Gene therapy for limb-girdle muscular dystrophy type 2c

JP2025162557A5Pending Publication Date: 2026-02-12RES INST AT NATIONWIDE CHILDRENS HOSPITAL
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Patent Information

Application Number
JP2025121245
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2018-01-31
Filing Date
2025-07-18
Publication Date
2026-02-12

AI Technical Summary

Technical Problem

Current treatments for limb-girdle muscular dystrophy type 2C, such as LGMD2C, are ineffective in altering the disease course, and there is a need for compositions and methods that can address the genetic defect and improve muscle function, reduce fibrosis, and enhance muscle strength.

Method used

Gene therapy vectors, specifically recombinant adeno-associated virus (AAV) vectors encoding gamma sarcoglycan, are administered to deliver gamma sarcoglycan to muscle cells, promoting muscle function, reducing fibrosis, and increasing muscle strength and endurance.

Benefits of technology

The AAV vectors effectively restore gamma sarcoglycan expression, reversing dystrophic characteristics, reducing degeneration, inflammation, and improving functional recovery by protecting against muscle contractions and enhancing force generation.

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Abstract

To provide a gene therapy for limb-girdle muscular dystrophy type 2C.SOLUTION: The disclosure relates to gene therapy vectors, such as AAV vectors, comprising a polynucleotide encoding γ-sarcoglycan (SGCG), and to methods of using such gene therapy vectors to treat subjects suffering from a muscular dystrophy, e.g., limb-girdle dystrophy type 2C (LGMD2C). Provided in one aspect is a method of treating γ-sarcoglycanopathy in a subject, the method comprising administering to the subject a therapeutically effective amount of a recombinant adeno-associated virus (AAV) vector, the rAAV vector comprising a gene expression cassette comprising a polynucleotide sequence encoding γ-sarcoglycan under transcriptional control of a promoter, where the cassette is flanked by one or more AAV inverted terminal repeats.SELECTED DRAWING: None
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Description

[Technical Field]

[0001] Cross-reference to related patent applications This application claims priority under 35 U.S.C. §119(e) to U.S. Provisional Patent Application No. 62 / 624,616, filed January 31, 2018, the contents of which are incorporated herein by reference in their entirety.

[0002] Sequence Listing This application contains a Sequence Listing that has been submitted electronically in ASCII format, and is incorporated herein by reference in its entirety. The ASCII copy, created on January 25, 2019, is named 106887-7141_SL.txt and is 18,760 bytes in size.

[0003] The present invention relates to gene therapy. More specifically, the present disclosure provides gene therapy vectors, such as adeno-associated virus (AAV) vectors, for treating muscular dystrophies, such as limb-girdle dystrophy type 2C (LGMD2C). [Background technology]

[0004] Muscular dystrophies (MD) are a group of genetic disorders characterized by progressive weakness and degeneration of the skeletal muscles that control movement. Some forms of MD occur in infancy or childhood, while others may not manifest until middle age or later. The disorders differ in the distribution and severity of muscle weakness, and some MD forms also affect the heart muscle, age of onset, rate of progression, and pattern of inheritance.

[0005] One group of MD is the limb-girdle group of MD (LGMD). LGMD is a rare condition that manifests differently in different people with regard to age of onset, location of muscle weakness, cardiac and respiratory involvement, rate of progression, and severity. LGMD can begin in childhood, adolescence, young adulthood, or even later. It affects both men and women equally. LGMD causes weakness of the shoulders and pelvic girdle, and over time, muscles around the thighs and arms may also weaken. Leg weakness often appears before arm weakness. Facial muscles are usually spared. As the condition progresses, affected individuals may have problems walking and may gradually require the use of a wheelchair. Impact on the shoulder and arm muscles can cause difficulty raising the arms above the head and lifting objects. Some forms of LGMD can affect the heart muscle and respiratory muscles.

[0006] LGMD2C (limb-girdle dystrophy type 2C) is caused by a deficiency of gamma (γ) sarcoglycan (SGCG). Like other sarcoglycanopathies, it manifests as a progressive muscular dystrophy that begins in the limb-girdle muscles before spreading to the muscles of the lower and eventually upper limbs. Symptoms typically occur in the mid- to late teens. In attempts to treat LGMD2C, no form of drug therapy, including corticosteroids, has been able to alter the course of the disease.

[0007] Functional improvement in patients with LGMD2C and other muscular dystrophies requires both gene repair and reduced fibrosis. There is a need in the art for compositions and methods for treating LGMD2C and other muscular dystrophies. Summary of the Invention [Means for solving the problem]

[0008] Described herein are gene therapy vectors, e.g., recombinant adeno-associated virus (AAV) vectors, encoding gamma sarcoglycan, and methods of delivering such vectors encoding gamma sarcoglycan to muscle to reduce or prevent fibrosis, maintain or improve muscle function, increase muscular force, increase muscle endurance, or treat gamma sarcoglycanopathies in mammalian subjects suffering from muscular dystrophy.

[0009] Additionally, the present disclosure provides therapies and approaches using gene therapy vectors to deliver gamma-sarcoglycan to address the genetic defect found in LGMD2C (limb-girdle dystrophy type 2C). In one aspect, the present disclosure provides treatments and approaches for gamma-sarcoglycanopathies, increased muscle strength, muscle endurance, and / or muscle mass, reduced fibrosis, reduced contraction-induced damage, reduced fatty infiltration, and / or central nucleation in a subject in need thereof. Provided herein are methods for reducing muscular dystrophy (muscle atrophy), reducing degenerative or necrotic fibers, reducing inflammation, increasing creatine kinase levels, treating muscle fiber atrophy and hypertrophy, and / or reducing dystrophic calcification in a subject suffering from muscular dystrophy, the method comprising, consisting essentially of, or further consisting of administering to the subject a therapeutically effective amount of a recombinant adeno-associated virus (AAV) vector, wherein the rAAV vector comprises, consists essentially of, or further consists of a gene expression cassette comprising, consisting essentially of, or further consisting of a polynucleotide sequence encoding gamma sarcoglycan under the transcriptional control of a promoter, said cassette being flanked by one or more AAV inverted terminal repeats.

[0010] In one aspect, a recombinant AAV (rAAV) vector is described herein, comprising, essentially consisting of, or even further consisting of a polynucleotide sequence encoding gamma-sarcoglycan under the transcriptional control of a promoter. In some embodiments, the polynucleotide sequence encoding gamma-sarcoglycan comprises, essentially consisting of, or even further consisting of, for example, at least 65%, at least 70%, at least 75%, at least 80%, 81%, 82%, 83%, 84%, 85%, 86%, 87%, 88%, or 89%, more typically 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, 99% or more identical to the nucleotide sequence set forth in SEQ ID NO: 1, and encodes a protein that retains gamma-sarcoglycan activity. In some embodiments, the polynucleotide sequence encoding gamma-sarcoglycan comprises, essentially consisting of, or even further consisting of, the nucleotide sequence set forth in SEQ ID NO: 1. In some embodiments, the polynucleotide sequence encoding gamma sarcoglycan consists of the nucleotide sequence set forth in SEQ ID NO:1 or a sequence that is, for example, at least 65%, at least 70%, at least 75%, at least 80%, 81%, 82%, 83%, 84%, 85%, 86%, 87%, 88%, or 89%, more typically 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, 99% or more identical to the nucleotide sequence set forth in SEQ ID NO:1, and encodes a protein that retains gamma sarcoglycan activity, which in one aspect retains the nucleotide changes of SEQ ID NO:1 compared to the corresponding nucleotides of a wild-type human polynucleotide encoding gamma sarcoglycan.

[0011] In another aspect, the rAAV vectors described herein comprise, consist essentially of, or even consist of a polynucleotide sequence encoding a gamma sarcoglycan having at least 65%, at least 70%, at least 75%, at least 80%, 81%, 82%, 83%, 84%, 85%, 86%, 87%, 88%, or 89%, more typically at least 90%, 91%, 92%, 93%, or 94%, and even more typically at least 95%, 96%, 97%, 98%, or 99% sequence identity to the amino acid sequence of SEQ ID NO:2, and the protein retains gamma sarcoglycan activity.

[0012] Gamma sarcoglycan activity is important for muscle function. Gamma sarcoglycan is one of several muscle cell transmembrane glycoproteins that interact with dystrophin to form a dystrophin-glycoprotein complex, which spans the muscle cell membrane and is composed of dystrophin, syntrophin, α-dystroglycan, β-dystroglycan, and sarcoglycans, including gamma sarcoglycan. The dystrophin-glycoprotein complex provides a structural connection between the subsarcolemmal cytoskeleton and the extracellular matrix of muscle cells. Non-limiting examples of muscle cells include cardiac, diaphragm, leg, pelvic girdle, shoulder, and arm muscle cells. Further non-limiting examples of gamma sarcoglycan activity and the consequences of gamma sarcoglycanopathy are described in Blake et al. (2002) Physiol Rev.;82(2):291-329 and Tarakci et al. (2016) Front Biosci (Landmark Ed);21:744-56.

[0013] In another embodiment, the rAAV vectors described herein may be operably linked to a promoter and / or muscle-specific control elements such that expression is restricted to muscle. For example, the muscle-specific regulatory element is a human skeletal actin gene element (GenBank accession number NG_006672.1), a cardiac actin gene element (GenBank accession number NG_007553.1), a myocyte-specific enhancer-binding factor MEF (GenBank accession number NG_016443.2), a muscle creatine kinase (MCK) (GenBank accession number AF188002.1), a tMCK (truncated MCK), a myosin heavy chain (MHC), a MHCK7 (a hybrid version of MHC and MCK), a C5-12 (synthetic promoter), a mouse creatine kinase enhancer element, a fast skeletal troponin C gene element, a slow cardiac troponin C gene element, a slow troponin I gene element, a hypoxia-inducible nuclear factor, a steroid-inducible element, or a glucocorticoid response element (GRE).

[0014] In some embodiments, the muscle-specific promoter is MHCK7 (SEQ ID NO: 4) or an equivalent thereof. An exemplary rAAV vector described herein is pAAV.MHCK7.hSCGC, which comprises, consists essentially of, or further consists of the nucleotide sequence of SEQ ID NO: 3 or an equivalent thereof, where the MHCK7 promoter spans nucleotides 136-927, the CMV intron spans nucleotides 937-1084, the gamma sarcoglycan sequence spans nucleotides 1094-1968, and polyA spans nucleotides 1976-2028. In certain instances, pAAV.MHCK7.hSCGC is packaged into AAV rh74 capsids.

[0015] The AAV can be any serotype, for example, AAV1, AAV2, AAV3, AAV4, AAV5, AAV6, AAV7, AAV8, AAV9, AAV-10, AAV-11, AAV-12, AAV-13, or AAV rh74. In some embodiments, the rAAV vector comprises the inverted terminal repeat (ITR) sequence of AAV2.

[0016] The generation of pseudotyped rAAVs is described, for example, in International Publication No. WO 01 / 83692. Other types of rAAV variants, such as rAAVs with capsid mutations, are also being considered. See, for example, Marsic et al., Molecular Therapy, 22(11): 1900-1909 (2014).

[0017] Also contemplated are compositions comprising or consisting essentially of any of the rAAV vectors described herein.

[0018] Also provided are methods for producing recombinant AAV vector particles, comprising culturing cells transfected with any of the recombinant AAV vectors described herein and recovering the recombinant AAV particles from the supernatant of the transfected cells. Also contemplated are viral particles comprising or consisting essentially of any of the recombinant AAV vectors described herein.

[0019] Also provided is a method for reducing fibrosis in a mammalian subject in need thereof.In this regard, the method comprises, or essentially consists of, or further consists of administering a therapeutically effective amount of the AAV vector described herein (or a composition comprising or essentially consisting of the AAV vector described herein) to the mammalian subject.In some embodiments, the mammalian subject suffers from muscular dystrophy.In some embodiments, administering the AAV vector described herein (or a composition comprising or essentially consisting of the AAV vector described herein) reduces fibrosis in the skeletal muscle or cardiac muscle of the subject.

[0020] In another aspect, described herein is a method for increasing muscle strength or muscle mass or muscle endurance in a mammalian subject, comprising, consisting essentially of, or further consisting of administering to the mammalian subject a therapeutically effective amount of an AAV vector described herein (or a composition comprising or consisting essentially of an AAV vector described herein).

[0021] In any of the methods of the present disclosure, the subject can be afflicted with a muscular dystrophy, for example, limb-girdle muscular dystrophy or any other dystrophin-associated muscular dystrophy.

[0022] Also provided are methods of treating muscular dystrophy in a mammalian subject, comprising, consisting essentially of, or even further consisting of administering to the mammalian subject a therapeutically effective amount of an AAV vector described herein (or a composition comprising, or consisting essentially of, an AAV vector described herein). In some embodiments, the muscular dystrophy is limb-girdle dystrophy.

[0023] In any of the disclosed methods, the rAAV is administered by any suitable mode of administration, for example, intramuscular or intravenous injection. Additionally, in any of the disclosed methods, the rAAV is administered systemically, for example, parenterally by injection, infusion, or implantation.

[0024] The compositions of the present disclosure are formulated for intramuscular or intravenous injection. In addition, the compositions of the present disclosure are formulated for systemic administration, e.g., parenteral administration by injection, infusion, or implantation.

[0025] In addition, any of the compositions are formulated for administration to a subject suffering from muscular dystrophy (e.g., limb-girdle muscular dystrophy or any other dystrophin-related muscular dystrophy). Also described herein is a combination therapy comprising or consisting essentially of one or more of the compositions described herein and a corticosteroid. Provided herein is a host cell comprising the rAAV vector of the present disclosure. Further provided herein is a kit comprising any one or more of the embodiments disclosed herein and instructions for use. The kit may comprise or consist essentially of one or more of the compositions disclosed herein and a corticosteroid, or one or more of the combination therapies provided herein. In any of the uses of the present disclosure, the medicament is formulated for administration, for example, intramuscular injection or intravenous injection. In addition, in any of the uses of the present disclosure, the medicament is formulated for systemic administration, for example, parenteral administration by injection, infusion, or implantation. In addition, any of the medicaments may be prepared for administration to a subject suffering from a muscular dystrophy (eg, limb-girdle muscular dystrophy or any other dystrophin-associated muscular dystrophy).

[0026] The preceding paragraphs are not intended to define every aspect of the invention; further aspects are described in other sections, e.g., in the detailed description. It should be understood that the entire document is intended to be referred to as an integrated disclosure and contemplates all combinations of features described herein, even if the combinations of features are not found together in the same sentence, paragraph, or section of the document. The invention also includes, as a further aspect, all embodiments of the invention that are more or less limited in scope than the variations defined by the particular paragraphs above. For example, in the case of a particular aspect of the invention described as a genus, it should be understood that each and every member of the genus is an aspect of the invention. In certain embodiments, for example, the following items are provided: (Item 1) A method for treating a gamma-sarcoglycanopathy in a subject, the method comprising administering to the subject a therapeutically effective amount of a recombinant adeno-associated virus (AAV) vector, the rAAV vector comprising a gene expression cassette comprising a polynucleotide sequence encoding gamma-sarcoglycan under the transcriptional control of a promoter, the cassette being flanked by one or more AAV inverted terminal repeats. (Item 2) 1. A method for increasing muscle strength, muscle endurance, and / or muscle mass in a subject, the method comprising administering to the subject a therapeutically effective amount of a recombinant adeno-associated virus (AAV) vector, the rAAV vector comprising a gene expression cassette comprising a polynucleotide sequence encoding gamma sarcoglycan under the transcriptional control of a promoter, the cassette being flanked by one or more AAV inverted terminal repeats. (Item 3) 1. A method for reducing fibrosis in a subject, the method comprising administering to the subject a therapeutically effective amount of a recombinant adeno-associated virus (AAV) vector, the rAAV vector comprising a gene expression cassette comprising a polynucleotide sequence encoding gamma sarcoglycan under the transcriptional control of a promoter, the cassette being flanked by one or more AAV inverted terminal repeats. (Item 4) 1. A method for reducing contraction-induced damage in a subject, the method comprising administering to the subject a therapeutically effective amount of a recombinant adeno-associated virus (AAV) vector, the rAAV vector comprising a gene expression cassette comprising a polynucleotide sequence encoding gamma sarcoglycan under the transcriptional control of a promoter, the cassette being flanked by one or more AAV inverted terminal repeats. (Item 5) 1. A method for treating muscular dystrophy in a subject suffering from muscular dystrophy, the method comprising administering to the subject a therapeutically effective amount of a recombinant adeno-associated virus (AAV) vector, the rAAV vector comprising a gene expression cassette comprising a polynucleotide sequence encoding gamma sarcoglycan under the transcriptional control of a promoter, the cassette being flanked by one or more AAV inverted terminal repeats. (Item 6) 1. A method for reducing degenerative or necrotic fibers in a subject suffering from muscular dystrophy, the method comprising administering to the subject a therapeutically effective amount of a recombinant adeno-associated virus (AAV) vector, the rAAV vector comprising a gene expression cassette comprising a polynucleotide sequence encoding gamma sarcoglycan under the transcriptional control of a promoter, the cassette being flanked by one or more AAV inverted terminal repeats. (Item 7) 1. A method for reducing inflammation in a subject suffering from muscular dystrophy, the method comprising administering to the subject a therapeutically effective amount of a recombinant adeno-associated virus (AAV) vector, the rAAV vector comprising a gene expression cassette comprising a polynucleotide sequence encoding gamma sarcoglycan under the transcriptional control of a promoter, the cassette being flanked by one or more AAV inverted terminal repeats. (Item 8) A method for increasing creatine kinase levels in a subject suffering from muscular dystrophy, the method comprising administering to the subject a therapeutically effective amount of a recombinant adeno-associated virus (AAV) vector, the rAAV vector comprising a gene expression cassette comprising a polynucleotide sequence encoding gamma sarcoglycan under the transcriptional control of a promoter, the cassette being flanked by one or more AAV inverted terminal repeats. (Item 9) A method for treating muscle fiber atrophy and hypertrophy in a subject suffering from muscular dystrophy, the method comprising administering to the subject a therapeutically effective amount of a recombinant adeno-associated virus (AAV) vector, the rAAV vector comprising a gene expression cassette comprising a polynucleotide sequence encoding gamma sarcoglycan under the transcriptional control of a promoter, the cassette being flanked by one or more AAV inverted terminal repeats. (Item 10) 1. A method for reducing dystrophic calcification in a subject suffering from muscular dystrophy, the method comprising administering to the subject a therapeutically effective amount of a recombinant adeno-associated virus (AAV) vector, the rAAV vector comprising a gene expression cassette comprising a polynucleotide sequence encoding gamma sarcoglycan under the transcriptional control of a promoter, the cassette being flanked by one or more AAV inverted terminal repeats. (Item 11) 1. A method for reducing fatty infiltration in a subject, the method comprising administering to the subject a therapeutically effective amount of a recombinant adeno-associated virus (AAV) vector, the rAAV vector comprising a gene expression cassette comprising a polynucleotide sequence encoding gamma sarcoglycan under the transcriptional control of a promoter, the cassette being flanked by one or more AAV inverted terminal repeats. (Item 12) 1. A method for reducing central nucleation in a subject, the method comprising administering to the subject a therapeutically effective amount of a recombinant adeno-associated virus (AAV) vector, the rAAV vector comprising a gene expression cassette comprising a polynucleotide sequence encoding gamma sarcoglycan under the transcriptional control of a promoter, the cassette being flanked by one or more AAV inverted terminal repeats. (Item 13) 13. The method according to any one of items 1 to 12, wherein the polynucleotide sequence encoding gamma-sarcoglycan comprises a nucleotide sequence that is at least 95% identical to SEQ ID NO: 1. (Item 14) Item 14. The method of item 13, wherein the polynucleotide sequence encoding gamma sarcoglycan comprises the nucleotide sequence set forth in SEQ ID NO: 1. (Item 15) 15. The method of any one of items 1 to 14, wherein the rAAV vector comprises a self-complementary AAV vector genome. (Item 16) 16. The method of any one of items 1 to 15, wherein the rAAV vector comprises a genome lacking AAV rep and cap DNA. (Item 17) 17. The method of any one of items 1 to 16, wherein the rAAV vector is a vector of serotype AAV1, AAV2, AAV4, AAV5, AAV6, AAV7, AAV8, AAV9, AAV10, AAV11, AAV12, AAV13 or AAV rh74. (Item 18) 18. The method of claim 17, wherein the rAAV vector is a vector of the AAV rh74 serotype and comprises an AAV rh.74 capsid. (Item 19) 19. The method of claim 18, wherein the AAV rh.74 capsid comprises the amino acid sequence set forth in SEQ ID NO: 10. (Item 20) 20. The method of any one of items 1 to 19, wherein the genome of the rAAV vector comprises a muscle-specific control element, and the polynucleotide encoding gamma-sarcoglycan is operably linked to the muscle-specific control element. (Item 21) 21. The method of claim 20, wherein the muscle-specific regulatory element is selected from the group consisting of human skeletal actin gene element, cardiac actin gene element, myocyte-specific enhancer-binding factor mef, muscle creatine kinase (MCK), truncated MCK (tMCK), myosin heavy chain (MHC), MHCK7, C5-12, mouse creatine kinase enhancer element, fast skeletal troponin c gene element, slow cardiac troponin c gene element, slow troponin I gene element, hypoxia-inducible nuclear factor, steroid-inducible element, and glucocorticoid response element (gre). (Item 22) 22. The method of claim 21, wherein the muscle-specific regulatory element is truncated MCK (tMCK). (Item 23) 23. The method according to any one of items 1 to 22, wherein the promoter is an MHCK7 promoter. (Item 24) 24. The method of claim 23, wherein the MHCK promoter comprises the nucleotide sequence set forth in SEQ ID NO:3. (Item 25) 25. The method of any one of items 1 to 24, wherein the genome of the rAAV vector comprises an intron comprising the nucleotide sequence set forth in SEQ ID NO:5. (Item 26) 26. The method according to any one of items 1 to 25, wherein the polynucleotide sequence encoding gamma sarcoglycan encodes the amino acid sequence of SEQ ID NO: 2. (Item 27) 27. The method of any one of items 1 to 26, comprising administering a composition comprising the rAAV vector and a pharmaceutically acceptable carrier. (Item 28) 28. The method of any one of items 1 to 27, wherein the subject is suffering from limb-girdle muscular dystrophy. (Item 29) Item 29. The method of item 28, wherein the limb-girdle muscular dystrophy is limb-girdle muscular dystrophy type 2C. (Item 30) 30. The method of any one of items 1 to 29, comprising administering the rAAV vector, or the composition comprising the rAAV vector and a pharmaceutically acceptable carrier, by intramuscular or intravenous injection. (Item 31) 31. The method of any one of items 1 to 30, comprising a step of systemically administering the rAAV vector, or the composition comprising the rAAV vector and a pharmaceutically acceptable carrier. (Item 32) 32. The method of any one of items 1 to 31, comprising parenterally administering the rAAV vector, or the composition comprising the rAAV vector and a pharmaceutically acceptable carrier, by injection, infusion, or implantation. (Item 33) 33. The method according to any one of items 1 to 32, wherein the method increases muscle strength, muscle endurance, and / or muscle mass of one or more muscles of the subject. (Item 34) 34. The method of claim 33, wherein the one or more muscles are selected from the group consisting of the heart, diaphragm, thigh, lower leg, pelvic girdle, shoulder, and arm. (Item 35) 35. The method of claim 33 or 34, wherein muscle strength, muscle endurance, and / or muscle mass is increased by at least about 5%, at least about 10%, at least about 15%, at least about 20%, at least about 50%, or at least about 80% compared to untreated control subjects. (Item 36) A recombinant AAV (rAAV) vector comprising an AAV capsid and a gene expression cassette comprising a polynucleotide sequence encoding gamma sarcoglycan under the transcriptional control of a promoter. (Item 37) 37. The rAAV vector of item 36, wherein the gene expression cassette is flanked by one or more AAV inverted terminal repeats. (Item 38) 38. The rAAV vector of claim 36 or 37, wherein the polynucleotide sequence encoding gamma sarcoglycan comprises a nucleotide sequence that is at least 95% identical to SEQ ID NO:1. (Item 39) 39. The rAAV vector according to any one of Items 36 to 38, wherein the polynucleotide sequence encoding gamma-sarcoglycan comprises the nucleotide sequence set forth in SEQ ID NO: 1. (Item 40) 40. The rAAV vector of any one of items 36 to 39, which is a vector of serotype AAV1, AAV2, AAV4, AAV5, AAV6, AAV7, AAV8, AAV9, AAV10, AAV11, AAV12, AAV13, or AAV rh74. (Item 41) 41. The rAAV vector of any one of Items 36 to 40, wherein the genome of the rAAV vector comprises a muscle-specific control element, and the polynucleotide sequence is operably linked to the muscle-specific control element. (Item 42) 42. The rAAV vector of claim 41, wherein the muscle-specific regulatory element is selected from the group consisting of a human skeletal actin gene element, a cardiac actin gene element, a muscle cell-specific enhancer-binding factor mef, a muscle creatine kinase (MCK), a truncated MCK (tMCK), a myosin heavy chain (MHC), MHCK7, C5-12, a mouse creatine kinase enhancer element, a fast skeletal troponin c gene element, a slow cardiac troponin c gene element, a slow troponin i gene element, a hypoxia-inducible nuclear factor, a steroid-inducible element, and a glucocorticoid response element (gre). (Item 43) 43. The rAAV vector of claim 42, wherein the muscle-specific regulatory element is truncated MCK (tMCK). (Item 44) 44. The rAAV vector according to any one of items 36 to 43, wherein the promoter is MHCK7. (Item 45) 45. The rAAV vector of item 44, wherein the MHCK promoter comprises the nucleotide sequence set forth in SEQ ID NO:3. (Item 46) 46. ​​The rAAV vector of any one of Items 36 to 45, wherein the genome of the rAAV vector comprises the nucleotide sequence set forth in SEQ ID NO:5. (Item 47) 47. The rAAV vector of any one of Items 36 to 46, wherein the polynucleotide sequence encoding gamma-sarcoglycan encodes an amino acid sequence that is at least 95% identical, at least 99% identical, or 100% identical to SEQ ID NO:2. (Item 48) A composition comprising the rAAV vector according to any one of items 36 to 47. (Item 49) 49. The composition according to item 48, comprising a pharmaceutically acceptable carrier. (Item 50) 50. The composition of claim 48 or 49 for treating gamma sarcoglycanopathy in a subject. (Item 51) 50. The composition according to item 48 or item 49 for increasing muscle strength, muscle endurance, and / or muscle mass in a subject. (Item 52) 50. The composition of claim 48 or 49 for reducing fibrosis in a subject. (Item 53) 50. The composition of claim 48 or 49 for reducing contraction-induced damage in a subject. (Item 54) The composition of item 48 or item 49 for muscular dystrophy in a subject suffering from muscular dystrophy. (Item 55) 50. The composition of claim 48 or 49 for reducing degenerated or necrotic fibers in a subject suffering from muscular dystrophy. (Item 56) 50. The composition of claim 48 or 49 for reducing inflammation in a subject suffering from muscular dystrophy. (Item 57) 50. The composition of claim 48 or 49 for increasing creatine kinase levels in a subject suffering from muscular dystrophy. (Item 58) The composition of item 48 or item 49 for muscle fiber atrophy and hypertrophy in a subject suffering from muscular dystrophy. (Item 59) 50. The composition of claim 48 or 49 for reducing dystrophic calcification in a subject suffering from muscular dystrophy. (Item 60) 50. The composition of claim 48 or 49 for reducing fatty infiltration in a subject. (Item 61) 50. The composition of claim 48 or 49 for reducing central nucleation in a subject. (Item 62) 62. The composition according to any one of items 48 to 61, comprising lactated Ringer's solution (LRS). (Item 63) A host cell comprising the rAAV vector of any one of items 36 to 47. (Item 64) 63. A combination therapy comprising the composition of any one of items 48 to 62 and a corticosteroid. (Item 65) A kit comprising the composition according to any one of items 48 to 62 and a corticosteroid or a combination therapy according to item 64. (Item 66) 66. The kit of item 65, comprising a corticosteroid. [Brief explanation of the drawings]

[0027] [Figure 1] Figure 1 shows an AAV vector (scAAVrh74.MHCK7.hSGCG) containing the codon-optimized full-length human gamma sarcoglycan (hSCGB) cDNA (SEQ ID NO: 1). The construct contains the codon-optimized human gamma sarcoglycan cDNA (hSGCG), flanked by two AAV inverted terminal repeats (ITRs) of approximately 100 bp, a chimeric intron, a synthetic polyadenylation signal (pA), and is driven by the skeletal and cardiac muscle-specific MHCK7 promoter.

[0028] [Figure 2] Figure 2 shows hematoxylin and eosin (H&E) staining of tibialis anterior (TA) muscles from 8-week-old BL6 WT and gamma-sarcoglycan knockout (γ-SG KO) mice, demonstrating the dystrophic phenotype in affected mice.

[0029] [Figure 3-1] Figures 3A-3C show in vivo vector efficacy. scAAVrh74.MHCK7.hSGCG was injected into the tibialis anterior (TA) muscle of γ-SG KO mice at a total dose of 3e10vg. Figure 3A shows immunofluorescence staining of TA muscle in γ-SG KO mice. Nearly 100% γ-sarcoglycan protein expression occurred at the sarcolemma upon vector delivery. Figure 3B shows Western blots for γ-sarcoglycan expression in injected TA muscle from treated mice #794 and #795. Figure 3C shows immunofluorescence staining of TA muscle in control wild-type mice ("BL6 WT TA") or uninjected control γ-SG KO mice ("GSG KO TA"), as well as an unstained sample ("GSG KO, no primary antibody"). [Figure 3-2] Figures 3A-3C show in vivo vector efficacy. scAAVrh74.MHCK7.hSGCG was injected into the tibialis anterior (TA) muscle of γ-SG KO mice at a total dose of 3e10vg. Figure 3A shows immunofluorescence staining of TA muscle in γ-SG KO mice. Nearly 100% γ-sarcoglycan protein expression occurred at the sarcolemma upon vector delivery. Figure 3B shows Western blots for γ-sarcoglycan expression in injected TA muscle from treated mice #794 and #795. Figure 3C shows immunofluorescence staining of TA muscle in control wild-type mice ("BL6 WT TA") or uninjected control γ-SG KO mice ("GSG KO TA"), as well as an unstained sample ("GSG KO, no primary antibody").

[0030] [Figure 4]Figures 4A-4B show in vivo vector efficacy and toxicity in BL6 wild-type (WT) mice. Figure 4A shows immunofluorescence staining demonstrating overexpression of γ-sarcoglycan by membrane and intracellular staining. Figure 4B shows Western blots demonstrating overexpression of γ-sarcoglycan in injected LTA muscles.

[0031] [Figure 5] Figure 5 shows vector efficacy and toxicity in vivo in BL6 wild-type (WT) mice. H&E staining of uninjected and injected BL6 WT TA muscles revealed no toxicity, with a complete absence of central nuclei, necrotic fibers, inflammatory infiltrates, or fibrous tissue.

[0032] [Figure 6] Figure 6 shows immunofluorescence staining of γ-sarcoglycan for TA, gastrocnemius (GAS), quadriceps (QUAD), gluteal (GLUT), PSOAS, triceps, diaphragm, and cardiac muscle, demonstrating widespread expression of γ-sarcoglycan.

[0033] [Figure 7] Figure 7 shows immunofluorescence staining of IV efficacy tissues. IF staining for gamma sarcoglycan in various skeletal muscles, diaphragm, and heart demonstrates robust expression with few negative fibers 6 weeks after systemic delivery of scAAVrh.74.MHCK7.hSGCG.

[0034] [Figure 8] Figures 8A-8B show SGCG expression in IV-treated animals. Representative 20x images show immunofluorescence imaging of skeletal muscle, diaphragm, and heart from SGCG- / - mice intravenously injected with a total dose of 1e13vg of scAAVrh.74.MHCK7.hSGCG (Figure 8A). Western blots show hSGCG expression in all skeletal muscles and hearts from mice intravenously delivered with scAAVrh.74.MHCK7.hSGCG (Figure 8B).

[0035] [Figure 9] Figures 9A-9B show histological evaluation of tissues after systemic treatment. Hematoxylin and eosin staining of TRI and DIA skeletal muscle in BL6 WT, untreated SGCG- / -, and AAV.MHCK7.hSGCG-treated SGCG- / - mice demonstrates reversal of dystrophic pathology after treatment (Figure 9A). Quantification of the percentage of fibers with central nucleation demonstrates a reduction in treated muscle: BL6 WT (n=5), untreated SGCG- / - (n=6), AAV.MHCK7.hSGCG-treated (n=5) (Figure 9B). ***=p<0.001, ****=p<0.0001.

[0036] [Figure 10-1] 10A-10F show quantification of fiber diameter. Fiber diameter was quantified in the GAS (Figure 10A), PSOAS (Figure 10B), and TRI (Figure 10C) muscles of BL6 WT (n = 5), untreated SGCG- / - (n = 6), and AAV.MHCK7.hSGCG-treated SGCG- / - (n = 5) mice, and normalized to the fiber diameter distribution after treatment. Mean fiber diameter decreased in the GAS (Figure 10D), PSOAS (Figure 10E), and TRI (Figure 10F) muscles of untreated SGCG- / - mice, but increased to WT levels in each muscle after AAV.MHCK7.hSGCG treatment of SGCG- / - mice. **** = p < 0.0001. [Figure 10-2] 10A-10F show quantification of fiber diameter. Fiber diameter was quantified in the GAS (Figure 10A), PSOAS (Figure 10B), and TRI (Figure 10C) muscles of BL6 WT (n = 5), untreated SGCG- / - (n = 6), and AAV.MHCK7.hSGCG-treated SGCG- / - (n = 5) mice, and normalized to the fiber diameter distribution after treatment. Mean fiber diameter decreased in the GAS (Figure 10D), PSOAS (Figure 10E), and TRI (Figure 10F) muscles of untreated SGCG- / - mice, but increased to WT levels in each muscle after AAV.MHCK7.hSGCG treatment of SGCG- / - mice. **** = p < 0.0001.

[0037] [Figure 11]Figures 11A-11C show the physiology of the TA and diaphragm. TA and DIA muscles from BL6 WT (n = 5), untreated SGCG- / - (n = 6), and AAV.MHCK7.hSGCG-treated (n = 5) mice were subjected to measurements of normalized specific force generation. TA muscles were subjected to an eccentric contraction injury protocol (Figure 11A). Improved TA specific force output and resistance to contraction-induced injury were observed in treated SGCG- / - mice (Figure 11B). DIA specific force output was restored to WT levels in treated SGCG- / - mice (Figure 11C). * = p < 0.05, **** = p < 0.0001.

[0038] [Figure 12] Figure 12 shows laser monitoring of open-field cage activity. Total locomotion in the x and y planes is reduced in SGCG- / - mice and improved in AAV.MCHK7.hSGCG-treated mice. BL6 WT (n=6), untreated SGCG- / - (n=6), and AAV.MHCK7.hSGCG-treated (n=5).

[0039] [Figure 13] Figure 13 shows the biodistribution of vector genomes. The vector genome distribution, in mean vg copies per microgram genomic DNA (gDNA), was measured in various tissues from two SGCG- / - mice 3 months after IV delivery of a total dose of 1e13vg of scAAVrh.74.MHCK7.hSGCG.

[0040] [Figure 14]Figures 14A-14B show a comparison of serum ALT and AST. Serum from BL6 WT mice (n=6), untreated SGCG- / - mice (n=6), and AAV.MHCK7.hSGCG IV-treated SGCG- / - mice (n=5) (total dose 1e13vg) was analyzed for biochemical levels. The liver enzymes alkaline aminotransferase (ALT, Figure 14A) and aspartate aminotransferase (AST, Figure 14B) were elevated in diseased SGCG- / - mice and returned to near WT levels after treatment. *=p<0.05. Dashed lines represent the lower and upper limits of the normal range. DETAILED DESCRIPTION OF THE INVENTION

[0041] The present disclosure relates to the administration of a recombinant adeno-associated virus (rAAV) vector comprising a polynucleotide expressing gamma sarcoglycan to reduce or completely reverse muscle fibrosis in individuals suffering from limb-girdle muscular dystrophy.As demonstrated in the examples, administration of the rAAV vector described herein restores gamma sarcoglycan expression in knockout mice.Administration of the rAAV vector described herein reverses dystrophic characteristics, including fewer degenerated fibers, reduced inflammation, and improved functional recovery, by protecting against eccentric contractions and increasing force generation.The present disclosure encompasses the treatment of limb-girdle muscular dystrophy in subjects (e.g., human subjects) by administering the rAAV vector described herein.

[0042] As used herein, any concentration range, percentage range, ratio range, or integer range should be understood to include any integer value within the recited range, and, where appropriate, fractions thereof (e.g., tenths and hundredths of integers), unless otherwise indicated. The terms "a" and "an," as used herein, should be understood to refer to "one or more" of the recited components, unless otherwise indicated. The use of alternatives (e.g., "or") should be understood to mean either one, both, or any combination thereof of the alternatives. As used herein, the terms "include" and "comprise" are used interchangeably. As used herein, "plurality" can refer to one or more components (e.g., one or more miRNA target sequences). In this application, the use of "or" means "and / or" unless otherwise indicated.

[0043] As used in this application, the terms "about" and "approximately" are used as equivalents. Any numbers used in this application, with or without about, are meant to encompass any normal variation understood by one of ordinary skill in the relevant art. In certain embodiments, the terms "approximately" or "about" refer to a range of values ​​that falls within 25%, 20%, 19%, 18%, 17%, 16%, 15%, 14%, 13%, 12%, 11%, 10%, 9%, 8%, 7%, 6%, 5%, 4%, 3%, 2%, 1% or less in either direction of the stated reference value (except in cases where such number exceeds 100% of the possible values), unless otherwise stated or unless otherwise clear from the context (except in cases where such number exceeds 100% of the possible values).

[0044] "Decrease" or "reduction" refers to a decrease or reduction in a particular value of at least 5%, e.g., 5, 6, 7, 8, 9, 10, 15, 20, 25, 30, 35, 40, 45, 50, 55, 60, 65, 70, 75, 80, 85, 90, 95, 99, or 100%, as compared to a reference value. A decrease or reduction in a particular value may also be expressed as a fold change in value as compared to the reference value, e.g., a decrease of at least 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 15, 20, 30, 40, 50, 60, 70, 80, 90, 100, 200, 500, 1000, or more fold as compared to the reference value.

[0045] "Increase" refers to an increase in a particular value of at least 5%, e.g., 5, 6, 7, 8, 9, 10, 15, 20, 25, 30, 35, 40, 45, 50, 55, 60, 65, 70, 75, 80, 85, 90, 95, 99, 100, 200, 300, 400, 500% or more compared to a reference value. An increase in a particular value can also be expressed as a fold change in value compared to the reference value, e.g., an increase of at least 1-fold, 2-fold, 3-fold, 4-fold, 5-fold, 6-fold, 7-fold, 8-fold, 9-fold, 10-fold, 15-fold, 20-fold, 30-fold, 40-fold, 50-fold, 60-fold, 70-fold, 80-fold, 90-fold, 100-fold, 200-fold, 500-fold, 1000-fold or more compared to the reference level.

[0046] "Complementarity" refers to the ability of two sequences containing naturally occurring or non-naturally occurring (e.g., modified as described above) bases (nucleotides) or their analogs to pair through base stacking and specific hydrogen bonds. For example, if a base at a certain position in a nucleic acid can hydrogen bond with a base at a corresponding position in a target, the bases are considered to be complementary to each other at this position. Nucleic acids may contain universal bases or inert abasic spacers that do not contribute positively or negatively to hydrogen bonding. Base pairing may include both canonical Watson-Crick base pairing and non-Watson-Crick base pairing (e.g., wobble base pairing and Hoogsteen base pairing). In complementary base pairing, it is understood that adenosine-type bases (A) are complementary to thymidine-type bases (T) or uracil-type bases (U), cytosine-type bases (C) are complementary to guanosine-type bases (G), and universal bases such as 3-nitropyrrole or 5-nitroindole can be considered to hybridize with and be complementary to any of A, C, U, or T. Nichols et al., Nature, 1994;369:492-493 and Loakes et al., Nucleic Acids Res., 1994;22:4039-4043. Inosine (I) is also considered in the art to be a universal base and is considered to be complementary to any of A, C, U, or T. See Watkins and SantaLucia, Nucl. Acids Research, 2005; 33 (19): 6258-6267.

[0047] The term "subject" includes animals, such as mammals. In some embodiments, the mammal is a primate. In some embodiments, the mammal is a human. In some embodiments, the subject is a livestock animal, such as a cattle, sheep, goat, cow, pig, or a farm animal, such as a dog or cat. In some embodiments (e.g., particularly in research contexts), the subject is a rodent (e.g., a mouse, rat, hamster), rabbit, primate, or pig, such as an inbred pig. The terms "subject" and "patient" are used interchangeably herein.

[0048] "Administering," as used herein, refers to introducing an agent or composition into a subject.

[0049] "Treatment," as used herein, refers to delivering a drug or composition to a subject to affect physiological outcomes. In some embodiments, treatment refers to the treatment of a disease in a subject, e.g., a human, including (a) inhibiting the disease, e.g., stopping the onset of the disease or preventing the progression of the disease; (b) alleviating the disease, e.g., causing the regression of the disease state; (c) curing the disease; and (d) preventing the onset of the disease, e.g., stopping the onset of the disease in asymptomatic subjects identified as carriers of a genetic defect. In one aspect, treatment excludes prevention or prophylaxis.

[0050] When the disease is muscular dystrophy, the following clinical endpoints are non-limiting examples of treatment: reduction in specific muscle strength, increased resistance to injury, increased muscle strength, increased muscle endurance, increased muscle mass, reduced contraction-induced damage, reduced fatty infiltration, reduced central nucleation, reduced degenerated or necrotic fibers, reduced inflammation, increased creatine kinase levels, reduced muscle fiber atrophy and hypertrophy, and / or reduced dystrophic calcification.

[0051] If the disease is fibrosis, the following clinical endpoints are considered: reduction in fibrotic tissue, reduction in inflammation, reduction in fibroblastic lesions, reduction in activated fibroblast proliferation, reduction in myofibroblast development, reduction in the rate of decline in forced vital capacity (FVC) (where FVC is the total volume of exhaled air during pulmonary function testing), absolute and relative increase from baseline in FVC, absolute increase from baseline in FVC (% predicted), increase in progression-free survival, reduction from baseline in St. George's Respiratory Questionnaire (SGRQ) total score (where SGRQ is a 3-part Components: a health-related quality of life questionnaire categorized into symptoms, activities, and impacts, with a total score (sum of weights) ranging from 0 to 100, with lower scores representing better health status; and a relative reduction from baseline in quantitative pulmonary fibrosis (QLF) score by high-resolution computed tomography (HRCT), where the QLF score ranges from 0 to 100%, with higher values ​​representing greater amounts of pulmonary fibrosis and considered worse health status, are non-limiting examples of treatments.Non-limiting examples of clinical endpoints for fibrosis treatments and studies that may be conducted to measure said clinical endpoints include those described in the following clinical trials: NCT03733444 (clinicaltrials.gov / ct2 / show / NCT03733444) (last accessed January 9, 2019), NCT00287729 (clinicaltrials.gov / ct2 / show / NCT00287729) (last accessed January 9, 2019), NCT0028 7716 (clinicaltrials.gov / ct2 / show / NCT00287716) (last accessed January 9, 2019), NCT02503657 (clinicaltrials.gov / ct2 / show / NCT02503657) (last accessed January 9, 2019), NCT00047645 (clinicaltrials.gov / ct2 / show / NCT00047645) (last accessed January 9, 2019), NCT0280 2345 (clinicaltrials.gov / ct2 / show / NCT02802345) (last accessed January 9, 2019), NCT01979952 (clinicaltrials.gov / ct2 / show / NCT01979952) (last accessed January 9, 2019), NCT00650091 (clinicaltrials.gov / ct2 / show / NCT00650091) (last accessed January 9, 2019), NCT0133 5464 (clinicaltrials.gov / ct2 / show / NCT01335464) (last accessed January 9, 2019), NCT01335477 (clinicaltrials.gov / ct2 / show / NCT01335477) (last accessed January 9, 2019), and NCT01366209 (clinicaltrials.gov / ct2 / show / NCT01366209) (last accessed January 9, 2019).Further non-limiting examples of clinical endpoints of fibrosis treatments and studies that can be performed to measure said clinical endpoints are described in King et al., (2014) N Engl J Med. May 29;370(22):2083-92 and Richeldi et al., (2014) N Engl J Med. May 29;370(22):2071-82.

[0052] The term "effective amount" or "therapeutically effective amount" refers to the minimum amount of an agent or composition required to produce a specific physiological effect (e.g., the amount required to increase, activate, or enhance a specific physiological effect). The effective amount or therapeutically effective amount of a particular agent can be expressed in a variety of ways based on the properties of the agent, such as mass / volume, number of cells / volume, number of particles / volume, (mass of agent) / (mass of subject), number of cells / (mass of subject), or number of particles / (mass of subject). The effective amount or therapeutically effective amount of a particular agent can also be expressed as the half-maximal effective concentration (EC 50 ), which refers to the concentration of a drug that produces a particular magnitude of physiological response between the basal level and the maximum response level.

[0053] A "population" of cells refers to any number of cells greater than one, but preferably at least 1 x 10 3 cells, at least 1 x 10 4 cells, at least 1 x 10 5 cells, at least 1 x 10 6 cells, at least 1 x 10 7 cells, at least 1 x 10 8 cells, at least 1 x 10 9 cells, at least 1 x 10 10 A population of cells refers to an in vitro population (e.g., a population of cells in culture) or an in vivo population (e.g., a population of cells present in a particular tissue).

[0054] The phrase "pharmaceutically acceptable" is used herein to refer to compounds, substances, compositions, and / or dosage forms that are, within the scope of sound medical judgment, suitable for use in contact with the tissues of human beings and animals without excessive toxicity, irritation, allergic response, or other problem or complication, commensurate with a reasonable benefit / risk ratio.

[0055] As used herein, "pharmaceutically acceptable carrier, diluent, or excipient" includes, but is not limited to, any adjuvant, carrier, excipient, glidant, sweetener, diluent, preservative, dye / colorant, flavor enhancer, surfactant, wetting agent, dispersing agent, suspending agent, stabilizer, isotonic agent, solvent, surface active agent, or emulsifier approved by the U.S. Food and Drug Administration as acceptable for use in humans and / or domestic animals.

[0056] As used herein, "vector" refers to a nucleic acid molecule that can be introduced or transported into a cell by a viral vector along with one or more viral proteins, such as a viral capsid for encapsulating the virus. The introduced nucleic acid is generally linked to, e.g., inserted into, the vector nucleic acid molecule. The vector may contain sequences that direct autonomous replication or reverse transcription within the cell, or may contain sequences sufficient to allow integration into host cell DNA. "Vector" includes gene therapy vectors. As used herein, the term "gene therapy vector" refers to a vector that can be used to perform gene therapy, e.g., deliver a polynucleotide sequence encoding a therapeutic polypeptide to a subject. A gene therapy vector may contain a polynucleotide ("transgene") encoding a protein, e.g., gamma sarcoglycan.

[0057] As used herein, the term "expression cassette" refers to a DNA fragment capable, in an appropriate configuration, of driving the expression of a polynucleotide (e.g., a transgene) encoding a protein (e.g., gamma sarcoglycan) incorporated into the expression cassette. When introduced into a host cell, the expression cassette, among other things, is capable of directing the cellular machinery to transcribe the transgene into RNA, which is then typically further processed and ultimately translated into a therapeutically active polypeptide. A gene therapy vector can comprise or essentially consist of an expression cassette. The term expression cassette excludes polynucleotide sequences 5' to the 5'ITR and 3' to the 3'ITR. Provided herein are host cells comprising, essentially consisting of, or even further consisting of the rAAV vectors of the present disclosure. The cells can be of any suitable species, for example, mammalian cells.

[0058] As used herein, the phrases "operably linked to" or "under transcriptional control" with respect to a polynucleotide refer interchangeably to a promoter, or muscle-specific control element, and the configuration of the polynucleotide that allows the polynucleotide to be transcribed by a polymerase that can bind to the promoter. In one aspect, the muscle-specific control element is one that restricts expression to muscle. Non-limiting examples of muscle-specific regulatory elements are the human skeletal actin gene element (GenBank accession number NG_006672.1), cardiac actin gene element (GenBank accession number NG_007553.1), myocyte-specific enhancer-binding factor MEF (GenBank accession number NG_016443.2), muscle creatine kinase (MCK) (GenBank accession number AF188002.1), tMCK (truncated MCK), myosin heavy chain (MHC), MHCK7 (a hybrid version of MHC and MCK), C5-12 (synthetic promoter), mouse creatine kinase enhancer element, fast skeletal troponin C gene element, slow cardiac troponin C gene element, slow troponin I gene element, hypoxia-inducible nuclear factor, steroid-inducible element, or glucocorticoid response element (GRE).

[0059] A common method in molecular and cellular biochemistry is Molecular Cloning: A Laboratory Manual, 3rd Ed. al., HaRBor Laboratory Press 2001 );Short Protocols in Molecular Biology, 4th Ed. (Ausubel et al. eds., John Wiley & Sons 1999);Protein Methods (Bollag et al., John Wiley & Sons 1996); Nonviral Vectors for Gene Therapy (Wagner et al. eds., Academic Press 1999); Viral Vectors (Kaplift & Loewy eds., Academic Press 1995); Immunology Methods Manual (I. Lefkovits ed., Academic Press 1997); and Cell and Tissue Culture: Laboratory Procedures in Biotechnology (Doyle & Griffiths, John Wiley & Sons 1998), the disclosures of which are incorporated herein by reference.

[0060] As used herein, the term "AAV" is the standard abbreviation for adeno-associated virus.Adeno-associated virus is a single-stranded DNA parvovirus that grows only in the cells that are provided with certain specific functions by the co-infected helper virus.General information and reviews of AAV can be found, for example, in Carter, 1989, Handbook of Parvoviruses, Vol. 1, pp. 169-228, and Berns, 1990, Virology, pp. 1743-1764, Raven Press, (New York). Because the various serotypes are well known to be very closely related, both structurally and functionally, and even at the genetic level, it is fully expected that the same principles described in these reviews will be applicable to additional AAV serotypes characterized after the publication date of the reviews (see, e.g., Blacklowe, 1988, pp. 165-174 of Parvoviruses and Human Disease, J.R. Pattison, ed.; and Rose, Comprehensive Virology 3: 1-61 (1974)). For example, all AAV serotypes appear to exhibit very similar replication characteristics mediated by homologous rep genes, and all possess three related capsid proteins, e.g., those expressed in AAV2. The extent of relatedness is further suggested by heteroduplex analysis, which reveals extensive cross-hybridization between serotypes along the genome length and the presence at the ends of similar self-annealing segments corresponding to "inverted terminal repeats" (ITRs). Furthermore, the similar infection patterns suggest that the replication functions in each serotype are under similar regulatory control.

[0061] As used herein, "AAV vector" refers to a vector containing one or more polynucleotides of interest (or transgenes) flanked by AAV interterminal repeats (ITRs). Such AAV vectors can be replicated and packaged into infectious viral particles when present in a host cell that has been transfected with a vector encoding and expressing the rep and cap gene products.

[0062] "AAV virion" or "AAV virus particle" or "AAV vector particle" refers to a viral particle that is composed of at least one AAV capsid protein and an encapsidated polynucleotide AAV vector.When a particle contains a heterologous polynucleotide (i.e., a polynucleotide other than the wild-type AAV genome, for example, a transgene that is delivered to mammalian cells), it is typically referred to as an "AAV vector particle" or simply an "AAV vector."Therefore, the production of AAV vector particles necessarily includes the production of AAV vectors, and thus, vectors are included in AAV vector particles.

[0063] Adeno-associated virus (AAV) is a replication-deficient parvovirus whose single-stranded DNA genome is approximately 4.7 kb in length and contains two inverted terminal repeats (ITRs) of 145 nucleotides. Multiple AAV serotypes exist. The nucleotide sequences of the genomes of AAV serotypes are known. For example, the entire genome of AAV-1 is provided by GenBank accession number NC_002077, the entire genome of AAV-2 is provided by GenBank accession number NC_001401 and Srivastava et al., J. Virol., 45: 555-564 {1983), the entire genome of AAV-3 is provided by GenBank accession number NC_1829, the entire genome of AAV-4 is provided by GenBank accession number NC_001829, the entire genome of AAV-5 is provided by GenBank accession number AF085716, the entire genome of AAV-6 is provided by GenBank accession number NC_001862, at least portions of the genomes of AAV-7 and AAV-8 are provided by GenBank accession numbers AX753246 and AX753249, respectively, and the entire genome of AAV-9 is provided by Gao et al., J. Virol., 78: The AAV-10 genome is provided by Mol. Ther., 13(1): 67-76 (2006), and the AAV-11 genome is provided by Virology, 330(2): 375-383 (2004). The sequence of the AAV rh.74 genome is provided in U.S. Patent No. 9,434,928, which is incorporated herein by reference. Cis-acting sequences that direct viral DNA replication (rep), encapsidation / packaging, and integration into host cell chromosomes are contained in the AAV ITRs. Three AAV promoters (designated p5, p19, and p40 based on their relative map positions) drive expression of two AAV internal open reading frames encoding the rep and cap genes.Two rep promoters (p5 and pi9), combined with differential splicing of a single AAV intron (at nucleotides 2107 and 2227), result in the production of four rep proteins (rep78, rep68, rep52, and rep40) from the rep gene. The rep proteins have multiple enzymatic properties that ultimately contribute to viral genome replication. The cap gene is expressed from the p40 promoter and encodes three capsid proteins, VP1, VP2, and VP3. Alternative splicing and non-consensus translation initiation sites result in the production of the three related capsid proteins. A single consensus polyadenylation site is located at map position 95 of the AAV genome. The AAV life cycle and genetics are reviewed in Muzyczka, Current Topics in Microbiology and Immunology, 158:158. A review is given in 97-129 (1992).

[0064] AAV has unique features that make it attractive as a vector for delivering foreign DNA into cells, for example, in gene therapy. AAV infection of cells in culture is noncytotoxic, and natural infection in humans and other animals is silent and asymptomatic. Furthermore, AAV infects many mammalian cell types, offering the potential for in vivo targeting of a wide variety of tissues. Furthermore, AAV can slowly transduce dividing and nondividing cells and persist essentially as transcriptionally active nuclear episomes (extrachromosomal elements) throughout the life of such cells. The AAV proviral genome can be inserted into plasmids as cloned DNA, enabling the construction of recombinant genomes. Furthermore, because signals directing AAV replication and genome encapsidation are contained in the ITRs of the AAV genome, part or all of the internal approximately 4.3 kb genome (encoding the replication and structural capsid protein, rep-cap) can be replaced with foreign DNA. To generate AAV vectors, the rep and cap proteins can be provided in trans. Another notable feature of AAV is that it is a very stable and potent virus. It easily withstands the conditions used to inactivate adenovirus (56°C to 65°C for several hours), making cryopreservation of AAV less essential. AAV can even be lyophilized. Finally, AAV-infected cells are not resistant to superinfection.

[0065] Several studies have demonstrated long-term (>1.5 years) recombinant AAV-mediated protein expression in muscle. Clark et al., Hum Gene Ther, 8: 659-669 (1997); Kessler et al., Proc Nat. Acad Sc. USA, 93: 14082-14087 (1996); and Xiao et al., J Virol, 70: 8098-8108 (1996). See also Chao et al., Mol Ther, 2:619-623 (2000) and Chao et al., Mol Ther, 4:217-222 (2001). Furthermore, because muscle is highly vascularized, Herzog et al., Proc Natl Acad Sci USA, 94: 5804-5809 (1997) and Murphy et al., Proc Natl Acad Sci USA, 94: 13921-13926 As described in (1997), recombinant AAV transduction resulted in the appearance of the transgene product in the systemic circulation after intramuscular injection. Moreover, Lewis et al., J Virol, 76: 8769-8775 (2002) demonstrated that skeletal muscle myofibers possess the cellular factors necessary for correct antibody glycosylation, folding, and secretion, indicating that muscle is capable of stably expressing secreted protein therapeutics. The recombinant AAV (rAAV) genome of the present disclosure comprises, consists essentially of, or further consists of a nucleic acid molecule encoding gamma sarcoglycan (e.g., SEQ ID NO: 1) and one or more AAV ITRs flanking this nucleic acid molecule. The AAV DNA of the rAAV genome can be derived from any AAV serotype from which a recombinant virus can be derived, including, but not limited to, AAV serotypes AAV-1, AAV-2, AAV-3, AAV-4, AAV-5, AAV-6, AAV-7, AAV-8, AAV-9, AAV-10, AAV-11, AAV-12, AAV-13, and AAV rh74. The production of pseudotyped rAAV is disclosed, for example, in International Publication No. WO 01 / 83692. Other types of rAAV variants, such as rAAV with capsid mutations, are also being considered. See, for example, Marsic et al., Molecular Therapy, 22(11): 1900-1909 (2014). The nucleotide sequences of the genomes of various AAV serotypes are known in the art. To promote skeletal muscle-specific expression, AAV1, AAV5, AAV6, AAV8, or AAV9 may be used. Thus, in one aspect, a recombinant AAV vector is described herein that comprises or essentially consists of a polynucleotide sequence encoding gamma-sarcoglycan under the transcriptional control of a promoter and / or muscle-specific control element.In some embodiments, the polynucleotide sequence encoding gamma sarcoglycan comprises, essentially consists of, or even further comprises, for example, at least 65%, at least 70%, at least 75%, at least 80%, 81%, 82%, 83%, 84%, 85%, 86%, 87%, 88%, or 89%, more typically 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, 99% or more, identical to the nucleotide sequence of the codon-optimized human gamma sarcoglycan set forth in SEQ ID NO: 1 (see Table 1), and encodes a protein that retains gamma sarcoglycan activity. In some embodiments, the polynucleotide sequence encoding gamma sarcoglycan comprises a sequence that is, for example, at least 65%, at least 70%, at least 75%, at least 80%, 81%, 82%, 83%, 84%, 85%, 86%, 87%, 88% or 89%, more typically 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, 99% identical to the nucleotide sequence set forth in SEQ ID NO: 1, or to SEQ ID NO: 1 that encodes a protein that retains gamma sarcoglycan activity.

[0066] The term "sequence identity" refers to the percentage of bases or amino acids that are identical and located in the same relative positions between two polynucleotide or polypeptide sequences. Thus, one polynucleotide or polypeptide sequence has a certain percentage of sequence identity compared to another polynucleotide or polypeptide sequence. In sequence comparison, typically, one sequence serves as a reference sequence to which a test sequence is compared. The term "reference sequence" refers to the molecule to which the test sequence is compared. A polynucleotide or polynucleotide region (or polypeptide or polypeptide region) that has a certain percentage (e.g., 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, 98% or 99%) of "sequence identity" with a reference sequence means that, when aligned, the percentage of bases (or amino acids) at each position in the test sequence are identical to the bases (or amino acids) at the same position in the reference sequence. This alignment and percent homology or sequence identity can be determined using software programs known in the art, such as those described in Ausubel et al. eds. (2007) Current Protocols in Molecular Biology. Preferably, default parameters are used for alignment. One alignment program is BLAST, using default parameters. In particular, the programs are BLASTN and BLASTP, using the following default parameters: Genetic code=standard; filter=none; strand=both; cutoff=60; expect=10; Matrix=BLOSUM62; Descriptions=50 sequences; sort by=HIGH SCORE; Databases=non-redundant, GenBank+EMBL+DDBJ+PDB+GenBank CDS translations+SwissProtein+SPupdate+PIR. Details of such programs can be found at the following internet address: ncbi.nlm.nih.gov / blast / Blast.cgi.An "equivalent" of a polypeptide or protein is one that has a certain sequence identity with the reference polypeptide or protein (e.g., 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, 98% or 99% identity with the reference) and retains a similar activity or function compared to the reference polypeptide or protein.

[0067] "Comprising" or "comprises" is intended to mean that compositions, e.g., media, and methods, include the recited elements, but do not exclude others. "Consisting essentially of," when used to define compositions and methods, is intended to mean excluding other elements that have any essential significance to the combination for the stated purpose. Thus, a composition consisting essentially of the elements defined herein does not exclude other substances or steps that do not materially affect the basic and novel characteristic(s) of the claimed invention. "Consisting of" is intended to mean excluding more than insignificant elements and substantial method steps of other components. Embodiments defined by each of these transition terms are within the scope of this disclosure.

[0068] In one embodiment, the gene expression cassette of the rAAV vector of the present disclosure is flanked by one or more AAV inverted terminal repeats. In another embodiment, the polynucleotide sequence encoding gamma-sarcoglycan of the rAAV vector comprises, consists essentially of, or further consists of a nucleotide sequence at least 95% identical to, and / or set forth in SEQ ID NO:1, and encodes a protein that retains gamma-sarcoglycan activity. In a further embodiment, the polynucleotide sequence encoding gamma-sarcoglycan of the rAAV vector encodes an amino acid sequence at least 95% identical, at least 99% identical, or 100% identical to SEQ ID NO:2, and encodes a protein that retains gamma-sarcoglycan activity.

[0069] In some embodiments, the rAAV vectors disclosed herein are of the serotype AAV1, AAV2, AAV4, AAV5, AAV6, AAV7, AAV8, AAV9, AAV10, AAV11, AAV12, AAV13, or AAV rh74. In other embodiments, the genome of the rAAV vector comprises or consists essentially of a muscle-specific regulatory element, where the muscle-specific regulatory element is operably linked to a polynucleotide sequence. Non-limiting examples of muscle-specific regulatory elements include human skeletal actin gene element, cardiac actin gene element, muscle cell-specific enhancer-binding factor mef, muscle creatine kinase (MCK), truncated MCK (tMCK), myosin heavy chain (MHC), MHCK7, C5-12, mouse creatine kinase enhancer element, fast skeletal troponin c gene element, slow cardiac troponin c gene element, slow troponin I gene element, hypoxia-inducible nuclear factor, steroid-inducible element, and glucocorticoid response element (gre). In one embodiment, the muscle-specific regulatory element of the rAAV vector is truncated MCK (tMCK). In another embodiment, the promoter and / or muscle-specific regulatory element of the rAAV vector is the MHCK7 promoter. In a further embodiment, the MHCK promoter comprises, consists essentially of, or further consists of the nucleotide sequence set forth in SEQ ID NO: 3, or an equivalent thereof, and provides promoter function. In one embodiment, the genome of the rAAV vector disclosed herein comprises, consists essentially of, or even consists of an intron comprising the nucleotide sequence set forth in SEQ ID NO:5.

[0070] In some embodiments, the polynucleotide sequence encoding gamma sarcoglycan consists of the nucleotide sequence set forth in SEQ ID NO: 1 or a polynucleotide sequence encoding a gamma sarcoglycan having at least 65%, at least 70%, at least 75%, at least 80%, 81%, 82%, 83%, 84%, 85%, 86%, 87%, 88% or 89%, more typically at least 90%, 91%, 92%, 93% or 94% and more typically at least 95%, 96%, 97%, 98% or 99% sequence identity to SEQ ID NO: 1, and retains gamma sarcoglycan activity.

[0071] In another aspect, the recombinant AAV vector described herein comprises or essentially consists of a polynucleotide sequence encoding a gamma sarcoglycan having at least 65%, at least 70%, at least 75%, at least 80%, 81%, 82%, 83%, 84%, 85%, 86%, 87%, 88%, or 89%, more typically at least 90%, 91%, 92%, 93%, or 94%, and even more typically at least 95%, 96%, 97%, 98%, or 99% sequence identity to the amino acid sequence of human gamma sarcoglycan set forth in SEQ ID NO: 2 (see Table 1), and the protein retains gamma sarcoglycan activity. [Table 1-1] [Table 1-2] [Table 1-3] [Table 1-4] [Table 1-5] [Table 1-6]

[0072] In another aspect, a recombinant AAV vector is described herein, comprising a polynucleotide sequence encoding a functional gamma sarcoglycan, the polynucleotide sequence comprising, consisting essentially of, or even consisting of a nucleotide sequence hybridizing under stringent conditions with the nucleic acid sequence of SEQ ID NO: 1, or its complement. Functional gamma sarcoglycan refers to a gamma sarcoglycan polypeptide that retains gamma sarcoglycan activity. Gamma sarcoglycan activity is important for muscle function. Gamma sarcoglycan is one of several muscle cell transmembrane glycoproteins that interact with dystrophin to form a dystrophin-glycoprotein complex, which spans the muscle cell membrane and is composed of sarcoglycans, including dystrophin, syntrophin, α-dystroglycan, β-dystroglycan, and gamma sarcoglycan. The dystrophin-glycoprotein complex provides a structural link between the subsarcolemmal cytoskeleton and the extracellular matrix of muscle cells. Non-limiting examples of muscle cells include muscle cells of the heart, diaphragm, leg, pelvic girdle, shoulder, and arm. Further non-limiting examples of gamma-sarcoglycan activity and the consequences of gamma-sarcoglycanopathies are provided in Blake et al. (2002) Physiol Rev.;82(2):291-329 and Tarakci et al. (2016) Front Biosci (Landmark Ed);21:744-56.

[0073] The term "stringent" refers to conditions generally understood in the art as stringent. Hybridization stringency is primarily determined by temperature, ionic strength, and the concentration of denaturing agents, such as formamide. Examples of stringent hybridization and washing conditions are 0.015M sodium chloride, 0.0015M sodium citrate at 65-68°C, or 0.015M sodium chloride, 0.0015M sodium citrate, and 50% formamide at 42°C. See Sambrook et al., Molecular Cloning: A Laboratory Manual, 2nd Ed., Cold Spring Harbor Laboratory, (Cold Spring Harbor, NY 1989). In addition, more stringent conditions (e.g., higher temperature, lower ionic strength, higher concentration of formamide or other denaturing agent) can be used, but will affect the hybridization rate. Where deoxyoligonucleotide hybridization is involved, further exemplary stringent hybridization conditions include washing in 6xSSC, 0.05% sodium pyrophosphate at 37°C (for 14-base oligos), 48°C (for 17-base oligos), 55°C (for 20-base oligos), and 60°C (for 23-base oligos).

[0074] Other agents may be included in the hybridization and wash buffers to reduce nonspecific and / or background hybridization. Examples include 0.1% bovine serum albumin, 0.1% polyvinylpyrrolidone, 0.1% sodium pyrophosphate, 0.1% sodium dodecyl sulfate, NaDodS04 (SDS), Ficoll, Denhardt's solution, sonicated salmon sperm DNA (or other non-complementary DNA), and dextran sulfate, although other suitable agents may also be used. The concentration and type of such additives can be varied without substantially affecting the stringency of the hybridization conditions. Hybridization experiments are typically performed at pH 6.8-7.4, although hybridization rates are largely independent of pH under typical ionic strength conditions. See Anderson et al., Nucleic Acid Hybridization: A Practical Approach, Ch. 4, IRL Press Limited (Oxford, England). Hybridization conditions can be adjusted by one skilled in the art to accommodate such variables and allow hybridization of DNAs with various sequence relatedness.

[0075] In another aspect, the recombinant AAV vector described herein comprises, consists essentially of, or further consists of a polynucleotide sequence encoding gamma-sarcoglycan operably linked to a promoter and / or muscle-specific regulatory element. For example, the muscle-specific regulatory element is a human skeletal actin gene element, a cardiac actin gene element, a muscle cell-specific enhancer-binding factor (MEF), a muscle creatine kinase (MCK), a tMCK (truncated MCK), a myosin heavy chain (MHC), a MHCK7 (a hybrid version of MHC and MCK), a C5-12 (synthetic promoter), a mouse creatine kinase enhancer element, a fast skeletal troponin C gene element, a slow cardiac troponin C gene element, a slow troponin I gene element, a hypoxia-inducible nuclear factor, a steroid-inducible element, or a glucocorticoid response element (GRE). In one embodiment, the rAAV vector comprises an MHCK7 promoter (SEQ ID NO: 4).

[0076] An exemplary rAAV vector described herein is pAAV.MHCK7.hSCGC, which comprises the nucleotide sequence of SEQ ID NO:3, in which the MCHK7 promoter spans nucleotides 136-927 (SEQ ID NO:4), the intron spans nucleotides 937-1084 (SEQ ID NO:5), the gamma sarcoglycan sequence spans nucleotides 1094-1969 (SEQ ID NO:1), and polyA spans nucleotides 1976-2028 (SEQ ID NO:6). See Figure 1. In some cases, the only viral sequences included in the rAAV vector are inverted terminal repeats, which are required for viral DNA replication and packaging. In some cases, the intron spanning 7-116 nucleotides (SEQ ID NO:5) and the 5'UTR spanning 2128-2231 nucleotides (SEQ ID NO:7) are derived from the plasmid pCMVβ (Clontech). In one particular case, the 3'UTR comprises the sequence set forth in SEQ ID NO:8. In one particular case, pAAV.MHCK7.hSCGC is packaged into AAV rh.74 capsids.

[0077] The DNA plasmid of the present disclosure contains the rAAV genome. The DNA plasmid is introduced into a cell that can withstand infection by an AAV helper virus (e.g., adenovirus, E1-deleted adenovirus, or herpesvirus) to allow the rAAV genome to assemble into infectious viral particles. Techniques for producing rAAV particles, in which the AAV genome to be packaged, rep and cap genes, and helper virus functions are provided in the cell, are standard in the art. rAAV production requires that the following components be present in a single cell (referred to herein as a packaging cell): the rAAV genome, AAV rep and cap genes separated from the rAAV genome (i.e., not within the genome), and helper virus functions. The AAV rep and cap genes may be derived from any AAV serotype from which a recombinant virus can be derived, or may be derived from an AAV serotype different from the rAAV genome ITRs, including, but not limited to, AAV serotypes AAV-1, AAV-2, AAV-3, AAV-4, AAV-5, AAV-6, AAV-7, AAV-8, AAV-9, AAV-10, AAV-11, AAV-12, AAV-13, and AAV rh.74. In some embodiments, the rAAV vector comprises the inverted terminal repeat (ITR) sequences of AAV2. The generation of pseudotyped rAAV is disclosed, for example, in International Publication No. WO 01 / 83692, which is incorporated herein by reference in its entirety. In certain aspects, the rAAV vector comprises the inverted ITR sequences of AAV2 and is encapsidated by the capsid of AAV rh.74. In certain cases, the genome of the rAAV vector comprises the polynucleotide sequence set forth in SEQ ID NO: 11. In certain cases, the AAV rh.74 capsid comprises the amino acid sequence set forth in SEQ ID NO: 10.In some embodiments, the rAAV vector comprises a polynucleotide comprising, consisting essentially of, or even consisting of, e.g., at least 65%, at least 70%, at least 75%, at least 80%, 81%, 82%, 83%, 84%, 85%, 86%, 87%, 88%, or 89%, more typically 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, 99% or more identical to the nucleotide sequence set forth in SEQ ID NO:11, and encodes the capsid proteins VP1, VP2, and VP3 of rAAV. In some embodiments, the rAAV vector comprises a polypeptide that comprises, consists essentially of, or even consists of, e.g., at least 65%, at least 70%, at least 75%, at least 80%, 81%, 82%, 83%, 84%, 85%, 86%, 87%, 88%, or 89%, more typically 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, 99% or more identical to the amino acid sequence of AAV rh.74VP3 set forth in SEQ ID NO:10.

[0078] The method for generating a packaging cell line is to create a cell line that stably expresses all the components necessary for AAV particle production. For example, a plasmid (or multiple plasmids) containing a rAAV genome lacking the AAV rep and cap genes, the AAV rep and cap genes separated from the rAAV genome, and a selectable marker, such as a neomycin resistance gene, is integrated into the cell's genome. The AAV genome has been introduced into a bacterial plasmid by procedures such as GC tailing (Samulski et al., 1982, Proc. Natl. Acad. S6. USA, 79:2077-2081), adding a synthetic linker containing a restriction endonuclease cleavage site (Laughlin et al., 1983, Gene, 23:65-73), or by direct blunt-end ligation (Senapathy & Carter, 1984, J. Biol. Chem., 259:4661-4666). The packaging cell line is then infected with a helper virus, such as adenovirus.The advantage of this method is that the cells are selectable and suitable for large-scale production of rAAV.In another example of a suitable method, adenovirus or baculovirus is used to introduce the rAAV genome and / or rep and cap genes into packaging cells, rather than plasmid.In certain cases, the genome of the rAAV vector comprises the polynucleotide sequence set forth in SEQ ID NO:11.In certain cases, the AAV rh.74 capsid comprises the amino acid sequence set forth in SEQ ID NO:10. In some embodiments, the rAAV vector comprises a polynucleotide comprising, consisting essentially of, or even consisting of, e.g., at least 65%, at least 70%, at least 75%, at least 80%, 81%, 82%, 83%, 84%, 85%, 86%, 87%, 88%, or 89%, more typically 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, 99% or more identical to the nucleotide sequence set forth in SEQ ID NO:11, and encodes the capsid proteins VP1, VP2, and VP3 of rAAV.In some embodiments, the rAAV vector comprises a polypeptide that comprises, consists essentially of, or even consists of, e.g., at least 65%, at least 70%, at least 75%, at least 80%, 81%, 82%, 83%, 84%, 85%, 86%, 87%, 88%, or 89%, more typically 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, 99% or more identical to the amino acid sequence of AAV rh.74VP3 set forth in SEQ ID NO:10.

[0079] General principles of rAAV production are reviewed, for example, in Carter, 1992, Current Opinions in Biotechnology, 1533-539; and Muzyczka, 1992, Curr. Topics in Microbial and Immunol., 158:97-129. Various approaches are described in Ratschin et al., Mol. Cell. Biol. 4:2072 (1984); Hermonat et al., Proc. Natl. Acad. Sci. USA, 81:6466 (1984); Ratschin et al., Mol. Cell. Biol. 5:3251 (1985); McLaughlin et al., J. Virol., 62: 1963 (1988); and Lebkowski et al., 1988 Mol. Cell. Biol., 7:349 (1988). Samulski et al. (1989, J. Virol., 63:3822-3828); U.S. Patent No. 5,173,414; WO 95 / 13365 and corresponding U.S. Patent No. 5,658,776; WO 95 / 13392; WO 96 / 17947; International Application No. PCT / US98 / 18600; WO 97 / 09441 (International Application No. PCT / US96 / 14423); WO 97 / 08298 (International Application No. PCT / US96 / 13872); WO 97 / 21825 (International Application No. PCT / US96 / 20777); WO 97 / 06243 (International Application No. PCT / FR96 / 01064); WO 99 / 11764; Perrin et al. (1995) Vaccine 13: 1244-1250;Paul et al. (1993) Human Gene Therapy 4:609-615; Clark et al. (1996) Gene Therapy 3: 1124-1132; U.S. Patent No. 5,786,211; U.S. Patent No. 5,871,982; and U.S. Patent No. 6,258,595. The foregoing documents are hereby incorporated by reference in their entirety, with particular emphasis being placed on the sections of the documents relating to rAAV production.

[0080] Thus, the present disclosure provides packaging cells that produce infectious rAAV. In one embodiment, the packaging cells can be stably transformed cancer cells, such as HeLa cells, 293 cells, and PerC.6 cells (synonymous 293 strains). In another embodiment, the packaging cells are non-transformed cancer cells, such as low-passage 293 cells (human fetal kidney cells transformed with adenovirus E1), MRC-5 cells (human fetal fibroblasts), WI-38 cells (human fetal fibroblasts), Vero cells (monkey kidney cells), and FRhL-2 cells (rhesus fetal lung cells).

[0081] Recombinant AAV (i.e., infectious, encapsidated rAAV particles) of the present disclosure comprise an rAAV genome. Embodiments include, but are not limited to, an rAAV designated pAAV.MHCK7.hSCGC, which comprises the polynucleotide sequence set forth in SEQ ID NO:3.

[0082] rAAV can be purified by standard methods in the art, such as column chromatography or cesium chloride gradients. Methods for purifying rAAV vectors from helper viruses are known in the art, including, for example, those described in Clark et al., Hum. Gene Ther., 10(6): 1031-1039 (1999); Schenpp and Clark, Methods Mol. Med., 69 427-443 (2002); U.S. Patent No. 6,566,118 and WO 98 / 09657.

[0083] In another embodiment, the present disclosure contemplates a composition comprising or consisting essentially of the rAAV of the present disclosure. The compositions described herein comprise or consist essentially of rAAV in a pharmaceutically acceptable carrier. In one specific embodiment, the composition of the present disclosure comprises or consists essentially of lactated Ringer's solution (LRS). The composition may also comprise other components, such as diluents and adjuvants. Acceptable carriers, diluents, and adjuvants are nontoxic to recipients and preferably inert at the dosages and concentrations employed, and include, for example, phosphate, citrate, or other organic acid buffers; antioxidants, such as ascorbic acid; low molecular weight polypeptides; proteins, such as serum albumin, gelatin, or immunoglobulins; hydrophilic polymers, such as polyvinylpyrrolidone; amino acids, such as glycine, glutamine, asparagine, arginine, or lysine; monosaccharides, disaccharides, and other carbohydrates, including glucose, mannose, or dextrins; chelating agents, such as EDTA; sugar alcohols, such as mannitol or sorbitol; salt-forming counterions, such as sodium; and / or nonionic surfactants, such as Tween, Pluronic®, or polyethylene glycol (PEG). The disclosed compositions can be used for one or more of treating gamma sarcoglycanopathies in a subject in need thereof; increasing muscle strength, muscle endurance, and / or muscle mass, reducing fibrosis, reducing contraction-induced damage, reducing fatty infiltration, and / or reducing central nucleation, and / or treating muscular dystrophy in a subject suffering from muscular dystrophy, reducing degenerated or necrotic fibers, reducing inflammation, increasing creatine kinase levels, treating muscle fiber atrophy and hypertrophy, and / or reducing dystrophic calcification.

[0084] The titer of the rAAV administered in the methods of the present disclosure will vary depending, for example, on the particular rAAV, the mode of administration, the treatment goal, the individual, and the targeted cell type(s), and can be determined by standard methods in the art. The titer of the rAAV is approximately 1 x 10 per ml. 6 , about 1×107 , about 1×10 8 , about 1×10 9 , about 1×10 10 , about 1×10 11 , about 1×10 12 , about 1×10 13 ~Approx. 1×10 14 Doses may range from 0.1 mg to 100 mg of DNase resistant particles (DRP) or greater. Doses may also be expressed in viral genomes (vg).

[0085] Methods for transducing target cells with rAAV in vivo or in vitro are contemplated by the present disclosure. The term "transduction" is used to refer to the administration / delivery of a polynucleotide of interest (e.g., a polynucleotide sequence encoding gamma-sarcoglycan) to a recipient cell by a described replication-deficient rAAV, either in vivo or in vitro, resulting in expression of gamma-sarcoglycan by the recipient cell.

[0086] In one aspect, provided herein is a method for one or more of treating a gamma-sarcoglycanopathies, increasing muscle strength, muscle endurance, and / or muscle mass, reducing fibrosis, reducing contraction-induced damage, reducing fatty infiltration, and / or reducing central nucleation in a subject in need thereof, and / or treating muscular dystrophy, reducing degenerated or necrotic fibers, reducing inflammation, increasing creatine kinase levels, treating muscle fiber atrophy and hypertrophy, and / or reducing dystrophic calcification in a subject suffering from muscular dystrophy, the method comprising, consisting essentially of, or further consisting of administering a therapeutically effective amount of a recombinant adeno-associated virus (AAV) vector to the subject, wherein the rAAV vector comprises, consists essentially of, or further consists of a gene expression cassette comprising, consisting essentially of, or further consisting of a polynucleotide sequence encoding gamma-sarcoglycan under the transcriptional control of a promoter, the gene expression cassette being flanked by one or more AAV inverted terminal repeats. In some embodiments, the promoter is a muscle-specific regulatory element. In one embodiment, the method disclosed herein increases the muscle strength, muscle endurance, and / or muscle mass of one or more muscles of a subject. Non-limiting examples of muscles include the muscles of the heart, diaphragm, thigh, lower leg, pelvic girdle, shoulder, and arm. In a specific embodiment, muscle strength, muscle endurance, and / or muscle mass increase by at least about 5%, at least about 10%, at least about 15%, at least about 20%, at least about 50%, or at least about 80% compared to an untreated control subject.

[0087] In one particular embodiment, the subject has limb-girdle muscular dystrophy. In a further embodiment, the subject has limb-girdle muscular dystrophy that is limb-girdle muscular dystrophy type 2C.

[0088] The terms "administering" or "administration," with respect to delivery of a polynucleotide to a subject, include any route by which a polynucleotide is introduced or delivered to a subject to perform its intended function. Administration can be by any suitable route, including oral, intranasal, parenteral (intravenous, intramuscular, intraperitoneal, or subcutaneous), intracranial, or topical. Additional routes of administration include intraorbital, infusion, intraarterial, intraarticular, intracardiac, intradermal, intrapulmonary, intraspinal, intrasternal, intrathecal, intrauterine, intravenous, subarachnoid, subcapsular, subcutaneous, transmucosal, or transtracheal. Administration includes self-administration and alloadministration.

[0089] In one aspect, the method disclosed herein comprises administering a composition comprising, consisting essentially of, or consisting of a rAAV vector and a pharmaceutically acceptable carrier. In a further aspect, the method disclosed herein comprises administering, consisting essentially of, or consisting of a rAAV vector, or a composition comprising, consisting essentially of, or consisting of a rAAV vector and a pharmaceutically acceptable carrier, by intramuscular or intravenous injection. In yet a further aspect, the method disclosed herein comprises systemically administering a rAAV vector, or a composition comprising, consisting essentially of, or consisting of a rAAV vector and a pharmaceutically acceptable carrier. In one specific aspect, the methods disclosed herein comprise, or consist essentially of, or further consist of, parenterally administering by injection, infusion, or implantation an rAAV vector, or a composition comprising, consisting essentially of, or even further consisting of an rAAV vector and a pharmaceutically acceptable carrier.

[0090] In one aspect, the polynucleotide sequence encoding gamma sarcoglycan of the rAAV vector for use in the methods described herein comprises, consists essentially of, or further consists of the nucleotide sequence set forth in SEQ ID NO: 1. In another aspect, the polynucleotide sequence encoding gamma sarcoglycan of the rAAV vector encodes the amino acid sequence of SEQ ID NO: 2. In yet another aspect, the rAAV vector used in the methods disclosed herein comprises, consists essentially of, or further consists of a self-complementary AAV vector genome. In a specific embodiment, the rAAV vector comprises, consists essentially of, or further consists of a genome lacking AAV rep and cap DNA. In another embodiment, the rAAV vector is of the AAV1, AAV2, AAV4, AAV5, AAV6, AAV7, AAV8, AAV9, AAV10, AAV11, AAV12, AAV13, or AAV rh74 serotype. In a further embodiment, the rAAV vector is of the AAV rh74 serotype, and the rAAV vector comprises, consists essentially of, or still further consists of an AAV rh.74 capsid. In yet a further embodiment, the AAV rh.74 capsid of the rAAV vector comprises, consists essentially of, or still further consists of the amino acid sequence set forth in SEQ ID NO: 10, or an equivalent thereof.

[0091] The rAAV vector used in the methods disclosed herein may further comprise or essentially consist of a promoter and / or muscle-specific control element, in which case the muscle-specific control element is operably linked to a polynucleotide encoding gamma-sarcoglycan. Non-limiting examples of some muscle-specific control elements include human skeletal actin gene element, cardiac actin gene element, muscle cell-specific enhancer-binding factor mef, muscle creatine kinase (MCK), truncated MCK (tMCK), myosin heavy chain (MHC), MHCK7, C5-12, mouse creatine kinase enhancer element, fast skeletal troponin c gene element, slow cardiac troponin c gene element, slow troponin I gene element, hypoxia-inducible nuclear factor, steroid-inducible element, and glucocorticoid response element (gre). In one embodiment, the muscle-specific control element of the rAAV vector is truncated MCK (tMCK). In another embodiment, the promoter and / or muscle-specific control element of the rAAV vector is the MHCK7 promoter. In a further embodiment, the MHCK promoter comprises, consists essentially of, or even further consists of the nucleotide sequence set forth in SEQ ID NO:3, or an equivalent thereof.

[0092] In one embodiment, the genome of the rAAV vector disclosed herein comprises an intron comprising the nucleotide sequence set forth in SEQ ID NO:5.

[0093] In vivo methods include administering to an animal (including a human) in need thereof an effective single dose or effective multiple doses of a composition comprising, consisting essentially of, or even consisting of an rAAV of the present disclosure. When the dose is administered before the onset of a disorder / disease, the administration is prophylactic. When the dose is administered after the onset of a disorder / disease, the administration is therapeutic. In embodiments of the present disclosure, an effective single dose is one that alleviates (eliminates or reduces) at least one symptom associated with the disorder / disease state being treated, delays or prevents progression to the disorder / disease state, delays or prevents progression of the disorder / disease state, attenuates the extent of the disease, causes remission (partial or complete) of the disease, and / or prolongs survival. An example of a disease contemplated for prevention or treatment by the methods of the present disclosure is muscular dystrophy, e.g., limb-girdle muscular dystrophy. In some embodiments, the disease contemplated for prevention or treatment by the methods of the present disclosure is limb-girdle muscular dystrophy type 2C (LGMD2C).

[0094] The term "muscular dystrophy" as used herein refers to a disorder that gradually reduces strength and muscle mass.Non-limiting examples of muscular dystrophy include Becker muscular dystrophy, tibial muscular dystrophy, Duchenne muscular dystrophy, Emery-Dreifuss muscular dystrophy, facioscapulohumeral muscular dystrophy, sarcoglycanopathy, congenital muscular dystrophy, such as congenital muscular dystrophy due to partial deficiency of LAMA2, merosin-deficient congenital muscular dystrophy, ID type congenital muscular dystrophy, Fukuyama type congenital muscular dystrophy, limb-girdle type 1A muscular dystrophy, Can include limb-girdle muscular dystrophy type 2A, limb-girdle muscular dystrophy type 2B, limb-girdle muscular dystrophy type 2C, limb-girdle muscular dystrophy type 2D, limb-girdle muscular dystrophy type 2E, limb-girdle muscular dystrophy type 2F, limb-girdle muscular dystrophy type 2G, limb-girdle muscular dystrophy type 2H, limb-girdle muscular dystrophy type 2I, limb-girdle muscular dystrophy type 2I, limb-girdle muscular dystrophy type 2J, limb-girdle muscular dystrophy type 2K, limb-girdle IC muscular dystrophy, rigid spine muscular dystrophy with epidermolysis bullosa simplex, oculopharyngeal muscular dystrophy, Ullrich congenital muscular dystrophy and Ullrich scleroatonic muscular dystrophy.In some embodiments, the subject suffers from limb-girdle muscular dystrophy. In some embodiments, the subject has limb-girdle muscular dystrophy type 2C (LGMD2C).

[0095] There are at least 19 types of LGMD, which are classified by their associated genetic defect. [Table 1-7]

[0096] In some aspects, the present disclosure relates to a method of treating muscular dystrophy (e.g., LGMD2C) in a subject, comprising, consisting essentially of, or further consisting of administering to the subject a therapeutically effective amount of an rAAV vector encoding a gamma sarcoglycan described herein, or a composition comprising or consisting essentially of such an rAAV vector.

[0097] In some embodiments, the present disclosure provides a method for increasing muscle strength, muscle endurance and / or muscle mass in a subject suffering from a muscular dystrophy (e.g., LGMD2C), comprising, consisting essentially of, or further consisting of administering to the subject a therapeutically effective amount of an rAAV vector encoding a gamma sarcoglycan described herein, or a composition comprising or consisting essentially of such an rAAV vector.

[0098] In certain aspects, the present disclosure encompasses a method of reducing contraction-induced damage in a subject suffering from a muscular dystrophy (e.g., LGMD2C), comprising, consisting essentially of, or further consisting of administering to the subject a therapeutically effective amount of an rAAV vector encoding a gamma sarcoglycan described herein, or a composition comprising or consisting essentially of such an rAAV vector.

[0099] In certain aspects, the present disclosure encompasses a method of treating a gamma-sarcoglycanopathies in a subject, comprising, consisting essentially of, or further consisting of administering to the subject a therapeutically effective amount of an rAAV vector encoding a gamma-sarcoglycan described herein, or a composition comprising or consisting essentially of such an rAAV vector.

[0100] The present disclosure also encompasses a method for reducing fibrosis in a subject suffering from muscular dystrophy (e.g., LGMD2C), comprising, consisting essentially of, or further comprising administering to the subject a therapeutically effective amount of an rAAV vector encoding gamma-sarcoglycan described herein, or a composition comprising, or consisting essentially of, such an rAAV vector. The term "fibrosis," as used herein, refers to the excessive or uncontrolled deposition of extracellular matrix (ECM) components and abnormal repair processes in injured tissues, including skeletal muscle, cardiac muscle, liver, lung, kidney, and pancreas. Deposited ECM components include collagen, such as collagen 1, collagen 2, or collagen 3, and fibronectin.

[0101] In certain embodiments, the subject treated by the methods described herein may be a mammal. In some cases, the subject is a human, a non-human primate, a pig, a horse, a cow, a dog, a cat, a rabbit, a mouse, or a rat. The subject may be a human female or a human male. In some cases, the subject is a human subject between 1 and 7, 7 and 15, 16 and 25, 26 and 50, 50 and 70 years of age, or over 70 years of age. Other age ranges are contemplated, including, but not limited to, 5 and 10, 10 and 15, 15 and 20, 20 and 25, 25 and 30, 30 and 40, 40 and 50, 60 and 70, or over 70 years of age, as well as any ranges encompassed above.

[0102] As used herein, the term "patient in need" or "subject in need" refers to a patient or subject at risk for or suffering from a disease, disorder, or condition suitable for treatment or amelioration with an rAAV comprising a nucleic acid sequence encoding gamma-sarcoglycan, or a composition comprising or consisting essentially of such an rAAV, as provided herein. A patient or subject in need may, for example, be a patient or subject diagnosed with a disease associated with gamma-sarcoglycan dysfunction, such as LGMD2C. The subject may have a mutation or dysfunction of the gamma-sarcoglycan gene or protein. The terms "subject" and "patient" are used interchangeably herein.

[0103] Also contemplated by the present disclosure are combination therapies that comprise, consist essentially of, or even consist of one or more of the compositions disclosed herein and a corticosteroid. As used herein, a combination includes simultaneous or sequential treatment. Combinations of the disclosed methods with standard drug treatments (e.g., corticosteroids) are specifically discussed, as are combinations with novel therapies. In some embodiments, subjects may be treated with steroids (e.g., prednisone, prednisolone, deflazacort) to prevent or reduce immune responses to the administration of the rAAV described herein. In certain cases, if a subject develops antibodies against the rAAV described herein, the subject may be administered aphaeresis or another immunomodulator.

[0104] In some embodiments, a therapeutically effective amount of an rAAV vector is from about 1e13 vg / kg to about 5e14 vg / kg, or from about 1e13 vg / kg to about 2e13 vg / kg, or from about 1e13 vg / kg to about 3e13 vg / kg, or from about 1e13 vg / kg to about 4e13 vg / kg, or from about 1e13 vg / kg to about 5e13 vg / kg, or from about 1e13 vg / kg to about 6e13 vg / kg, or from about 1e13 vg / kg to about 7e13 vg / kg, or from about 1e13 vg / kg to about 8e13 vg / kg, in one or more administrations. g / kg, or about 1e13vg / kg to about 9e13vg / kg, or about 1e13vg / kg to about 1e14vg / kg, or about 1e13vg / kg to about 2e14vg / kg, or 1ei3vg / kg to about 3e14vg / kg, or about 1e13 to about 4e14vg / kg, or about 3e13vg / kg to about 4e13vg / kg, or about 3e13vg / kg to about 5e13vg / kg, or about 3e13vg / kg to about 6e13vg / kg, or about 3e13vg / kg to about 7e13vg / kg, or about 3e13vg / kg to about 8 e13vg / kg, or about 3e13vg / kg to about 9e13vg / kg, or about 3e13vg / kg to about 1e14vg / kg, or about 3e13vg / kg to about 2e14vg / kg, or 3e13vg / kg to about 3e14vg / kg, or about 3e13 to about 4e14vg / kg, or about 3e13vg / kg to about 5e14vg / kg, or about 5e13vg / kg to about 6e13vg / kg, or about 5e13vg / kg to about 7e13vg / kg, or about 5e13vg / kg to about 8e13vg / kg, or about 5e13vg / kg The rAAV is administered at a dose ranging from about 9e13vg / kg, or from about 5e13vg / kg to about 1e14vg / kg, or from about 5e13vg / kg to about 2e14vg / kg, or from 5e13vg / kg to about 3e14vg / kg, or from about 5e13 to about 4e14vg / kg, or from about 5e13vg / kg to about 5e14vg / kg, or from about 1e14vg / kg to about 2e14vg / kg, or from 1e14vg / kg to about 3e14vg / kg, or from about 1e14 to about 4e14vg / kg, or from about 1e14vg / kg to about 5e14vg / kg.The present disclosure also includes compositions comprising, consisting essentially of, or further consisting of such range of rAAV vectors.

[0105] For example, a therapeutically effective amount of a rAAV vector is a dose of about 1e13vg / kg, about 2e13vg / kg, about 3e13vg / kg, about 4e13vg / kg, about 5e13vg / kg, about 6e13vg / kg, about 7e13vg / kg, about 8e13vg / kg, about 9e13vg / kg, about 1e14vg / kg, about 2e14vg / kg, about 3e14vg / kg, about 4e14vg / kg, and 5e14vg / kg. The present disclosure also includes compositions comprising, consisting essentially of, or consisting of such doses of rAAV vector.

[0106] In some embodiments, a therapeutically effective amount of rAAV is a dose ranging from about 1e14vg / kg to about 1e15vg / kg or about 1e15vg / kg to about 1e16vg / kg. In some embodiments, the present disclosure provides a therapeutically effective amount of rAAV at a dose ranging from about 1e14vg / kg, about 1.5e14vg / kg, about 2e14vg / kg, about 2.5e14vg / kg, about 3e14vg / kg, about 3.5e14vg / kg, about 4e14vg / kg, about 4.5e14vg / kg, about 5e14vg / kg, about 5.5e14vg / kg, about 6e14vg / kg, about 6.5e14vg / kg, about 7e14vg / kg, about 7.5e14vg / kg, about 8e14vg / kg, about 9e14vg / kg, about 10e14vg / kg, about 11e14vg / kg, about 12e14vg / kg, about 13e14vg / kg, about 14e14vg / kg, about 15e14vg / kg, about 16e14vg / kg, about 17e14vg / kg, about 18e14vg / kg, about 19e14vg / kg, about 20e14vg / kg, about 21e14vg / kg, about 22e14vg / kg, about 23e14vg / kg, about 24e14vg / kg, about 25e14vg / kg, about 26e14vg / kg, about 27e14vg / kg, about 28e14vg / kg, about 29e14 Methods are provided for administering to a subject an rAAV vector of the disclosure at a dose of about e14vg / kg, about 8.5e14vg / kg, about 9e14vg / kg, about 9.5e14vg / kg, about 1e15vg / kg, about 1.5e15vg / kg, about 2e15vg / kg, about 2.5e15vg / kg, about 3e15vg / kg, about 3.5e15vg / kg, about 4e15vg / kg, about 4.5e15vg / kg, or about 5e15vg / kg. In the present disclosure, in some embodiments, the dose is about 4.0e14vg / kg, about 4.1e14vg / kg, about 4.2e14vg / kg, about 4.3e14vg / kg, about 4.4e14vg / kg, about 4.5e14vg / kg, about 4.6e14vg / kg, about 4.7e14vg / kg, about 4.8e14vg / kg, about 4.9e14vg / kg, about 5.0e14vg / kg, about Methods are provided for administering to a subject an rAAV vector of the disclosure at a total dose of 5.1e14vg / kg, about 5.2e14vg / kg, about 5.3e14vg / kg, about 5.4e14vg / kg, about 5.5e14vg / kg, about 5.6e14vg / kg, about 5.7e14vg / kg, about 5.8e14vg / kg, about 5.9e14vg / kg, or about 6e14vg / kg.

[0107] In various embodiments, the administering step can include administering the total dose in 1, 2, 3, 4, 5, 6, 7, 8, 9, 10 or more divided doses. For example, the total dose can be delivered to multiple sites in the subject or by injection into the subject spaced apart by minutes, hours, or days.

[0108] Administration of an effective amount of the composition can be by routes standard in the art, including, but not limited to, intramuscular, parenteral, intravenous, oral, buccal, nasal, pulmonary, intracranial, intraosseous, intraocular, rectal, or vaginal. The administration route(s) and serotype(s) of the AAV components (particularly the AAV ITRs and capsid proteins) of the rAAV of the present disclosure can be selected and / or adapted by one skilled in the art taking into consideration the infectious disease and / or disease state to be treated and the target cell / tissue(s) that express gamma-sarcoglycan.

[0109] The present disclosure provides for local and systemic administration of effective doses of the rAAV and compositions of the present disclosure. For example, systemic administration is administration into the circulatory system to affect the entire body. Systemic administration includes enteral administration, for example, absorption by the gastrointestinal tract, and parenteral administration by injection, infusion, or implantation.

[0110] In particular, the actual administration of the rAAV of the present disclosure can be achieved by using any physical method that transports the rAAV recombinant vector into the target tissue of an animal. Administration according to the present disclosure includes, but is not limited to, injection into muscle, the bloodstream, and / or directly into the liver. Simple resuspension of rAAV in phosphate-buffered saline has been demonstrated to be sufficient to provide a vehicle useful for muscle tissue expression, and there are no known limitations on the carrier or other components that can be co-administered with rAAV (however, compositions that degrade DNA should be avoided in conventional methods using rAAV).

[0111] The capsid protein of rAAV can be modified to target rAAV to a specific target tissue of interest, such as muscle. See, for example, International Publication No. 02 / 053703, the disclosure of which is incorporated herein by reference. The pharmaceutical composition can be prepared as an injection formulation or a topical formulation and delivered to muscle by transdermal delivery. Numerous formulations for both intramuscular injection and transdermal delivery have been developed and can be used in the practice of the present disclosure. The rAAV can be used with any pharmaceutically acceptable carrier to facilitate administration and handling.

[0112] For intramuscular injection, solutions in adjuvants, such as sesame or peanut oil, or aqueous propylene glycol can be used, along with sterile aqueous solutions. Such aqueous solutions can be buffered, if necessary, and the liquid diluent is first rendered isotonic with saline or glucose. Solutions of rAAV as the free acid (DNA contains acidic phosphate groups) or pharmacologically acceptable salts can be prepared in water, suitably mixed with a surfactant, such as hydroxypropylcellulose. Dispersions of rAAV can also be prepared in glycerol, liquid polyethylene glycols, and mixtures thereof, as well as in oils. Under ordinary conditions of storage and use, such preparations contain preservatives to prevent the growth of microorganisms. In this regard, all sterile aqueous media employed are readily available by standard techniques well known to those skilled in the art.

[0113] Pharmaceutical forms suitable for injectable use include sterile aqueous solutions or dispersions and sterile powders for the extemporaneous preparation of sterile injectable solutions or dispersions. In all cases, the form must be sterile and fluid to the extent that it is easily passable through a syringe needle. It must be stable under the conditions of manufacture and storage and must be preserved against the contaminating action of microorganisms, such as bacteria and fungi. The carrier can be a solvent or dispersion medium containing, for example, water, ethanol, polyol (e.g., glycerol, propylene glycol, liquid polyethylene glycol, etc.), suitable mixtures thereof, and vegetable oils. Proper fluidity can be maintained, for example, by the use of coating agents, such as lecithin, by maintaining the required particle size in the case of dispersions, and by the use of surfactants. Prevention of microbial action can be achieved by various antibacterial and antifungal agents, such as parabens, chlorobutanol, phenol, sorbic acid, thimerosal, etc. In many cases, it is preferable to include an isotonic agent, for example, sugar or sodium chloride. Prolonged absorption of the injectable compositions can be brought about by the use of agents delaying absorption, for example, aluminum monostearate and gelatin.

[0114] Sterile injectable solution is prepared by incorporating the required amount of rAAV into a suitable solvent with various other ingredients as listed above, and then optionally sterilizing by filtration.Generally, dispersion is prepared by incorporating sterilized active ingredient into a sterile vehicle containing a basic dispersion medium and other ingredients as listed above.In the case of sterile powder for preparing sterile injectable solution, the preferred preparation method is vacuum drying and freeze-drying technology, which allows the powder of active ingredient and any additional desired ingredients to be obtained from the solution that has previously been sterile-filtered.

[0115] Alternatively, transduction with rAAV can be performed in vitro. In one embodiment, the desired target muscle cells are removed from a subject, transduced with rAAV, and reintroduced into the subject. Alternatively, syngeneic or xenogeneic muscle cells can be used, where such cells do not elicit an inappropriate immune response in the subject.

[0116] Suitable methods for transduction and reintroduction of transduced cells into a subject are known in the art.In one embodiment, cells can be transduced in vitro by mixing rAAV with muscle cells, for example, in a suitable medium, and screening for cells containing the DNA of interest using conventional techniques, for example, Southern blot and / or PCR, or using a selection marker.The transduced cells can then be formulated into pharmaceutical compositions, and the compositions can be introduced into a subject by various techniques, for example, by intramuscular, intravenous, subcutaneous and intraperitoneal injection, or by injection into smooth muscle and cardiac muscle, for example, using a catheter.

[0117] Transduction of cells with the rAAV of the present disclosure results in sustained expression of gamma-sarcoglycan. Accordingly, the present disclosure provides methods for administering / delivering rAAVs expressing gamma-sarcoglycan to a mammalian subject, preferably a human. Such methods include transducing a tissue (including, but not limited to, tissues, e.g., muscle, organs, e.g., liver and brain, and glands, e.g., salivary glands) with one or more rAAVs of the present disclosure. Transduction may be achieved with a gene cassette containing tissue-specific regulatory elements. For example, in one embodiment of the present disclosure, genes from the actin and myosin gene families, e.g., the myoD gene family [Weintraub et al., J. Immunol. 2014; 10:1111-1112, 1999], are transduced. et al., Science, 251:761-766 (1991)], myocyte-specific enhancer-binding factor MEF-2 [Cserjesi and Olson, Mol Cell Biol, 11:4854-4862 (1991)], a regulatory element from the human skeletal actin gene [Muscat et al., Mol Cell Biol, 7:4089-4099 (1987)], cardiac actin gene, muscle creatine kinase sequence element [Johnson et al., Mol Cell Biol, 9:3393-3399 (1989)], and mouse creatine kinase enhancer (mCK) element, fast skeletal troponin C gene, slow cardiac troponin C gene, and slow troponin I gene; hypoxia-inducible nuclear factor (Semenza et al., Proc Natl Acad Sci USA, 88:5680-5684 (1991)), a steroid-inducible element, and a glucocorticoid response element (GRE) (see Mader and White, Proc. Natl. Acad. Sci. USA 90: 5603-5607 (1993)), as well as other control elements.

[0118] Muscle tissue is an attractive target for in vivo DNA delivery because it is a non-essential organ and readily accessible. In this disclosure, we explore sustained expression of a transgene (e.g., gamma sarcoglycan) from transduced muscle fibers.

[0119] By "muscle cell" or "muscle tissue" is meant a cell or group of cells derived from any type of muscle (e.g., skeletal and smooth muscle, e.g., derived from the gastrointestinal tract, bladder, blood vessels, or heart tissue). Such muscle cells can be differentiated or undifferentiated, e.g., myoblasts, myocytes, myotubes, cardiomyocytes, and cardiomyoblasts.

[0120] Accordingly, methods are also described herein for administering an effective dose (or doses administered essentially simultaneously or at intervals) of rAAV encoding gamma sarcoglycan to a mammalian subject in need thereof.

[0121] Further provided herein are kits comprising, consisting essentially of, or even further consisting of any one or more of the embodiments disclosed herein, and optionally instructions for use. The kits may comprise, consist essentially of, or even further consist of one or more of the compositions disclosed herein and a corticosteroid or one or more of the combination therapies provided herein, and optionally instructions for use.

[0122] It is understood that the present disclosure is not limited to particular aspects described, as such may, of course, vary. It is also understood that the terminology used herein is for the purpose of describing particular embodiments and is not intended to be limiting, since the scope of the present disclosure will be limited only by the appended claims.

[0123] Numerous embodiments of the present disclosure have been described. Nevertheless, it will be understood that various modifications may be made without departing from the spirit and scope of the present disclosure. Accordingly, the following examples are intended to illustrate, but not limit, the scope of the disclosure, which is set forth in the claims.

[0124] Unless explicitly stated and intended otherwise, where the present technology relates to polypeptides, proteins, polynucleotides, or antibodies, it should be presumed that equivalents or biological equivalents of such are intended to be within the scope of the present technology.

[0125] Citation of any patent, patent application, publication, or any other document is not an admission that any of the foregoing is pertinent prior art, nor does it constitute any admission as to the contents or date of such publication or document.

[0126] All features disclosed herein can be used in any combination. Each feature disclosed herein can be replaced by an alternative feature that performs the same function, is equivalent, or has a similar purpose. Thus, unless expressly indicated otherwise, a disclosed feature (e.g., an antibody) is an example of a genus of equivalent or similar features.

[0127] As used herein, all numerical values ​​or numerical ranges include the integers within such ranges and fractions of the values ​​or integers within such ranges, unless the context clearly indicates otherwise.Furthermore, when a list of values ​​is described herein (for example, about 50%, 60%, 70%, 80%, 85% or 86%), the list includes all intermediate values ​​and fractions thereof (for example, 54%, 85.4%).Thus, for example, a reference to 80% or more identity includes 81%, 82%, 83%, 84%, 85%, 86%, 87%, 88%, 89%, 90%, 91%, 92%, 93%, 94%, etc., as well as 81.1%, 81.2%, 81.3%, 81.4%, 81.5%, etc., 82.1%, 82.2%, 82.3%, 82.4%, 82.5%, etc., and so on.

[0128] References to integers greater than or less than include any number greater than or less than the reference number, respectively. Thus, for example, references to less than 100 include 99, 98, 97, etc. down to the number 1, and references to less than 10 include 9, 8, 7, etc. down to the number 1.

[0129] As used herein, all numerical values ​​or ranges include values ​​and integer fractions within such ranges, and integer fractions within such ranges, unless the context clearly dictates otherwise. Thus, for example, a reference to a numerical range, e.g., 1 to 10, includes 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, as well as 1.1, 1.2, 1.3, 1.4, 1.5, etc. Thus, a reference to a range of 1 to 50 includes 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, etc., up to and including 50, as well as 1.1, 1.2, 1.3, 1.4, 1.5, etc., 2.1, 2.2, 2.3, 2.4, 2.5, etc., and the like.

[0130] Reference to a series of ranges includes ranges combining the limits of the various ranges within that series. Thus, for example, a series of ranges such as 1 to 10, 10 to 20, 20 to 30, 30 to 40, 40 to 50, 50 to 60, 60 to 75, 75 to 100, 100 to 150, 150 to 200, 200 to 250, 250 to 300, 300 to 400, 400 to 500, 500 to 750, 750 to 1,000, 1,000 to 1,500, 1,500 to 2,000, 2,000 to 2,500, 2,000 to 3,500, 3,000 to 4,000, 4,000 to 5,000, 5,000 to 6,000, 6,000 to 7,500, 7,000 to 8,000, 8,000 to 9,000, 9,000 to 10,000, 10,000 to 15,000, 15,000 to 20,000, 10,000 to 25,000, 11,000 to 12,000, 12,000 to 15,000, 13,000 to 14,000, 14,000 to 15,000, 15,000 to 20,000, 16,000 to 25,000, 17,000 to 26,000, 18,000 to 27,000, References to the ranges 10 to 50, 50 to 100, 100 to 1,000, 1,000 to 3,000, 2,000 to 4,000, 3,500 to 4,000, 4,000 to 4,500, 4,500 to 5,000, 5,500 to 6,000, 6,000 to 7,000, 7,000 to 8,000 or 8,000 to 9,000 include ranges such as 10 to 50, 50 to 100, 100 to 1,000, 1,000 to 3,000, 2,000 to 4,000, etc.

[0131] Modifications to the foregoing can be made without departing from the basic aspects of the present technology. Although the present technology has been described in substantial detail with reference to one or more specific embodiments, those skilled in the art will recognize that changes can be made to the embodiments specifically disclosed in this application, and that such modifications and improvements are within the scope and spirit of the present technology.

[0132] The technology exemplarily described herein can be suitably implemented without any element (s) not specifically disclosed herein.Thus, for example, in each case herein, the terms "comprise", "essentially consist of" and "consist of" can be replaced with either of the other two terms.The terms and expressions used are used as descriptive and non-limiting terms, and the use of such terms and expressions does not exclude any equivalent or fragment of the features shown and described, and various modifications and modifications are possible within the scope of the technology claimed.

[0133] All publications and patents mentioned in this specification are incorporated herein by reference in their entirety, as if each individual publication or patent were specifically and individually indicated to be incorporated by reference.In case of conflict, the present application, including any definitions herein, shall prevail.However, the reference to any references, papers, publications, patents, patent publications, and patent applications cited herein is not and should not be interpreted as an admission or any form of suggestion that they constitute valid prior art or form part of the common general knowledge in any country in the world.

[0134] As used herein, any concentration range, percentage range, ratio range, or integer range should be understood to include any integer value within the recited range, and, where appropriate, fractions thereof (e.g., tenths and hundredths of integers), unless otherwise indicated. The term "about," when directly preceding a number or numerical value, means that the number or numerical value ranges by plus or minus 10%. The terms "a" and "an," as used herein, should be understood to refer to "one or more" of the recited components, unless otherwise indicated. The use of alternatives (e.g., "or") should be understood to mean either one, both, or any combination thereof of the alternatives. The term "and / or" should be understood to mean either one, or both, of the alternatives. As used herein, the terms "include" and "comprise" are used interchangeably.

[0135] The section headings used herein are for organizational purposes only and are not to be construed as limiting the subject matter described.

[0136] The present disclosure is further described in the following examples, which do not limit the scope of the disclosure described in the claims. [Example]

[0137] Example 1: Construction and Vector Efficacy of scAAVrh74.tMCK.hSGCB An SGCG AAV construct containing a codon-optimized full-length human gamma sarcoglycan (SCGB) cDNA (SEQ ID NO: 1) was constructed as shown in Figure 1. To achieve more efficient transduction, the SGCG AAV construct was designed to be packaged using a self-complementary AAV backbone. The SGCG cDNA (969) was driven by the MHCK7 promoter (792 bp). The intron and 5' UTR were derived from the plasmid pCMVβ (Clontech). The SGCG AAV construct contained a consensus Kozak sequence immediately before the ATG start codon and a small 53-bp synthetic poly(A) signal for mRNA termination. The cDNA was codon-optimized for human use and synthesized by GenScript (Piscataway, NJ). The only viral sequence included in this vector was the AAV2 inverted terminal repeat, which is required for both viral DNA replication and packaging.

[0138] The vector for this study was generated using a triple transfection method in HEK293 cells under research-grade conditions. Post-generation vector characterization included titer determination by qPCR using a supercoiled standard, determination of endotoxin levels (EU / mL), and assessment of sterility. The generated vector was analyzed by SDS-PAGE to verify consistency of banding patterns with the expected rAAV. Vector preparations were titered using a linearized plasmid standard and re-titered using a supercoiled plasmid standard. The vector was generated using a plasmid containing the full-length human gamma-sarcoglycan cDNA (NC_000013.11), a muscle-specific MHCK7 promoter driving expression, a consensus Kozak sequence (CCACC), an SV40 chimeric intron, and a synthetic polyadenylation site (53 bp) (Figure 1). The SGCG expression cassette was cloned between AAV2 ITRs packaged into a self-complementary (sc) AAVrh.74 vector to enhance transduction of cardiac tissue.

[0139] An overview of this study design is provided in Table 2. Dose values ​​are determined by qPCR assessment of the total number of vector genomes (vg). If vector preparations contain at least some partial, complete AAV capsids, the qPCR method may result in an overestimation of the dose. Thus, determining efficacy at a given dose (e.g., 5E+13) suggests that purifying the vector to remove partial, complete AAV capsids may result in efficacy at lower vector doses measured by qPCR. The total dose (vg) and dose in terms of vector genomes per kilogram of subject (vg / kg) listed in Table 2 and throughout the Examples do not take into account partial, complete AAV capsids. [Table 2-1] [Table 2-2]

[0140] All recipient animals were treated at 4–8 weeks of age and necropsied 3 months after injection. SGCG- / - negative control mice were necropsied at 4 months of age.

[0141] Efficacy determination of the scAAVrh.74.MHCK7.hSGCG test article was accomplished by performing intramuscular and systemic injections of the vector into SGCG− / − mice. Wild-type mice injected with lactated Ringer's solution (LRS) served as a positive control, and uninjected SGCG− / − mice served as a negative control.

[0142] Eight-week-old BL6 wild-type (WT) mice and γ-sarcoglycan knockout (γ-SG) mice Tibialis anterior (TA) muscles from γ-SG (KO) mice were extracted, and tissue sections were stained with hematoxylin and eosin (H&E) to examine the histology of each muscle. Even at such a young age, γ-SG KO mice demonstrated a disease phenotype with the presence of muscle fiber necrosis, inflammatory infiltrates, and fibrous tissue in the muscles (Figure 2).

[0143] The SGCG AAV construct was packaged into rh.74 serotype AAV to generate a recombinant AAV (rAAV) designated scAAVrh.74.MHCK7.hSGCG. A total of three mice were injected to determine the efficacy of scAAVrh.74.MHCK7.hSGCG. One C57BL / 6WT mouse injected with LRS and one uninjected SGCG- / - mouse served as positive and negative controls, respectively. The remaining three SGCG- / - mice were injected with scAAVrh.74.MHCK7.hSGCG either IM into the LTA (n=2) or IV into the tail vein (n=1) to determine whether the vector lot was efficacious. The study design is summarized in Table 3. [Table 3]

[0144] Four-week-old γ-SG KO mice were injected intramuscularly (IM) with scAAVrh.74.MHCK7.hSGCG into the TA muscle at a total dose of 3e10vg. Four weeks after injection (8 weeks of age), mice were euthanized, and the TA muscle was extracted and fresh-frozen in liquid nitrogen-cooled methylbutane. Immunofluorescence (IF) staining for γ-sarcoglycan demonstrated the absence of γ-sarcoglycan in the uninjected right TA (RTA) muscle and nearly complete restoration of membrane γ-sarcoglycan protein expression in the injected left TA (LTA) muscle (Figure 3A). Western blot analysis for γ-sarcoglycan (Figure 3B) revealed that two BL6 WT mice were significantly different in expression of γ-sarcoglycan. γ-Sarcoglycan expression in TA muscle, absence of protein in γ-SG KO TA muscle, and restoration of γ-sarcoglycan protein expression in TA muscle from injected mice #794 and #795 were demonstrated.

[0145] Total dose 3 x 10 11Delivery of a specific dose of scAAVrh.74.MHCK7.hSGCG (vg) to SGCG- / - mice via IM resulted in 93.03% hSGCG expression in the injected LTA muscle, similar to the levels of the β-sarcoglycan (scAAVrh.74.MHCK7.hSGCB) vector we previously tested. Immunofluorescence imaging of vector-administered mice (animal IDs: 794 and 795) confirmed hSGCG transgene expression (Figure 3A). 20x images are included to visualize expression levels in the injected muscles. As expected, C57BL / 6WT mice showed 100% γ-sarcoglycan protein expression, while SGCG- / - mice showed a complete absence of γ-sarcoglycan expression (Figure 3C).

[0146] Systemic injection via the tail vein into one SGCG- / - mouse (#797) resulted in high levels of hSGCG transgene expression. Applicant administered a total dose of 1 x 10 13 vg(5×10 14 It was possible to achieve ≥94.00% transduction in all skeletal muscles of such effector mice treated with scAAVrh.74.MHCK7.hSGCG (1000 mg / kg). The percentage of AAV-delivered hSGCG transgene expression averaged across all analyzed skeletal muscles was 95.98%. Applicants were also able to achieve very high levels of cardiac transduction upon systemic delivery. Representative 20x immunofluorescence images of all skeletal muscles as well as the diaphragm and heart are shown in Figure 7, demonstrating widespread expression of hSGCG.

[0147] Example 2: Efficacy and toxicity of the scAAVrh74.tMCK.hSGCB vector in BL6 WT mice The TA muscles of 4-week-old BL6WT mice were injected intramuscularly (IM) with a total dose of 3e10vg of scAAVrh.74.MHCK7.hSGCG. Four weeks after injection (8 weeks of age), mice were euthanized, and the TA muscles were extracted and fresh-frozen in liquid nitrogen-cooled methylbutane. Immunofluorescence (IF) staining for γ-sarcoglycan demonstrated membrane staining for γ-sarcoglycan in uninjected right TA (RTA) muscles and intracellular staining indicative of overexpression of γ-sarcoglycan protein in injected left TA (LTA) muscles (Figure 4A). Western blot for γ-sarcoglycan (Figure 4B) demonstrated overexpression of γ-sarcoglycan protein in injected LTA muscles. H&E staining of the TA muscles demonstrated no toxicity, with a complete absence of central nuclei, necrotic fibers, inflammatory infiltrates, or fibrous tissue in either uninjected RTA or injected LTA muscles (Figure 5).

[0148] Example 3: Gene Expression Following Systemic Delivery of scAAVrh.74.tMCK.hSGCB A total dose of 1e12vg (5e13vg / kg) was intravenously injected into the tail vein of 4-5 week-old γ-SG KO mice. Mice were euthanized 6 weeks after treatment. Immunofluorescence staining of the TA, gastrocnemius (GAS), quadriceps (QUAD), gluteal (GLUT), PSOAS, triceps, diaphragm, and cardiac muscle demonstrated widespread expression of γ-sarcoglycan (Figure 6).

[0149] Determination of efficacy of scAAVrh.74.MHCK7.hSGCG test article was performed using a single dose (total dose 1 x 10 13 vg, 5×10 14 This was achieved by systemic injection into SGCG- / - mice (genotype: sgcgC57) using a clinical dose (total dose 1 × 10 12 vg(5×10 13 vg / kg), intermediate dose (total dose 4 × 10 12 vg(2×10 14 vg / kg), and high dose (total dose 1 × 10 13 vg(5×10 14SGCG− / − mice were systemically injected with 100 μg / kg of scAAVrh.74.MHCK7.hSGCG via the tail vein and euthanized 3 months after injection.

[0150] According to the results of our scAAVrh.74.MHCK7.hSGCG potency assay, Applicants administered the vector via tail vein injection to five SGCG mice at a total dose of 1 × 10 13 vg(5×10 14 We evaluated the transgene expression and efficacy of our vector when delivered systemically at an extended time point of 3 months, delivering it at our effective dose of 1000 mg / kg (vg / kg). Four-week-old mice were injected, and complete necropsies were performed 3 months post-injection. All skeletal muscles discussed above in the efficacy assay, as well as the diaphragm and heart, were extracted and analyzed. Organs, including the lungs, kidneys, liver, spleen, and gonads, were also harvested for toxicology and biodistribution studies. In summary, hSGCG transgene expression remained high after 3 months of treatment, and all muscles from treated mice were again highly transduced. This was accompanied by improved muscle histopathology and improved function of the TA and diaphragm muscles. Systemic delivery of the scAAVrh.74.MHCK7.hSGCG vector did not induce any toxicity in muscles or organs.

[0151] Gamma-sarcoglycan expression Immunofluorescence staining for human gamma-sarcoglycan was used to determine hSGCG transgene expression in six left and right skeletal muscles, as well as the diaphragm and heart, of all SGCG- / - mice systemically injected with the scAAVrh.74.MHCK7.hSGCG vector. These muscles included TA, GAS, QUAD, GLUT, PSOAS, and TRI. Images of left and right muscles from five treated mice were utilized for quantification purposes for expression analysis and transduction efficiency. Four 20x images of each muscle were acquired, and the percentage of hSGCG-positive fibers (number of positively expressing fibers / total number of fibers) was determined for each image, resulting in an average transduction percentage for each muscle from each mouse. Figure 8A shows a representative image acquired from a treated mouse, demonstrating a high level of expression of 92.26%, averaged across all quantified muscles, including the diaphragm. Applicants again confirmed high levels of transduction in the myocardium of all mice treated with the vector. Figure 8B shows Western blots confirming hSGCG transgene expression in all skeletal muscles and hearts from mice intravenously delivered with the scAAVrh.74.MHCK7.hSGCG vector. Table 4 lists the average percent expression across the four 20x images for each muscle in each mouse, as well as the average for each muscle across all five mice. [Table 4]

[0152] Histopathology of treated muscles Muscles from both skeletal and cardiac SGCG- / - mice exhibit widespread myopathy, including pronounced myofiber atrophy and hypertrophy with multiple focal areas of necrosis. There is also an increasing number of mononuclear inflammatory cells (lymphocytes and macrophages, with scattered neutrophils), as well as dystrophic calcification, fatty infiltration, central nucleation, and increased fibrosis. Hematoxylin and eosin staining in Figure 9A demonstrates this dystrophic phenotype in SGCG- / - mice compared with normal WT mice, and the improvement in muscle pathology after treatment. Quantification of histological parameters demonstrates a significant increase in the number of centrally nucleated fibers in skeletal muscle of SGCG- / - mice, followed by a reduction in central nucleation in a wide variety of skeletal muscle types as a result of γ-sarcoglycan gene transfer (Figure 9B). Further extensive muscle histopathological analysis revealed normalization of fiber size distribution, accompanied by an increase in mean fiber diameter, in all three examined muscles (GAS, PSOAS, and TRI) of diseased SGCG- / - mice treated with vector (Figures 10A-10F). Individual central nuclei counts and mean fiber diameters for various muscles were analyzed from each mouse.

[0153] Example 4: Physiological Deficiencies in γ-SG KO Mice Sirius red staining is performed to quantify the amount of fibrous tissue. Four-month-old γ-SG KO and BL6 WT mice are tested to assess whether there is a force deficit in skeletal muscle. The tibialis anterior (TA) muscle is tested for significant decreases in specific muscle strength and resistance to injury compared to controls. The diaphragm muscle is also tested in a similar manner to detect any significant decreases. This measurable decrease provides a functional outcome measure that establishes the efficacy of AAV.hSGCB therapy.

[0154] Example 5: Functional outcomes following scAAVrh74.tMCK.hSGCB treatment Cohorts of γ-SG KO mice will be injected over a period of 3 months to quantify efficacy and toxicity (Table 5). Mice will be subjected to activity cage analysis followed by euthanasia to determine overall activity in treated mice compared to γ-SG KO controls. TA and diaphragm muscles will be subjected to physiological analysis to determine specific muscle force output and resistance to injury / fatigue. γ-SG KO muscles will be compared to BL6 WT controls to establish functional outcome measures used to determine treatment efficacy in treated mice. All skeletal muscles will be stained by IF (immunofluorescence) for γ-sarcoglycan expression and H&E stained for histopathology. Quantitative polymerase chain reaction (qPCR) will be performed on muscles and organs from injected mice to determine the biodistribution of the vector genome. [Table 5]

[0155] Example 6: Functional evaluation of systemic delivery To determine whether hSGCG gene transfer confers functional benefits to affected muscles, Applicants evaluated the functional properties of TA and diaphragm muscles from SGCG− / − mice treated with scAAVrh.74.MHCK7.hSCGG. As outlined in Examples 1-5, Applicants first demonstrated histopathology of mouse limb skeletal muscle and diaphragm in the absence of gamma-sarcoglycan. In situ analysis of TA muscles from untreated SGCG− / − mice revealed a statistically significant 37.68% decrease in normalized specific force development compared to BL6 WT TA muscles (BL6 WT: 291.65 mN / mm). 2 vs. SGCG- / -: 181.77mN / mm 2 Specific muscle force output significantly increased to normal WT levels after treatment compared with SGCG− / − muscles (SGCG− / −: 181.77 mN / mm 2 Countermeasure: 266.02mN / mm 2) (Figures 11A and 11C). An additional functional outcome measure to determine the functional benefit of hSGCG gene transfer is to assess resistance to contraction-induced damage in TA muscles after repeated eccentric contractions. TA muscles from normal BL6 WT mice lost only 18% of their force production after 10 rounds of eccentric contractions, compared with a 37% force loss in untreated SGCG- / - TA muscles. Vector-treated SGCG- / - muscles improved to levels above WT, with only a 10% force loss observed after the eccentric contraction (ECC) protocol (Figure 11B).

[0156] To further test for possible functional benefits resulting from systemic delivery of the therapeutic hSGCG transgene and ultimately ameliorating the disease phenotype in SGCG- / - mice, laser monitoring of open-field cage activity was performed on all groups of mice. The graph in Figure 12 shows a 23.64% reduction in total locomotion in the x and y planes in SGCG- / - mice compared to normal BL6WT mice (BL6WT: 7655.42 beam breaks / hour vs. SGCG- / -: 5846.00 beam breaks / hour). Qualitative observations showed that scAAVrh.74.MHCK7.hSGCG-treated mice were more active overall compared to SGCG- / - mice, and quantitative measurements of open-field cage activity showed a 24.90% increase in locomotion (SGCG- / -: 5846.00 beam breaks / hour vs. treatment: 7301.80 beam breaks / hour). Detailed values ​​for each parameter were also measured in individual mice.

[0157] Example 7: Toxicology and Vector Biodistribution The purpose of this study was to evaluate potential toxicity or safety concerns of hSGCG gene therapy in SGCG- / - mice 3 months after delivery of the test article scAAVrh.74.MHCK7.hSGCG, utilizing the same animals as above. 13 vg(5×10 14Test substances (vg / kg) were administered intravenously (IV) to five 4-week-old SGCG- / - mice in a volume of 460 μL divided into two separate 230 μL injections in the morning and afternoon. Six uninjected SGCG- / - mice served as untreated diseased controls, and five C57BL / 6WT mice served as normal healthy controls (Table 6). Complete necropsies were performed on all mice, and six skeletal muscles (TA, GAS, QUAD, GLUT, PSOAS, and TRI) were extracted along with the left and right sides, diaphragm, and heart, as well as internal organs including lungs, kidneys, liver, spleen, and gonads. To evaluate the safety of our vectors, hematoxylin and eosin staining was performed on frozen sections of muscle tissue, and all harvested organs were fixed in formalin and stained with hematoxylin and eosin. These sections were then formally examined for toxicity by an independent veterinary pathologist, and no adverse effects were detected. The results are summarized in Table 7 below. A detailed histopathology report was also generated. Quantitative PCR was performed to assess vector biodistribution. These results are shown in Table 7 below and in Figure 13.

[0158] Histopathological examination of vector-transduced tissues To determine the safety and toxicology profile of scAAVrh.74.MHCK7.hSGCG using systemic delivery, all skeletal muscles, including the diaphragm, heart, and five other organs, collected from vector-treated SGCG mice and control groups from this preclinical study were stained with H&E, and sections of each tissue were formally examined by an independent veterinary pathologist. Group details and study design are shown in Table 6. [Table 6]

[0159] In summary, IV injection of scAAVrh.74.MHCK7.hSGCG did not induce any microscopic changes in myofibers of any skeletal muscles examined (Table 7). Additionally, no treatment-related pathology was identified in any of the tissues evaluated histologically, indicating that the test article was well tolerated. See the detailed report in Appendix J (Report No. AAVrh74-SGCG-MOUSE-001.1). Any significant changes were identified in both treated and control mice and were considered incidental findings. Furthermore, independent testing demonstrated that administration of the test article, scAAVrh.74.MHCK7.hSGCG, substantially reduced myofiber atrophy, degeneration, and destruction compared with baseline specimens from control mice, suggesting that the vector can reverse the degree of myopathy associated with the absence of SGCG in affected mice. [Table 7]

[0160] Vector genome biodistribution The presence of test substance-specific DNA sequences was examined using real-time quantitative PCR assay (qPCR). Biodistribution analysis was performed on tissue samples collected from two SGCG- / - animals administered the vector. A positive signal was any signal equal to or exceeding 100 copies of single-stranded DNA per μg of genomic DNA detected. Tissues were collected at necropsy, and vector-specific primer probe sets specific for sequences in the MHCK7 promoter were utilized. Table 8 and Figure 13 show the vector genome copies detected in each tissue sample from scAAVrh.74.MHCK7.hSGCG-injected mice.

[0161] The scAAVrh.74.MHCK7.hSGCG transcript was detected at various levels in all tissues collected. As expected, due to the nature of the intravenous delivery route, the vector was detected at high levels in the liver, with the highest levels observed in skeletal muscle and heart. The lowest levels were detected in the lung, kidney, and spleen. These data indicate that the test substance was efficiently delivered to all tissues examined in vector-administered mice. [Table 8]

[0162] Serum chemistry analysis To further assess liver function, Applicants evaluated the levels of two liver enzymes, alkaline aminotransferase (ALT) and aspartate aminotransferase (AST), which are routine serum chemistry parameters. Elevations in either of these enzymes can indicate hepatocellular damage and liver dysfunction. Applicants analyzed serum from all six C57BL / 6 WT mice, all six untreated SGCG − / − mice, and all five scAAVrh.74.MHCK7.hSGCG-treated mice. Figure 14A shows that ALT in untreated SGCG − / − mice was elevated, double the level observed in healthy BL6 WT mice (BL6 WT: 44.20 U / L vs. SGCG − / −: 89.00 U / L). IV delivery of scAAVrh.74.MHCK7.hSGCG to SGCG- / - mice resulted in a 32.02% decrease in ALT levels (SGCG- / -: 89.00 U / L vs. treated: 60.50 U / L). Figure 14B shows that AST levels in all three groups of mice were significantly elevated by 113.27% in untreated SGCG- / - mice (BL6 WT: 326.00 U / L vs. SGCG- / -: 695.25 U / L). These AST levels were reduced by 41.10% after systemic delivery of scAAVrh.74.MHCK7.hSGCG (Figure 14B). In summary, liver enzymes considered to be biomarkers of liver injury are elevated in diseased SGCG- / - mice, but systemic hSGCG gene transfer in diseased SGCG- / - mice normalized both ALT and AST levels. Individual values ​​for each enzyme were determined in all mice.

[0163] In conclusion, systemic delivery of two different doses of AAV virus carrying the hSGCB transgene was shown to be safe and non-toxic. The doses tested were a total dose of 1.2 × 10 13 vg(6.0×10 14 vg / kg) and a total dose of 1.0 × 10 13 vg(5.0×10 14 vg / kg), especially at high doses (total dose 1.0 × 10 13 vg-5.0×10 14Systemic delivery of 1000 mg (vg / kg) of scAAVrh.74.MHCK7.hSGCG via the tail vein of SGCG- / - mice is safe and effective in restoring gamma sarcoglycan expression and reversing dystrophic histopathology in affected muscles.

Claims

1. A composition for treating limb-girdle dystrophy characterized by a defect in the γ-sarcoglycan gene, the composition comprising a recombinant adeno-associated virus (rAAV) vector containing a gene expression cassette comprising a polynucleotide sequence encoding γ-sarcoglycan under the transcriptional control of a promoter, the composition being characterized in that the composition is administered systemically.

2. The composition of claim 1, wherein the rAAV vector further comprises one or more AAV inverted terminal repeats.

3. The composition of claim 1 or 2, wherein the polynucleotide sequence encodes the amino acid sequence set forth in SEQ ID NO:

2.

4. The composition of any one of claims 1 to 3, wherein the rAAV vector comprises a self-complementary AAV vector genome.

5. The composition of any one of claims 1 to 4, wherein the rAAV vector comprises a genome lacking AAV rep and cap DNA.

6. 6. The composition of any one of claims 1 to 5, wherein the rAAV vector is of serotype AAV1, AAV2, AAV4, AAV5, AAV6, AAV7, AAV8, AAV9, AAV10, AAV11, AAV12, AAV13, AAV rh74 or a variant thereof.

7. 7. The composition of claim 6, wherein the rAAV vector is of the AAV rh74 serotype and comprises an AAV rh.74 capsid.

8. 8. The composition of claim 7, wherein the AAV rh.74 capsid comprises the amino acid sequence set forth in SEQ ID NO:

10.

9. The composition of any one of claims 1 to 8, wherein the genome of the rAAV vector comprises a muscle-specific control element, and the polynucleotide encoding γ-sarcoglycan is operably linked to the muscle-specific control element.

10. 10. The composition of claim 9, wherein the muscle-specific regulatory element is selected from the group consisting of a human skeletal actin gene element, a cardiac actin gene element, a muscle cell-specific enhancer-binding factor mef element, a muscle creatine kinase (MCK), a truncated MCK (tMCK) promoter, a myosin heavy chain (MHC) element, an MHCK7 promoter, C5-12, a mouse creatine kinase enhancer element, a fast skeletal troponin c gene element, a slow cardiac troponin c gene element, a slow troponin I gene element, a hypoxia-inducible nuclear factor, a steroid-inducible element, and a glucocorticoid response element (gre).

11. 11. The composition of claim 10, wherein the muscle-specific control element is a truncated MCK (tMCK) promoter.

12. The composition according to any one of claims 1 to 11, wherein the promoter is the MHCK7 promoter.

13. The composition of claim 12, wherein the MHCK7 promoter comprises the nucleotide sequence set forth in SEQ ID NO:

4.

14. The composition of any one of claims 1 to 13, wherein the genome of the rAAV vector comprises an intron comprising the nucleotide sequence set forth in SEQ ID NO:

5.

15. The composition of any one of claims 1 to 14, wherein the composition further comprises a pharmaceutically acceptable carrier.

16. 16. The composition of claim 15, wherein the composition further comprises lactated Ringer's solution (LRS).

17. The composition of any one of claims 1 to 16, wherein the limb-girdle muscular dystrophy is type 2C (LGMD2C).

18. The composition of any one of claims 1 to 17, wherein the composition is administered parenterally and systemically.

19. The composition of any one of claims 1 to 17, wherein the composition is administered systemically by injection, infusion, or implantation.

20. 20. The composition of any one of claims 1-19, wherein said systemic administration of said composition increases muscle strength, muscle endurance, and / or muscle mass of one or more muscles of said subject.

21. 21. The composition of claim 20, wherein the one or more muscles are selected from the group consisting of the heart, diaphragm, thigh, lower leg, pelvic girdle, shoulder, and arm.

22. 22. The composition of claim 20 or claim 21, wherein muscle strength, muscle endurance, and / or muscle mass is increased by at least about 5%, at least about 10%, at least about 15%, at least about 20%, at least about 50%, or at least about 80% compared to untreated control subjects.

23. The composition of any one of claims 1 to 22, wherein the composition is administered systemically in combination with a corticosteroid.