WO2016011336A1 - Composition for treating cancerous cells and a method therefor - Google Patents
Composition for treating cancerous cells and a method therefor Download PDFInfo
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- WO2016011336A1 WO2016011336A1 PCT/US2015/040881 US2015040881W WO2016011336A1 WO 2016011336 A1 WO2016011336 A1 WO 2016011336A1 US 2015040881 W US2015040881 W US 2015040881W WO 2016011336 A1 WO2016011336 A1 WO 2016011336A1
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- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
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- A61K48/00—Medicinal preparations containing genetic material which is inserted into cells of the living body to treat genetic diseases; Gene therapy
- A61K48/005—Medicinal preparations containing genetic material which is inserted into cells of the living body to treat genetic diseases; Gene therapy characterised by an aspect of the 'active' part of the composition delivered, i.e. the nucleic acid delivered
- A61K48/0066—Manipulation of the nucleic acid to modify its expression pattern, e.g. enhance its duration of expression, achieved by the presence of particular introns in the delivered nucleic acid
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- A61K35/00—Medicinal preparations containing materials or reaction products thereof with undetermined constitution
- A61K35/66—Microorganisms or materials therefrom
- A61K35/76—Viruses; Subviral particles; Bacteriophages
- A61K35/768—Oncolytic viruses not provided for in groups A61K35/761 - A61K35/766
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- A61K39/00—Medicinal preparations containing antigens or antibodies
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- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61P—SPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
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- A—HUMAN NECESSITIES
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- A61P37/00—Drugs for immunological or allergic disorders
- A61P37/02—Immunomodulators
- A61P37/04—Immunostimulants
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61P—SPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
- A61P43/00—Drugs for specific purposes, not provided for in groups A61P1/00-A61P41/00
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- C12N2710/00011—Details
- C12N2710/24011—Poxviridae
- C12N2710/24032—Use of virus as therapeutic agent, other than vaccine, e.g. as cytolytic agent
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Definitions
- the present disclosure re lates to a com position for treating cancerous cells in subjects and a method the refor.
- compositions for treating ca ncerous cells in a subject having an immune system includes a virus in the Yatapoxvirus genus having at least one mutation.
- the at least one mutation results in suppressed expression of a TNF binding protein by the virus.
- compositions for treating ca ncerous cells in a subject having an im m une system including a virus in the Yatapoxvirus genus, where the virus has at least one mutation, the at least one mutation resulting in suppressed expression of thymidine kinase ("TK").
- TK thymidine kinase
- the composition for treating cancerous cells in a subject having an immune system includes a poxvirus which encodes a transgene expressing a bacterial flagellin.
- a method of treating a subject with cancerous cells includes administering a composition to the subject, wherein the composition includes a vi rus i n the Yatapoxvirus genus having at least one mutation which results in suppressed expression of a TNF binding protein by the virus.
- At least one gene is delivered to cance rous ce lls in a subject by modifying a virus of the Yatapoxvirus genus by mutating the virus to suppress expression of a TNF binding protein having a structure capable of binding an M HC-1 light chain.
- the virus is also modified by encoding at least one gene in the virus, wherein the at least one gene encoded in the vi rus results in increased apoptosis of the cancerous cells or activates an immune response in the subject.
- the modified virus is administered to the subject.
- the pha rmaceutica l compositions for treating cancerous tumors and methods described herein a llow for potentially effective treatment of the cancerous cells with limited risk of serious infection or side effects which may be experienced with traditional treatment methods, and may in some cases be used in combination with traditional treatment methods.
- the modified poxviruses described herein have exhibited results which indicate increased oncoselectivity and increased oncolethality as compared to unmodified poxviruses, and are expected to maintain preferable OV characteristics such as causing only a mild and self-limiting febrile illness in infected subjects.
- FIG. 1 is a schematic illustrating one embodiment of a recombinant tanapoxvirus
- TSV as altered by a p2KO method to insert an expressed transgene and a fluorescent reporter
- FIG. 2A is a graph illustrating average tumor volume in athymic nude mice xenografted with HCT 116 cells and treated with a vehicle-only control solution;
- FIG. 2B is a graph illustrating average tumor volume in athymic nude mice xenografted with HCT 116 cells and treated with one em bodiment of recombinant TPV (TPV/eg/p) as compared to the vehicle-only control solution;
- FIG. 2C is a graph illustrating average tumor volume in athymic nude mice xenografted with HCT 116 cells and treated with one em bodiment of recombinant TPV (TPV-p2KO/A66R/mMCP-l) as compared to the vehicle-only control solution;
- FIG. 2D is a graph illustrating average tumor volume in athymic nude mice xenografted with HCT 116 cells and treated with one em bodiment of recombinant TPV (TPV-p2KO/A66R/mGM-CSF) as compa red to the vehicle-only control solution;
- FIG. 2E is a graph illustrating average tumor volume in athymic nude mice xenografted with HCT 116 cells and treated with one em bodiment of recombinant TPV (TPV-p2KO/A66R/fliC) as compa red to the vehicle-only control solution;
- FIG. 2F is a graph illustrating average tumor volume in athymic nude mice xenografted with HCT 116 cells and treated with one em bodiment of recombinant TPV (TPV-p2KO/A66R) as compared to the vehicle-only control solution;
- FIG. 2G is a graph illustrating average tumor volume in athymic nude mice xenografted with HCT 116 cells and treated with one em bodiment of recombinant TPV (TPV-p2KO/A2L) as compared to the vehicle-only control solution;
- FIG. 2H is a graph illustrating average tumor volume in athymic nude mice xenografted with HCT 116 cells and treated with one em bodiment of recombinant TPV (TPV-p2KO/A2L/A66R/fliC) as compared to the vehicle-only control solution; and
- FIG. 3 includes views of one embodiment of a viral plaque at 2 days, 4 days, and 6 days produced by infection of one embodiment of a recombinant TPV which has been altered to express fluorescent reporters.
- wild-type poxviruses such as those in the genus Yatapoxvirus, including without limitation tanapoxvirus ("TPV"), are not generally considered to have a high degree of native oncospecificity. I n viruses without significant native oncospecificity, genetic engineering has been employed to increase cancer cell selectivity.
- poxviruses Although they do not necessarily have a high degree of native oncospecificity, poxviruses, and more specifically poxviruses in the Yatapoxvirus genus, have several inherent qua lities that make them well-suited for modification for use as OVs. Poxviruses have viral genomes which are able to accommodate a large amount of added genetic material, and come with a built-in array of offensive and defensive capabilities.
- Poxvirus genomes encode a variety of immunomodulatory proteins devoted to hiding infection- associated cell-surface epitopes from host immunesurveillance, the inhibition and evasion of some host immune a nd inflammatory responses, and the disruption of signals from the extracellular environment by means of virally-encoded peptides which mimic host cytokines and cytokine receptors. Poxviruses also produce two distinct types of progeny virions, the mature virion (MV) form and the enveloped virion (EV) form. The MV form of the virus is enclosed in a single lipid bilayer and is released from the host cell only by cytolysis.
- MV mature virion
- EV enveloped virion
- the EV form is actively exported from the host cell after it has acquired a second, outer envelope, possibly from the host cell trans Golgi network, and is referred to as a wrapped virion (WV) until it is exported from the infected cell, after which time it is referred to as the EV form.
- the poxvirus EV form is a specialized form of the virus which is responsible for spreading the poxvirus to distant sites within the host by trafficking through the bloodstream and the lymphatic network.
- the EV form is well- suited for this task, as it has only 6 tra nsmembra ne proteins exposed to the extracellular environment vs. approximately 20 for the MV form. Fewer exposed epitopes mean that the EV form is more able to escape neutralizing immunity than the MV form.
- TPV a member of the genus Yatapoxvirus and a wild poxvirus
- Humans infected with TPV experience only a mild and self-limiting febrile illness, possibly because TPV infection is normally confined to periphera l areas of the body. Apart from areas in equatorial Africa (where it is endemic) humans are immunologically na ' ive to TPV. Additionally, the TPV has never been observed to transmit from person to person, a highly desirable safety feature in an OV.
- Yatapoxvirus genus are disclosed herein for use as OV, to be incorporated in compositions to treat cancerous cells, and to be used in methods of treating cancerous cells.
- one aspect of the present disclosure is a composition for treating cancerous cells in a subject having an immune system.
- the composition includes a virus in the Yatapoxvirus genus having at least one mutation. The at least one mutation results in suppressed expression of a TNF binding protein by the virus.
- Another aspect of the present disclosure is a composition for treating cancerous cells in a subject having an immune system, including a virus in the Yatapoxvirus genus, where the virus has at least one mutation resulting in suppressed expression of thymidine kinase ("TK").
- the composition includes a poxvirus which encodes a transgene expressing a bacterial flagellin.
- the term "subject” includes human and animal subjects, and preferably mammalian subjects.
- a method of treating a subject having cancerous cells includes administering a composition to the subject, wherein the composition is as described herein.
- the composition includes a virus in the Yatapoxvirus genus having at least one mutation which results in suppressed expression of a TNF binding protein by the virus.
- the composition includes a virus in the Yatapoxvirus genus, where the virus has at least one mutation resulting in suppressed expression of TK.
- the composition includes a poxvirus which is encodes a transgene expressing a bacterial flagellin. Any or all of these mutations can be present in the composition, singly or in any combination.
- the com position can be delivered in a targeted manner to a group of cancerous cells, or can be delivered to the subject systemically.
- At least one gene is delivered to cancerous cells in a subject by modifying a virus of the Yatapoxvirus genus by mutating the virus to suppress expression of a TNF binding protein having a structure capable of binding an MHC-1 light chain.
- the virus is also modified by encoding at least one gene in the virus, wherein the at least one gene encoded in the virus results in increased apoptosis of the cancerous cells or activates an immune response in the subject.
- the modified virus is administered to the subject.
- the poxvirus is genetically modified to suppress expression of a host range factor with TNF-binding activity, also referred to herein as a
- TNF binding protein The TNF binding protein which is suppressed is similar in structure to an MHC-1 heavy chain protein, and the encoded TNF binding protein can interact with an MHC-1 light chain.
- the TNF binding protein is encoded in the 2L gene.
- Recombinant TPV in which the 2L gene has been ablated or otherwise mutated to suppress expression of the TNF binding protein is sometimes referred to herein as "2L- deleted" or "A2L.”
- secreted TNF binding protein acts to blunt the host inflammatory and antiviral immune response by binding to and effectively reducing the amount of TNF present to interact with the infected cells. While this is a desirable outcome for the poxvirus, when poxvirus is used as an OV it may be advantageous to increase, rather tha n decrease, the amount of inflammation experienced by the treated tumor.
- poxvirus when poxvirus is used as an OV it may be advantageous to increase, rather tha n decrease, the amount of inflammation experienced by the treated tumor.
- ablation of the 2L gene in the recombinant TPV can result in an effective increase in TNF concentration at the tumor site, (compared to tumors infected with 2 .-bearing TPV). Increased levels of TNF can ultimately act to increase tumor clearance. Because the 2L gene has previously been shown to bind to human TNF but not mouse TNF, the ablation of the 2L gene in some of the recombinant TPVs described herein was not expected to be a significant factor in tumor clearance during the mouse experiments, but is expected to be a more significant factor in tumor clearance in primates and humans.
- the oncoselectivity of the poxvirus is increased by modifying the poxvirus to suppress expression of thymidine kinase (TK).
- TK thymidine kinase
- the TK encoding gene is known as 66R.
- Recombinant TPV in which the 66R gene has been ablated or otherwise mutated to suppress expression of TK is sometimes referred to herein as "66R-deleted" or "A66R.”
- the TK activity in neoplastic cells is constitutively high, due to the action of the cellula r TK1 in cancerous cells. This is in contrast to normal cells, where TK activity levels peak during the S phase of the cell cycle and are nearly undetectable at other times.
- TK1 catalyses a step in nucleotide synthesis, the conversion of thymidine to thymidine monophosphate. For this reason, cancerous cells express TK1 throughout the cell cycle, and as a result tend to have large cytoplasmic pools of thymidine monophosphate available at all stages of the cell cycle.
- the poxvirus By suppressing the TK encoding gene, particularly in poxviruses in the Yatapoxvirus genus, the poxvirus has greater cancer cell selectivity than if the TK encoding gene was left intact.
- Ablation of the 66R gene was undertaken in some of the specific examples of the recombinant TPV used in xenografted athymic nude mice described herein even though mice are not normally animal hosts for TPV. Ablation of the 66R gene in this environment demonstrates that the ablation of the 66R gene did not result in non-replicative TPV in permissive cells (such as the human cancerous tumor cells).
- the oncolethality of the poxviruses can be increased by encoding the poxvirus with transgenes to increase apoptosis of the cancer cells or to activate the immune system of the subject.
- transgenes which can be used to encode the poxvirus include without limitation genes to express cytokines, chemokines, antigen- presenting polypeptides, or bacterial antigens.
- cytokine refers to a protein or a polypeptide having immune cell or system modulating effects, such as stimulating immune cells, promoting growth of immune cells, or directing immune cells to a pa rticular site.
- the poxvirus used is recombinant TPV, armed with a granulocyte-monocyte colony stimulating factor (GM-CSF), macrophage chemotactic protein 1 (CCL2, also referred to as MCP-1 and MCF-1), or bacterial flagellin (FliC, the product of the fliC gene in Salmonella enterica).
- GM-CSF granulocyte-monocyte colony stimulating factor
- CCL2 macrophage chemotactic protein 1
- FliC bacterial flagellin
- the mouse (m) version of these transgenes was used where relevant in the recombinant TPV, i.e., mGM-CSF, mCCL2, mMCPl, mMCF-1. It is preferred to use the appropriate or effective versions of these transgenes for the subject upon which testing or treatment will be carried out.
- Polymerized flagellin is the main component of the bacterial flagellum for use according to the present disclosure.
- the flagellin used for the specific experiments described herein was the product of the Salmonella enterica serovar typhimurium gene, fliC.
- FliC and other bacterial flagellins are cognate ligands of the toll-like receptor 5 (TLR5), and are strong activators of the innate immune response in mammalian cells via My D88-de pendent intracellular signaling and, ultimately, the activation of transcription factor N FKB.
- the flagellins are potent and pleiotropic virulence factors which have other important roles in bacterial pathogenesis.
- a fluorescent reporter transgene is optionally inserted into the genome of the poxvirus. Visualization of viral infection in cultured cells is greatly facilitated by the inclusion of the fluorescent reporter transgene, thereby facilitating research using the poxvirus variants described herein.
- Preferred fluorescent reporter transgenes include the reporters mCherry (excitation/emission 587 nm/610 nm) and enhanced green fluorescent protein (GFP, excitation/emission 475 nm/509 nm).
- Preferred embodiments of the poxvirus include viruses, preferably of the
- Yatapoxvirus genus having any or all of the mutations or insertions described above, and the mutations and insertions are preferably carried out using a p2KO vector method.
- recombinant TPV a member of the Yatapoxvirus genus
- TPV a member of the Yatapoxvirus genus
- p2KO method as used herein, a schematic of which is shown in FIG. 1.
- two vaccinia virus (VACV)-derived early/late synthetic promotors are used to drive the expression of the desired expressed transgene to encode the virus (e.g., mGM- CSF, mCCL2, mMCPl, mMCF-1, fliC) and the optional fluorescent reporter transgene.
- VACV vaccinia virus
- the embodiment of the p2KO vector method depicted in FIG. 1 includes transferring a p2KO expression cassette (including left and right flanks, at least one intervening open reading frame (ORF) including the expressed transgene or the fluorescent reporter transgene, and at least one promoter) to the vira l genome of the TPV through a homologous recombination double-crossover event during a transfection/infection procedure as described in greater detail below.
- a p2KO expression cassette including left and right flanks, at least one intervening open reading frame (ORF) including the expressed transgene or the fluorescent reporter transgene, and at least one promoter
- the p2KO expression cassette is guided to a specific point in the viral genome of the TPV by the use of viral genomic flanking sequences, resulting in a ta rgeted ablation of the desired gene(s) with the simultaneous expression of the desired expressed transgene and optional fluorescent reporter transgene in the recombinant TPV.
- TPV p2KO expression cassette as illustrated in FIG. 1, a plurality of poxvirus early/late synthetic promotors allowed for the expression of multiple transgenes.
- the p2KO expression cassette guided insertion to a specific point in the viral genome by use of viral genomic flanking sequences derived from a target gene, resulting in the targeted ablation of the desired gene(s) with the simultaneous expression of the fluorescent reporter transgene and the expressed transgene to arm the virus.
- both a fluorescent reporter transgene and expressed transgene are shown.
- either of the fluorescent reporter transgene or the expressed transgene could be present in the p2KO expression cassette for insertion into the viral genome.
- the left and right flanks are bounded by pairs of unique restriction sites.
- the flanking regions are ligated into a p2KO vector between a Sac
- the gene(s) to be expressed are bounded by a unique 5'-BamH I restriction site and a 3'-Xma I restriction site. These allow for the simple and directional ligation of PCR amplicons bounded by the appropriate restriction sites.
- hmGMCSF BamHI (f) 5'-TAGGCCTGGGATCCGATCCACCGGTCGCCACCATGTGGCTGCAGA-3' mGMCSF Xmal (r) 5' -CTC ATC AATGTATCTTATC ATCCCGGG CTAG CT-3' mCCL2/MCP-l
- mMCP-1 BamHI (f) 5'-TAGGCCTGGGATCCGATCCACCGGTCGCCACCl £CAGGTCCCTG-3' mMCP-l Xmal (r) 5'-CGGCGATCCCCGGGAGATACTAGTTCAC-3' fliC (S. typhimurium)
- the ORFs used in various embodiments of the p2KO method for an expressed transgene insertion site include the mCCL2 transgene, the mGM-CSF transgene, and the fliC transgene.
- the mCCL2 transgene used in the examples cited below was produced using a mCCL2 cDNA clone ORF purchased as an ORF-bearing plasmid (available from Sino Biological, Incorporated).
- the mGM-CSF transgene used in the examples cited below was produced using a cDNA clone ORF of mGM-CSF provided by Dr. Grant McFadden.
- the mCCL2, mGM-CSF and fliC ORFs were amplified from their vectors by PCR and given a BamHI restriction sequence and an Xmal restriction sequences on the 5'- and 3'- termini of the product am plicons, respectively.
- the mCCL2, mGM-CSF, and fliC ORFs were ligated into the p2KO ablation/insertion vector.
- the minimally-altered recombinant TPV/eg/p was tested against a panel of human colorectal cancer cell lines to select the cell line which allowed the best viral replication, thereby maximizing the effect of direct viral tumor cell lysis.
- the hCRC cell lines tested for TPV/eg/p replication included HCT 116, COLO205, SW1463 and WiDr.
- Viral lysis of tumor cells is of importance to tumor clearance in some cases, but viral cytolysis is only one of many factors impinging upon tumor survival and clearance, and immune cell recruitment can also play a role.
- HCT 116 produced fewer progeny virions than the control cell line OMK, HCT 116 was the most productive of the hCRC cell lines tested. Additionally, many OVs have been characterized in tumors induced with HCT 116. For these reasons HCT 116 was used for experiments to further characterize the oncolytic potential of the recombinant TPV in vivo.
- tumors were induced in athymic nude mice with the HCT 116 cell line by subcutaneous injection of 5 x 10 6 HCT 116 cells onto a dorsal surface of the athymic nude mice.
- the mice were randomly segregated into control or experimental groups when tumor size reached 75 mm 3 , with 5 mice in each group.
- a single injection containing 100 ⁇ of vehicle only (group a) or recombinant TPV (groups b-h) was administered at day 0 (after reaching the tumor volume of 75 mm 3 ) and tumor volume was measured at three-day intervals thereafter.
- the average tumor volume was calculated using the formula:
- Average tumor volume (length) x (width) x (height) x ⁇ /6 (1)
- HCT 116-induced tumor xenografts did not increase in volume to the expected level during treatment with the recombinant TPV. However, multiple secondary tumors developed in mice undergoing treatment with the recombinant TPV. Additionally, in some in vitro studies, including an HCT 116 orthotopic xenotransplant model, HCT 116 cells have been reported to be highly motile and invasive.
- FIG. 2A illustrates the observed average tumor development over a span of 36 days (beginning at the time when the tumor mass exceeded 75 mm 3 ) in athymic nude mice xenografted with 5 x 10 6 HCT 116 cells and subsequently treated with a vehicle only control solution.
- the average tumor volume shown in an open circle, increased until approximately 15 days, at which point its volume stabilized at approximately 100 mm 3 for the remainder of the time span.
- the standard error of the mean is shown with bars (+/- 1 SEM).
- the black filled squa res illustrate the average tumor volume of mice in group B, which were treated with TPV/egfp and the average tumor volume of mice in control group A.
- the ba rs illustrate the standard error of the mean (+/- 1 SEM) for the tumor volume in control group A and the tumor volume in group B.
- the black filled squares illustrate the average tumor volume of mice in group C which were treated with TPV- p2KO/A66R/mMCP-l and the average tumor volume of mice in control group Aa.
- the bars illustrate the standa rd error of the mean (+/- 1 SEM) for the tumor volume in control group A a nd the tumor volume in group C.
- the black filled squares illustrate the average tumor volume of mice in group D, which were treated with TPV- p2KO/A66R/mGM-CSF and the average tumor volume of mice in control group A.
- the bars illustrate the standa rd error of the mean (+/- 1 SEM) for the tumor volume in control group A a nd the tumor volume in group D.
- the black filled squares illustrate the average tumor volume of mice in group E, which were treated with TPV-p2KO/A66R/fliC and the average tumor volume of mice in control group A.
- the bars illustrate the standard error of the mean (+/- 1 SEM) for the tumor volume in control group A and the tumor volume in group E.
- the black filled squares illustrate the average tumor volume of mice in group F, which were treated with TPV-p2KO/A66R and the average tumor volume of mice in control group A.
- the bars illustrate the standard error of the mean (+/- 1 SEM) for the tumor volume in control group A and the tumor volume in group F.
- the black filled squares illustrate the average tumor volume of mice in group G, which were treated with TPV-p2KO/A2L and the average tumor volume of mice in control group A.
- the bars illustrate the standard error of the mean (+/- 1 SEM) for the tumor volume in control group A and the tumor volume in group G.
- the black filled squares illustrate the average tumor volume of mice in group H, which were treated with TPV- p2KO/A2L/A66R/fliC a nd the average tumor volume of mice in control group H.
- the bars illustrate the standard error of the mean (+/- 1 SEM) for the tumor volume in control group A and the tumor volume in group H.
- One particularly preferred embodiment of the recombinant TPV for use herein is a recombinant TPV with the fliC transgene added to a double-knockout background ( ⁇ £>£>/? and ⁇ 2 ⁇ .).
- Our results demonstrate that the recombinant TPV deleted for both 21 and 66R which expressed the fliC transgene produced a robust and durable therapeutic effect upon HCT 116 tumor xenografts.
- Another preferred embodiment of the recombinant TPV for use herein is a recombinant TPV with the file transgene added to a single-knockout virus ( ⁇ £>£>/?).
- Both of the single knockout recom binant TPV embodiments showed statistically significant reductions in tumor volume at at least two time points, and in each case the observed significant reduction in tumor volume was temporally distant from the point of virotherapeutic inoculation. Both single knockout recombinant TPVs appeared to trend towards an effect at these later time points. I ndeed, with the exception of the TPV/eg/p virus, all embodiments of the recombinant TPVs tested appeared to produce some degree of tumor ablation, with the recombinant TPVs mentioned above being preferred.
- the examples described herein demonstrate that the innate immune response is potentially capable of reducing the tumor burden in subjects and therefore recom binant TPV armed with an innate immune response activator is expected to be useful in subjects with immunodeficiency syndromes. We therefore conclude that OVs armed with activators of the innate immune response will also be useful in individua ls with immunodeficiency syndromes.
- flagellins are targets for detector molecules involved in cytosolic immunosurveilla nce.
- detection of flagellin by the Nod-like receptor NCLR4 also known as Ipaf
- Ipaf the Nod-like receptor NCLR4
- caspase-1 the cytokine interleukin 1 ⁇
- IL- ⁇ cytokine interleukin 1 ⁇
- Embodiment A is a composition for treating cancerous cells in a subject having an immune system, comprising: a virus in the Yatapoxvirus genus having at least one mutation, wherein the at least one mutation results in suppressed expression of a TNF binding protein by the virus.
- composition of Embodiment A wherein the virus to suppress expression of the TNF binding protein has a structure capable of binding to an MHC-1 light chain.
- composition of Embodiment A or Embodiment A with one or more of the intervening features wherein a polymerized flaggellin protein is the main component of the bacterial flagellin is the main component of the bacterial flagellin.
- TPV tanapoxvirus
- TPV tanapoxvirus
- the composition of Embodiment A or Embodiment A with one or more of the intervening features wherein the virus further encodes a transgene to increase apoptosis of the cancerous cells.
- composition of Embodiment A or Embodiment A with one or more of the intervening features wherein the virus further encodes a transgene to activate the immune system of the subject wherein the virus further encodes a transgene to activate the immune system of the subject.
- Embodiment B is a composition for treating cancerous cells in a subject having an immune system, comprising: a virus in the Yatapoxvirus genus having at least one mutation, wherein the at least one mutation results in suppressed expression of thymidine kinase (TK).
- TK thymidine kinase
- Embodiment B wherein the virus is a poxvirus which encodes a transgene expressing a bacterial flaggelin protein.
- TPV tanapoxvirus
- TPV tanapoxvirus
- the composition of Embodiment B or Embodiment B with one or more of the intervening features wherein the virus to suppress expression of the TNF binding protein has a structure capa ble of binding to an MHC-1 light chain.
- composition of Embodiment B or Embodiment B with one or more of the intervening features wherein the virus further encodes a transgene to activate the immune system of the subject wherein the virus further encodes a transgene to activate the immune system of the subject.
- Embodiment C is a method of delivering at least one gene to cancerous cells in a subject, comprising: modifying a virus of the Yatapoxvirus genus by mutating the virus to suppress expression of a TNF binding protein having a structure capable of binding an MHC-1 light chain; and administering the modified Yatapoxvirus genus virus to the subject systemically.
- Embodiment C further comprising: modifying the virus by encoding the at least one gene in the virus, wherein the at least one gene results in increased apoptosis of the cancerous cells or activates an immune response in the subject.
- OMK (Owl Monkey kidney) cells HCT 116, COLO 205, SW1463 and WiDr cell lines from the American Type Culture Collection were used (available as American Type Culture Collection product numbers CRL-1556, CCL-247, CCL-222, CCL-234 and CCL-218 respectively). OMK cells were used for the virus amplification and viral titrations described herein.
- the cell lines were propagated in complete growth medium consisting of DMEM (available from Gibco/Life Technologies) supplemented with 10% (vol/vol) fetal bovine serum (available from Atlanta Biologicals), 2 mM L-glutamine (available from Sigma-Aldrich) and 50 ⁇ g/ml gentamicin sulfate (available from AMRESCO). After virus infection, cell monolayers of the cell lines were maintained in maintenance medium, which was identical to growth medium except that the concentration of fetal bovine serum was reduced to 2 %. The cells were incubated at 37 °C in a 5 % C0 2 atmosphere. Cell counting a nd cell viability assays were done with an Improved Neubauer hemacytometer using 0.2 % (wt/vol) trypan blue. Experiment 1: Control
- Wild-type TPV (Kenya strain) was provided by Dr. Joseph Esposito (of the Centers for Disease Control, Atlanta, GA, USA). The wild-type TPV was modified as described herein to form a control recombinant TPV which expresses the fluorescent reporter EGFP (with no other genetic modifications). Briefly, two identica l vaccinia virus (VACV)-derived early/late synthetic promoters were used to drive the expression of a fluorescent reporter gene in the control recombinant TPV using the p2KO method.
- VACV identica l vaccinia virus
- a p2KO expression cassette (including left a nd right flanks, plus the intervening open reading flames (ORF) and the promoters) was transferred to the viral genome of the wild-type TPV through a homologous recombination double-crossover event during a transfection/infection procedure, to form the control recombinant TPV. Flanking regions for recombination were ligated into the p2KO vector between the Sac I restriction site and the Not I restriction site on the 5'- (left) flank, and between the EcoR I restriction site and the Hind II I restriction site on the 3'- (right) flank
- OMK cells were transfected using a jetPRIME transfection reagent (available from PolyPlus Transfection SA) at a concentration of 1 ⁇ transfection reagent per ⁇ g of purified p2KO vector according to the manufacturer of the transfection reagent's transfection protocol.
- OMK monolayers were inoculated with 1 plaque-forming unit per cell (pfu/cell) of wild-type TPV-Kenya strain (non-fluorescent).
- Verification of FliC expression was done by Western blot. Verification of mCCL2 and mG M-CSF expression was done by Luminex multiana lyte cytokine detection assay (performed by the U niversity of Maryland cytokine core laboratory).
- Sa mples for a nalysis were prepared by infecting semi-confluent OM K cell monolayers in 60 mm tissue cu lture dishes (having 22.1 cm 2 surface a rea availa ble for cell growth) with TPV- p2KO/k66R/mCCL2, TPV-p2KO/A66/?/ mGM-CSF, and ⁇ - ⁇ 2 ⁇ / ⁇ 2 ⁇ / ⁇ 66/?///// ⁇ using 10 pfu/cell.
- Supernatant (3 ml/dish) and cytoplasmic extracts were prepared at the indicated times post-infection.
- extracted lysates were analyzed by Western blot.
- Proteins were transferred to a PVDF membrane (available from Millipore) a nd probed with a n anti-FliC monoclonal antibody (available from BioLegend) at a 1:2000 dilution (vol/vol). Powdered milk 5 % (wt/vol) was used as the blocking agent.
- the secondary antibody was a monoclonal a nti-mouse IgG conjugated to horseradish peroxidase (available from Abea m), used at a 1:2500 dilution. Visualization was by ECL (Thermo Scientific/Pierce).
- Em bodiments of TPV recombinants containing the p2KO vector but without a fliC, mGM-CSF or mCCL2 inse rt served as controls.
- mice Male neonatal athymic nude (Nude-Foxn_i” u " u ) mice (available through Harlan
- mice were received at four weeks of age and allowed to acclimate for one week before the beginning of experimentation. Mice were individually housed in clear polycarbonate cages under a 12 hour/12 hour light/dark cycle. Food and water was available ad libitum. All animal housing conditions, manipulations and treatments were performed in accordance with the protocols approved by the Institutional Animal Care and Use Committee of Western Michigan University (IACUC protocol number 13-07-01).
- hCRC cell line had the highest viral productivity when infected with TPV/eg/p.
- TPV/eg/p was assayed for its ability to replicate in four hCRC-derived cell lines: HCT 116, WiDr, SW1463 and COLO 205.
- OMK cells were used as a positive control. Each cell line was seeded into 12-well tissue culture plates (having 3.8 cm 2 surface area available for cell growth) and 0.1 pfu/cell of TPV/eg/p was inoculated into each well. Lysates were collected at 4 days post-infection and assayed by plaque assay.
- Tumors were produced in athymic nude mice by subcutaneous injection of 5 x 10 6
- HCT 116 cells on the dorsal surface approximately above the first lum bar vertebra. Each injection was followed by an assessment of viability by trypan blue exclusion to ensure that the cells were viable at and after the time of injection. Once visible, tumors were measured using a digital caliper (Pittsburgh model 6ZBTMCO) along a major axis (length), a minor axis (width) and a z dimension (height). The volume of the tumors was then estimated using formula 1 presented herein. When the estimation of tumor size reached or surpassed 75 mm 3 each animal was randomly segregated into the control group (group a) or one of the seven experimental groups (groups b-h).
- Each treatment group was composed of five or six tumor-bearing athymic nude mice.
- a single virotheraplastic injection was administered to each tumor-bearing mouse once tumor volume reached or exceeded 75 mm 3 .
- Virotherapeutic injections were given intratumorally as a single injection of 5 x 10 6 pfu suspended in 100 ⁇ of crude OM K cell lysate diluted in norma l saline.
- Each mouse's weight and tumor volume was measured and recorded at three-day intervals thereafter. Data was collected for 13 time points over a total of 39 days.
- a vehicle control group was used, denoted as group a herein.
- This control group consisted animals which received the HCT 116 cells but experienced only a mock recombinant TPV injection (100 ⁇ of vehicle only). This group is referred to as the "mock virotherapy" group or group A. All experimenta l groups were com pared to group A to assess the therapeutic efficacy of the recombinant TPV.
- the p2KO poxvirus ablation/insertion vector was designed and constructed to provide a rapid a nd reliable way to simultaneously ablate a ny desired TPV gene(s) and replace the ablated gene(s) with the desired expressed fluorescent reporter and/or the desired expressed transgene.
- Visualization of vira l infection in cultured cells was greatly facilitated by the inclusion of the fl uorescent reporters, mCherry and EGFP.
- the use of two fluorescent reporters made it possible to identify a nd isolate the double-deleted recombinant TPV with the fliC insertion (TPV-p2KO/A2 ./A66 ?/////C).
- FIG. 3 A viral plaque produced by infection with the TPV-p2KO/A2 ./A66 ? /7/C virus on an OM K cell monolayer is shown in FIG. 3, and demonstrates the simultaneous expression of the brilliant orange- red and green color associated with mCherry and EGFP, respectively.
- /// ' C was verified by DNA sequencing of the p2KO vector to ensure correct placement and orientation before they were used in the transfection/infection procedure.
- the recom binant TPVs were verified to be knockouts for either 21, 66R, or both by agarose gel analysis of PCR products using recombi nant viral DNA as a template.
- a Western blot of lysates from OM K cells inoculated TPV-p2KO/A2 ./A66 ?////C was probed with a monoclona l anti-FliC a ntibody.
- a single band with an apparent molecular mass of 50 kDa was observed, identical to the FliC positive control, as expected. The intensity of this band gradual ly increased between day three and day six post-infection.
- the FliC transgene was not detected in mock infected cells. I nfected cell lysates a nd their culture supernatants were assayed to determine the presence of mCCL2 and mGM-CSF.
- transgenes were highly expressed, and present in la rge amounts in infected cell supernatants (4.9 ng/ml mCCL2, and greater than 10.0 ng/ml mGM-CSF). Both mGM-CSF and mCCL2 were only weakly detectable or undetectable in cytoplasmic extracts of infected cells or control uni nfected cells, and in cells infected with TPVs not expressing these tra nsgenes. This data indicates that both mCCL2 a nd mGM-CSF were secreted from infected cells, as anticipated, whi le FliC accumulated within the cytoplasm of infected cells, again as anticipated. Results: Cell density determinations
- Each cell line used in this study had its confluent density (cells/cm 2 ) determined at near confluence.
- the OMK control cell line had a confluent density of approximately 1.0 x 10 5 cells/cm 2 .
- the densities determined for the colorectal cancer cell lines were as follows: HCT 116 had a confluent density of approximately 1.4 x 10 5 cells/cm 2 ; COLO205 had a confluent density of approximately 6.9 x 10 5 cells/cm 2 ; SW1463 had a confluent density of approximately 4.5 x 10 5 cells/cm 2 ; WiDr had a confluent density of approximately 2.5 x 10 5 cells/cm 2 . These values were used to calculate the number of pfu to use when inoculating these cell lines.
- TPV/A66/?-treated tumors were significantly smaller than mock-injected tumors at two time points, 27 days (a 34.9% reduction) and 36 days (a 52% reduction) post-treatment.
- /7/C-treated tumors showed a robust and durable therapeutic effect, and were significantly reduced in volume when compared to mock-injected tumors at six time points, 15 days (a 56.1% reduction), 21 days (a 62.0% reduction), 24 days (a 63.8% reduction), 27 days (a 59.5% reduction), 33 days (a 55.3% reduction) and 36 days (a 69.6% reduction) post-treatment.
- 15 days a 56.1% reduction
- 21 days a 62.0% reduction
- 24 days a 63.8% reduction
- 27 days a 59.5% reduction
- 33 days a 55.3% reduction
- 36 days a 69.6% reduction
- a non-limiting list of cancers to be treated with a pharmaceutical composition as described herein includes: basal cell carcinoma, carcinoma, choriocarcinoma, glioma tumor, intra-epithelial neoplasm, leukemia, lymphoma, Hodgkin's lymphoma, Non-Hodgkin's lymphoma, melanoma, myeloma, neuroblastoma, retinoblastoma, rhabdomyosarcoma, sarcoma, and cancers of the biliary tract, bladder, bone, brain, breast, CNS, cervix, colon and rectum, connective tissue, digestive system, endometrial cells, esophagus, eye, stomach, head and neck, kidney, larynx, liver, lung, pancreas, prostate, oral cavity, ovaries, respiratory system, skin, stomach, testicles, thyroid, uterus, and urinary system.
- the pharmaceutical composition as described herein is to be administered at a therapeutically effective dose.
- therapeutically effective dose refers to an amount of the pharmaceutical which, after administration, is effective to achieve the desired therapeutic result.
- a therapeutically effective dose can vary from patient to patient according to factors such as the disease state, age, sex, and weight of the individual, form of the pharmaceutical, and the ability of the dosage form to elicit the desired response in the individual.
- the therapeutically effective dose may be determined by starting with a low, safe dose and escalating to higher doses, while monitoring for therapeutic effects (e.g. a reduction in cancer cell growth) along with the presence of any deleterious side effects.
- the pharmaceutical com position may include the poxvirus, viral nucleic acids, or expression vectors to produce the desired virotherapuetic effect.
- the pharmaceutical composition can be administered via any suitable dosage forms or routes known in the art, including without limitation, parenteral, oral, enteral, buccal, nasal, topical, rectal, vaginal, transmucosal, epidermal, transdermal, dermal, ophthalmic, pulmonary, and subcutaneous administration routes to provide a systemic or localized, therapeutically effective dose.
- the pharmaceutical will be administered to a subject in formulations or prepa rations suitable for the particular administration route.
- Formulations suitable for administration of the pharmaceutical dosage form may include, without limitation; aerosols, dispersions, emulsions, implants, liposome based formulations, nose drops, patches, powders, solutions, sprays, suppositories and suspensions.
- the formulations may be presented in unit dosage form and may be prepared by any methods known in the art. Methods of preparing these formulations or dosage forms include the step of combining the poxvirus or nucleic acid of the present disclosure with one or more pharmaceutically acceptable carriers and may further comprise additives, such as without limitation: stabilizers, preservatives, and transfection facilitating agents which assist in the cellular uptake of the medicines.
- Suitable stabilizers may include, without limitation: albumin, EDTA, glycine and monosodium glutamate.
- Suitable preservatives may include, without limitation: antibiotics, methyl hydroxybenzoate, phenols, 2-phenoxyethanol, potassium sorbate, sodium benzoate, and thimerosal.
- the pharmaceutical composition can be delivered locally into the target tissue or organ at a tumor site of a subject in need of treatment.
- An effective dose of the composition is directly injected to the tumor site through the subject's skin or in an exposed surgical field using a syringe.
- the pharmaceutical composition can be injected using an implantable dosing device.
- elements shown as integrally formed may be constructed of multiple parts or elements shown as multiple parts may be integrally formed, the operation of the interfaces may be reversed or otherwise varied, the length or width of the structures and/or members or connector or other elements of the system may be varied, the nature or number of adjustment positions provided between the elements may be varied.
- the elements and/or assemblies of the system may be constructed from any of a wide variety of materials that provide sufficient strength or durability, in a ny of a wide variety of colors, textures, and combinations.
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Priority Applications (9)
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| EP15822175.4A EP3169342A4 (en) | 2014-07-17 | 2015-07-17 | Composition for treating cancerous cells and a method therefor |
| AU2015289512A AU2015289512B2 (en) | 2014-07-17 | 2015-07-17 | Composition for treating cancerous cells and a method therefor |
| CA2953072A CA2953072C (en) | 2014-07-17 | 2015-07-17 | Composition for treating cancerous cells and a method therefor |
| JP2016575680A JP2017526633A (en) | 2014-07-17 | 2015-07-17 | Composition and method for treating cancer cells |
| KR1020177002426A KR101949849B1 (en) | 2014-07-17 | 2015-07-17 | Composition for treating cancerous cells and a method therefor |
| CN201580040303.9A CN106794208B (en) | 2014-07-17 | 2015-07-17 | Compositions and methods for treating cancer cells |
| US15/407,912 US10434189B2 (en) | 2014-07-17 | 2017-01-17 | Composition for treating cancerous cells and a method therefor |
| PH12017500109A PH12017500109A1 (en) | 2014-07-17 | 2017-01-17 | Composition for treating cancerous cells and a method therefor |
| US16/594,630 US20200114024A1 (en) | 2014-07-17 | 2019-10-07 | Composition for treating cancerous cells and a method therefor |
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| PCT/US2018/014015 Ceased WO2018136491A1 (en) | 2014-07-17 | 2018-01-17 | Composition for treating cancerous cells and a method therefor |
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| EP (2) | EP3169342A4 (en) |
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| CN108676814A (en) * | 2018-04-20 | 2018-10-19 | 西安医学院 | A kind of fluorescent marker shuttle vector of Tiantan strain vaccinia virus and preparation method thereof |
| WO2023076469A1 (en) * | 2021-10-29 | 2023-05-04 | Unm Rainforest Innovations | Oncolytic virotherapy compositions and methods |
Citations (2)
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| WO2004014314A2 (en) * | 2002-08-12 | 2004-02-19 | David Kirn | Methods and compositions concerning poxviruses and cancer |
| US7208313B2 (en) * | 1999-05-28 | 2007-04-24 | United States Of America As Represented By The Secretary Of The Department Of Health And Human Services | Combined growth factor-deleted and thymidine kinase-deleted vaccinia virus vector |
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| EP1281767A3 (en) | 2001-07-31 | 2003-05-28 | Aladar A. Szalay | Light emitting microorganisms and cells for diagnosis and therapy of tumors |
| US8980246B2 (en) * | 2005-09-07 | 2015-03-17 | Sillajen Biotherapeutics, Inc. | Oncolytic vaccinia virus cancer therapy |
| KR20080084528A (en) * | 2007-03-15 | 2008-09-19 | 제네렉스 바이오테라퓨틱스 인크. | Oncolytic Vaccinia Virus Cancer Treatment |
| US8691502B2 (en) * | 2008-10-31 | 2014-04-08 | Tremrx, Inc. | T-cell vaccination with viral vectors via mechanical epidermal disruption |
| WO2010124393A1 (en) | 2009-04-30 | 2010-11-04 | National Research Council Of Canada | Anticancer agent comprising a yatapoxvirus mutant and uses thereof |
| CA2709292A1 (en) | 2009-07-10 | 2011-01-10 | The Governors Of The University Of Alberta | Oncolytic viruses and methods for treating neoplastic disorders |
| WO2012000188A1 (en) | 2010-06-30 | 2012-01-05 | Tot Shanghai Rd Center Co., Ltd. | Recombinant tumor vaccine and method of producing such |
| CN106794208B (en) | 2014-07-17 | 2021-06-01 | 西密歇根大学信托董事会 | Compositions and methods for treating cancer cells |
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Patent Citations (2)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US7208313B2 (en) * | 1999-05-28 | 2007-04-24 | United States Of America As Represented By The Secretary Of The Department Of Health And Human Services | Combined growth factor-deleted and thymidine kinase-deleted vaccinia virus vector |
| WO2004014314A2 (en) * | 2002-08-12 | 2004-02-19 | David Kirn | Methods and compositions concerning poxviruses and cancer |
Non-Patent Citations (2)
| Title |
|---|
| RAHMAN M.M. ET AL.: "Interaction of human TNF and beta2-microglobulin with Tanapox virus-encoded TNF inhibitor, TPV-2L", VIROLOGY, vol. 386, 2009, pages 462 - 468, XP026070975, DOI: doi:10.1016/j.virol.2009.01.026 * |
| See also references of EP3169342A4 * |
Cited By (3)
| Publication number | Priority date | Publication date | Assignee | Title |
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| WO2018136491A1 (en) * | 2014-07-17 | 2018-07-26 | The Board Of Trustees Of Western Michigan University | Composition for treating cancerous cells and a method therefor |
| CN110267671A (en) * | 2014-07-17 | 2019-09-20 | 西密歇根大学董事会 | Compositions and methods for treating cancer cells |
| US10434189B2 (en) | 2014-07-17 | 2019-10-08 | The Board Of Trustees Of Western Michigan University | Composition for treating cancerous cells and a method therefor |
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| US20170165378A1 (en) | 2017-06-15 |
| EP3570859A1 (en) | 2019-11-27 |
| CN106794208A (en) | 2017-05-31 |
| KR101949849B1 (en) | 2019-05-30 |
| PH12017500109A1 (en) | 2017-05-29 |
| AU2015289512A1 (en) | 2017-02-16 |
| WO2018136491A1 (en) | 2018-07-26 |
| JP2017526633A (en) | 2017-09-14 |
| JP2020504146A (en) | 2020-02-06 |
| AU2015289512B2 (en) | 2018-08-30 |
| CA2953072C (en) | 2021-06-29 |
| CN106794208B (en) | 2021-06-01 |
| CN110267671A (en) | 2019-09-20 |
| EP3169342A4 (en) | 2018-03-07 |
| KR20170027338A (en) | 2017-03-09 |
| CA2953072A1 (en) | 2016-01-21 |
| CA3050095A1 (en) | 2018-07-26 |
| EP3169342A1 (en) | 2017-05-24 |
| US10434189B2 (en) | 2019-10-08 |
| US20200114024A1 (en) | 2020-04-16 |
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