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Published on: December 8, 2021
Functional, morphological, and apoptotic alterations in skeletal muscle of ARC deficient mice
Andrew S Mitchell1, Ian C Smith, Daniel Gamu
1Department of Kinesiology, University of Waterloo, Waterloo, ON, N2L3G1, Canada.
Abstract:
Apoptotic signaling plays an important role in the development and maintenance of healthy skeletal muscle. However, dysregulation of apoptotic signals in skeletal muscle is associated with atrophy and loss of function. Apoptosis repressor with caspase recruitment domain (ARC) is a potent anti-apoptotic protein that is highly expressed in skeletal muscle; however, its role in this tissue has yet to be elucidated. To investigate whether ARC deficiency has morphological, functional, and apoptotic consequences, skeletal muscle from 18 week-old wild-type and ARC knockout (KO) mice was studied. In red muscle (soleus), we found lower maximum tetanic force, as well as a shift towards a greater proportion of type II fibers in ARC KO mice. Furthermore, the soleus of ARC KO mice exhibited lower total, as well as fiber type-specific cross sectional area in type I and IIA fibers. Interestingly, these changes in ARC KO mice corresponded with increased DNA fragmentation, albeit independent of caspase or calpain activation. However, cytosolic fractions of red muscle from ARC KO mice had higher apoptosis inducing factor content, suggesting increased mitochondrial-mediated, caspase-independent apoptotic signaling. This was confirmed in isolated mitochondrial preparations, as mitochondria from skeletal muscle of ARC KO mice were more susceptible to calcium stress. Interestingly, white muscle from ARC KO mice showed no signs of altered apoptotic signaling or detrimental morphological differences. Results from this study suggest that even under basal conditions ARC influences muscle apoptotic signaling, phenotype, and function, particularly in slow and/or oxidative muscle.
Insights
Apoptosis repressor with caspase recruitment domain (ARC) deficiency impairs skeletal muscle function and morphology, particularly in slow-twitch fibers. This occurs via increased mitochondrial-mediated, caspase-independent apoptosis.
Area of Science:
- Muscle physiology
- Cellular biology
- Apoptosis signaling
Background:
- Apoptotic signaling is crucial for skeletal muscle health.
- Dysregulated apoptosis contributes to muscle atrophy and dysfunction.
- Apoptosis repressor with caspase recruitment domain (ARC) is highly expressed in skeletal muscle, but its function there is unclear.
Purpose of the Study:
- To investigate the consequences of ARC deficiency in skeletal muscle.
- To determine if ARC impacts muscle morphology, function, and apoptotic pathways.
Main Methods:
- Studied skeletal muscle from wild-type and ARC knockout (KO) mice.
- Analyzed muscle fiber type, cross-sectional area, and maximum tetanic force.
- Assessed DNA fragmentation, caspase/calpain activation, and apoptosis-inducing factor (AIF) content.
- Examined mitochondrial susceptibility to calcium stress.
Main Results:
- ARC KO mice showed reduced maximum tetanic force and a shift towards type II fibers in the soleus (red muscle).
- Soleus muscle in ARC KO mice exhibited smaller fiber cross-sectional areas (types I and IIA).
- Increased DNA fragmentation and cytosolic AIF content were observed in ARC KO red muscle, indicating caspase-independent apoptosis.
- Mitochondria from ARC KO mice were more vulnerable to calcium stress.
- White muscle showed no significant alterations.
Conclusions:
- ARC influences basal skeletal muscle apoptotic signaling, phenotype, and function.
- ARC deficiency particularly affects slow and/or oxidative muscle fibers.
- The findings suggest a role for ARC in preventing mitochondrial-mediated, caspase-independent apoptosis in skeletal muscle.
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