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Isometric and Eccentric Force Generation Assessment of Skeletal Muscles Isolated from Murine Models of Muscular Dystrophies
Published on: January 31, 2013
Genetic overexpression of Serpina3n attenuates muscular dystrophy in mice
Andoria Tjondrokoesoemo1, Tobias Schips1, Onur Kanisicak1
1Department of Pediatrics, University of Cincinnati and.
Abstract:
Muscular dystrophy (MD) is associated with mutations in genes that stabilize the myofiber plasma membrane, such as through the dystrophin-glycoprotein complex (DGC). Instability of this complex or defects in membrane repair/integrity leads to calcium influx and myofiber necrosis leading to progressive dystrophic disease. MD pathogenesis is also associated with increased skeletal muscle protease levels and activity that could augment weakening of the sarcolemma through greater degradation of cellular attachment complexes. Here, we observed a compensatory increase in the serine protease inhibitor Serpina3n in mouse models of MD and after acute muscle tissue injury. Serpina3n muscle-specific transgenic mice were generated to model this increase in expression, which reduced the activity of select proteases in dystrophic skeletal muscle and protected muscle from both acute injury with cardiotoxin and from chronic muscle disease in the mdx or Sgcd(-/-) MD genetic backgrounds. The Serpina3n transgene mitigated muscle degeneration and fibrosis, reduced creatine kinase serum levels, restored running capacity on a treadmill and reduced muscle membrane leakiness in vivo that is characteristic of mdx and Sgcd(-/-) mice. Mechanistically, we show that increased Serpina3n promotes greater sarcolemma membrane integrity and stability in dystrophic mouse models in association with increased membrane residence of the integrins, the DGC/utrophin-glycoprotein complex of proteins and annexin A1. Hence, Serpina3n blocks endogenous increases in the activity of select skeletal muscle resident proteases during injury or dystrophic disease, which stabilizes the sarcolemma leading to less myofiber degeneration and increased regeneration. These results suggest the use of select protease inhibitors as a strategy for treating MD.
Insights
The serine protease inhibitor Serpina3n protects against muscular dystrophy (MD) by stabilizing the sarcolemma membrane. Increased Serpina3n expression reduces muscle degeneration and improves function in MD models, suggesting protease inhibitors as a therapeutic strategy.
Area of Science:
- Muscle physiology and disease
- Molecular biology and genetics
- Biochemistry and enzyme regulation
Background:
- Muscular dystrophy (MD) involves mutations affecting myofiber plasma membrane stability, often linked to the dystrophin-glycoprotein complex (DGC).
- Membrane instability in MD leads to calcium influx, myofiber necrosis, and progressive muscle wasting.
- Increased skeletal muscle protease activity may exacerbate sarcolemma degradation in MD.
Purpose of the Study:
- To investigate the role of the serine protease inhibitor Serpina3n in muscular dystrophy (MD) pathogenesis.
- To determine if increasing Serpina3n expression can protect against muscle degeneration and improve function in MD models.
Main Methods:
- Observed Serpina3n expression in mouse models of MD and acute muscle injury.
- Generated muscle-specific Serpina3n transgenic mice to mimic increased expression.
- Assessed the impact of Serpina3n on protease activity, muscle degeneration, fibrosis, serum creatine kinase, physical capacity, and sarcolemma integrity in mdx and Sgcd(-/-) MD models.
Main Results:
- Serpina3n expression was upregulated in MD models and after injury.
- Transgenic Serpina3n reduced protease activity, muscle degeneration, fibrosis, and serum creatine kinase levels in MD mice.
- Increased Serpina3n improved running capacity, reduced membrane leakiness, and enhanced sarcolemma stability by increasing integrins, DGC/utrophin-glycoprotein complex, and annexin A1.
Conclusions:
- Serpina3n mitigates muscle degeneration and fibrosis in MD models by stabilizing the sarcolemma.
- This stabilization is achieved by blocking endogenous protease activity and increasing key membrane-associated proteins.
- Protease inhibitors, such as Serpina3n, represent a potential therapeutic strategy for treating muscular dystrophy.

