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Published on: June 12, 2017
Attenuation of skeletal muscle atrophy via protease inhibition
Carl A Morris1, Linda D Morris, Ann R Kennedy
1Dept. of Physiology and the Pennsylvania Muscle Institute, Univ. of Pennsylvania School of Medicine, A-700 Richards Bldg., 3700 Hamilton Walk, Philadelphia, PA 19104-6085, USA.
Abstract:
Skeletal muscle atrophy in response to a number of muscle wasting conditions, including disuse, involves the induction of increased protein breakdown, decreased protein synthesis, and likely a variable component of apoptosis. The increased activation of specific proteases in the atrophy process presents a number of potential therapeutic targets to reduce muscle atrophy via protease inhibition. In this study, mice were provided with food supplemented with the Bowman-Birk inhibitor (BBI), a serine protease inhibitor known to reduce the proteolytic activity of a number of proteases, such as chymotrypsin, trypsin, elastase, cathepsin G, and chymase. Mice fed the BBI diet were suspended for 3-14 days, and the muscle mass and function were then compared with those of the suspended mice on a normal diet. The results indicate that dietary supplementation with BBI significantly attenuates the normal loss of muscle mass and strength following unloading. Furthermore, the data reveal the existence of yet uncharacterized serine proteases that are important contributors to the evolution of disuse atrophy, since BBI inhibited serine protease activity that was elevated following hindlimb unloading and also slowed the loss of muscle fiber size. These results demonstrate that targeted reduction of protein degradation can limit the severity of muscle mass loss following hindlimb unloading. Thus BBI is a candidate therapeutic agent to minimize skeletal muscle atrophy and loss of strength associated with disuse, cachexia, sepsis, weightlessness, or the combination of age and inactivity.
Insights
Bowman-Birk inhibitor (BBI) limits muscle wasting by reducing protein breakdown during disuse. This study shows BBI protects muscle mass and strength, offering a potential therapy for muscle atrophy.
Area of Science:
- Muscle physiology
- Protease inhibition
- Skeletal muscle atrophy
Background:
- Muscle wasting conditions like disuse involve increased protein breakdown and decreased synthesis.
- Proteases play a key role in muscle atrophy, presenting therapeutic targets.
- Bowman-Birk inhibitor (BBI) is a serine protease inhibitor with known activity against several proteases.
Purpose of the Study:
- To investigate the efficacy of dietary Bowman-Birk inhibitor (BBI) in preventing skeletal muscle atrophy induced by disuse.
- To identify the role of serine proteases in disuse-induced muscle atrophy.
Main Methods:
- Mice were fed a diet supplemented with BBI or a normal diet.
- Mice underwent hindlimb unloading for 3-14 days.
- Muscle mass, strength, and fiber size were assessed and compared between groups.
Main Results:
- Dietary BBI significantly attenuated muscle mass and strength loss following unloading.
- BBI inhibited elevated serine protease activity observed after hindlimb unloading.
- BBI slowed the loss of muscle fiber size, indicating protection against atrophy.
Conclusions:
- Targeted reduction of protein degradation via BBI can limit muscle mass loss during disuse.
- BBI is a potential therapeutic agent for mitigating skeletal muscle atrophy associated with disuse and other wasting conditions.
- The study suggests the involvement of uncharacterized serine proteases in disuse atrophy.
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