Article
Overexpression of Galgt2 in skeletal muscle prevents injury resulting from eccentric contractions in both mdx and wild-type mice.
Center for Gene Therapy, The Research Institute at Nationwide Children's Hospital, Department of Pediatrics, The Ohio State Univ. College of Medicine, 304 Hamilton Hall, 1645 Neil Ave., Columbus, OH 43210-1218, USA.
AJP Cell Physiology (impact factor:
3.54).
01/2009;
296(3):C476-88.
DOI:10.1152/ajpcell.00456.2008
pp.C476-88
Source: PubMed
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Citations (0)
- Cited In (1)
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Article: A human-specific deletion in mouse Cmah increases disease severity in the mdx model of Duchenne muscular dystrophy.
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ABSTRACT: During the evolution of humans, an inactivating deletion was introduced in the CMAH (cytidine monophosphate-sialic acid hydroxylase) gene, which eliminated biosynthesis of the common mammalian sialic acid N-glycolylneuraminic acid from all human cells. We found that this human-specific change in sialylation capacity contributes to the marked discrepancy in phenotype between the mdx mouse model for Duchenne muscular dystrophy (DMD) and the human disease. When compared to human patients with DMD, mdx mice show reduced severity or slower development of clinically relevant disease phenotypes, despite lacking dystrophin protein in almost all muscle cells. This is especially true for the loss of ambulation, cardiac and respiratory muscle weakness, and decreased life span, all of which are major phenotypes contributing to DMD morbidity and mortality. These phenotypes occur at an earlier age or to a greater degree in mdx mice that also carry a human-like mutation in the mouse Cmah gene, possibly as a result of reduced strength and expression of the dystrophin-associated glycoprotein complex and increased activation of complement. Cmah-deficient mdx mice are a small-animal model for DMD that better approximates the human glycome and its contributions to muscular dystrophy.Science translational medicine 07/2010; 2(42):42ra54. · 7.80 Impact Factor
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Keywords
broad potential applications
Duchenne muscular dystrophy
eccentric contractions
force drop
forelimb grip strength
Galgt2 transgenic mice
mdx mice
mdx skeletal muscles
muscular dystrophy
neuromuscular synapse
nontransgenic littermates
nontransgenic muscles
normalized isometric force
normalized specific force
repetitive eccentric contractions
significant decrease
significant decrement
skeletal muscles
synaptic CT carbohydrate antigen {GalNAcbeta1,4[NeuAc(orGc)alpha2
therapeutic target