated by Hepatitis C Virus (HCV).
14. A pharmaceutical composition comprising a therapeutically effective quantity of a compound according to any one of claims 1 to 10 admixed with at least one pharmaceutically acceptable carriers, diluents or excipients.
15. The invention as hereinbefore described.
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