Key result
Overexpression of Galgt2 in skeletal muscle significantly reduced force drop during eccentric contractions in mdx mice compared to mock-treated controls (56% vs 76% reduction, P<0.001).
Why the study?
Does Galgt2 overexpression prevent injury resulting from eccentric contractions in mdx and wild-type mice?
Does Galgt2 overexpression prevent injury resulting from eccentric contractions in mdx and wild-type mice?
Absolute Event Rate: 56% vs 76%
p-value: p=<0.001
Galgt2 overexpression prevents loss of force during eccentric contractions in both dystrophic and non-dystrophic skeletal muscles, highlighting its potential as a therapeutic target for muscular dystrophy.
Hypothesis-generating for Galgt2 as a dystrophy target; should not yet change clinical practice.
The cytotoxic T cell (CT) GalNAc transferase, or Galgt2, is a UDP-GalNAc:beta1,4-N-acetylgalactosaminyltransferase that is localized to the neuromuscular synapse in adult skeletal muscle, where it creates the synaptic CT carbohydrate antigen {GalNAcbeta1,4[NeuAc(orGc)alpha2, 3]Galbeta1,4GlcNAcbeta-}. Overexpression of Galgt2 in the skeletal muscles of transgenic mice inhibits the development of muscular dystrophy in mdx mice, a model for Duchenne muscular dystrophy. Here, we provide physiological evidence as to how Galgt2 may inhibit the development of muscle pathology in mdx animals. Both Galgt2 transgenic wild-type and mdx skeletal muscles showed a marked improvement in normalized isometric force during repetitive eccentric contractions relative to nontransgenic littermates, even using a paradigm where nontransgenic muscles had force reductions of 95% or more. Muscles from Galgt2 transgenic mice, however, showed a significant decrement in normalized specific force and in hindlimb and forelimb grip strength at some ages. Overexpression of Galgt2 in muscles of young adult mdx mice, where Galgt2 has no effect on muscle size, also caused a significant decrease in force drop during eccentric contractions and increased normalized specific force. A comparison of Galgt2 and microdystrophin overexpression using a therapeutically relevant intravascular gene delivery protocol showed Galgt2 was as effective as microdystrophin at preventing loss of force during eccentric contractions. These experiments provide a mechanism to explain why Galgt2 overexpression inhibits muscular dystrophy in mdx muscles. That overexpression also prevents loss of force in nondystrophic muscles suggests that Galgt2 is a therapeutic target with broad potential applications.
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Martin et al. (2008) studied Duchenne muscular dystrophy (mdx mouse model). Galgt2 overexpression vs. Mock-infected or nontransgenic controls was evaluated on Force drop by the 10th eccentric contraction (p=<0.001). Overexpression of Galgt2 in skeletal muscle significantly reduced force drop during eccentric contractions in mdx mice compared to mock-treated controls (56% vs 76% reduction, P<0.001).
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