Delivery of α- and β-sarcoglycan by recombinant adeno-associated virus:: Efficient rescue of muscle, but differential toxicity

被引:47
作者
Dressman, D
Araishi, K
Imamura, M
Sasaoka, T
Liu, LA
Engvall, E
Hoffman, EP
机构
[1] Childrens Natl Med Ctr, Res Ctr Genet Med, Washington, DC 20010 USA
[2] Univ Pittsburgh, Dept Mol Genet & Biochem, Pittsburgh, PA 15260 USA
[3] Natl Ctr Neurol & Psychiat, Natl Inst Neurosci, Kodaira, Tokyo 187, Japan
[4] Burnham Inst, La Jolla, CA 92037 USA
关键词
D O I
10.1089/10430340260201725
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
The sarcoglycanopathies are a group of four autosomal recessive limb girdle muscular dystrophies (LGMD 2D, 2E, 2C, and 2F), caused by mutations of the alpha-, beta-, gamma-, or delta-sarcoglycan genes, respectively. The delta-sarcoglycan-deficient hamster has been the most utilized model for gene delivery to muscle by recombinant adeno-associated virus (AAV) vectors; however, human patients with delta-sarcoglycan deficiency are exceedingly rare, with only two patients described in the United States. Here, we report construction and use of AAV vectors expressing either alpha- or beta-sarcoglycan, the genes responsible for the most common forms of the human sarcoglycanopathies. Both vectors showed successful short-term genetic, biochemical, and histological rescue of both alpha- and beta-sarcoglycan-deficient mouse muscle. However, comparison of persistence of expression in 51 injected mice showed substantial differences between AAV alpha-sarcoglycan (alpha-SG) and beta-sarcoglycan (beta-SG) vectors. AAV-beta-SG showed long-term expression with no decrease in expression for more than 21 months after injection, whereas AAV-alpha-SG showed a dramatic loss of positive fibers between 28 and 41 days post-injection (p = 0.006). Loss of immunopositive myofibers was correlated with significant inflammatory cell infiltrate, primarily macrophages. To determine whether the loss of alpha-sarcoglycan-positive fibers was due to an immune response or cytotoxic effect of alpha-sarcoglycan overexpression, severe combined immunodeficient (SCID) mouse muscle was assayed for cytotoxicity after injection with AAV-alpha-SG, AAV-beta-SG, or phosphate-buffered saline. The results were consistent with overexpression of a- sarcoglycan causing significant cytotoxicity. The cytotoxicity of alpha-sarcoglycan, and not beta- or delta-sarcoglycan overexpression, was consistent with biochemical studies of the hierarchical order of assembly of the sarcoglycan complex. Our data suggest that even closely related proteins might require different levels of expression to avoid toxicity and achieve long-term tissue rescue.
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页码:1631 / 1646
页数:16
相关论文
共 39 条
[1]   Early adenovirus-mediated gene transfer effectively prevents muscular dystrophy in alpha-sarcoglycan-deficient mice [J].
Allamand, V ;
Donahue, KM ;
Straub, V ;
Davisson, RL ;
Davidson, BL ;
Campbell, KP .
GENE THERAPY, 2000, 7 (16) :1385-1391
[2]   Loss of the sarcoglycan complex and sarcospan leads to muscular dystrophy in β-sarcoglycan-deficient mice [J].
Araishi, K ;
Sasaoka, T ;
Imamura, M ;
Noguchi, S ;
Hama, H ;
Wakabayashi, E ;
Yoshida, M ;
Hori, T ;
Ozawa, E .
HUMAN MOLECULAR GENETICS, 1999, 8 (09) :1589-1598
[3]   ADENOASSOCIATED VIRUSES - AN UPDATE [J].
BERNS, KI ;
BOHENZKY, RA .
ADVANCES IN VIRUS RESEARCH, 1987, 32 :243-306
[4]   The role of receptors in the maturation-dependent adenoviral transduction of myofibers [J].
Cao, B ;
Pruchnic, R ;
Ikezawa, M ;
Xiao, X ;
Li, J ;
Wickham, TJ ;
Kovesdi, I ;
Rudert, WA ;
Huard, J .
GENE THERAPY, 2001, 8 (08) :627-637
[5]   Expression profiling in the muscular dystrophies: Identification of novel aspects of molecular pathophysiology [J].
Chen, YW ;
Zhao, P ;
Borup, R ;
Hoffman, EP .
JOURNAL OF CELL BIOLOGY, 2000, 151 (06) :1321-1336
[6]   Recombinant adeno-associated viral vectors mediate long-term transgene expression in muscle [J].
Clark, KR ;
Sferra, TJ ;
Johnson, PR .
HUMAN GENE THERAPY, 1997, 8 (06) :659-669
[7]   Rescue of skeletal muscles of γ-sarcoglycan-deficient mice with adeno-associated virus-mediated gene transfer [J].
Cordier, L ;
Hack, AA ;
Scott, MO ;
Barton-Davis, ER ;
Gao, GP ;
Wilson, JM ;
McNally, EM ;
Sweeney, HL .
MOLECULAR THERAPY, 2000, 1 (02) :119-129
[8]   A biochemical, genetic, and clinical survey of autosomal recessive limb girdle muscular dystrophies in Turkey [J].
Dincer, P ;
Leturcq, F ;
Richard, I ;
Piccolo, F ;
Yalnizoglu, D ;
deToma, C ;
Akcoren, Z ;
Broux, O ;
Deburgrave, N ;
Brenguier, L ;
Roudaut, C ;
Urtizberea, JA ;
Jung, D ;
Tan, E ;
Jeanpierre, M ;
Campbell, KP ;
Kaplan, JC ;
Beckmann, JS ;
Topaloglu, H .
ANNALS OF NEUROLOGY, 1997, 42 (02) :222-229
[9]   Progressive muscular dystrophy in α-sarcoglycan-deficient mice [J].
Duclos, F ;
Straub, V ;
Moore, SA ;
Venzke, DP ;
Hrstka, RF ;
Crosbie, RH ;
Durbeej, M ;
Lebakken, CS ;
Ettinger, AJ ;
van der Meulen, J ;
Holt, KH ;
Lim, LE ;
Sanes, JR ;
Davidson, BL ;
Faulkner, JA ;
Williamson, R ;
Campbell, KP .
JOURNAL OF CELL BIOLOGY, 1998, 142 (06) :1461-1471
[10]   Mutations in the δ-sarcoglycan gene are a rare cause of autosomal recessive limb-girdle muscular dystrophy (LGMD2) [J].
Duggan, DJ ;
Manchester, D ;
Stears, KP ;
Mathews, DJ ;
Hart, C ;
Hoffman, EP .
NEUROGENETICS, 1997, 1 (01) :49-58