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Updated: Jun 30, 2025

Ex Vivo Assessment of Contractility, Fatigability and Alternans in Isolated Skeletal Muscles
Published on: November 1, 2012
Aging-affiliated post-translational modifications of skeletal muscle myosin affect biochemical properties, myofibril
Clara L Neal1, William A Kronert1, Jared Rafael T Camillo1
1Department of Biology, Molecular Biology Institute, Heart Institute, San Diego State University, San Diego, California, USA.
Abstract:
The molecular motor myosin is post-translationally modified in its globular head, its S2 hinge, and its thick filament domain during human skeletal muscle aging. To determine the importance of such modifications, we performed an integrative analysis of transgenic Drosophila melanogaster expressing myosin containing post-translational modification mimic mutations. We determined effects on muscle function, myofibril structure, and myosin biochemistry. Modifications in the homozygous state decreased jump muscle function by a third at 3 weeks of age and reduced indirect flight muscle function to negligible levels in young flies, with severe effects on flight muscle myofibril assembly and/or maintenance. Expression of mimic mutations in the heterozygous state or in a wild-type background yielded significant, but less severe, age-dependent effects upon flight muscle structure and function. Modification of the residue in the globular head disabled ATPase activity and in vitro actin filament motility, whereas the S2 hinge mutation reduced actin-activated ATPase activity by 30%. The rod modification diminished filament formation in vitro. The latter mutation also reduced proteostasis, as demonstrated by enhanced accumulation of polyubiquitinated proteins. Overall, we find that mutation of amino acids at sites that are chemically modified during human skeletal muscle aging can disrupt myosin ATPase, myosin filament formation, and/or proteostasis, providing a mechanistic basis for the observed muscle defects. We conclude that age-specific post-translational modifications present in human skeletal muscle are likely to act in a dominant fashion to affect muscle structure and function and may therefore be implicated in degeneration and dysfunction associated with sarcopenia.
Insights
Post-translational modifications in skeletal muscle myosin disrupt its function and structure, contributing to age-related muscle degeneration like sarcopenia.
Area of Science:
- Muscle physiology
- Molecular biology
- Aging research
Background:
- Skeletal muscle myosin undergoes post-translational modifications during aging.
- The functional significance of these modifications in muscle aging is not fully understood.
Purpose of the Study:
- To investigate the impact of myosin post-translational modification mimic mutations on muscle function, structure, and biochemistry in Drosophila melanogaster.
- To elucidate the role of specific myosin modifications in age-related muscle dysfunction.
Main Methods:
- Utilized transgenic Drosophila melanogaster expressing myosin with post-translational modification mimic mutations.
- Performed integrative analysis of muscle function, myofibril structure, and myosin biochemistry.
- Assessed ATPase activity and in vitro actin filament motility.
Main Results:
- Homozygous mutations severely impaired jump and flight muscle function and myofibril assembly.
- Heterozygous mutations or expression in wild-type backgrounds showed less severe, age-dependent effects.
- Specific mutations affected myosin ATPase activity, actin motility, filament formation, and proteostasis.
Conclusions:
- Age-specific myosin modifications disrupt muscle ATPase, filament formation, and proteostasis, providing a mechanistic link to muscle defects.
- These modifications likely act dominantly, contributing to sarcopenia and age-related muscle dysfunction.
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