Recombinant adeno-associated virus products and methods for treating limb-girdle muscular dystrophy 2A
Recombinant adeno-associated viruses encoding calpain 3 (CAPN3) address the treatment gap for LGMD2A by enhancing muscle fiber diameter and function while avoiding cardiotoxicity, offering a promising therapeutic approach for limb-girdle muscular dystrophy.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2024-06-18
- Publication Date
- 2026-03-11
AI Technical Summary
There is currently no effective treatment for limb-girdle muscular dystrophy 2A (LGMD2A), a genetic disorder caused by mutations in the calpain 3 gene (CAPN3), and existing gene therapy approaches using adeno-associated virus (AAV) have shown cardiotoxicity issues.
Development of recombinant adeno-associated viruses (rAAV) encoding a protein with calpain 3 (CAPN3) activity, utilizing muscle-specific promoters to deliver the CAPN3 gene, minimizing cardiotoxicity and effectively treating LGMD2A by increasing muscle fiber diameter, reducing muscle fiber abnormalities, and enhancing muscle function.
The rAAV treatment significantly improves muscle fiber morphology and function, reducing muscle atrophy and connective tissue content, and increasing muscle force production without cardiotoxicity, as demonstrated by muscle fiber diameter increases and functional improvements in LGMD2A models.
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Abstract
Description
[Technical Field]
[0001] This application claims priority to U.S. Provisional Patent Application No. 62 / 691,934, filed June 29, 2018, and U.S. Provisional Patent Application No. 62 / 865,081, filed June 21, 2019, both of which are incorporated by reference in their entireties.
[0002] Provided herein are products and methods for treating limb-girdle muscular dystrophy 2A, in which a recombinant adeno-associated virus delivers DNA encoding a protein with calpain 3 (CAPN3) activity.
[0003] Incorporation by reference of sequence listing This application contains as another part of the disclosure a Sequence Listing in computer readable form (Filename: 52684P2_SeqListing.txt; 23,755 bytes - ASCII text file created on June 26, 2019), which is incorporated herein by reference in its entirety. [Background technology]
[0004] Muscular dystrophies (MD) are a group of genetic disorders characterized by the progressive weakening and degeneration of the skeletal muscles that control movement. Some MDs begin in infancy or childhood, while others may not manifest until middle age or later. Diseases differ in the distribution and severity of muscle weakness (some MDs also affect the heart muscle), age of onset, rate of progression, and inheritance pattern.
[0005] One group of MDs is the limb-girdle group of MDs (LGMD). LGMDs are rare conditions that manifest 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 develop in childhood, adolescence, young adulthood, or later. Both genders are affected equally. LGMD causes weakness of the shoulders and pelvic girdle, and nearby muscles in the upper legs and arms sometimes weaken over time. Leg weakness often precedes arm weakness. Facial muscles are usually spared. As the condition progresses, walking problems may occur, and over time, wheelchair use may be required. Involvement of the shoulder and arm muscles can lead to difficulty lifting the arms above the head or lifting objects. Some types of LGMD may also involve the cardiac and respiratory muscles.
[0006] There are at least 19 types of LGMD, which are classified according to the genetic defect involved. Type Inheritance Gene or chromosome LGMD1A autosomal dominant myotilin gene LGMD1B autosomal dominant lamin A / C gene LGMD1C autosomal dominant caveolin gene LGMD1D autosomal dominant chromosome 7 LGMD1E autosomal dominant desmin gene LGMD1F autosomal dominant chromosome 7 LGMD1G autosomal dominant chromosome 4 LGMD2A autosomal recessive calpain-3 gene LGMD2B autosomal recessive dysferlin gene LGMD2C Autosomal recessive inherited gamma-sarcoglycan gene LGMD2D autosomal recessive alpha-sarcoglycan gene LGMD2E autosomal recessive beta-sarcoglycan gene LGMD2F autosomal recessive delta-sarcoglycan gene LGMD2G autosomal recessive teletonin gene LGMD2H autosomal recessive TRIM32 LGMD2I autosomal recessive FKRP gene LGMD2J autosomal recessive Titin gene LGMD2K autosomal recessive POMT1 gene LGMD2L autosomal recessive Fukutin gene
[0007] Specialised testing for LGMD is currently carried out through the national diagnostic scheme, the National Commissioning Group (NCG).
[0008] Mutations in the calpain 3 gene (CAPN3) cause LGMD2A, one of the most common limb-girdle muscular dystrophies worldwide. Currently, there is no cure for this genetic disease. Previous studies have demonstrated the potential of CAPN3 gene transfer to correct the pathological signs in CAPN3-deficient mice. However, expression of CAPN3 driven by the desmin promoter resulted in cardiotoxicity [Bartoli et al., Mol. Ther., 13:250-259 (2006)]. A follow-up study examined skeletal muscle expression of the gene [Roudaut et al., Circulation, 128:1094-1104 (2013)].
[0009] Adeno-associated virus (AAV) is a replication-deficient parvovirus whose single-stranded DNA genome is approximately 4.7 kb in length and contains two 145-nucleotide inverted terminal repeats (ITRs). AAV exists in several serotypes. The nucleotide sequences of the genomes of AAV serotypes are known. For example, the complete genome of AAV-1 is provided under GenBank accession number NC_002077; the complete genome of AAV-2 is provided under GenBank accession number NC_001401 and Srivastava et al., J. Virol., 45:555-564 (1983); the complete genome of AAV-3 is provided under GenBank accession number NC_1829; the complete genome of AAV-4 is provided under GenBank accession number NC_001829; the complete genome of AAV-5 is provided under GenBank accession number AF085716; and the complete genome of AAV-6 is provided under GenBank accession number NC_00 1862, and at least portions of the AAV-7 and AAV-8 genomes are provided in GenBank accession numbers AX753246 and AX753249, respectively; the AAV-9 genome is provided in Gao et al., J. Virol., 78:6381-6388 (2004); the AAV-10 genome is provided in Mol. Ther., 13(1):67-76 (2006); and the AAV-11 genome is provided in 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 host cell chromosomal integration are contained within the AAV ITRs. Three AAV promoters (designated p5, p19, and p40 for their relative map positions) drive the expression of two AAV internal open reading frames encoding the rep and cap genes. The two rep promoters (p5 and p19) couple to the splicing of a single AAV intron (at nucleotides 2107 and 2227), resulting in the production of four rep proteins (rep78, rep68, rep52, and rep40) from the rep gene. The rep proteins possess multiple enzymatic properties that are ultimately responsible for replicating the viral genome.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 are involved 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 life cycle and genetics of AAV are reviewed in Muzyczka, Current Topics in Microbiology and Immunology, 158:97-129 (1992).
[0010] AAV possesses 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 noncytopathic, and natural infection in humans and other animals is asymptomatic. Furthermore, AAV infects many mammalian cell types, allowing it to target many different tissues in vivo. Furthermore, AAV can transduce slowly dividing and nondividing cells and persist essentially for the lifespan of these cells as transcriptionally active nuclear episomes (extrachromosomal elements). The AAV proviral genome can be inserted as cloned DNA into plasmids, making the construction of recombinant genomes feasible. Furthermore, because signals directing AAV replication and genome encapsidation are contained within the ITRs of the AAV genome, part or all of the approximately 4.3 kb internal genome (encoding replication and structural capsid proteins, rep-cap) can be replaced with foreign DNA. To generate AAV vectors, the rep and cap proteins can be provided in trans. Another important feature of AAV is that it is an extremely stable, heart-like virus. Cryopreservation of AAV is less important because it can easily withstand the conditions used to inactivate adenovirus (56°C–65°C for several hours). AAV can also be lyophilized. Finally, AAV-infected cells are not resistant to superinfection.
[0011] There remains a need in the art for treatments for LGMD2A. [Prior art documents] [Non-patent literature]
[0012] [Non-Patent Document 1] Bartoli et al., Mol. Ther., 13:250-259 (2006) Summary of the Invention [Means for solving the problem]
[0013] Provided herein are methods and products for delivering DNA encoding proteins with calpain 3 (CAPN3) activity, which can be used to treat a variety of diseases, such as LGMD2A.
[0014] A recombinant adeno-associated virus (rAAV) encoding a protein having calpain 3 (CAPN3) activity is provided. The recombinant adeno-associated virus comprises a polynucleotide comprising a nucleotide sequence encoding the protein having CAPN3 activity. The nucleotide sequence encoding the protein having CAPN3 activity is, for example, at least 90% identical to or comprises the sequence of SEQ ID NO:2.
[0015] For example, the provided rAAV comprises a polynucleotide comprising a first AAV inverted terminal repeat (ITR), a promoter, a nucleotide sequence encoding a protein having calpain 3 (CAPN3) activity, and a second AAV ITR. The nucleotide sequence encoding the protein having CAPN3 activity is, for example, at least 90% identical to SEQ ID NO:2, or at least 91% identical to SEQ ID NO:2, at least 92% identical to SEQ ID NO:2, at least 93% identical to SEQ ID NO:2, at least 94% identical to SEQ ID NO:2, at least 95% identical to SEQ ID NO:2, at least 96% identical to SEQ ID NO:2, or at least 97% identical to SEQ ID NO:2, at least 98% identical to SEQ ID NO:2, or at least 99% identical to SEQ ID NO:2. The nucleotide sequence encoding the protein having CAPN3 activity comprises the sequence of SEQ ID NO:2.
[0016] Further provided is an rAAV comprising a nucleotide sequence encoding a protein having CAPN3 activity, wherein the nucleotide sequence comprises an amino acid sequence that is at least 90% identical to SEQ ID NO:7, or at least 91% identical to SEQ ID NO:7, at least 92% identical to SEQ ID NO:7, at least 93% identical to SEQ ID NO:7, at least 94% identical to SEQ ID NO:7, at least 95% identical to SEQ ID NO:7, at least 96% identical to SEQ ID NO:7, or at least 97% identical to SEQ ID NO:7, at least 98% identical to SEQ ID NO:7, or at least 99% identical to SEQ ID NO:7. The rAAV comprises a nucleotide sequence encoding a protein having CAPN3 activity that comprises the amino acid sequence of SEQ ID NO:7.
[0017] The provided rAAV comprises a polynucleotide sequence that is at least 90% identical to SEQ ID NO: 1, or at least 91% identical to SEQ ID NO: 1, at least 92% identical to SEQ ID NO: 1, at least 93% identical to SEQ ID NO: 1, at least 94% identical to SEQ ID NO: 1, at least 95% identical to SEQ ID NO: 1, at least 96% identical to SEQ ID NO: 1, or at least 97% identical to SEQ ID NO: 1, at least 98% identical to SEQ ID NO: 1, or at least 99% identical to SEQ ID NO: 1. The rAAV comprises the polynucleotide sequence of SEQ ID NO: 1.
[0018] In one embodiment, the nucleotide sequence is under the transcriptional control of a muscle-specific promoter. For example, the muscle-specific promoter comprises one or more of a human skeletal actin gene element, a cardiac actin gene element, a desmin promoter, a skeletal alpha-actin (ASKA) promoter, a troponin I (TNNI2) promoter, a myocyte-specific enhancer-binding factor (mef)-binding element, a muscle creatine kinase (MCK) promoter, a truncated MCK (tMCK) promoter, a myosin heavy chain (MHC) promoter, a hybrid α-myosin heavy chain enhancer / MCK enhancer promoter (MHCK7) promoter, a C5-12 promoter, a mouse creatine kinase enhancer element, a skeletal fast-twitch troponin c gene element, a slow-twitch cardiac troponin c gene element, a slow-twitch troponin I gene element, a hypoxia-inducible nuclear factor (HIF) response element (HRE), a steroid-inducible element, and a glucocorticoid response element (gre). In one embodiment, the muscle-specific promoter is a tMCK promoter and comprises the sequence of SEQ ID NO: 3.
[0019] For example, in one embodiment, a rAAV comprises a polynucleotide including a first AAV inverted terminal repeat (ITR), a tMCK promoter, a nucleotide sequence encoding a protein having calpain 3 activity, and a second AAV inverted terminal repeat (ITR). The AAV ITR (e.g., the first and / or second AAV ITR) may be, for example, an AAV2 inverted terminal repeat. The capsid protein of the rAAV may include, for example, an AAV rh.74 capsid protein or an AAV9 capsid protein.
[0020] The provided rAAVs contain one or more of 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, AAV rh.74, and AAV rh.10 capsid proteins.
[0021] In another embodiment, a composition comprising any of the disclosed rAAVs is provided, e.g., the composition is formulated for intramuscular or intravenous injection.
[0022] Also provided are methods of treating limb-girdle muscular dystrophy 2A in a subject comprising administering to the subject a therapeutically effective amount of any of the disclosed rAAVs, or any composition comprising a disclosed rAAV. In any of the provided methods, the rAAV is administered by intramuscular or intravenous injection.
[0023] For example, treatment with these methods results in one or more of: (a) an increase in muscle fiber diameter, (b) a decrease in the number of lobulated muscle fibers, (c) a decrease in the number of fibers with inner nuclei, (d) a decrease in endomysial connective tissue content, (e) correction of muscle atrophy, and (f) an increase in muscle force production. Muscle fibers affected by treatment include one or more of slow-twitch oxidative (STO) muscle fibers, fast-twitch oxidative (FTO) muscle fibers, and fast-twitch glycolytic (FTG) fibers.
[0024] Additionally, in any provided method, the treatment (a) reduces the IL-12 level by at least 5%, 10%, 15%, 20%, 25%, 30%, or 35%, or 40% of the IL-12 level by 4 weeks after administration. 2 (b) a decrease in the total number of muscle fibers per 1 mm by at least 5%, 10%, 15%, 20%, or 25% by 4 weeks after administration; and (c) an increase in muscle fiber diameter by at least 5%, 10%, 15%, 20%, 25%, 30%, 35%, or 42% by 4 weeks after administration. 2 (d) a decrease in the number of STO muscle fibers per 1 mm by at least 5%, 10%, 15%, 20%, or 25% by 4 weeks after administration; (e) an increase in STO muscle fiber diameter by at least 5%, 10%, 15%, or 20% by 4 weeks after administration. 2 (f) a decrease in the number of FTO muscle fibers per 1 mm by at least 5%, 10%, 15%, or 20% by 4 weeks after administration; (g) an increase in FTO muscle fiber diameter by at least 5%, 10%, 15%, 20%, 25%, 30%, or 35% by 4 weeks after administration. 2 and (h) one or more of the following occurs by 4 weeks after administration: a decrease in the number of FTG muscle fibers per 1000 mg / kg body weight; and (h) an increase in FTG muscle fiber diameter of at least 5%, 10%, 15%, 20%, or 25%.
[0025] In any of the provided methods, the subject's myocardium displays minimal or low calpain 3 protein expressed from any of the provided rAAVs or a composition comprising any of the provided rAAVs. The muscle fibers affected by treatment with the composition include one or more of slow-twitch oxidative (STO) muscle fibers, fast-twitch oxidative (FTO) muscle fibers, and fast-twitch glycolytic (FTG) fibers.
[0026] Compositions for treating limb-girdle muscular dystrophy 2A are provided, including a therapeutically effective amount of any of the disclosed rAAVs, or compositions comprising any of the disclosed rAAVs. These compositions for treating limb-girdle muscular dystrophy 2A are formulated for administration by intramuscular or intravenous injection. Furthermore, treatment of limb-girdle muscular dystrophy 2A with any of the disclosed compositions results in one or more of: (a) an increase in muscle fiber diameter; (b) a decrease in the number of sublobular muscle fibers; (c) a decrease in the number of fibers with inner nuclei; (d) a decrease in endomysial connective tissue content; (e) correction of muscle atrophy; and (f) an increase in muscle force production. Muscle fibers affected by treatment with the compositions include one or more of slow-twitch oxidative (STO) muscle fibers, fast-twitch oxidative (FTO) muscle fibers, and fast-twitch glycolytic (FTG) fibers.
[0027] Additionally, treatment with any of the disclosed compositions for treating limb-girdle muscular dystrophy 2A can be effective in reducing (a) at least 5%, 10%, 15%, 20%, 25%, 30%, or 35%, or 40% of 1 mmHg by 4 weeks after administration. 2 (b) a decrease in the total number of muscle fibers per 1 mm by at least 5%, 10%, 15%, 20%, or 25% by 4 weeks after administration; and (c) an increase in muscle fiber diameter by at least 5%, 10%, 15%, 20%, 25%, 30%, 35%, or 42% by 4 weeks after administration. 2 (d) a decrease in the number of STO muscle fibers per 1 mm by at least 5%, 10%, 15%, 20%, or 25% by 4 weeks after administration; (e) an increase in STO muscle fiber diameter by at least 5%, 10%, 15%, or 20% by 4 weeks after administration. 2 (f) a decrease in the number of FTO muscle fibers per 1 mm by at least 5%, 10%, 15%, or 20% by 4 weeks after administration; (g) an increase in FTO muscle fiber diameter by at least 5%, 10%, 15%, 20%, 25%, 30%, or 35% by 4 weeks after administration. 2 and (h) one or more of the following occurs by 4 weeks after administration: a decrease in the number of FTG muscle fibers per 1000 mg / kg body weight; and (h) an increase in FTG muscle fiber diameter of at least 5%, 10%, 15%, 20%, or 25%.
[0028] Treatment with any of the provided compositions for treating limb-girdle muscular dystrophy 2A exhibits minimal or low calpain 3 protein expression in the subject's myocardium from any of the provided rAAVs or compositions comprising any of the provided rAAVs. The myocardium following rAAV administration exhibits little or no toxic effects, such as inflammation, necrosis, and / or regeneration.
[0029] The present disclosure also provides the use of a therapeutically effective amount of the disclosed rAAV or a composition comprising any of the disclosed rAAV for the preparation of a medicament for the treatment of limb-girdle muscular dystrophy 2 A. For example, the medicament is formulated for administration by intramuscular or intravenous injection.
[0030] In any of these uses, treatment with the agent results in one or more of: (a) an increase in muscle fiber diameter, (b) a decrease in the number of lobular muscle fibers, (c) a decrease in the number of fibers with inner nuclei, (d) a decrease in endomysial connective tissue content, (e) correction of muscle atrophy, and (f) an increase in muscle force production. The muscle fibers affected by treatment with the agent are one or more of slow-twitch oxidative (STO) muscle fibers, fast-twitch oxidative (FTO) muscle fibers, and fast-twitch glycolytic (FTG) fibers.
[0031] Furthermore, in a therapeutically effective amount of any of the disclosed rAAVs or any of the provided composition uses, treatment with the agent results in (a) at least 5%, 10%, 15%, 20%, 25%, 30%, or 35%, or 40% reduction in 1 mm HCV by 4 weeks after administration. 2 (b) a decrease in the total number of muscle fibers per 1 mm by at least 5%, 10%, 15%, 20%, or 25% by 4 weeks after administration; and (c) an increase in muscle fiber diameter by at least 5%, 10%, 15%, 20%, 25%, 30%, 35%, or 42% by 4 weeks after administration. 2 (d) a decrease in the number of STO muscle fibers per 1 mm by at least 5%, 10%, 15%, 20%, or 25% by 4 weeks after administration; (e) an increase in STO muscle fiber diameter by at least 5%, 10%, 15%, or 20% by 4 weeks after administration. 2(f) a decrease in the number of FTO muscle fibers per 1 mm by at least 5%, 10%, 15%, or 20% by 4 weeks after administration; (g) an increase in FTO muscle fiber diameter by at least 5%, 10%, 15%, 20%, 25%, 30%, or 35% by 4 weeks after administration. 2 and (h) one or more of the following occurs by 4 weeks after administration: a decrease in the number of FTG muscle fibers per 1000 mg / kg body weight; and (h) an increase in FTG muscle fiber diameter of at least 5%, 10%, 15%, 20%, or 25%.
[0032] Use of any of the disclosed rAAVs or therapeutically effective amounts of the provided compositions results in the subject's myocardium exhibiting no, minimal, or low levels of calpain 3 protein expressed from the disclosed or disclosed compositions after treatment with the agent. The present invention provides, for example, the following items. (Item 1) A recombinant adeno-associated virus (rAAV) comprising a polynucleotide comprising a first AAV inverted terminal repeat (ITR), a promoter, a nucleotide sequence encoding a protein having calpain 3 (CAPN3) activity, and a second AAV ITR. (Item 2) 2. The rAAV of item 1, wherein the nucleotide sequence encoding the protein having CAPN3 activity is at least 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98% or 99% identical to SEQ ID NO:2. (Item 3) 3. The rAAV of item 1 or 2, wherein the nucleotide sequence encoding the protein having CAPN3 activity is at least 95% identical to SEQ ID NO:2. (Item 4) 4. The rAAV of any one of items 1 to 3, wherein the nucleotide sequence encoding the protein having CAPN3 activity comprises the sequence of SEQ ID NO: 2. (Item 5) 5. The rAAV of any one of items 1 to 4, wherein the protein having CAPN3 activity comprises an amino acid sequence that is at least 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, or 99% identical to SEQ ID NO: 7. (Item 6) 5. The rAAV of any one of items 1 to 4, wherein the protein having CAPN3 activity comprises an amino acid sequence that is at least 95%, 96%, 97%, 98%, or 99% identical to SEQ ID NO: 7. (Item 7) 5. The rAAV according to any one of items 1 to 4, wherein the protein having CAPN3 activity comprises the amino acid sequence of SEQ ID NO: 7. (Item 8) 8. The rAAV of any one of items 1 to 7, wherein the polynucleotide comprises a sequence that is at least 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, or 99% identical to SEQ ID NO:1. (Item 9) 8. The rAAV of any one of items 1 to 7, wherein the polynucleotide comprises a sequence that is at least 95% identical to SEQ ID NO: 1. (Item 10) 8. The rAAV of any one of items 1 to 7, wherein the polynucleotide comprises the sequence of SEQ ID NO: 1. (Item 11) 11. The rAAV of any one of items 1 to 10, wherein the promoter is a muscle-specific promoter. (Item 12) 12. The rAAV of item 11, wherein the muscle-specific promoter comprises one or more of a human skeletal actin gene element, a cardiac actin gene element, a desmin promoter, a skeletal alpha-actin (ASKA) promoter, a troponin I (TNNI2) promoter, a myocyte-specific enhancer-binding factor (mef)-binding element, a muscle creatine kinase (MCK) promoter, a truncated MCK (tMCK) promoter, a myosin heavy chain (MHC) promoter, a hybrid α-myosin heavy chain enhancer / MCK enhancer promoter (MHCK7) promoter, a C5-12 promoter, a mouse creatine kinase enhancer element, a skeletal fast-twitch troponin c gene element, a slow-twitch cardiac troponin c gene element, a slow-twitch troponin I gene element, a hypoxia-inducible nuclear factor (HIF) response element (HRE), a steroid-inducible element, and a glucocorticoid response element (gre). (Item 13) 12. The rAAV of item 11, wherein the muscle-specific promoter is an MCK promoter, a tMCK promoter, or an MHCK7 promoter. (Item 14) 12. The rAAV of item 11, wherein the muscle-specific promoter is a truncated MCK promoter comprising the nucleotide sequence of SEQ ID NO:3. (Item 15) 15. The rAAV of any one of items 1 to 14, wherein the first and second AAV inverted terminal sequences are AAV2 inverted terminal sequences. (Item 16) 16. The rAAV of any one of items 1 to 15, wherein the rAAV comprises one or more of 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, AAV rh.74, and AAV rh.10 capsid proteins. (Item 17) 17. The rAAV of any one of items 16, wherein the rAAV comprises a rh.74 capsid protein or an AAV9 capsid protein. (Item 18) A composition comprising the rAAV of any one of items 1 to 17. (Item 19) A method for treating limb-girdle muscular dystrophy 2A in a subject, comprising administering to the subject a therapeutically effective amount of the rAAV described in any one of items 1 to 17 or the composition described in item 18. (Item 20) The treatment (a) Increased muscle fiber diameter, (b) a decrease in the number of lobular muscle fibers; (c) a decrease in the number of fibers with an inner nucleus; (d) decreased endomysial connective tissue content; (e) correction of muscle atrophy, and (f) increased muscle force production. (Item 21) 21. The method of claim 20, wherein the muscle fibers comprise one or more of slow-twitch oxidative (STO) muscle fibers, fast-twitch oxidative (FTO) muscle fibers, and fast-twitch glycolytic (FTG) fibers. (Item 22) The treatment (a) By 4 weeks after administration, at least 5%, 10%, 15%, 20%, 25%, 30%, 35%, or 40% of 1 mm 2 Decreased total number of muscle fibers per (b) an increase in muscle fiber diameter of at least 5%, 10%, 15%, 20%, or 25% by 4 weeks after administration (c) At least 5%, 10%, 15%, 20%, 25%, 30%, 35%, or 42% of 1 mm by 4 weeks after administration 2 Decreased number of STO muscle fibers per (d) An increase in STO muscle fiber diameter of at least 5%, 10%, 15%, 20%, or 25% by 4 weeks after administration. (e) At least 5%, 10%, 15%, or 20% of the 1 mm 2 Decreased number of FTO muscle fibers per (f) An increase in FTO muscle fiber diameter of at least 5%, 10%, 15%, or 20% by 4 weeks after administration. (g) At least 5%, 10%, 15%, 20%, 25%, 30%, or 35% of 1 mm by 4 weeks after administration 2 A decrease in the number of FTG muscle fibers per (h) The method of any one of items 19 to 21, wherein by 4 weeks after administration, one or more of an increase in FTG muscle fiber diameter of at least 5%, 10%, 15%, 20%, or 25% occurs. (Item 23) 23. The method of any one of items 19 to 22, wherein the administration is by intramuscular injection or intravenous injection. (Item 24) 24. The method of any one of items 19 to 23, wherein the subject's myocardium exhibits minimal or low calpain 3 protein expressed from the rAAV of any one of items 1 to 17 or the composition of item 18. (Item 25) A composition for treating limb-girdle muscular dystrophy 2A, comprising a therapeutically effective amount of rAAV according to any one of items 1 to 17 or the composition according to item 18. (Item 26) Said treatment with said composition may (a) Increased muscle fiber diameter, (b) a decrease in the number of lobular muscle fibers; (c) a decrease in the number of fibers with an inner nucleus; (d) decreased endomysial connective tissue content; (e) correction of muscle atrophy, and (f) the composition of claim 25, wherein one or more of the following occurs: (i) increased muscle force production; (Item 27) 27. The composition of claim 26, wherein the muscle fibers comprise one or more of slow-twitch oxidative (STO) muscle fibers, fast-twitch oxidative (FTO) muscle fibers, and fast-twitch glycolytic (FTG) fibers. (Item 28) Said treatment with said composition may (a) By 4 weeks after administration, at least 5%, 10%, 15%, 20%, 25%, 30%, 35%, or 40% of 1 mm 2 Decreased total number of muscle fibers per (b) an increase in muscle fiber diameter of at least 5%, 10%, 15%, 20%, or 25% by 4 weeks after administration (c) At least 5%, 10%, 15%, 20%, 25%, 30%, 35%, or 42% of 1 mm by 4 weeks after administration 2 Decreased number of STO muscle fibers per (d) An increase in STO muscle fiber diameter of at least 5%, 10%, 15%, 20%, or 25% by 4 weeks after administration. (e) At least 5%, 10%, 15%, or 20% of the 1 mm 2 Decreased number of FTO muscle fibers per (f) An increase in FTO muscle fiber diameter of at least 5%, 10%, 15%, or 20% by 4 weeks after administration. (g) At least 5%, 10%, 15%, 20%, 25%, 30%, or 35% of 1 mm by 4 weeks after administration 2 A decrease in the number of FTG muscle fibers per (h) The composition of any one of items 25 to 27, wherein the composition results in one or more of an increase in FTG muscle fiber diameter of at least 5%, 10%, 15%, 20%, or 25% by 4 weeks after administration. (Item 29) 29. The composition of any one of items 25 to 28, wherein the composition is formulated for administration by intramuscular or intravenous injection. (Item 30) 29. The composition of any one of items 25 to 28, wherein after treatment with the composition, the myocardium of the subject exhibits minimal or low calpain 3 protein expressed from the rAAV of any one of items 1 to 17 or the composition of item 18. (Item 31) Use of a therapeutically effective amount of rAAV according to any one of items 1 to 17 or a composition according to item 18 for the preparation of a medicament for the treatment of limb-girdle muscular dystrophy 2A. (Item 32) said treatment with said agent (a) Increased muscle fiber diameter, (b) a decrease in the number of lobular muscle fibers; (c) a decrease in the number of fibers with an inner nucleus; (d) decreased endomysial connective tissue content; (e) correction of muscle atrophy, and (f) the use according to item 31, resulting in one or more of the following: increased muscle force production; (Item 33) 33. The use of item 32, wherein the muscle fibers comprise one or more of slow-twitch oxidative (STO) muscle fibers, fast-twitch oxidative (FTO) muscle fibers, and fast-twitch glycolytic (FTG) fibers. (Item 34) said treatment with said agent (a) By 4 weeks after administration, at least 5%, 10%, 15%, 20%, 25%, 30%, 35%, or 40% of 1 mm 2 Decreased total number of muscle fibers per (b) an increase in muscle fiber diameter of at least 5%, 10%, 15%, 20%, or 25% by 4 weeks after administration (c) At least 5%, 10%, 15%, 20%, 25%, 30%, 35%, or 42% of 1 mm by 4 weeks after administration 2 Decreased number of STO muscle fibers per (d) An increase in STO muscle fiber diameter of at least 5%, 10%, 15%, 20%, or 25% by 4 weeks after administration. (e) At least 5%, 10%, 15%, or 20% of the 1 mm 2 Decreased number of FTO muscle fibers per (f) An increase in FTO muscle fiber diameter of at least 5%, 10%, 15%, or 20% by 4 weeks after administration. (g) At least 5%, 10%, 15%, 20%, 25%, 30%, or 35% of 1 mm by 4 weeks after administration 2 A decrease in the number of FTG muscle fibers per (h) The use of any one of items 31 to 33, wherein by 4 weeks after administration, one or more of the following increases in FTG muscle fiber diameter are achieved: at least 5%, 10%, 15%, 20%, or 25%. (Item 35) 35. The use according to any one of items 31 to 34, wherein the medicament is formulated for administration by intramuscular or intravenous injection. (Item 36) 36. The use of any one of items 31 to 35, wherein after treatment with the agent, the myocardium of the subject exhibits minimal or low calpain 3 protein expressed from the rAAV of any one of items 1 to 17 or the composition of item 18. [Brief explanation of the drawings]
[0033] [Figure 1]Figures 1A-1F show that gene therapy rescued regenerative defects in CAPN3-KO muscle. A schematic diagram of the single-stranded AAV9.CAPN3 rAAV is shown in Figure 1A. Between the 5' and 3' single-stranded ITRs (inverted terminal repeats), the muscle creatine kinase (MCK) promoter (563 bp) drives expression of the CAPN3 open reading frame (2466 bp). The polyadenylation site (polyA, 53 bp) is also labeled. First, the tibialis anterior (TA) from CAPN3-KO mice was injected with CTX, and two weeks later, 1 x 10 vg of AAV.CAPN3 was injected into the left TA (Figure 1B) or PBS was injected into the right TA (Figure 1C). Four weeks after rAAV injection, the muscle diameter increased, and lobulated fibers were fewer compared to untreated CAPN3-KO muscle. In Figure 1D, lobulated fibers with a pattern of subsarcolemmal organelles, mitochondrial distribution (arrows), suggest partial myotube fusion in untreated CAPN3-KO muscle at higher magnification. For B–D, the scale bar = 20 µm. In Figure 1E, myofiber size distribution histograms (mean ± SEM / mm area from three mice in each group) of treated and untreated TA muscles from CAPN3-KO mice show that treatment shifts to larger diameter fibers and increases the small-diameter subpopulation present in the untreated group. In Figure 1F, slow-twitch oxidative (STO) fiber size distribution histograms show a large number of small-diameter fibers (e.g., fiber diameters below 30 µm) in untreated CAPN3-KO muscle compared to treated CAPN3-KO muscle.
[0034] [Figure 2] FIG. 2 shows a schematic diagram of the rAAV of the present disclosure, designated "AAVrh.74.tMCK.CAPN3."
[0035] [Figure 3]Figures 3A-3B provide Western blot (Panel A) and RT-PCR (Panel B) data following administration of AAVrh.74.tMCK.CAPN3 by intramuscular (1E11 vg) and systemic (3E12 vg and 6E12 vg) injections. The data were compared to normal human muscle lysates (60% of the total protein gel loading compared to mouse lysates) and untreated CAPN3-KO mice.
[0036] [Figure 4] Figure 4 provides representative images of SDH-stained tissue sections of CAPN3 KO (injected AAV.hCAPN3 gene and untreated) and wild-type (WT) TA muscles. In TA muscles from mice treated with AAVrh.74.tMCK.CAPN3, the mean fiber sizes of slow-twitch oxidative (STO, dark), fast-twitch oxidative (FTO, intermediate), and fast-twitch glycolytic (FTG, light) fibers appeared normalized to WT values. The sizes of the fiber types with and without treatment are shown in Table 4.
[0037] [Figure 5] Figure 5 provides CAPN3 protein expression levels in WT (Z18-14) and TA muscles from the low-dose cohort (3E12 vg, Z18-13, Z18-15, Z18-16, Z18-17, Z18-18), as well as gastrocnemius, cardiac, quadriceps, tibialis anterior (TA), and triceps muscles from the high-dose cohort (6E12 vg, Z18-20, Z18-21, Z18-23, Z18-24, Z18-22) (UT: untreated).
[0038] [Figure 6] Figure 6 provides AAVrh74.tMCK.hCAPN3 vector copies / µg genomic DNA in the 6E12 vector genome systemic high-dose cohort in the following muscles: quadriceps (quad), heart, tibialis anterior (TA), gastrocnemius (gastroc), triceps, and liver.
[0039] [Figure 7]Figure 7 provides the mean fiber diameters of slow-twitch oxidative (STO, dark), fast-twitch oxidative (FTO, intermediate), and fast-twitch glycolytic (FTG, light) fibers from the left TA muscle after systemic administration of AAVrh.74.tMCK.CAPN3 at 3E12 and 6E12 vg. Data from untreated CAPN3KO and WT mice were included.
[0040] [Figure 8A] Figure 8 provides data from run-to-exhaustion studies. Figure 8A provides data from a low-dose cohort administered 3E12 vg of AAVrh.74.tMCK.CAPN3 and a high-dose cohort administered 6E12 vg of AAVrh.74.tMCK.CAPN3 4 weeks after systemic administration. Treated CAPN3 KO mice performed better in the run-to-exhaustion study compared to untreated mice. Figure 8B provides data from the high-dose cohort, where mice (n = 5) were tested 20-24 weeks after systemic administration of 6E12 vg of AAVrh.74.tMCK.CAPN3 and untreated mice (n = 16). [Figure 8B] Same as above.
[0041] [Figure 9] Figure 9 provides hematoxylin and eosin (H&E) stained fresh frozen sections of the left ventricle from representative heart specimens of CAPN3 KO mice 4 weeks after systemic injection of 3E12 vg and 6E12 vg doses of the AAVrh7.4.tMCK.hCAPN3 vector, along with matched untreated controls.
[0042] [Figure 10] Figure 10 provides a Western blot analysis of cardiac tissue from the high-dose cohort (administered 6E12 vg of AAVrh7.4.tMCK.hCAPN3). This analysis showed no or minimal detectable calpain 3 protein in the hearts of treated animals. Animal identification numbers Z18-19 and 22 represent lysates from untreated CAPN3 KO mice. DETAILED DESCRIPTION OF THE INVENTION
[0043] The recombinant AAV (rAAV) provided herein comprises a polynucleotide comprising a first AAV inverted terminal repeat (ITR), a promoter, a nucleotide sequence encoding a protein having calpain 3 (CAPN3) activity, and a second AAV ITR. In one embodiment, the nucleotide encodes CAPN3. Embodiments include, but are not limited to, rAAVs comprising a nucleotide sequence encoding CAPN3 or a protein having CAPN3 activity, wherein the nucleotide sequence is at least 65%, at least 70%, at least 75%, at least 80%, 81%, 82%, 83%, 84%, 85%, 86%, 87%, 88%, or 89% identical to the sequence of SEQ ID NO:2. Additional embodiments include, but are not limited to, rAAVs comprising a nucleotide sequence at least 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, or 99% identical to the nucleotide sequence set forth in SEQ ID NO:2 and encoding a polypeptide having CAPN3 proteolytic activity. CAPN3 proteolytic activity is understood in the art as the activity of proteolyzing potential substrates such as fodrin and HSP60, and / or the activity of autolytic self-cleavage. Therefore, as used herein, the term "protein having calpain 3 (CAPN3) activity" refers to a protein having CAPN3 proteolytic activity, including, but not limited to, the activity of proteolytic substrates such as fodrin and HSP60, and / or the activity of autolytic self-cleavage. A protein having CAPN3 activity can have full or partial activity of a full-length calpain 3 protein. In one embodiment, a protein having CAPN3 activity has at least 60%, 70%, 80%, 90%, 95%, or 99% of the activity of a full-length CAPN3 protein. In another embodiment, a protein having CAPN3 activity comprises an amino acid sequence at least 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, or 99% identical to SEQ ID NO:7.
[0044] In some embodiments, the nucleotide sequence encoding the protein having CAPN3 activity comprises the sequence of SEQ ID NO: 2. In another embodiment, the protein having CAPN3 activity comprises an amino acid sequence at least 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, or 99% identical to SEQ ID NO: 7. In another embodiment, the protein having CAPN3 activity comprises the amino acid sequence of SEQ ID NO: 7. In another embodiment, the polynucleotide of the rAAV comprises a sequence at least 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, or 99% identical to SEQ ID NO: 1. In another embodiment, the polynucleotide comprises a sequence at least 95% identical to SEQ ID NO: 1. In one embodiment, the polynucleotide comprises the sequence of SEQ ID NO: 1.
[0045] In another aspect, a recombinant AAV is described herein, which comprises a nucleotide sequence encoding a protein having CAPN3 activity and / or comprising a nucleotide sequence that hybridizes under stringent conditions to the nucleic acid sequence of SEQ ID NO: 2 or its complement. The term "stringent" refers to conditions generally understood to be stringent in the art. Hybridization stringency is determined primarily by temperature, ionic strength, and the concentration of denaturing agents such as formamide. Examples of stringent conditions for hybridization and washing are 0.015 M sodium chloride, 0.0015 M sodium citrate (65°C-68°C) or 0.015 M sodium chloride, 0.0015 M sodium citrate, and 50% formamide (42°C). See Sambrook et al., Molecular Cloning: A Laboratory Manual, 2nd Ed., Cold Spring Harbor Laboratory, (Cold Spring Harbor, NY 1989).
[0046] In the recombinant genomes described herein, the CAPN3 polynucleotide is operably linked to transcriptional control elements (including, but not limited to, promoters, enhancers, and / or introns), particularly transcriptional control elements that function in the target cell of interest. For example, various embodiments provide methods for transducing muscle cells using muscle-specific transcriptional control elements, including, but not limited to, those derived from the myosin gene family, such as the actin and myoD gene families [see Weintraub et al., Science, 251:761-766 (1991)], the muscle cell-specific enhancer-binding factor MEF-2 [Cserjesi and Olson, Mol Cell Biol, 11:4854-4862 (1991)], a control element derived from the human skeletal actin gene [Muscat et al., Mol Cell Biol, 7:4089-4099 (1987)], a muscle creatine kinase sequence element [Johnson et al., Mol Cell Biol, 7:4099-4099 (1987)], and the like. Biol, 9:3393-3399 (1989)], and regulatory elements derived from the mouse creatine kinase enhancer (mCK) element, skeletal fast-twitch troponin C gene, slow-twitch cardiac troponin C gene, and slow-twitch troponin I gene: hypoxia-inducible nuclear factor [Semenza et al., Proc. Natl. Acad. Sci. USA, 88:5680-5684 (1991)], steroid-inducible elements and promoters containing glucocorticoid response elements (GREs) [Mader and White, Proc. Natl. Acad. Sci. USA, 90:5603-5607 (1993)], tMCK promoter [Wang et al., Gene Therapy, 15:1489-1499 (2008)], CK6 promoter [Wang et al., supra], and other regulatory elements. In one embodiment, a nucleotide sequence encoding a protein having calpain 3 (CAPN3) activity is operably linked to a muscle-specific promoter.In one embodiment, the muscle-specific promoter comprises one or more of a human skeletal actin gene element, a cardiac actin gene element, a desmin promoter, a skeletal alpha-actin (ASKA) promoter, a troponin I (TNNI2) promoter, a myocyte-specific enhancer-binding factor (mef)-binding element, a muscle creatine kinase (MCK) promoter, a truncated MCK (tMCK) promoter, a myosin heavy chain (MHC) promoter, a hybrid α-myosin heavy chain enhancer / MCK enhancer promoter (MHCK7) promoter, a C5-12 promoter, a mouse creatine kinase enhancer element, a skeletal fast-twitch troponin c gene element, a slow-twitch cardiac troponin c gene element, a slow-twitch troponin i gene element, a hypoxia-inducible nuclear factor (HIF) response element (HRE), a steroid-inducible element, and a glucocorticoid response element (gre). In another embodiment, the muscle-specific promoter is an MCK promoter, a tMCK promoter, or an MHCK7 promoter. In some embodiments, the muscle-specific promoter is tMCK and comprises the nucleotide sequence of SEQ ID NO:3.
[0047] Previous studies have shown that expression of CAPN3 driven by the desmin promoter results in cardiotoxicity. In follow-up studies, selective skeletal muscle expression of the gene abolished cardiac defects. The AAV genome disclosed herein, containing a muscle-specific promoter, tMCK, restricts CAPN3 expression to skeletal muscle. Four weeks after gene injection, systemic delivery of 6E12 vg of virus (twice the proposed initial high dose) did not result in cardiac toxicity.
[0048] The rAAV genomes described herein lack AAV rep and cap DNA. The provided rAAV genomes include the above-described CAPN3 polynucleotide and one or more AAV ITRs flanking the polynucleotide. The AAV DNA of the rAAV genome may be of any AAV serotype from which the recombinant virus may 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, AAV rh.74, and AAV rh.10. Other types of rAAV variants, such as rAAVs with capsid mutations, are also contemplated. See, e.g., Marsic et al., Molecular Therapy, 22(11):1900-1909 (2014). As noted in the Background section above, 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 can be used.
[0049] The provided DNA plasmid contains the rAAV genome. The DNA plasmid is transferred into a cell permissive for infection with an AAV helper virus (including, but not limited to, adenovirus, E1-deleted adenovirus, or herpesvirus), allowing the rAAV genome to assemble into infectious viral particles. Techniques for producing rAAV particles in which the packaged AAV genome, rep and cap genes, and helper virus functions are provided in the cell are standard in the art. rAAV production requires the presence of the following components within a single cell (referred to herein as a packaging cell): the rAAV genome, AAV rep and cap genes separated from (i.e., absent from) the rAAV genome, and helper virus functions. The AAV ITRs and rep and cap genes may be derived from any AAV serotype from which recombinant virus may arise or be derived from a different AAV serotype than 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, AAV rh.10, and AAV rh.74. The production of pseudotyped rAAV is disclosed, for example, in WO 01 / 83692, which is incorporated herein by reference in its entirety. Thus, in one embodiment, the rAAV comprises one or more of 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, AAV rh.74, or AAV rh.10 capsid proteins. In another embodiment, the rAAV comprises AAV rh.74 capsid proteins or AAV9 capsid proteins.
[0050] The method for generating packaging cells involves creating a cell line that stably expresses all components necessary for AAV particle production. For example, a plasmid (or multiple plasmids) containing a rAAV genome lacking the AAV rep and cap genes, AAV rep and cap genes isolated 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., Proc. Natl. Acad. S6. USA, 79:2077-2081 (1982)], the addition of a synthetic linker containing a restriction endonuclease cleavage site [Laughlin et al., Gene, 23:65-73 (1983)], or direct blunt-end ligation [Senapathy & Carter, J. Biol. Chem., 259:4661-4666 (1984)]. The packaging cell line is then infected with a helper virus such as adenovirus. The advantages of this method are that the cells are selectable and it is suitable for large-scale production of rAAV. Another example of a suitable method uses adenovirus or baculovirus, rather than a plasmid, to introduce the rAAV genome and / or the rep and cap genes into packaging cells.
[0051] General principles of rAAV production are reviewed, for example, in Carter, Current Opinions in Biotechnology, 1533-1539 (1992); and Muzyczka, Curr. Topics in Microbial and Immunol., 158:97-129 (1992). Various approaches have been described, for example, by 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); Lebkowski et al., Mol. Cell. Biol., 7:349 (1988); Samulski et al., J. Virol., 63:3822-3828 (1989); U.S. Patent No. 5,173,414; WO 95 / 13365 and corresponding U.S. Patent No. 5,658,776; WO 95 / 13392;WO96 / 17947;PCT / US98 / 18600;WO97 / 09441(PCT / US96 / 14423);WO97 / 08298(PCT / US96 / 13872);WO97 / 21825(PCT / US96 / 20777);WO 97 / 06243(PCT / FR96 / 01064);WO99 / 11764;Perrin et al., Vaccine, 13:1244-1250(1995);Paul et al., Human Gene Therapy, 4:609-615(1993);Clark et al., Gene Therapy 3:1124-1132 (1996); U.S. Patent No. 5,786,211, U.S. Patent No. 5,871,982, U.S. Patent No. 6,258,595, and McCarty, Mol. Ther., 16(10):1648-1656 (2008). The foregoing documents are incorporated herein by reference in their entireties, with particular emphasis being placed on those sections of the document relating to the production of rAAV.
[0052] Thus, packaging cells that produce infectious rAAV are provided. In one embodiment, the packaging cells may be stably transformed cancer cells such as HeLa cells and PerC.6 cells (homologous 293 lineage). In another embodiment, the packaging cells are non-transformed cancer cells such as low-passage 293 cells (human embryonic kidney cells transformed with adenovirus E1), MRC-5 cells (human embryonic fibroblasts), WI-38 cells (human embryonic fibroblasts), Vero cells (monkey kidney cells), and FRhL-2 cells (rhesus monkey lung cells).
[0053] Thus, the recombinant AAV provided herein is a replication-deficient, infectious, encapsidated viral particle comprising a recombinant genome. Examples include, but are not limited to, a genome comprising the sequence set forth in SEQ ID NO: 1 encoding CAPN3, a rAAV comprising a genome essentially consisting of the sequence set forth in SEQ ID NO: 1 encoding CAPN3, and a rAAV (designated "AAVrh.74.tMCK.CAPN3") comprising a genome consisting of the sequence set forth in SEQ ID NO: 1 encoding CAPN3. The genome of the rAAV lacks AAVrep and capDNA, i.e., there is no AAVrep or capDNA between the ITRs of the rAAV genome.
[0054] The sequence of the AAVrh.74.tMCK.CAPN3 sequence is set forth in SEQ ID NO:1, with the AAV2 ITR spanning nucleotides 1-128, the tMCK promoter spanning nucleotides 165-884, the chimeric intron spanning nucleotides 937-1069, the Kozak sequence spanning nucleotides 1101-1106, the CAPN3 polynucleotide spanning nucleotides 1107-3572, the polyA signal spanning nucleotides 3581-3780, and the second AAV2 ITR spanning nucleotides 3850-3977.
[0055] rAAV may be purified by methods known 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 those disclosed 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.
[0056] In another embodiment, a composition comprising the rAAV described herein is provided. The provided composition comprises the rAAV in a pharmaceutically acceptable carrier. The composition may also contain other components, such as diluents and adjuvants. Acceptable carriers, diluents, and adjuvants are preferably non-toxic to recipients and inert at the dosages and concentrations used, and include phosphate, citrate, or other organic acids; antioxidants such as ascorbic acid; proteins such as low molecular weight polypeptides, 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 non-ionic surfactants such as Tween, Pluronics, or polyethylene glycol (PEG).
[0057] The titer of the rAAV administered in the methods described herein can vary depending, for example, on the particular rAAV, the mode of administration, the therapeutic 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. 10 , about 1×10 11 , about 1×10 12 , about 1×10 13 , about 1×10 14、or more DNase-resistant particles (DRP). Doses may also be expressed in units of viral genomes (vg). Exemplary doses disclosed include 1E11 vg, 3E12 vg, and 6E12 vg.
[0058] Contemplated herein are methods for transducing target cells, such as muscle cells, with rAAV in vivo or in vitro. In vivo methods include administering an effective dose or effective repeated doses of a composition comprising the rAAV provided herein to a subject (e.g., an animal, including, but not limited to, a human patient) in need thereof. When administered before disease / disease onset, the administration is prophylactic. When administered after disease / disease onset, the administration is therapeutic. An effective amount is an amount that alleviates (eliminates or reduces) at least one symptom associated with the disorder / disease being treated, delays or prevents progression to the disorder / disease state, delays or prevents progression of the disorder / disease state, reduces the extent of the disease, results in remission (partial or total) of the disease, and / or prolongs survival. Compared to a subject before treatment, treatment herein results in one or more of an increase in muscle fiber diameter, a decrease in the number of lobulated muscle fibers, a decrease in the number of fibers with inner nuclei, a decrease in endomysial connective tissue content, correction of muscle atrophy, and an increase in muscle force production. In one embodiment, the muscle fibers comprise one or more of slow-twitch oxidative (STO) muscle fibers, fast-twitch oxidative (FTO) muscle fibers, and fast-twitch glycolytic (FTG) fibers. In one embodiment, the treatment results in: (a) at least 5%, 10%, 15%, 20%, 25%, 30%, or 35%, or 40% reduction in 1 mm β-glucan by 4 weeks after administration; 2 (b) a decrease in the total number of muscle fibers per 1 mm by at least 5%, 10%, 15%, 20%, or 25% by 4 weeks after administration; and (c) an increase in muscle fiber diameter by at least 5%, 10%, 15%, 20%, 25%, 30%, 35%, or 42% by 4 weeks after administration. 2 (d) a decrease in the number of STO muscle fibers per 1 mm by at least 5%, 10%, 15%, 20%, or 25% by 4 weeks after administration; (e) an increase in STO muscle fiber diameter by at least 5%, 10%, 15%, or 20% by 4 weeks after administration. 2(f) a decrease in the number of FTO muscle fibers per 1 mm by at least 5%, 10%, 15%, or 20% by 4 weeks after administration; (g) an increase in FTO muscle fiber diameter by at least 5%, 10%, 15%, 20%, 25%, 30%, or 35% by 4 weeks after administration. 2 and (h) one or more of (i) a decrease in the number of FTG myofibers per 1000 muscle cells, and (ii) an increase in FTG myofiber diameter of at least 5%, 10%, 15%, 20%, or 25% by 4 weeks after administration. In one embodiment, the methods of the present disclosure result in no, minimal, or low calpain 3 protein expression from the rAAV in the myocardium of a subject administered the rAAV.
[0059] Assays for determining these results are understood in the art and / or are described in the Examples herein. The methods described herein are contemplated for use in preventing or treating disorders / diseases (e.g., muscular dystrophy) caused by defects in CAPN3 activity or defective expression of CAPN3. LGMD2A is an example of a disease contemplated for prevention or treatment by the methods.
[0060] Combination therapy is also contemplated. As used herein, combination includes both simultaneous or sequential treatment. Combining the methods described herein with standard medical treatments (e.g., corticosteroids) is specifically contemplated, as is combination with novel treatments.
[0061] Administration of an effective dose of the composition can be via standard routes in the art, including, but not limited to, intramuscular, parenteral, intravenous, intrathecal, oral, buccal, nasal, pulmonary, intracranial, intraosseous, intraocular, rectal, or vaginal. The administration route(s) and serotype(s) of the AAV components of the rAAV (particularly the AAV ITRs and capsid proteins) can be selected and / or adapted by those skilled in the art, taking into account the infection and / or disease state to be treated and the target cell / tissue(s) that will express CAPN3. In one embodiment, the rAAV is administered by intramuscular, intravenous, intraperitoneal, subcutaneous, epicutaneous, intravaginal, intradermal, or intranasal administration. In another embodiment, the rAAV is administered by intramuscular or intravenous injection.
[0062] In particular, the actual administration of the rAAV described herein can be achieved using any physical method that delivers the rAAV recombinant vector to the target tissue of an animal. Administration includes, but is not limited to, direct injection into muscle, the bloodstream, and / or the liver. It has been demonstrated that simply resuspending rAAV in phosphate-buffered saline is 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. The capsid protein of rAAV may be modified to target the rAAV to a specific target tissue, such as muscle. See, for example, WO 02 / 053703, the disclosure of which is incorporated herein by reference. Pharmaceutical compositions can be prepared as injectable formulations or as topical formulations delivered to muscle via transdermal delivery. Numerous formulations for both intramuscular injection and transdermal delivery have been previously developed and can be used in the practice of this method. The rAAV can be used with any pharmaceutically acceptable carrier to facilitate administration and handling.
[0063] For intramuscular injection, solutions in adjuvants such as sesame or peanut oil, or aqueous propylene glycol, as well as sterile aqueous solutions, can be used. Such aqueous solutions can be buffered, if desired, and the liquid diluent can first be rendered isotonic with saline or glucose. Solutions of rAAV as a free acid (DNA contains acidic phosphate groups) or pharmacologically acceptable salts can be prepared in water suitably mixed with a surfactant, such as hydroxpropylcellulose. Dispersions of rAAV can also be prepared in glycerol, liquid polyethylene glycols, and mixtures thereof, and oils. Under ordinary conditions of storage and use, these preparations contain a preservative 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.
[0064] Pharmaceutical forms suitable for systemic (e.g., intravenous) 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 easy syringability exists. It must be stable under the conditions of manufacture and storage and 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, and the like), suitable mixtures thereof, and vegetable oils. Proper fluidity can be maintained, for example, by the use of a coating such as lecithin, by the maintenance of the required particle size in the case of dispersions, and by the use of surfactants. Prevention of the action of microorganisms is provided by various antibacterial and antifungal agents, for example, parabens, chlorobutanol, phenol, sorbic acid, thimerosal, and the like. In many cases, it is preferable to include isotonic agents, for example, sugars 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.
[0065] Sterile injectable solutions are prepared by mixing the required amount of rAAV in an appropriate solvent with various other ingredients enumerated above, as required, followed by filter sterilization. Generally, dispersions are prepared by incorporating the sterilized active ingredient into a sterile vehicle containing the basic dispersion medium and the required other ingredients from those enumerated above. In the case of sterile powders for the preparation of sterile injectable solutions, in some embodiments, preparation methods include vacuum drying and / or freeze-drying techniques, each of which can yield a powder of the active ingredient plus any additional desired ingredient from a previously filter-sterilized solution thereof.
[0066] Transduction using rAAV may also be performed in vitro. In one embodiment, 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 if these cells do not elicit an inappropriate immune response in the subject.
[0067] Suitable methods for transducing and reintroducing transduced cells into a subject are known in the art. In one embodiment, cells can be transduced in vitro, for example, by combining rAAV with muscle cells in an appropriate medium and screening those cells for DNA of interest using conventional techniques such as Southern blot and / or PCR, or using a selectable marker. The transduced cells can then be formulated into a pharmaceutical composition, and the composition can be introduced into the subject by a variety of techniques, including, for example, intramuscular, intravenous, subcutaneous, and intraperitoneal injection, or injection into smooth muscle and cardiac muscle, for example, using a catheter.
[0068] Transduction of cells with rAAV according to the methods described herein results in the persistent expression of CAPN3 or a protein having CAPN3 activity. Accordingly, methods are provided for administering rAAV expressing CAPN3 or a protein having CAPN3 activity to a subject, preferably a human. Subjects of the present disclosure include, but are not limited to, humans, dogs, cats, horses, cows, pigs, sheep, goats, chickens, rodents (e.g., rats and mice), and primates. These methods include transducing tissues (including, but not limited to, tissues such as muscle, organs such as the liver and brain, and glands such as salivary glands) with one or more of the rAAVs described herein.
[0069] Muscle tissue is an attractive target for in vivo DNA delivery because it is not a vital organ and is easily accessible. The methods herein provide sustained expression of CAPN3 from transduced muscle cells.
[0070] "Muscle cell," "muscle fiber," or "muscle tissue" refers to a cell or group of cells derived from any type of muscle, e.g., skeletal muscle and smooth muscle (e.g., gastrointestinal, bladder, blood vessel, or heart tissue). Such muscle cells can be differentiated or undifferentiated, such as myoblasts, myocytes, myotubes, cardiomyocytes, and cardiomyoblasts.
[0071] The term "transduction" is used to refer to the administration / delivery of CAPN3 to recipient cells via the described rAAV, either in vivo or in vitro, resulting in the expression of CAPN3 by the recipient cells.
[0072] Thus, a method is provided for administering an effective amount (or doses administered essentially simultaneously, or doses administered at regular intervals) of rAAV encoding CAPN3 to a subject in need thereof.
[0073] Compared to the subject before treatment, the methods herein result in one or more of an increase in muscle fiber diameter, a decrease in the number of sublobulated slow-twitch oxidative (STO) muscle fibers, a decrease in the number of fibers with inner nuclei, a decrease in endomysial connective tissue content, correction of muscle atrophy, and an increase in muscle force production in the subject. [Example]
[0074] Aspects and embodiments are illustrated by the following examples. Example 1 describes the production of AAV9.MCK.CAPN3. Example 2 describes intramuscular administration of AAV9.MCK.CAPN3. Example 3 describes the production of AAVrh.74.tMCK.CAPN3. Example 4 describes intramuscular administration of AAVrh.74.tMCK.CAPN3. Example 5 describes intravenous administration of AAVrh.74.tMCK.CAPN3. Example 6 presents endpoint studies. Example 7 describes toxicity and biodistribution studies. Example 8 describes in vivo biopotency studies after intramuscular injection. Example 9 describes in vivo biopotency studies after systemic injection. Example 10 describes evaluation of systemic AAVrh.74.tMCK.CAPN3 gene delivery. Example 11 describes the evaluation of cardiotoxicity after systemic injection of the AAVrh.74.tMCK.CAPN3 vector. Example 12 describes in vivo physiological analysis.
[0075] Example 1 Production of AAV9.MCK.CAPN3 An AAV vector carrying the CAPN3 gene under the muscle-specific MCK promoter (designated AAV.CAPN3) was generated (Figure 1A). DNA containing the open reading frame of mouse CAPN3 (NM_007601.3) between two Not1 restriction sites was synthesized by Eurofin Genomics, USA, and then subcloned into the AAV.MCK (muscle creatine kinase) vector previously described by Rodino-Klapac et al., Journal of Translational Medicine, 5:45-55 (2007). rAAV vectors were produced by a modified cross-packaging approach, which allows the AAV2 vector genome to be packaged into the AAV capsid serotype [Rabinowitz et al., J Virol. 76(2):791-801 (2002)]. Production was achieved using the standard triple plasmid DNA / CaPO4 precipitation method in HEK293 cells. 293 cells were maintained in DMEM supplemented with 10% fetal bovine serum (FBS) and penicillin and streptomycin. The production plasmids were (i) pAAV.MCK.microdys, (ii) a rep2-capX modified AAV helper plasmid encoding a cap serotype 1, 6, or 8-like isolate, and (iii) an adenovirus type 5 helper plasmid (pAdhelper) expressing the adenovirus E2A, E4 ORF6, and VA I / II RNA genes. To allow comparison between serotypes, a quantitative PCR-based titration method was used to determine encapsidated vector genome (vg) titers using a Prism 7500 Taqman detector system (PE Applied Biosystems) [Clark et al., Hum Gene Ther. 10(6):1031-1039 (1999)]. The primers and fluorescent probe targeted the MCK promoter and were as follows: MCK forward primer, 5-CCCGAGATGCCTGGTTATAATT-3 (SEQ ID NO: 4); MCK reverse primer, 5-GCTCAGGCAGCAGCAGGTGTTG-3 (SEQ ID NO: 5); MCK probe, 5-FAM-CCAGACATGGGCTGCTCCCC-TAMRA-3 (SEQ ID NO: 6). Final titers (vg ml).-1 ) on a Prism 7500 real-time detector system (PE Applied The MCK promoter specific primers and probe were determined by quantitative reverse transcriptase PCR using a PCR product (Biosystems, Grand Island, NY, USA). Aliquots of virus were kept at -80°C until use.
[0076] Example 2 Intramuscular administration of AAV9.MCK.CAPN3 To demonstrate whether WT CAPN3 can restore the regenerative dysfunction process in CAPN3 knockout (CAPN3-KO) mice, TA muscles of anesthetized CAPN3-KO mice (n=4) [Kramerova et al., Hum Mol Genet 13(13):1373-1388 (2004)] were initially injected with 30 μl of CTX, and 2 weeks later, 1 × 10 β-glucan was injected intramuscularly in a volume of 20 μl. 11 vg of AAV9.MCK.CAPN3 was used to transduce TA muscles to express wild-type CAPN3. TA muscles from a separate CAPN3-KO cohort (n=4) served as controls and received the same volume of PBS 2 weeks after CTX injection.
[0077] Six weeks after CTX injection, mice were sacrificed, and the TA muscles were removed and processed for cryostat sectioning. For routine histopathological evaluation, 12-μm-thick cross sections were first stained with H&E, and muscle fiber type-specific diameter measurements were obtained from SDH-stained cross sections of the TA of three mice in each group. Three random images of the TA (per cross section per animal) were taken at 20x magnification to generate fiber diameter measurements and fiber type-specific histograms.
[0078] Succinate dehydrogenase (SDH) enzyme histochemistry was used to assess metabolic fiber type differentiation [slow-twitch oxidative (STO), fast-twitch oxidative (FTO), and fast-twitch glycolytic (FTG)]. Fiber-type-specific diameter measurements were obtained using 12-µm-thick SDH-stained sections 4 and 12 weeks after the final cardiotoxin injection. Three images were taken along the midline axis (one section per animal) of three distinct zones of the gastrocnemius muscle (the deep zone consisting primarily of STO; the intermediate zone showing a checkerboard appearance of STO, FTO, or FTG fibers; and the superficial zone consisting primarily of FTG fibers) using an Olympus BX41 microscope and a SPOT camera (Olympus BX61, Japan) at 20x magnification. This approach was chosen to capture changes in the oxidative status of fibers in each zone in response to metabolic changes during regeneration. Diameters of dark (STO), intermediate (FTO), and light (FTG) fibers were determined by measuring the shortest distance of the muscle fibers using Zeiss Axiovision LE4 software (v.4.8). Fiber diameter histograms were generated separately for STO, FTG, and FTO combined from three animals and were used to calculate mm of endomysial area (mean ± SEM). 2 The total fast-twitch fiber population (FTG / O) expressed as the number per group was shown. The mean fiber diameter was derived from combining all three fiber types. An average of 900-1700 fibers were measured per group. The TA muscle was used to assess fibrosis (see below).
[0079] Four weeks after AAV9.MCK.CAPN3 injection, a significant increase in muscle diameter was observed, with a clear reduction in inner nuclei and a much lower number of small-diameter fibers with a lobulated pattern (Figure 1B). Untreated CAPN3-KO muscles were 4 mm 2 With over 31.6% fibers per area, composed primarily of small and lobulated STO fibers, treatment indicates improved myotube fusion and thus a reduction in the number of individual small fibers per unit area ( Fig. 1, C and D ; Table 1 ). [Table 1]
[0080] Fiber size distribution histograms of treated TA muscles showed a shift toward larger diameter fibers with treatment, whereas the excess number of small diameter fibers in untreated CAPN3-KO control muscles was of the STO histochemical fiber type (Figures 1E and 1F). Together, these findings indicate that gene therapy-mediated CAPN3 replacement in CAPN3-KO muscles rescued the regeneration defect, evidenced by normalization of fiber diameter and a reduction in the number of STO fiber populations.
[0081] Example 3 Production of AAVrh.74.tMCK.CAPN3 An AAV vector (designated AAVrh74.tMCK.CAPN3) carrying the CAPN3 gene under the control of a truncated muscle-specific MCK promoter (tMCK promoter) was generated. DNA containing the open reading frame of mouse CAPN3 (NM_007601.3) between two Not1 restriction sites was synthesized by Eurofin Genomics, USA, and then inserted into an AAV production plasmid. A map of the plasmid is shown in Figure 2.
[0082] rAAV vectors were then generated by the approach described in Example 1.
[0083] Example 4 Intravenous administration of AAVrh.74.tMCK.CAPN3 Six-month-old CAPN3-KO mice were treated with a low dose (3x10) of ribosomal RNA via injection into the tail vein. 12 vg) and high dose (6x10 12 vg) of AAVrh.74.tMCK.CAPN3. For endpoint studies, mice were sacrificed 20 weeks after gene injection. Age-matched vehicle-treated CAPN3-KO mice served as controls. [Table 2]
[0084] Endpoint studies performed as described in Example 7 below include muscle physiology (TA force production or in vivo muscle contractility assays, and protection from eccentric contractions), muscle histopathology, hCAPN3 detection using qPCR, and Western blot analysis.
[0085] Example 5 Intramuscular administration of AAVrh.74.tMCK.CAPN3 In young and old CAPN3-KO muscles, the regenerative response to cardiotoxin (CTX)-induced synchronous necrosis followed by introduction of CAPN3 into the regenerating muscle via rAAV treatment is measured.
[0086] Cohorts of young (2 months old) and old (6 months old) mice were injected with CTX into both TA muscles to induce synchronous necrosis 2 weeks before rAAV injection into the left TA muscle. AAVrh.74.tMCK.CAPN3 was injected at 1 × 10 in a volume of 20 μl. 11 The mice were administered intramuscularly at 1 × 10 vg. End-point testing was performed 8 weeks after gene transfer (1 × 10 11 vg dose, with efficacy established in our previous studies) to evaluate correction of regenerative deficits by comparing quantitative histology and physiological outcomes from left TA with untreated right TA. [Table 3]
[0087] Eight weeks after rAAV injection, endpoint studies performed as described in Example 6 below included muscle physiology (TA force production and protection from eccentric contractions), quantitative muscle histopathology, hCAPN3 detection using qPCR and Western blot analysis.
[0088] Example 6 Endpoint Testing TA force generation and protection from eccentric contractions The protocol to evaluate the functional outcome of the TA muscle was performed on isolated muscle from mice [Wein et al., Nature Medicine, 20(9):992-1000(2014)]. Mice were anesthetized using a ketamine / xylazine mixture. Using a dissecting microscope, the skin on the hind limb was removed to expose the TA muscle and patella. The distal TA tendon was incised, and a double square knot was tied with 4-0 suture around the muscle as close as possible to the tendon, and the tendon was then severed. The exposed muscle was constantly moistened with saline. The mouse was then transferred to a thermo-controlled platform maintained at 37°C. A needle was passed through the distal TA tendon suture, the patellar ligament, and into the horizontal arm of a force transducer (Aurora Scientific, Aurora, ON, Canada). The knee was secured to the platform, and the foot was taped. TA muscle contraction was evoked by stimulating the sciatic nerve via a bipolar platinum electrode. Once the muscle stabilized, optimal length was determined by gradually lengthening the muscle until maximum contractile force was achieved. After a 3-minute rest period, the TA was stimulated at 50, 100, 150, and 200 Hz, with a 1-minute rest period between each stimulation to determine maximum tetanic force. Muscle length was measured. After 5 minutes of rest, the TA muscle's susceptibility to contraction-induced damage was assessed. After a 500-ms stimulation, the muscle was stretched to 10% of its optimal length. This involved stimulating the muscle for 700 ms at 150 Hz. After stimulation, the muscle returned to its optimal length. The cycle was repeated every minute for a total of 10 cycles. Specific force was calculated by dividing maximum tetanic force by the TA muscle cross-sectional area. After the eccentric contraction, the mice were euthanized, and the TA muscles were dissected, weighed, and frozen for analysis. Data analysis was performed blinded but not randomized.
[0089] In vivo muscle contractility assay This assay measures the total torque generated by either the plantar or dorsiflexor muscles of the lower limb and is performed using a muscle physiology device (Aurora Scientific, ON, Canada). Animals are anesthetized with isoflurane. Once anesthetized, the hair on the hind limbs is removed as needed with clippers. If hair removal with clippers is insufficient, a thin layer of depilatory cream (Nair) is applied and the area is thoroughly washed with warm water to prevent discomfort. The hind limb to be measured is attached to the footplate with adhesive tape. The limb is firmly immobilized with a blunt clamp. Either the tibial or peroneal element of the sciatic nerve is stimulated with two sterile, disposable, 28-gauge monopolar electrodes inserted subcutaneously into the skin adjacent to the nerve. Mouse body temperature is maintained with a conductive thermoregulated heating pad (set at 37°C) or a radiant heat source and monitored with a temperature probe.
[0090] Histopathological examination For histological analysis, all muscles and organs were embedded in 7% gum tragacanth and flash-frozen in liquid nitrogen-cooled isopentane. Frozen sections (12 μm) were taken for immunohistochemistry and Western blot analysis.
[0091] Western blot analysis for human CAPN3 detection CAPN3 protein quantification in mouse muscle tissue was assessed using Western blotting. CAPN3 enzyme was resolved by sodium dodecyl sulfate polyacrylamide gel electrophoresis (SDS-PAGE) and migrated as a 94 kDa band in an approximately 60 kDa autolysate using Novocastra's clinical-grade antibody, NCL-CALP-12A2, which recognizes the N-terminus of CAPN3. Furthermore, the NCL-CALP-2C4 antibody recognizes the same molecular weight of CAPN3 (94 kD) and an additional fragment (30 kD) in skeletal muscle, both of which are suitable for protein detection. Semiquantitative measurement of CAPN3 protein expression levels was performed in samples from calpain knockout mice after delivery of therapeutic rAAV vectors and compared with untreated controls.
[0092] quantitative muscle histology Cross sections of TA and quadriceps muscles treated with AAVrh.74.tMCK.CAPN3 and untreated controls were stained with hematoxylin and eosin and photographed using Zeiss Axiovision L4 software (20 images, 4 random images per section per animal). Fiber diameters were compared between treated and control groups.
[0093] statistical analysis Student's t-test or one-way analysis of variance multiple comparison test will be performed as appropriate.
[0094] Example 7 Toxicity test / biodistribution test Toxicity / biodistribution studies will be performed using the established effective dose and a 1-log higher dose. Toxicity studies will be performed via systemic (tail vein) delivery of rAAV to 6-8 week-old CAPN3-KO mice, including comparison with normal C57Bl6 mice. Cohorts of 6-10 mice will be included, and complete necropsies will be performed using GLP-like methods.
[0095] Serum collected from the blood samples will be used for blood biochemistry tests: alanine aminotransferase, alkaline phosphatase, aspartate aminotransferase, bilirubin (total and direct), blood urea nitrogen, creatinine, creatine kinase, glucose and total protein.
[0096] A complete necropsy will be performed with a complete systematic examination and dissection of the animal's internal organs and carcass. Tissues / organs will be collected, including the gonads, brain, spleen, kidneys, jejunum, colon, pancreas, heart, lungs, stomach, liver, inguinal lymph nodes, gastrocnemius, and quadriceps. Tissues / organs for histopathological studies will be collected and fixed in 10% neutral buffered formalin (10% NBF), with the exception of all skeletal muscle specimens, which will be mounted on blocks with OCT and snap-frozen in liquid nitrogen-cooled methylbutane for cryosectioning.
[0097] Example 8 In Vivo Biopotency Testing After Intramuscular Injection Biopotency studies were performed following intramuscular (IM) injection of AAVrh.74.tMCK.CAPN3 (1E11 vg) into the tibialis anterior (TA) muscle of CAPN3 KO mice (n=3), as described above in Example 5.
[0098] Four weeks after administration, gene delivery was analyzed by reverse transcription quantitative PCR (RT-qPCR) and Western blot analysis. For Western blot analysis, samples equivalent to 50 μg of total muscle protein extract were separated on a 3-8% acrylamide, Tris-acetate SDS gel and transferred to a PVDF membrane. Immunodetection was performed with a monoclonal antibody raised against a synthetic peptide containing AA1-19 of the human calpain 3 sequence (Leica) and a muscle-specific actin antibody (Leica) as a loading control. Figure 3A shows the presence of the 94 kD calpain 3 protein in the TA muscle after intramuscular injection. RT-qPCR analysis demonstrated that the relative expression level of the human calpain 3 gene returned to normal levels 4 weeks after gene transfer compared to WT mice (see Figure 3B). Mouse GAPDH was used as a reference gene, and RT-qPCR data were calibrated using WT C57BL / 6 mice.
[0099] Quantitative histopathological analysis was also performed after intramuscular administration. As indicated, the diameter of TA muscle fibers from treated CAPN3 KO mice was compared to that of untreated control (lactated Ringer's-injected TA) muscles. In AAV.hCAPN3-injected TA muscles, the mean fiber size of slow-twitch oxidative (STO, dark), fast-twitch oxidative (FTO, intermediate), and fast-twitch glycolytic (FTG, light) fibers appeared normalized to WT values. Quantification of fiber type size is shown in Table 4 and demonstrates an increase with treatment. [Table 4]
[0100] In summary, in vivo biopotency studies in CAPN3 KO mice (n=2) after IM injection of the vector (1E11 vg) into the tibialis anterior (TA) muscle revealed that 4 weeks after gene delivery, 1) RT-qPCR and Western blot analyses showed increased expression of CAPN3 transcripts and the 94 kDa full-length calpain 3 protein, and 2) histological analysis showed increased muscle fiber diameter in the TA compared to controls (Ringer).
[0101] Example 9 In Vivo Biopotency Testing After Systemic Injection In vivo biopotency studies were performed after systemic injection of AAVrh.74.tMCK.CAPN3 (3E12 vg or 6E12 vg) into CAPN3-KO mice via the tail vein. The low-dose CAPN3KO cohort (n = 5; mice designated Z18-13, Z18-15, Z18-16, Z18-17, and Z18-18) received 3E12 vg in 300 μl of lactated Ringer's solution. Four weeks after gene injection, mice were assessed for running fatigue using a run-to-exhaustion treadmill test and then euthanized for tissue collection. Upper and lower limb muscles (TA, gastrocnemius (GAS), quadriceps, and triceps), heart, liver, lungs, spleen, and lung testes were removed, and tissue samples were frozen in isopentane and cooled in liquid nitrogen.
[0102] CAPN3 expression was assessed in the TA muscle by RT-qPCR. At low doses of 3E12 vg, CAPN3 mRNA expression levels were low, as observed at high C values (>27). Western blot analysis showed undetectable corresponding protein bands. Although low expression data were observed at low doses in this tissue, systemic administration of 3E12 vg demonstrated both functional and histological benefits.
[0103] We then administered a high dose (6E12 vg) systemically to determine whether protein expression could be detected with higher vector doses. High-dose cohorts (mice designated Z18-20, Z18-21, Z18-23, and Z18-24) of CAPN3-KO mice were administered 6E12 vg AAVrh7.4.tMCK.hCAPN3 vector (twice the dose used in the low-dose cohort) via systemic tail vein injection and euthanized 4 weeks post-injection. RT-qPCR demonstrated variable levels of CAPN3 expression in the quadriceps, triceps, gastrointestinal sphingomyelinase (GAS), tachycardia, and cardiac muscle.
[0104] To determine the relative expression of CAPN3 mRNA, muscle tissue samples were collected from CAPN3 KO mice treated with the tMCK.hCAPN3 vector at doses of 3E12 vg (low-dose cohort 1) and 6E12 vg (high-dose cohort 2). Total RNA was isolated from both cohorts and assayed by qPCR of CAPN3 relative to mouse GAPDH, along with previous samples from the cohort that received the vector via IM injection (1E11 vg; see above in Example 8).
[0105] The relative expression of CAPN3 was determined by the following method: CT=CT CAPN3 -CT mGAPDH ΔΔCT = ΔCT - ΔCT Calibrator* Relative expression of CAPN3 = 2 -ΔΔCT The relative expression and original CT values of CAPN3 in each tissue are shown in Table 5 below and in Figure 5. Table 5 provides data for IM delivery (mouse numbers Z18-11 and Z18-12) and systemic administration. [Table 5-1] [Table 5-2]
[0106] Overall, CAPN3 mRNA expression in CAPN3 KO muscles after systemic delivery exhibited animal- and tissue-specific variability, with lower relative expression (<1% of IM delivery) compared with IM delivery at 1E11 vg, particularly in the 3E12 low-dose cohort. Thus, the full-length 94 kDa protein was below the detection limit by Western blot. However, the high-dose cohort demonstrated robust gene expression and significant amounts of full-length calpain 3 protein after systemic injection of a systemic dose of 6E12 vg.
[0107] Example 10 Evaluation of systemic AAVrh74.tMCK.hCAPN3 gene delivery Gene transfer efficiency was assessed by qPCR, which calculated vector genome copies in tissue samples from CAPN3 KO mice after systemic delivery of AAVrh74.tMCK.hCAPN3 at 6E12 vg. Vector genome load was measured in skeletal muscles of the lower and upper limbs (quadriceps, TA, gastroc, and triceps), heart, and liver. Genomic DNA was isolated from frozen tissue samples. qPCR assays were performed on an ABI 7500 (Applied Biosystems) using the following primer set: 5'-CGGAGAGCAACTGCATAAG-3' (forward; SEQ ID NO: 8); 5'-GGCTGATGATGGCTGAATAG-3' (reverse; SEQ ID NO: 9). The primer pair amplifies products exclusively from the 5' region of the hCAPN3 ORF and amplifies a downstream region unique to the expression vector, including part of the intron element. Final results are reported as the average copy number of AAVrh74 vector per microgram of genomic DNA.
[0108] As shown in Figure 6, after systemic vector delivery, the highest vector genome copy number was present in the liver. Vector genome distribution varied among muscle groups. Overall, values were higher in quadriceps and heart tissue compared to other muscles. Experimental variability was also noted. Mouse No. Z18-21 showed relatively low copy numbers in all muscle groups compared to the other three mice.
[0109] In CAPN3 KO mice treated with 3E12 vg systemically, both functional and histological improvements were observed. However, only low levels of muscle calpain 3 expression were detected in total RNA isolates by RT-qPCR, and the full-length 94 kDa protein was not detectable by Western blot in certain muscle tissues (see Figure 3A). However, after systemic administration of 6E12 vg, robust gene expression and significant amounts of full-length calpain 3 protein were observed (see Figure 3B). The data demonstrate that 4 weeks after transfection with AAVrh74.tMCK.hCAPN3 particles, calpain 3 gene expression returned to normal levels compared to WT mice. RT-qPCR data were calibrated using mouse GAPDH as a reference gene and WT C57BL / 6.
[0110] Histopathological examination As noted above, a trend toward efficacy was observed at 4 weeks post-injection. In both cohorts (3E12 and 6E12), a significant increase in fiber size was observed in TA muscles from CAPN3 KO mice after systemic delivery of AAVrh.74.tMCK.hCAPN3 4 weeks post-injection. As shown in Figure 7, total fiber diameter was significantly increased in both treatment cohorts compared to the untreated KO group (p<0.00001). Treatment resulted in normalization of fiber size, with no dose-dependent differences between treatment cohorts (p=0.78058). Table 6 shows the results of wild-type and CAPN3 TA muscle densities after systemic AAV.hCAPN3 gene therapy with 3E12 and 6E12 vg. 1 provides muscle fiber size in KO mice. [Table 6]
[0111] In both cohorts, there was no histopathological evidence of cardiac toxicity after systemic administration of the AAVrh7.4.tMCK.hCAPN3 vector at week 4. Although variable amounts of virus were found in cardiac tissue, no protein bands were detected in cardiac tissue by Western blot in either cohort.
[0112] Functionality study: Run-to-Exhaust test Prior to data collection for the run-to-exhaustion test, mice were acclimated to a treadmill (Columbus Instruments) for 3 days by running for 15 minutes at 10 m / min once a day. The protocol used required placing the mice on a treadmill with a 15-degree incline. The treadmill was turned on at a speed of 1 m / min and the speed was increased by 1 m per minute until the mice were exhausted. Fatigue was determined when the mice sat on the rest pad for at least 15 seconds. The time, speed, and distance to exhaustion were recorded.
[0113] Figure 8A provides run-to-exhaustion data for the low-dose cohort administered 3E12 vg of AAVrh.7.4.tMCK.hCAPN3 and the low-dose cohort administered 6E12 vg of AAVrh.7.4.tMCK.hCAPN3 4 weeks after systemic administration. Treated CAPN3 KO mice from both cohorts performed better in the run-to-exhaustion test compared with untreated mice. No clear dose-dependent differences in run-to-exhaustion test performance or statistically significant differences in muscle fiber diameter were observed between the low-dose and high-dose cohorts.
[0114] Mice from high-dose cohort 2 (n = 16) were further analyzed 20–24 weeks after administration of 6E12 vg of AAVrh7.4.tMCK.hCAPN3. As shown in Figure 8B, treated CAPN3 KO mice continued to perform better in the Run-to-Exhastion test compared to untreated mice (p < 0.00001).
[0115] Example 11 Assessment of cardiotoxicity after systemic injection of AAVrh7.4.tMCK.hCAPN3 vector Cohort mice were euthanized 4 weeks after injection, and serum and organ samples were collected. The low-dose Cohort 1 CAPN3KO cohort (n=5) received 3E12 vg of the AAVrh.74.tMCK.hCAPN3 vector in 300 μl of lactated Ringer's solution via tail vein injection. High-dose Cohort 2 CAPN3-KO mice received 6E12 vg of the AAVrh7.4.tMCK.hCAPN3 vector via tail vein, and both cohorts were euthanized 4 weeks after injection. Two sections from the apical, superficial, and deep ventricles were examined. No inflammation, necrosis, or regeneration was found in the tissue sections, indicating that no toxic effects on the myocardium were observed from systemic delivery of the AAVrh7.4.tMCK.hCAPN3 vector at two different doses 4 weeks after injection. Mice numbered Z18-19 and Z18-22 (lactated Ringer's solution injected / untreated) served as control KO animals. Figure 9 provides fresh frozen sections from hearts stained with H&E. No myofiber necrosis, regeneration, or inflammation was observed. Although various amounts of virus were present in cardiac tissue, no protein bands were detected by Western blot in any of the cohorts. Figure 10 provides Western blot analysis showing that full-length calpain 3 protein was below the detection limit in cardiac tissue after transduction.
[0116] Example 12 In Vivo Physiological Analysis Physiological assessments were performed after IM or systemic administration of the AAVrh7.4.tMCK.hCAPN3 vector. During in vivo physiological assessments, mice were anesthetized with inhaled isoflurane. Once the animals were anesthetized, hair was removed from the back and hind limbs as needed using clippers. If hair removal with clippers was insufficient, a thin layer of depilatory cream was applied. For in vivo physiological force measurements, hind limb torque was measured after supramaximal stimulation of the sciatic nerve using a noninvasive force footplate (Aurora Scientific, Canada) connected to a force sensor. The hind limb to be measured was secured to the footplate with adhesive tape. The limb was firmly immobilized with a blunt clamp. Either the tibial or peroneal component of the sciatic nerve was stimulated with two sterile, disposable, 28-gauge monopolar electrodes inserted subcutaneously into the skin adjacent to the nerve. Mouse body temperature was maintained using a conductive thermoregulated heating pad (set at 37°C) or a radiant heat source and monitored with an infrared temperature probe.
[0117] While the present disclosure provides specific embodiments, it is understood that variations and modifications will occur to those skilled in the art. Accordingly, only such limitations as appear in the claims should be placed on the invention.
[0118] All documents mentioned in this application are incorporated herein by reference in their entirety.
Claims
1. A polynucleotide comprising the nucleotide sequence set forth in SEQ ID NO:
1.
2. A method for producing recombinant adeno-associated virus (rAAV) particles, comprising contacting a cell with the polynucleotide of claim 1.
3. The method of claim 2 , wherein the cell is a mammalian cell, a plant cell, or an insect cell.
4. The method of claim 2 or 3, wherein the cells are selected from HeLa cells, PerC.6 cells, adenovirus E1-transformed human embryonic kidney cells (293 cells), human embryonic fibroblast cells (MRC-5 cells or WI-38 cells), monkey kidney cells (Vero cells), rhesus monkey embryonic lung cells (FRhL-2 cells), or HEK293 cells.
5. 5. The method of any one of claims 2-4, wherein the rAAV particles comprise one or more of 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, AAV rh.74, and AAV rh.10 capsid proteins.
6. The method of any one of claims 2 to 4, further comprising purifying the rAAV particles.
7. Purified rAAV particles prepared by the method of claim 6.
8. A composition comprising the rAAV particles of any one of claims 2 to 5 or the purified rAAV particles of claim 7, and a pharmaceutically acceptable carrier.
9. A cell comprising a polynucleotide comprising the nucleotide sequence set forth in SEQ ID NO:
1.
10. 10. The cell of claim 9, wherein the cell is a mammalian cell, a plant cell, an insect cell, a yeast cell, or a bacterial cell.
11. The cell of claim 9 or 10, wherein the cell is a HEK293 cell.
12. 10. Use of a therapeutically effective amount of the composition of claim 8 for the preparation of a medicament for treating limb-girdle muscular dystrophy 2A in a subject.
13. The treatment with the drug (a) Increase in muscle fiber diameter (b) a decrease in the number of lobular muscle fibers; (c) a decrease in the number of fibers with an inner nucleus; (d) decreased endomysial connective tissue content; (e) correction of muscle atrophy, and (f) Increased muscle force production The use according to claim 12, wherein the use results in one or more of the following:
14. The treatment with the drug (a) at least 5%, 10%, 15%, 20%, 25%, 30%, or 35%, or 40% of 1 mm by 4 weeks after administration 2 A decrease in the total number of muscle fibers per (b) an increase in muscle fiber diameter of at least 5%, 10%, 15%, 20%, or 25% by 4 weeks after administration; (c) at least 5%, 10%, 15%, 20%, 25%, 30%, 35%, or 42% of 1 mm by 4 weeks after administration 2 a decrease in the number of STO muscle fibers per (d) an increase in STO muscle fiber diameter of at least 5%, 10%, 15%, 20%, or 25% by 4 weeks after administration; (e) at least 5%, 10%, 15%, or 20% of 1 mm by 4 weeks after administration 2 A decrease in the number of FTO muscle fibers per (f) an increase in FTO muscle fiber diameter of at least 5%, 10%, 15%, or 20% by 4 weeks after administration; (g) at least 5%, 10%, 15%, 20%, 25%, 30%, or 35% of 1 mm by 4 weeks after administration 2 A decrease in the number of FTG muscle fibers per (h) an increase in FTG muscle fiber diameter of at least 5%, 10%, 15%, 20%, or 25% by 4 weeks after administration. The use according to claim 12 or 13, which results in one or more of the following:
15. The use according to any one of claims 12 to 14, wherein after treatment with the agent, the subject's myocardium exhibits minimal or low calpain 3 protein expressed from the rAAV particles.
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