WO2022051294A1 - Codon optimized rep1 genes and uses thereof - Google Patents
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Definitions
- a computer readable text file entitled “090400-5011-WO-Sequence-Listing” created on or about July 28, 2021, with a file size of about 27 KB contains the sequence listing for this application and is hereby incorporated by reference in its entirety.
- Choroideremia is a rare, X-linked recessive form of hereditary retinal degeneration that affects roughly 1 in 50,000 males.
- the disease causes a gradual loss of vision, starting with childhood night blindness, followed by peripheral vision loss and progressing to loss of central vision later in life. Progression continues throughout the individual's life, but both the rate of change and the degree of visual loss are variable among those affected, even within the same family.
- Choroideremia is caused by a loss-of-function mutation in the CHM gene which encodes Rab escort protein- 1 (REP1), a protein involved in lipid modification of Rab proteins. While the complete mechanism of disease is not fully understood, the lack of a functional protein in the retina results in cell death and the gradual deterioration of the retinal pigment epithelium (RPE), photoreceptors and the choroid.
- RPE retinal pigment epithelium
- nucleic acid molecules encoding a human Rab escort protein-1 (REP1) protein.
- the disclosure provides a nucleic acid comprising the nucleotide sequence of SEQ ID NO: 1 or a nucleic acid comprising a nucleotide sequence at least 90%, at least 95%, at least 96%, at least 97%, at least 98%, or at least 99% identical to the nucleotide sequence of SEQ ID NO: 1 and which encodes a human REP1 polypeptide having the amino acid sequence of SEQ ID NO:2.
- a nucleic acid comprising or consisting of the nucleotide sequence of SEQ ID NO: 1 is provided.
- the nucleic acid is expressed at a higher level compared with the level of expression of a wild type CHM nucleic acid sequence (e.g. SEQ ID NO:3) in an otherwise identical cell.
- a codon optimized nucleic acid molecule as herein described has a human codon adaptation index that is increased relative to that of the wild type CHM cDNA (GenBank Accession No. NM_000390.4; SEQ ID NO: 3). In some embodiments, the codon optimized nucleic acid molecule has a human codon adaptation index of at least about 0.9, at least about 0.92, or at least about 0.94.
- the nucleic acid contains a higher percentage of G/C nucleotides compared to the percentage of G/C nucleotides in SEQ ID NO:3. In other embodiments, the nucleic acid contains a percentage of G/C nucleotides that is at least about 55%, at least about 57.5%, at least about 60% or at least about 61%. In some aspects, the nucleic acid contains a percentage of G/C nucleotides that is from about 55% to about 70%, from about 57.5% to about 70% or from about 61% to about 70%.
- the nucleic acid comprises one or more optimized parameters relative to SEQ ID NO:3: frequency of optimal codons; reduction in maximum length of direct repeat sequences; removal of restriction enzymes, including without limitation, removal of Bglll(AGATCT); removal of CIS-acting elements, including without limitation, and removal of destabilizing (ATTTA) elements.
- the nucleic acid is operatively linked to at least one transcription control sequence, preferably a transcription control sequence that is heterologous to the nucleic acid.
- the transcription control sequence is a cell- or tissue-specific promoter that results in cell-specific expression of the nucleic acid e.g. in photoreceptor cells such as vitelliform macular dystrophy 2 promoter which is selectively expressed in the RPE.
- the transcription control sequence is a constitutive promoter that results in similar expression level of the nucleic acid in many cell types (e.g. a CAG, CBA (chicken beta actin), CMV, or PGK promoter).
- the transcription control sequence comprises a CAG promoter comprising (i) the cytomegalovirus (CMV) early enhancer element, (ii) the promoter, first exon and first intron of chicken beta-actin gene and (iii) the splice acceptor of the rabbit beta-globin geneas described in Miyazaki et al., Gene 79(2):269-77 (1989).
- the CAG promoter comprises the sequence of SEQ ID NO:4 or comprises a sequence at least 95%, at least 96%, at least 97%, at least 98% or at least 99% identical thereto: AC AG (SEQ ID NO: 4)
- the transcription control sequence may also comprise one or more elements downstream of the REP1 coding sequence such as a Woodchuck hepatitis virus posttranscriptional regulatory element (WPRE), which has been shown to enhance AAV transgene expression in the retina.
- WPRE Woodchuck hepatitis virus posttranscriptional regulatory element
- an expression cassette comprising a nucleic acid comprising the nucleotide sequence of SEQ ID NO: 1, or a nucleotide sequence at least 90% identical thereto, operably linked to an expression control sequence.
- a vector comprising a nucleic acid comprising the nucleotide sequence of SEQ ID NO: 1, or a nucleotide sequence at least 90% identical thereto.
- the vector is a recombinant adeno-associated (rAAV) expression vector.
- the rAAV vector comprises a native capsid (e.g. a capsid of AAV serotype 2, AAV serotype 4, AAV serotype 5 or AAV serotype 8).
- the rAAV vector comprises a capsid that is modified (e.g. comprises one or more peptide insertions and/or one or more amino acid substitutions (e.g.
- tyrosine to phenylalanine and/or amino acid insertions or amino acid deletions
- a native AAV capsid e.g. comprising one or more modifications relative to an AAV capsid of serotype 2, 4, 5 or 8.
- a host cell comprising a nucleic acid comprising the nucleotide sequence of SEQ ID NO: 1, or a nucleotide sequence at least 90% identical thereto.
- the host cell is a mammalian cell, including without limitation, a CHO cell, an HEK293 cell, a HeLa cell, a BHK21 cell, a Vero cell or a V27 cell.
- the host cell is selected from a CHO cell, an HEK293 cell, an HEK293T cell, a HeLa cell, a BHK21 cell and a Vero cell.
- the host cell is a photoreceptor cell (e.g.
- RRC retinal ganglion cell
- glial cell e.g. a Muller glial cell, a microglial cell
- bipolar cell an amacrine cell, a horizontal cell, or a retinal pigmented epithelium (RPE) cell.
- RPE retinal pigmented epithelium
- the disclosure provides a method of increasing expression of a polypeptide of SEQ ID NO: 2 comprising culturing the host cell under conditions whereby a polypeptide of SEQ ID NO: 2 is expressed by the nucleic acid molecule, wherein the expression of the polypeptide is increased relative to a host cell cultured under the same conditions comprising a reference nucleic acid comprising the nucleotide sequence of SEQ ID NO:3 (comparator sequence).
- the disclosure provides a method of increasing expression of a polypeptide of SEQ ID NO: 2 in a human subject comprising administering to the subject an isolated nucleic acid molecule comprising a nucleotide sequence at least 85%, at least 90%, at least 95%, at least 96%, at least 97%, at least 98%, at least 99% identical, or 100% identical to the nucleotide sequence of SEQ ID NO: 1 and which encodes a polypeptide having the amino acid sequence of SEQ ID NO:2 or a vector comprising such a nucleotide sequence, wherein the expression of the polypeptide is increased relative to a reference nucleic acid molecule comprising the nucleotide sequence of SEQ ID NO:3 (comparator sequence) or a vector comprising the reference nucleic acid molecule.
- the disclosure provides a method of treating an ocular disorder associated with insufficient REP1 activity in a human subject comprising administering to the subject a nucleic acid molecule or a vector disclosed herein.
- the retinal disorder is choroideremia.
- Figures 1A-D Figures 1A and IB illustrate immunocytochemical analysis of iPSCs derived from choroideremia patients CHM1 (Figure 1 A) and CHM2 (Figure IB) using antibodies against pluripotent transcription factors NANOG, OCT4 and SOX2.
- Figures 1C and ID illustrate representative images of CHM1 ( Figure 1C) and CHM2 ( Figure ID) cultures randomly differentiated into ectodermal, mesodermal and endodermal cell lineages as indicted by expression of TUJ1, a-smooth muscle actin (ASMA) and Hepatocyte Nuclear Factor 4 Alpha (HNF4A).
- TUJ1 a-smooth muscle actin
- HNF4A Hepatocyte Nuclear Factor 4 Alpha
- FIGS 2A-C Figures 2A and 2B illustrate immunocytochemical analysis of RPE cells derived from iPSCs derived from choroideremia patients CHM1 ( Figure 2A) and CHM2 ( Figure 2B).
- the RPE phenotype after 45 days of differentiation and maturation by ICC showed proper RPE transcriptional factor expression of Melanogenesis Associated Transcription Factor (MITF) and Orthodenticle Homeobox 2 (OTX2), expression of mature RPE cell marker RPE65, and expression of tight junction marker Zonula Occludens (ZO-1).
- Figure 2C is a graph illustrating that CHM1 RPE and CHM2 RPE phagocytose at similar levels to wild type (WT) RPE.
- Figures 3A-B Figure 3A: Western blot images are shown illustrating REP1 and housekeeping protein GADPH levels in CHM1 RPE or normal iPSC-derived RPE cells following transduction with recombinant AAV virions carrying the codon optimized REP1 gene or carrying the unmodified REP1 gene, in each case driven by a CAG promoter. The codon optimized REP1 showed significantly higher levels of protein expression.
- FIG 4 Schematic illustration of the functional prenylation assay showing required components, including the biotinylated prenyl group serving as the readout of the biochemical assay.
- Normal RPE cells with functional REP1 protein successfully facilitate the prenylation of Rab27A GTPase, leading to the incorporation of the biotin groups.
- CHM RPE cells lack REP1 protein, causing accumulation of unprenylated Rab27a GTPase protein.
- FIGS 5A-5D Transduction of CHM1 and CHM2 RPE with rAAV virions comprising codon optimized REP1 of SEQ ID NO: 1 under the control of a CAG promoter restored prenylation of Rab27a GTPase.
- Figures 5 A and 5B Gel images illustrating the level of REP 1 protein by Western blot analysis and incorporation of a biotinylated prenyl donor as a measure of prenylation in cell lysates, in transduced and untransduced CHM1 ( Figure 5 A) and CHM2 ( Figure 5B) RPE cells (compared to normal iPSC-derived RPE cells).
- Figures 6A-6C Figure 6A: Immunostaining of CHM1 RPE with anti-REPl and anti-RAB27A antibodies illustrates that CHM1 RPE lacked proper membrane localization of Rab27a GTPase.
- Figures 6B and 6C Delivery of codon optimized REP1 of SEQ ID NO:1 by rAAV vector, corrected Rab27 GTPase membrane trafficking in CHM1 RPE ( Figure 6B), and restored localization to a control RPE phenotype ( Figure 6C).
- Figure 7 DNA alignment of the optimized region of SEQ ID NO: 1 with native REP1 of SEQ ID N0:3.
- FIG 8 is a schematic of the transgene cassette contained within the rAAV described in Example 2 below.
- the transgene cassette comprises a 5'AAV2 ITR, a CAG Promoter, a Codon Optimized Human CHM cDNA of SEQ ID NO: 1, an SV40 Polyadenylation Signal, and a 3' AAV2 ITR and has the nucleotide sequence of SEQ ID NO:5.
- Figure 9 illustrates safety of 4D-110 (comprising the transgene cassette shown in Figure 8 and a capsid protein of SEQ ID NOV) following intravitreal administration to nonhuman primates through quantification of ocular inflammation, as assessed by aqueous flare, aqueous cells, and vitreous cells. Ophthalmoscopic signs of transient mild ocular inflammation were observed at the high dose. These changes responded to an increase in the systemic steroid treatment. There were no adverse findings considered related to 4D- 110. IOP values were within normal limits for all animals at the different examination intervals. ERG values and OCT images including macular morphology were also within normal limits.
- Figure 10 illustrates vector genome biodistribution in selected retinal, ocular, and non-ocular tissues, as measured by qPCR at 3 necropsy timepoints in NHPs intravitreally administered 4D-110.
- LOD lower limit of detection; all samples “BLOD” graphed at LOD value for visualization purposes.
- Figure 11 illustrates REP1 transgene mRNA expression in selected retinal, ocular, and non-ocular tissues, as measured by RT-qPCR at 3 necropsy timepoints in NHPs intravitreally administered 4D-110.
- LOD lower limit of detection; all samples “BLOD” graphed at LOD value for visualization purposes.
- a "codon adaptation index,” as used herein, refers to a measure of codon usage bias.
- a codon adaptation index measures the deviation of a given protein coding gene sequence with respect to a reference set of genes (Sharp P M and Li W H, Nucleic Acids Res. 15(3): 1281-95 (1987)). CAI is calculated by determining the geometric mean of the weight associated to each codon over the length of the gene sequence (measured in codons):
- the weight of each of its codons, in CAI is computed as the ratio between the observed frequency of the codon (fi) and the frequency of the synonymous codon (fj) for that amino acid:
- isolated designates a biological material (cell, nucleic acid or protein) that has been removed from its original environment (the environment in which it is naturally present). For example, a polynucleotide present in the natural state in a plant or an animal is not isolated, however the same polynucleotide separated from the adjacent nucleic acids in which it is naturally present, is considered “isolated.”
- 4D-110 refers to a recombinant AAV particle comprising (i) a capsid protein comprising the amino acid sequence of SEQ ID NOV and a heterologous nucleic acid comprising the nucleotide sequence of SEQ ID NO:5.
- R100 refers to a variant AAV capsid protein comprising the amino acid sequence of SEQ ID NOV.
- a "coding region” or “coding sequence” is a portion of polynucleotide which consists of codons translatable into amino acids.
- a “stop codon” (TAG, TGA, or TAA) is typically not translated into an amino acid, it can be considered to be part of a coding region, but any flanking sequences, for example promoters, ribosome binding sites, transcriptional terminators, introns, and the like, are not part of a coding region.
- a coding region typically determined by a start codon at the 5' terminus, encoding the amino terminus of the resultant polypeptide, and a translation stop codon at the 3' terminus, encoding the carboxyl terminus of the resulting polypeptide.
- Two or more coding regions can be present in a single polynucleotide construct, e.g., on a single vector, or in separate polynucleotide constructs, e.g., on separate (different) vectors. It follows, then that a single vector can contain just a single coding region, or comprise two or more coding regions.
- regulatory region refers to nucleotide sequences located upstream (5' non-coding sequences), within, or downstream (3' non-coding sequences) of a coding region, and which influence the transcription, RNA processing, stability, or translation of the associated coding region. Regulatory regions can include promoters, translation leader sequences, introns, polyadenylation recognition sequences, RNA processing sites, effector binding sites and stem-loop structures. If a coding region is intended for expression in a eukaryotic cell, a polyadenylation signal and transcription termination sequence will usually be located 3' to the coding sequence.
- nucleic acid is interchangeable with “polynucleotide' or “nucleic acid molecule” and a polymer of nucleotides is intended.
- a polynucleotide which encodes a gene product can include a promoter and/or other transcription or translation control elements operably associated with one or more coding regions.
- a coding region for a gene product e.g., a polypeptide
- a coding region and a promoter are "operably associated" if induction of promoter function results in the transcription of mRNA encoding the gene product encoded by the coding region, and if the nature of the linkage between the promoter and the coding region does not interfere with the ability of the promoter to direct the expression of the gene product or interfere with the ability of the DNA template to be transcribed.
- Other transcription control elements besides a promoter, for example enhancers, operators, repressors, and transcription termination signals, can also be operably associated with a coding region to direct gene product expression.
- Transcriptional control sequences refer to DNA regulatory sequences, such as promoters, enhancers, terminators, and the like, that provide for the expression of a coding sequence in a host cell.
- transcription control regions include, without limitation, transcription control regions which function in vertebrate cells, such as, but not limited to, promoter and enhancer segments from cytomegaloviruses (the immediate early promoter, in conjunction with intron-A), simian virus 40 (the early promoter), and retroviruses (such as Rous sarcoma virus).
- transcription control regions include those derived from vertebrate genes such as actin, heat shock protein, bovine growth hormone and rabbit beta-globin, as well as other sequences capable of controlling gene expression in eukaryotic cells. Additional suitable transcription control regions include tissue-specific promoters and enhancers as well as lymphokine- inducible promoters (e.g., promoters inducible by interferons or interleukins).
- translation control elements are known to those of ordinary skill in the art. These include, but are not limited to ribosome binding sites, translation initiation and termination codons, and elements derived from picomaviruses (particularly an internal ribosome entry site, or IRES, also referred to as a CITE sequence).
- IRES internal ribosome entry site
- expression refers to a process by which a polynucleotide produces a gene product, for example, an RNA or a polypeptide.
- RNA messenger RNA
- tRNA transfer RNA
- shRNA small hairpin RNA
- siRNA small interfering RNA
- expression produces a "gene product.”
- a gene product can be either a nucleic acid, e.g., a messenger RNA produced by transcription of a gene, or a polypeptide which is translated from a transcript.
- Gene products described herein further include nucleic acids with post transcriptional modifications, e.g., poly adenylation or splicing, or polypeptides with post translational modifications, e.g., methylation, glycosylation, the addition of lipids, association with other protein subunits, or proteolytic cleavage.
- post transcriptional modifications e.g., poly adenylation or splicing
- polypeptides with post translational modifications e.g., methylation, glycosylation, the addition of lipids, association with other protein subunits, or proteolytic cleavage.
- a "vector” refers to any vehicle for the cloning of and/or transfer of a nucleic acid into a host cell.
- a vector can be a replicon to which another nucleic acid segment can be attached so as to bring about the replication of the attached segment.
- the term "vector” includes both viral and nonviral vehicles for introducing the nucleic acid into a cell in vitro, ex vivo or in vivo.
- a large number of vectors are known and used in the art including, for example, plasmids, modified eukaryotic viruses, or modified bacterial viruses. Insertion, of a polynucleotide into a suitable vector can be accomplished by ligating the appropriate polynucleotide fragments into a chosen vector that has complementary cohesive termini.
- Vectors can be engineered to encode selectable markers or reporters that provide for the selection or identification of cells that have incorporated the vector. Expression of selectable markers or reporters allows identification and/or selection of host cells that incorporate and express other coding regions contained on the vector.
- selectable marker genes known and used in the art include: genes providing resistance to ampicillin, streptomycin, gentamycin, kanamycin, hygromycin, bialaphos herbicide, sulfonamide, and the like; and genes that are used as phenotypic markers, i.e., anthocyanin regulatory genes, isopentanyl transferase gene, and the like.
- Eukaryotic viral vectors that can be used include, but are not limited to, adenovirus vectors, retrovirus vectors, adeno-associated virus vectors, poxvirus, e.g., vaccinia virus vectors, baculovirus vectors, or herpesvirus vectors.
- Non-viral vectors include plasmids, liposomes, electrically charged lipids (cytofectins), DNA-protein complexes, and biopolymers.
- Promoter and “promoter sequence” are used interchangeably and refer to a DNA sequence capable of controlling the expression of a coding sequence or functional RNA.
- a coding sequence is located 3' to a promoter sequence. Promoters can be derived in their entirety from a native gene, or be composed of different elements derived from different promoters found in nature, or even comprise synthetic DNA segments. It is understood by those skilled in the art that different promoters can direct the expression of a gene in different tissues or cell types, or at different stages of development, or in response to different environmental or physiological conditions.
- Promoters that cause a gene to be expressed in most cell types at most times are commonly referred to as “constitutive promoters.” Promoters that cause a gene to be expressed in a specific cell type are commonly referred to as “cell-specific promoters” or “tissue-specific promoters.” Promoters that cause a gene to be expressed at a specific stage of development or cell differentiation are commonly referred to as “developmentally-specific promoters” or “cell differentiationspecific promoters.” Promoters that are induced and cause a gene to be expressed following exposure or treatment of the cell with an agent, biological molecule, chemical, ligand, light, or the like that induces the promoter are commonly referred to as “inducible promoters” or “regulatable promoters.” It is further recognized that since in most cases the exact boundaries of regulatory sequences have not been completely defined, DNA fragments of different lengths can have identical promoter activity.
- Plasmid refers to an extra-chromosomal element often carrying a gene that is not part of the central metabolism of the cell, and usually in the form of circular double-stranded DNA molecules.
- Such elements can be autonomously replicating sequences, genome integrating sequences, phage or nucleotide sequences, linear, circular, or supercoiled, of a single- or double-stranded DNA or RNA, derived from any source, in which a number of nucleotide sequences have been joined or recombined into a unique construction which is capable of introducing a promoter fragment and DNA sequence for a selected gene product along with appropriate 3' untranslated sequence into a cell.
- a polynucleotide or polypeptide has a certain percent "sequence identity" to another polynucleotide or polypeptide, meaning that, when aligned, that percentage of bases or amino acids are the same when comparing the two sequences. Sequence similarity can be determined in a number of different manners. To determine sequence identity, sequences can be aligned using the methods and computer programs, including BLAST, available over the world wide web at ncbi.nlm.nih.gov/BLAST/. Another alignment algorithm is FASTA, available in the Genetics Computing Group (GCG) package, from Madison, Wis., USA. Other techniques for alignment are described in Methods in Enzymology, vol. 266: Computer Methods for Macromolecular Sequence Analysis (1996), ed. Doolittle, Academic Press, Inc. Of particular interest are alignment programs that permit gaps in the sequence. The Smith-Waterman is one type of algorithm that permits gaps in sequence alignments.
- the present invention provides a modified nucleic acid molecule comprising a nucleotide sequence that encodes a polypeptide of SEQ ID NO:2 (human REP1), wherein the nucleic acid sequence has been codon optimized.
- the starting nucleic acid sequence that encodes a polypeptide of SEQ ID NO:2 and that is subject to codon optimization has the nucleotide sequence set forth as SEQ ID NO:3.
- the sequence that encodes a polypeptide of SEQ ID NO:2 is codon optimized for human expression.
- SEQ ID NO:1 is a codon optimized version of SEQ ID NO: 3, optimized for human expression:
- a codon-optimized sequence encoding human REP1 is provided lacking the TAA stop codon of SEQ ID NO: 1 (i.e. consisting of nucleotides 1- 1959 of SEQ ID NO:1).
- the disclosure provides a polynucleotide comprising the nucleotide sequence of SEQ ID NO: 1 or polynucleotide comprising a nucleotide sequence at least 90%, at least 95%, at least 96%, at least 97%, at least 98%, or at least 99% identical to the nucleotide sequence of SEQ ID NO: 1 and which encodes a human REP1 polypeptide having the amino acid sequence of SEQ ID NO:2:
- codon-optimized refers to genes or coding regions of nucleic acid molecules for transformation of various hosts, refers to the alteration of codons in the gene or coding regions of the nucleic acid molecules to reflect the typical codon usage of the host organism without altering the polypeptide encoded by the DNA. Such optimization includes replacing at least one, or more than one, or a significant number, of codons with one or more codons that are more frequently used in the genes of that organism.
- Deviations in the nucleotide sequence that comprises the codons encoding the amino acids of, any polypeptide chain allow for variations in the sequence coding for the gene. Since each codon consists of three nucleotides, and the nucleotides comprising DNA are restricted to four specific bases, there are 64 possible combinations of nucleotides, 61 of which encode amino acids (the remaining three codons encode signals ending translation). The "genetic code” which shows which codons encode which amino acids is reproduced herein as Table 1. As a result, many amino acids are designated by more than one codon.
- amino acids alanine and proline are coded for by four triplets, serine and arginine by six, whereas tryptophan and methionine are coded by just one triplet.
- This degeneracy allows for DNA base composition to vary over a wide range without altering the amino acid sequence of the proteins encoded by the DNA.
- Codon preference or codon bias, differences in codon usage between organisms, is afforded by degeneracy of the genetic code, and is well documented among many organisms. Codon bias often correlates with the efficiency of translation of messenger RNA (mRNA), which is in turn believed to be dependent on, inter alia, the properties of the codons being translated and the availability of particular transfer RNA (tRNA) molecules.
- mRNA messenger RNA
- tRNA transfer RNA
- the predominance of selected tRNAs in a cell is generally a reflection of the codons used most frequently in peptide synthesis. Accordingly, genes can be tailored for optimal gene expression in a given organism based on codon optimization.
- Codon usage tables are available, for example, at the "Codon Usage Database” available at www.kazusa.or.jp/codon/ (visited Jun. 18, 2012). See Nakamura, Y., etal. Nucl. Acids Res. 28:292 (2000).
- Randomly assigning codons at an optimized frequency to encode a given polypeptide sequence can be done manually by calculating codon frequencies for each amino acid, and then assigning the codons to the polypeptide sequence randomly.
- a non-viral vector (e.g. an expression plasmid) comprising a modified nucleic acid as herein described is provided.
- the non-viral vector is a plasmid comprising a nucleic acid sequence of SEQ ID NO: 1, or a sequence at least 90% identical thereto.
- a viral vector comprising a modified (codon optimized) nucleic acid as herein described is provided.
- the viral vector comprises a nucleic acid sequence of SEQ ID NO: 1, or a sequence at least 90% identical thereto, operably linked to an expression control sequence.
- suitable viral vectors include but are not limited to adenoviral, retroviral, lentiviral, herpesvirus and adeno-associated virus (AAV) vectors.
- the viral vector includes a portion of a parvovirus genome, such as an AAV genome with the rep and cap genes deleted and/or replaced by the modified REP1 gene sequence and its associated expression control sequences.
- the modified human REP1 gene sequence is typically inserted adjacent to one or two (i.e., is flanked by) AAV TRs or TR elements adequate for viral replication (Xiao et al., 1997, J. Virol. 71(2): 941-948), in place of the nucleic acid encoding viral rep and cap proteins.
- Other regulatory sequences suitable for use in facilitating tissue-specific expression of the modified REP1 gene sequence in the target cell may also be included.
- the AAV viral vector comprises a nucleic acid comprising from 5' to 3': (a) an AAV2 terminal repeat (b) a CAG promoter (c) a codon optimized REP1 gene as herein described (d) a polyadenylation sequence and (e) an AAV2 terminal repeat.
- the AAV viral vector comprises a nucleic acid (transgene cassette) comprising the sequence of SEQ ID NO:5 or a sequence at least 90%, at least 95%, at least 98% or at least 99% identical thereto:
- the 5' ITR has the following sequence:
- the 3' ITR has the following sequence:
- the SV40 polyadenylation sequence has the following sequence:
- helper viruses include, typically, adenovirus or herpes simplex virus.
- the helper functions can be provided to a packaging cell including by transfecting the cell with one or more nucleic acids encoding the various helper elements and/or the cell can comprise the nucleic acid encoding the helper protein.
- HEK 293 were generated by transforming human cells with adenovirus 5 DNA and now express a number of adenoviral genes, including, but not limited to El and E3 (see, e.g., Graham et al., 1977 , J. Gen. Virol. 36:59-72).
- those helper functions can be provided by the HEK 293 packaging cell without the need of supplying them to the cell by, e.g., a plasmid encoding them.
- the viral vector may be any suitable nucleic acid construct, such as a DNA or RNA construct and may be single stranded, double stranded, or duplexed (i.e. , self complementary as described in WO 2001/92551).
- the viral capsid component of the packaged viral vectors may be a parvovirus capsid.
- AAV Cap and chimeric capsids are preferred.
- the viral capsid may be an AAV capsid (e.g., AAV1, AAV2, AAV3, AAV4, AAV5, AAV6, AAV7 AAV8, AAV9, AAV10, AAV11, AAV12, AAV1.1, AAV2.5, AAV6.1, AAV6.3.1, AAV9.45, AAVrhlO, AAVrh74, RHM4-1, AAV2-TT, AAV2-TT-S312N, AAV3B-S312N, AAV-LK03, snake AAV, avian AAV, bovine AAV, canine AAV, equine AAV, ovine AAV, goat AAV, shrimp AAV, and any other AAV now known or later discovered, see, e.g., Fields et al., VIROLOGY, volume 2, chapter 69 (4.s
- the viral capsid component of the packaged viral vector is a variant of a native AAV capsid (i.e. comprises one or more modifications relative to a native AAV capsid).
- the capsid is a variant of an AAV2, AAV 5 or AAV8 capsid.
- the capsid is a variant of an AAV2 capsid, such as those described in U.S. Patent Application Publication Number 2019/0255192A1 (e.g. comprising the amino acid sequence of any of SEQ ID NOs: 42-59).
- the capsid comprises a capsid protein having the following amino acid sequence:
- the variant AAV capsid protein of SEQ ID NOV contains the following modifications relative to native AAV2 capsid: (i) a proline (P) to alanine (A) mutation at amino acid position 34, which is located inside the assembled capsid (VP1 protein only), and (ii) an insertion of 10 amino acids (leucine-alanine-isoleucine-serine-aspartic acid- glutamine-threonine-lysine-histidine-alanine/LAISDQTKHA) at amino acid position 588, which is present in VP1, VP2, and VP3.
- a full complement of AAV Cap proteins includes VP1, VP2, and VP3.
- the ORF comprising nucleotide sequences encoding AAV VP capsid proteins may comprise less than a full complement AAV Cap proteins or the full complement of AAV Cap proteins may be provided.
- the present invention provides for the use of ancestral AAV vectors for use in therapeutic in vivo gene therapy.
- ancestral AAV vectors were synthesized de novo and characterized for biological activities. This effort led to the generation of nine functional putative ancestral AAVs and the identification of Anc80, the predicted ancestor of AAV serotypes 1, 2, 8 and 9 (Zinn et al., 2015, Cell Reports 12:1056-1068).
- Predicting and synthesis of such ancestral sequences in addition to assembling into a virus particle may be accomplished by using the methods described in WO 2015/054653, the contents of which are incorporated by reference herein.
- the use of the virus particles assembled from ancestral viral sequences may exhibit reduced susceptibility to pre-existing immunity in current day human population than do contemporary viruses or portions thereof.
- the invention includes packaging cells, which are encompassed by "host cells,” which may be cultured to produce packaged viral vectors of the invention.
- the packaging cells of the invention generally include cells with heterologous (1) viral vector function(s), (2) packaging function(s), and (3) helper function(s). Each of these component functions is discussed in the ensuing sections.
- the vectors can be made by several methods known to skilled artisans (see, e.g., WO 2013/063379). A preferred method is described in Grieger, et al. 2015, Molecular Therapy 24(2):287-297, the contents of which are incorporated by reference herein for all purposes. Briefly, efficient transfection of HEK293 cells is used as a starting point, wherein an adherent HEK293 cell line from a qualified clinical master cell bank is used to grow in animal component-free suspension conditions in shaker flasks and WAVE bioreactors that allow for rapid and scalable rAAV production.
- the suspension HEK293 cell line generates greater than 10 5 vector genome containing particles (vg)/cell or greater than 10 14 vg/L of cell culture when harvested 48 hours post-transfection.
- triple transfection refers to the fact that the packaging cell is transfected with three plasmids: one plasmid encodes the AAV rep and cap genes, another plasmid encodes various helper functions (e.g., adenovirus or HSV proteins such as El a, Elb, E2a, E4, and VA RNA, and another plasmid encodes the transgene and its various control elements (e.g., modified REP1 gene and CAG promoter).
- helper functions e.g., adenovirus or HSV proteins such as El a, Elb, E2a, E4, and VA RNA
- transgene and its various control elements e.g., modified REP1 gene and CAG promoter
- This scalable manufacturing technology has been utilized to manufacture GMP Phase I clinical AAV vectors for retinal neovascularization (AAV2), Hemophilia B (scAAV8), Giant Axonal Neuropathy (scAAV9) and Retinitis Pigmentosa (AAV2), which have been administered into patients.
- AAV2 retinal neovascularization
- scAAV8 Hemophilia B
- scAAV9 Giant Axonal Neuropathy
- AAV2 Retinitis Pigmentosa
- a minimum of a 5 -fold increase in overall vector production by implementing a perfusion method that entails harvesting rAAV from the culture media at numerous time-points post-transfection.
- the packaging cells include viral vector functions, along with packaging and vector functions.
- the viral vector functions typically include a portion of a parvovirus genome, such as an AAV genome, with rep and cap deleted and replaced by the modified REP1 sequence and its associated expression control sequences.
- the viral vector functions include sufficient expression control sequences to result in replication of the viral vector for packaging.
- the viral vector includes a portion of a parvovirus genome, such as an AAV genome with rep and cap deleted and replaced by the transgene and its associated expression control sequences.
- the transgene is typically flanked by two AAV TRs, in place of the deleted viral rep and cap ORFs.
- transgene is typically a nucleic acid sequence that can be expressed to produce a therapeutic polypeptide or a marker polypeptide.
- the terminal repeats (TR(s)) (resolvable and non-resolvable) selected for use in the viral vectors are preferably AAV sequences, with serotypes 1, 2, 3, 4, 5 and 6 being preferred.
- Resolvable AAV TRs need not have a wild-type TR sequence (e.g., a wild-type sequence may be altered by insertion, deletion, truncation or missense mutations), as long as the TR mediates the desired functions, e.g., virus packaging, integration, and/or pro virus rescue, and the like.
- the TRs may be synthetic sequences that function as AAV inverted terminal repeats, such as the "double-D sequence" as described in U.S. Pat. No.
- the TRs are from the same parvovirus, e.g., both TR sequences are from AAV2.
- the packaging functions include capsid components.
- the capsid components are preferably from a parvoviral capsid, such as an AAV capsid or a chimeric AAV capsid function.
- suitable parvovirus viral capsid components are capsid components from the family Parvoviridae, such as an autonomous parvovirus or a Dependovirus.
- the capsid components may be selected from AAV capsids, e.g., AAV1, AAV2, AAV3, AAV4, AAV5, AAV6, AAV7, AAV8, AAV9, AAV10, AAV11, AAV12, AAVrhlO, AAVrh74, RHM4-1, RHM15-1, RHM15-2, RHM15-3/RHM15-5, RHM15-4, RHM15-6, AAV Hu.26, AAV1.1, AAV2.5, AAV6.1, AAV6.3.1, AAV9.45, AAV2i8, AAV2G9, AAV2i8G9, AAV2-TT, AAV2-TT-S312N, AAV3B-S312N, and AAV-LK03, and other novel capsids as yet unidentified or from non-human primate sources.
- Capsid components may include components from two or more AAV capsids.
- the packaged viral vector generally includes the modified REP1 gene sequence and expression control sequences flanked by TR elements, referred to herein as the "transgene” or “transgene expression cassette,” sufficient to result in packaging of the vector DNA and subsequent expression of the modified REP1 gene sequence in the transduced cell.
- the viral vector functions may, for example, be supplied to the cell as a component of a plasmid or an amplicon.
- the viral vector functions may exist extrachromosomally within the cell line and/or may be integrated into the cell's chromosomal DNA.
- any method of introducing the nucleotide sequence carrying the viral vector functions into a cellular host for replication and packaging may be employed, including but not limited to, electroporation, calcium phosphate precipitation, microinjection, cationic or anionic liposomes, and liposomes in combination with a nuclear localization signal.
- the viral vector functions are provided by transfection using a virus vector; standard methods for producing viral infection may be used.
- the packaging functions include genes for viral vector replication and packaging.
- the packaging functions may include, as needed, functions necessary for viral gene expression, viral vector replication, rescue of the viral vector from the integrated state, viral gene expression, and packaging of the viral vector into a viral particle.
- the packaging functions may be supplied together or separately to the packaging cell using a genetic construct such as a plasmid or an amplicon, a Baculovirus, or HSV helper construct.
- the packaging functions may exist extrachromosomally within the packaging cell, but are preferably integrated into the cell's chromosomal DNA. Examples include genes encoding AAV Rep and Cap proteins.
- the helper functions include helper virus elements needed for establishing active infection of the packaging cell, which is required to initiate packaging of the viral vector. Examples include functions derived from adenovirus, baculovirus and/or herpes virus sufficient to result in packaging of the viral vector.
- adenovirus helper functions will typically include adenovirus components Ela, Elb, E2a, E4, and VA RNA.
- the packaging functions may be supplied by infection of the packaging cell with the required virus.
- the packaging functions may be supplied together or separately to the packaging cell using a genetic construct such as a plasmid or an amplicon. See, e.g., pXR helper plasmids as described in Rabinowitz et al., 2002, J.
- the packaging functions may exist extrachromosomally within the packaging cell, but are preferably integrated into the cell's chromosomal DNA (e.g., El or E3 in HEK 293 cells).
- helper virus functions may be employed.
- the packaging cells are insect cells
- baculovirus may serve as a helper virus.
- Herpes virus may also be used as a helper virus in AAV packaging methods.
- Hybrid herpes viruses encoding the AAV Rep protein(s) may advantageously facilitate for more scalable AAV vector production schemes.
- any method of introducing the nucleotide sequence carrying the helper functions into a cellular host for replication and packaging may be employed, including but not limited to, electroporation, calcium phosphate precipitation, microinjection, cationic or anionic liposomes, and liposomes in combination with a nuclear localization signal.
- the helper functions are provided by transfection using a virus vector or infection using a helper virus; standard methods for producing viral infection may be used.
- any suitable permissive or packaging cell known in the art may be employed in the production of the packaged viral vector.
- Mammalian cells or insect cells are preferred.
- Examples of cells useful for the production of packaging cells in the practice of the invention include, for example, human cell lines, such as VERO, WI38, MRC5, A549, HEK 293 cells (which express functional adenoviral El under the control of a constitutive promoter), B-50 or any other HeLa cells, HepG2, Saos-2, HuH7, and HT1080 cell lines.
- the packaging cell is capable of growing in suspension culture, more preferably, the cell is capable of growing in serum-free culture.
- the packaging cell is a HEK293 that grows in suspension in serum free medium.
- the packaging cell is the HEK293 cell described in U.S. Pat. No. 9,441,206 and deposited as ATCC No. PTA 13274. Numerous rAAV packaging cell lines are known in the art, including, but not limited to, those disclosed in WO 2002/46359.
- the packaging cell is cultured in the form of a cell stack (e.g. 10-layer cell stack seeded with HEK293 cells).
- Cell lines for use as packaging cells include insect cell lines. Any insect cell which allows for replication of AAV and which can be maintained in culture can be used in accordance with the present invention. Examples include Spodoptera frugiperda, such as the Sf9 or Sf21 cell lines, Drosophila spp. cell lines, or mosquito cell lines, e.g., Aedes albopictus derived cell lines. A preferred cell line is the Spodoptera frugiperda SI9 cell line.
- Spodoptera frugiperda such as the Sf9 or Sf21 cell lines, Drosophila spp. cell lines, or mosquito cell lines, e.g., Aedes albopictus derived cell lines.
- a preferred cell line is the Spodoptera frugiperda SI9 cell line.
- Virus capsids according to the invention can be produced using any method known in the art, e.g., by expression from a baculovirus (Brown et al., (1994) Virology 198:477-488).
- the virus vectors of the invention can be produced in insect cells using baculovirus vectors to deliver the rep/cap genes and rAAV template as described, for example, by Urabe et al., 2002, Human Gene Therapy 13:1935-1943.
- the present invention provides for a method of rAAV production in insect cells wherein a baculovirus packaging system or vectors may be constructed to carry the AAV Rep and Cap coding region by engineering these genes into the polyhedrin coding region of a baculovirus vector and producing viral recombinants by transfection into a host cell.
- a baculovirus packaging system or vectors may be constructed to carry the AAV Rep and Cap coding region by engineering these genes into the polyhedrin coding region of a baculovirus vector and producing viral recombinants by transfection into a host cell.
- the AAV DNA vector product is a self-complementary AAV like molecule without using mutation to the AAV ITR. This appears to be a by-product of inefficient AAV rep nicking in insect cells which results in a self-complementary DNA molecule by virtue of lack of functional Rep enzyme activity.
- the host cell is a baculovirus-infected cell or has introduced therein additional nucleic acid encoding baculovirus helper functions or includes these baculovirus helper functions therein.
- These baculovirus viruses can express the AAV components and subsequently facilitate the production of the capsids.
- the packaging cells generally include one or more viral vector functions along with helper functions and packaging functions sufficient to result in replication and packaging of the viral vector. These various functions may be supplied together or separately to the packaging cell using a genetic construct such as a plasmid or an amplicon, and they may exist extrachromosomally within the cell line or integrated into the cell's chromosomes.
- the cells may be supplied with any one or more of the stated functions already incorporated, e.g., a cell line with one or more vector functions incorporated extrachromosomally or integrated into the cell's chromosomal DNA, a cell line with one or more packaging functions incorporated extrachromosomally or integrated into the cell's chromosomal DNA, or a cell line with helper functions incorporated extrachromosomally or integrated into the cell's chromosomal DNA [0091]
- the rAAV vector may be purified by methods standard in the art such as by column chromatography or cesium chloride gradients.
- a method for the treatment of choroideremia in a subject in need of such treatment by administering to the subject a therapeutically effective amount of a nucleic acid having a nucleotide sequence at least 90%, at least 95%, at least 98% identical, or 100% identical to the nucleotide sequence of SEQ ID NO: 1 or a pharmaceutical composition comprising such a nucleic acid and at least one pharmaceutically acceptable excipient.
- nucleic acid comprising a nucleotide sequence at least 90%, at least 95%, at least 98% identical or 100% identical to the nucleotide sequence of SEQ ID NO: 1 for use in the treatment of choroideremia is provided.
- nucleic acid comprising a nucleotide sequence at least 90%, at least 95%, at least 98% identical or 100% identical to the nucleotide sequence of SEQ ID NO: 1 for the manufacture of a medicament is provided.
- nucleic acid comprising a nucleotide sequence at least 90%, at least 95%, at least 98% identical or 100% identical to the nucleotide sequence of SEQ ID NO: 1 for the manufacture of a medicament for the treatment of choroideremia is provided.
- the nucleotide sequence at least 90%, at least 95%, at least 98% identical or 100% identical to the nucleotide sequence of SEQ ID NO: 1 is operably linked to an expression control sequence.
- the nucleotide sequence of SEQ ID NO: 1 is operably linked to a CAG promoter.
- the CAG promoter has the sequence of SEQ ID NO:4.
- the nucleotide sequence at least 90%, at least 95%, at least 98% identical or 100% identical to the nucleotide sequence of SEQ ID NO: 1 forms part of an expression cassette.
- the expression cassette comprises from 5' to 3': (a) an AAV2 terminal repeat (b) a CAG promoter (c) codon optimized REP1 gene of SEQ ID NO: 1 (d) an SV40 polyadenylation sequence and (e) an AAV2 terminal repeat.
- the 5' AAV2 terminal repeat has the nucleotide sequence set forth as SEQ ID NO:6 and/or the CAG promoter has the nucleotide sequence set forth as SEQ ID NO:4 and/or the SV40 polyadenylation sequence has the nucleotide sequence set forth as SEQ ID NO: 8 and/or the 3' AAV2 terminal repeat has the nucleotide sequence set forth as SEQ ID NO:7.
- the expression cassette comprises a nucleic acid comprising the nucleotide sequence of SEQ ID NO:5 or a sequence at least 80%, at least 81%, at least 82%, at least 83%, at least 84%, at least 85%, at least 86%, at least 87%, at least 88%, at least 89%, at least 90%, at least 91%, at least 92%, at least 93%, at least 94%, at least 95% , at least 96%, at least 97%, at least 98% or at least 99% identical thereto.
- a method for the treatment of choroideremia in a subject in need of such treatment by administering to the subject a therapeutically effective amount of a recombinant AAV (rAAV) virion, or a pharmaceutical composition comprising same, the rAAV virion comprising (i) a nucleic acid having a nucleotide sequence at least 90%, at least 95%, at least 98% identical or 100% identical to the nucleotide sequence of SEQ ID NO: 1 operably linked to an expression control sequence and (ii) an AAV capsid.
- rAAV virion comprising (i) a nucleic acid having a nucleotide sequence at least 90%, at least 95%, at least 98% identical or 100% identical to the nucleotide sequence of SEQ ID NO: 1 operably linked to an expression control sequence and (ii) an AAV capsid.
- a recombinant AAV virion comprising (i) a nucleic acid having a nucleotide sequence at least 90%, at least 95%, at least 98% identical or 100% identical to the nucleotide sequence of SEQ ID NO: 1 operably linked to an expression control sequence and (ii) an AAV capsid for the treatment of choroideremia.
- a recombinant AAV (rAAV) virion comprising (i) a nucleic acid having a nucleotide sequence at least 90%, at least 95%, at least 98% identical or 100% identical to the nucleotide sequence of SEQ ID NO: 1 operably linked to an expression control sequence and (ii) an AAV capsid for the manufacture of a medicament for the treatment of choroideremia.
- the rAAV virion comprises a native AAV2, AAV4, AAV 5 or AAV8 capsid.
- the rAAV virion comprises a variant AAV capsid that comprises one or more modifications relative to AAV2, AAV4, AAV 5 or AAV8.
- the AAV capsid comprises the sequence of SEQ ID NOV.
- the rAAV virion comprises (i) a native AAV2 capsid or variant thereof and (ii) an expression cassette comprising from 5' to 3': (a) an AAV2 terminal repeat (b) a CAG promoter (c) codon optimized REP1 gene of SEQ ID NO: 1 (d) an SV40 poly adenylation sequence and (e) an AAV2 terminal repeat.
- the rAAV comprises (i) a capsid comprising a capsid protein of SEQ ID NOV and (ii) a nucleic acid comprising a 5' AAV2 terminal repeat of SEQ ID NO:6 , a CAG promoter of SEQ ID NO:4, an SV40 polyadenylation sequence of SEQ ID NO: 8 and a 3' AAV2 terminal repeat of SEQ ID NO:7.
- the rAAV comprises (i) a capsid comprising a capsid protein of SEQ ID NOV and (ii) an expression cassette comprising the nucleotide sequence of SEQ ID NO:5.
- the use of an rAAV in the treatment of choroideremia or for the manufacture of a medicament for the treatment of choroideremia is provided, wherein the rAAV comprises (i) a nucleic acid comprising a nucleotide sequence of SEQ ID NO:5 and (ii) a capsid comprising a capsid protein having the amino acid sequence of SEQ ID NOV.
- the rAAV is administered by intravitreal injection.
- a method for the treatment of choroideremia comprising administering to the subject an effective amount of an rAAV comprising (i) a nucleic acid comprising a nucleotide sequence of SEQ ID NO:5 and (ii) a capsid comprising a capsid protein having the amino acid sequence of SEQ ID NOV.
- the rAAV is administered to the subject by intravitreal injection.
- a pharmaceutical composition comprising a nucleic acid having a nucleotide sequence at least 90%, at least 95% at least 98% identical or 100% identical to the nucleotide sequence of SEQ ID NO: 1, optionally operably linked to an expression control sequence, and at least one pharmaceutically acceptable excipient.
- the pharmaceutical composition comprises a nucleic acid comprising the nucleotide sequence of SEQ ID NO: 1 operably linked to a constitutive promoter, preferably a CAG promoter having a sequence at least 90%, at least 95% at least 98% identical or 100% identical to the nucleotide sequence of SEQ ID NO:4.
- a pharmaceutical composition comprising at least one pharmaceutically acceptable excipient and an infectious rAAV comprising (i) an AAV capsid and (ii) a nucleic acid comprising from 5' to 3': (a) an AAV2 terminal repeat (b) a CAG promoter (c) codon optimized REP1 gene of SEQ ID NO: 1 (d) an SV40 polyadenylation sequence and (e) an AAV2 terminal repeat.
- the pharmaceutical composition comprises between 10 9 vg and 10 14 vg, preferably between 10 10 vg and 10 13 vg of the rAAV, more preferably comprises about 3 x 10 11 vg or about 1 x 10 12 vg of the rAAV.
- the pharmaceutical composition comprises an rAAV comprising (i) a capsid comprising a capsid protein comprising or consisting of the sequence of SEQ ID NOV and (ii) a nucleic acid comprising codon optimized REP1 gene of SEQ ID NO: 1, wherein the nucleic acid further comprises a 5' AAV2 terminal repeat of SEQ ID NO: 6 and/or a CAG promoter of SEQ ID NO:4 and/or an SV40 polyadenylation sequence of SEQ ID NO:8 and/or an AAV2 terminal repeat of SEQ ID NO:7.
- the pharmaceutical composition comprises between 10 9 vg and 10 14 vg, preferably between 10 10 vg and 10 13 vg of the rAAV, more preferably comprises about 3 x 10 11 vg or about 1 x 10 12 vg of the rAAV.
- a method for expressing REP1 in one or more retinal pigmented epithelial cells and one or more rod photoreceptor cells of a human subject comprising administering to the human subject an effective amount of an infectious rAAV as herein described, wherein the REP1 is expressed in the one or more retinal pigmented epithelial cells and one or more rod photoreceptor cells.
- the effective amount of infectious rAAV is 10 9 vg/eye to 10 14 vg/eye and/or a single dose of the rAAV is intravitreally administered (bilaterally or unilaterally) to the human subject and/or the rAAV comprises a capsid of SEQ ID NOV and/or the rAAV comprises a heterologous nucleic acid comprising the nucleotide sequence of SEQ ID NO:5.
- a pharmaceutical composition comprising at least one pharmaceutically acceptable excipient and an infectious rAAV comprising (i) a capsid comprising a capsid protein comprising or consisting of the sequence of SEQ ID NO:9 and (ii) a nucleic acid comprising or consisting of the nucleotide sequence of SEQ ID NO:5.
- the pharmaceutical composition comprises 10 9 vg and 10 14 vg, preferably between10 10 vg and 10 13 vg of the rAAV, more preferably comprises about 3 x 10 11 vg or about 1 x 10 12 vg of the rAAV.
- a nucleic acid or infectious rAAV as herein described is administered by periocular or intraocular (intravitreal, suprachoroidal or subretinal) injection to a human with choroideremia, whereby the choroideremia is treated in the subject.
- a nucleic acid or infectious rAAV as herein described is administered subretinally or intravitreally to a human with choroideremia, whereby the choroideremia is treated in the subject.
- a human subject with choroideremia is administered a single intravitreal injection (bilateral or unilateral) of an rAAV as herein described.
- treatment of choroideremia in a treated subject comprises (i) an improvement (i.e. gain) in visual function or functional vision relative to a control (e.g. relative to a baseline measurement in the treated patient prior to treatment, relative to the untreated eye if the nucleic acid or rAAV is administered unilaterally, or relative to an untreated concurrent or historical control group of choroideremia patients) and/or (ii) a decrease in loss of visual function and/or retinal degeneration in a treated eye compared to a control (e.g. untreated eye in same patient or untreated control group) at e.g. 6 months, 12 months or 24 months after treatment.
- a control e.g. untreated eye in same patient or untreated control group
- ophthalmological test including but not limited to visual acuity testing, microperimetry and other visual field testing, anatomical testing, such as optical coherence tomography scans and fundus autofluorescence imaging, retinal electrophysiology, and/or quality of life (QoL) assessments.
- an effective amount of a nucleic acid or rAAV (or pharmaceutical composition comprising same) as herein described is an amount effective to treat choroideremia in a human patient.
- an effective amount of an rAAV as herein described is between 10 9 and 10 14 rAAV particles (or vector genomes (vg))/eye), preferably between 10 10 and 10 13 vg/eye, or between lx 10 11 vg/eye and 5 x 10 12 vg/eye, more preferably is about 3 x 10 11 vg/eye or about 1 x 10 12 vg/eye.
- a single dose of about 3 x 10 11 vg/eye or about 1 x 10 12 vg/eye is intravitreally administered to a human patient with choroideremia, whereby the choroideremia is treated.
- the human REP1 open reading frame cDNA sequence (NCBI Reference Sequence NM_000390.4) was codon optimized for human expression.
- the optimization algorithm included parameters including, but not limited to, codon usage bias, GC content, CpG dinucleotides content, negative CpG islands, mRNA secondary structure, RNA instability motifs, cryptic splicing sites, premature polyadenylation sites, internal chi sites and ribosomal binding sites, and repeat sequences.
- the native human REP1 gene employs tandem rare codons that can reduce the efficiency of translation or even disengage the translational machinery.
- the codon usage bias in humans was changed by upgrading the codon adaptation index (CAI) from 0.70 to 0.94.
- CAI codon adaptation index
- the average GC content was optimized from 54.24 in the native sequence to 61.22 in the optimized sequence to prolong the half-life of the mRNA.
- negative cis-acting sites such as ATTTA (6 of which are deleted in the optimized sequence) were screened and deleted to optimize expression of the gene in human cells and several restriction enzyme sites were deleted (2 Bglll(AGATCT), 1 EcoRI(GAATTC), 1 XhoI(CTCGAG) and 1 ARE sites were deleted).
- SEQ ID NO:1 The resulting codon optimized nucleotide sequence, set forth herein as SEQ ID NO:1, contains improved codon usage, altered GC content, better mRNA stability, and modification of negative cis acting elements relative to the native sequence of SEQ ID NO:3.
- a human in vitro model system was generated to evaluate expression of codon optimized human REP1 nucleic acid having the nucleotide sequence of SEQ ID NO: 1 in diseased human RPE cells derived from human choroideremia patients and functional correction of the CHM disease phenotype.
- This model system was chosen for in vitro pharmacology because a suitable non-human primate model of choroideremia (CHM) is lacking for pre-clinical studies.
- CHM patient fibroblast samples were reprogrammed to iPSCs, then differentiated into functional mature RPE cells. Lack of Repl protein in CHM patients has been shown to correlate with cellular defects in Rab27a trafficking and prenylation (see e.g. Strunnikova, N.V.
- CHM1 and CHM2 Cellular reprogramming of fibroblasts from two choroideremia patients (referred to herein as CHM1 and CHM2), was performed by Simplicon RNA reprogramming (EMD Millipore).
- EMD Millipore Simplicon RNA reprogramming
- approximately 5xl0 4 -IxlO 5 reprogrammed cells were re-plated on growth factor reduced Matrigel (Coming) in mouse embryonic fibroblasts (MEF)- conditioned medium containing B18R protein (200 ng/mL) supplemented with human iPSC Reprogramming Boost Supplement II (EMD Millipore).
- MEF mouse embryonic fibroblasts
- B18R protein 200 ng/mL
- human iPSC Reprogramming Boost Supplement II EMD Millipore
- CHM-iPSC lines were expanded from a single colony.
- the CHM-iPSC lines were cultured on Vitronectin XF (Stem Cell Technologies) in mTeSR-1 maintenance medium and sub-cultured using Gentle Cell Dissociation Reagent (Stem Cell Technologies), every 4-5 days at 70-80% confluence.
- iPSC embryoid bodies EBs were formed in suspension culture for one week and then differentiated in adherent conditions for an additional four weeks in mTeSR-1 basal medium, plus 20% Knockout Serum Replacement (Thermo Fisher Scientific).
- RPE cells were generated by a directed differentiation protocol as previously described (Leach et al., Investigative ophthalmology & visual science 56(2): 1002-13 (2015)). Briefly, iPSCs were passaged directly onto Matti gel (BD Biosciences) in DMEM/F12 with lx B27, lx N2, and l x NEAA (Invitrogen). From days 0 to 2, 50 ng/ml Noggin, 10 ng/ml Dkkl, 10 ng/ml IGF1 (R&D Systems Inc.), and 10 mM nicotinamide were added to the base medium.
- CHM RPE cells were cultured using a formulated media to analyze rod outer segment (ROS) phagocytosis (Maminishkis, et al., Investigative Ophthalmology and Visual Science, 47(8):3612-24 (2006)). Cells were plated in quadruplicate at 1 x 10 5 cells per cm 2 on 0.1% gelatin-coated black-walled, clear bottom 96 well plates and cultured for 30 days.
- ROS rod outer segment
- Photoreceptor ROSs were isolated from bovine eyes (Sierra for Medical Science) as previously described (Molday RS and Molday LL, Journal of Cell Biology, 105(6 Pt l):2589-601 (1987)) and fluorescently labeled with fluorescein isothiocyanate (FITC) protein (Thermo Fisher Scientific). In some conditions, cultured cells were treated with 62.5 pg/ml aVP5 integrin function-blocking antibody (Abeam) or IgG isotype control (Abeam) for 30 minutes at 37°C.
- Abeam 62.5 pg/ml aVP5 integrin function-blocking antibody
- IgG isotype control Abeam
- CHM RPE cell lysates were harvested using a standard RIPA Buffer (Thermo Fisher) with a Complete Protease Inhibitor Tablet (Millipore Sigma) and incubated on ice for 15 minutes. Samples were then centrifuged at 21 x g for 15 minutes. Supernatants were collected, and protein concentrations were determined using a BCA protein assay (Thermo Fisher Scientific) normalized and adjusted to 2 pM DTT. Biorad 4x Sample Buffer was added and samples were heated at 70°C for 10 minutes. An XT Criterion gel was run followed by gel transfer to a membrane. The membrane was then blocked and probed with REP1 and GADPH antibodies. Membranes were incubated with secondary antibodies conjugated to HRP and bands were visualized with ECL.
- the prenylation assay was performed using RPE cell lysates as described in Kohnke et al., PLoS ONE 8(12): 1-11 (2013). Following a wash with PBS, cell lysates were prepared in cold Prenylation Buffer (500 pM HEPES pH 7.0, 50 pM NaCl, 2 pM MgC12, 0.1 pM GDP, 0.5% NP-40, and a Complete Protease Inhibitor Tablet) and incubated on ice for 10-15 minutes. Protein concentrations were determined using a BCA protein assay (Thermo Fisher Scientific). Protein concentrations were normalized, and lysates adjusted to 2 pM DTT.
- Prenylation Buffer 500 pM HEPES pH 7.0, 50 pM NaCl, 2 pM MgC12, 0.1 pM GDP, 0.5% NP-40, and a Complete Protease Inhibitor Tablet
- Prenylation reactions were performed using 20 pL of lysate corresponding to 50-200 pg protein.
- the reaction for the functional complex was composed of 2 pM RabGGTase, 4 pM Rab27a and 4 pM BiotinGeranyl-PPi (Jena Bioscience). Reactions were incubated at 25°C for 5 hours and stopped by adding 4X Sample Buffer (Biorad), DTT to 40 mM and heating at 70°C for 10 minutes. Western blotting was carried out on XT Criterion gels according to manufacturer’s protocols. Prenylation reactions were analyzed using streptavidin-HRP (Abeam).
- RPE cells were seeded onto vitronectin coated eight chambered slides at 25,000 cells per cm 2 in XVIVO-10 media. Two days after seeding, the CHM RPE cells were transduced with recombinant AAV virions comprising (i) a transgene expression cassette having the sequence of SEQ ID NO:5 and (ii) a modified AAV2 capsid protein having the amino acid sequence of SEQ ID NOV, at a multiplicity of infection (MOI) of 5000 vg/cell. Fourteen days post infection, cells were fixed and stained as described above.
- AAV virions comprising (i) a transgene expression cassette having the sequence of SEQ ID NO:5 and (ii) a modified AAV2 capsid protein having the amino acid sequence of SEQ ID NOV, at a multiplicity of infection (MOI) of 5000 vg/cell.
- CHM patient fibroblast samples were obtained and reprogrammed to iPSCs followed by differentiation to RPE cells as described above. More specifically, cellular reprogramming of fibroblast cells (CHM1 and CHM2) was performed by Simplicon RNA reprogramming using synthetic in vitro transcribed RNA expressing four reprogramming factors (Oct4, Klf4, Sox2 and Glisl) in a polycistronic transcript that self-replicates for a limited number of cell divisions. Immunocytochemical analysis of human PSC markers NANOG, SOX2 and OCT4 was performed to confirm the pluripotency of both choroideremia iPSC lines, CHM1 and CHM2 ( Figures la and lb).
- iPSC lines were randomly differentiated in suspension culture as EBs and then differentiated in adherent conditions for four weeks and evaluated for the ability to differentiate into the ectodermal, mesodermal, and endodermal lineages.
- markers associated with neurons TUJ1+
- ASMA+ smooth muscle cells
- HNF4A+ hepatocytes belonging to the ectoderm, mesoderm, and endoderm germ layers, respectively, were detected ( Figures 1c and Id).
- the iPSC lines generated from CHM1 and CHM2 patient cells were differentiated to RPE cells.
- RPE cells were allowed to mature for 30 days, followed by analysis for proper RPE cell marker expression and function. Protein expression and localization of Melanogenesis Associated Transcription Factor (MITF) and Orthodenticle Homeobox 2 (OTX2), RPE65 and zonula occludens (ZO-1) ( Figures 2a and 2b) was normal. No changes in photoreceptor outer segment phagocytosis, a known function of RPE, ( Figure 2c) confirmed that CHM iPSC-derived RPE cells exhibit key physiological characteristics similar to those of native RPE.
- MITF Melanogenesis Associated Transcription Factor
- OTX2 Orthodenticle Homeobox 2
- ZO-1 zonula occludens
- rAAV recombinant AAV
- virions comprising (i) a modified AAV2 capsid protein having the amino acid sequence of SEQ ID NOV and (ii) a transgene expression cassette comprising either codon optimized REP1 of SEQ ID NO: 1 or native REP1 of SEQ ID NO:3, each under the control of a CAG promoter of SEQ ID NO:4.
- CHM RPE cells were transduced with the rAAV virions at two different MOIs, 500 or 5000 vg/cell.
- a functional assay was developed to assess the ability of delivered REP1 protein to prenylate Rab27a GTPase (Figure 4).
- CHM RPE cells were transduced with rAAV comprising (i) a transgene expression cassette having the sequence of SEQ ID NO:5 and (ii) a modified AAV2 capsid protein having the amino acid sequence of SEQ ID NOV.
- Cell lysates from transduced or control CHM1 and CHM2 RPE cells were collected 14 days post infection. Wild type RPE cells were used as a positive control. Prenylation of Rab27a GTPase will only occur in the presence of REP 1 and, the prenyl donor, RabGGTase.
- the prenyl groups were labeled with biotin.
- the cell lysates, following transduction, were combined with Rab27a GTPase, RabGGTase and biotinylated prenyl groups.
- the in vitro reaction was incubated for 5 hours to optimize prenyl group transfer.
- the lysates were subjected to SDS-PAGE and Western blotting analysis.
- a SA-HRP conjugate revealed the level of prenylation in each reaction ( Figures 5a-d).
- RPE cells derived from a normal fibroblast cell-derived iPSC line were used as a positive control in this experiment.
- CHM RPE cells were cultivated at low density (2.5x10 4 cells/cm 2 ) and then transduced with rAAV comprising (i) a transgene expression cassette having the sequence of SEQ ID NO:5 and (ii) a modified AAV2 capsid protein having the amino acid sequence of SEQ ID NO:9 at a MOI of 5000 vg/cell. After 14 days, cultures were immunostained with anti-REPl and anti-RAB27A antibodies and imaged to visualize the subcellular localization of RAB27A in transduced versus untreated cultures.
- 4D-110 (rAAV comprising a capsid protein of SEQ ID NO:9 and a heterologous nucleic acid comprising the nucleotide sequence of SEQ ID NO:5) genome biodistribution was assessed in all major ocular compartments (retina, optic nerve, ciliary body, iris, trabecular meshwork), and major systemic organs (including the testes) using validated, GLP-compliant qPCR assay. In tissues where genomes were detected, transgene expression was assessed by a qualified, GLP-compliant RT-qPCR assay.
- Serial toxicology assessments performed in the study were: clinical ocular evaluations (complete ophthalmic examinations, including SD-OCT imaging and ERG), systemic evaluations, clinical pathology, gross pathology and microscopic pathology. Assays were validated to determine the anti-capsid and anti-transgene antibody responses. ELISpot assays were validated to detect cellular responses to the R100 capsid (comprising a variant capsid protein of SEQ ID NO:9) and expressed proteins. [00147] Neutralizing Antibody Assay
- 2v6.11 cells were plated at a density of 3xl0 4 cells/well 24 hours prior to infection.
- rAAV vectors encoding firefly luciferase driven by the CAG promoter were incubated at 37°C for 1 hour with individual serum samples prior to infection, and cells were then infected at a genomic MOI of 1,000.
- Luciferase activity was assessed 48 hours post infection using the Luc-Screen Extended-Glow Luciferase Reporter Gene Assay System (Invitrogen) or the ONE-Glo Luciferase Assay System (Promega) and quantified using the BioTek Cytation 3 Cell Imaging Multi-Mode Reader and Gen5 software.
- NHP non-human primates
- Recombinant R100 viral vectors were produced by transient transfection in HEK293 cells.
- Cells were cultured in DMEM supplemented with FBS and were maintained at 37°C in a 5% CO2 environment.
- Cells were triply transfected (payload, capsid, and helper plasmids) using polyethylenimine (PEI).
- PEI polyethylenimine
- TFF retentate was then loaded onto an affinity resin column for purification. Following pH-gradient elution, postaffinity material was buffer exchanged, then further purified (if needed) by anion-exchange chromatography. Purified rAAV was then formulated into DPBS with 0.001% polysorbate- 20, sterile filtered, and filled to yield rAAV Drug Product [00152] Results
- 4D-110 (RlOO.CAG-cohRepl) has recently been translated into a clinical trial for the inherited retinal disease choroideremia (NCT04483440).
- This therapeutic product has been evaluated in two separate GLP toxicology and biodistribution studies (Table 4).
- a total of 44 NHPs were injected with a single eye administration, sequential bilateral administration, or simultaneous bilateral administration; a total of 61 NHP eyes were injected. No significant test-article-related adverse events or T-cell responses were reported. Mild to moderate, transient corticosteroid-responsive anterior uveitis was observed. Transgene expression was localized to the retina, and expression was not detected in any of the systemic organs evaluated.
- Human clinical trials are underway in order to determine the safety, pharmacodynamics, and efficacy (including through serial visual field testing and optical coherence tomography scans) of this product by intravitreal injection.
- the clinical trial employed a standard “3+3” dose-escalation designed to assess the safety, tolerability and biologic activity of a single intravitreal injection of 4D-110 at two dose levels (3E11 or 1E12 vg/eye).
- a total of six patients were enrolled across dose escalation cohorts, with three at each dose level.
- Patients received a standard immunosuppression regimen with taper; adjustments were determined by investigators.
- the results described are based on data cut-offs between 1-9 months post-administration.
- ocular and systemic status is closely monitored including detailed ophthalmic evaluations and retinal imaging together with blood testing and systemic examinations, as necessary.
- a variety of visual function and anatomical assessments is performed to detect any preliminary efficacy signal. These assessments include, but are not limited to, measurements of ellipsoid zone (EZ) area, fundus autofluorescence, microperimetry, static automated perimetry, and best corrected visual acuity (BCVA).
- EZ ellipsoid zone
- BCVA best corrected visual acuity
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| CA3191545A CA3191545A1 (en) | 2020-09-02 | 2021-08-31 | Codon optimized rep1 genes and uses thereof |
| JP2023514413A JP2023539367A (en) | 2020-09-02 | 2021-08-31 | Codon-optimized REP1 gene and its use |
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