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Updated: May 27, 2026

FACS-Isolation and Culture of Fibro-Adipogenic Progenitors and Muscle Stem Cells from Unperturbed and Injured Mouse Skeletal Muscle
Published on: June 8, 2022
Apoptosis-inducing factor regulates skeletal muscle progenitor cell number and muscle phenotype
Anne-Sophie Armand1, Iman Laziz, Dounia Djeghloul
1Centre d'Etude de la Sensori-Motricité, UMR 8194 CNRS, Université Paris Descartes, Centre Universitaire des Saints-Pères, Paris, France.
Abstract:
Apoptosis Inducing Factor (AIF) is a highly conserved, ubiquitous flavoprotein localized in the mitochondrial intermembrane space. In vivo, AIF provides protection against neuronal and cardiomyocyte apoptosis induced by oxidative stress. Conversely in vitro, AIF has been demonstrated to have a pro-apoptotic role upon induction of the mitochondrial death pathway, once AIF translocates to the nucleus where it facilitates chromatin condensation and large scale DNA fragmentation. Given that the aif hypomorphic harlequin (Hq) mutant mouse model displays severe sarcopenia, we examined skeletal muscle from the aif hypomorphic mice in more detail. Adult AIF-deficient skeletal myofibers display oxidative stress and a severe form of atrophy, associated with a loss of myonuclei and a fast to slow fiber type switch, both in "slow" muscles such as soleus, as well as in "fast" muscles such as extensor digitorum longus, most likely resulting from an increase of MEF2 activity. This fiber type switch was conserved in regenerated soleus and EDL muscles of Hq mice subjected to cardiotoxin injection. In addition, muscle regeneration in soleus and EDL muscles of Hq mice was severely delayed. Freshly cultured myofibers, soleus and EDL muscle sections from Hq mice displayed a decreased satellite cell pool, which could be rescued by pretreating aif hypomorphic mice with the manganese-salen free radical scavenger EUK-8. Satellite cell activation seems to be abnormally long in Hq primary culture compared to controls. However, AIF deficiency did not affect myoblast cell proliferation and differentiation. Thus, AIF protects skeletal muscles against oxidative stress-induced damage probably by protecting satellite cells against oxidative stress and maintaining skeletal muscle stem cell number and activation.
Insights
Apoptosis Inducing Factor (AIF) deficiency causes severe skeletal muscle atrophy and delayed regeneration in mice. AIF protects muscle stem cells from oxidative stress, maintaining their numbers and activation.
Area of Science:
- Mitochondrial biology
- Skeletal muscle physiology
- Stem cell biology
Background:
- Apoptosis Inducing Factor (AIF) is a mitochondrial protein with dual roles in apoptosis.
- AIF deficiency in harlequin (Hq) mice causes sarcopenia, prompting investigation into its effects on skeletal muscle.
Purpose of the Study:
- To investigate the role of AIF in skeletal muscle homeostasis and regeneration.
- To determine the impact of AIF deficiency on myofiber characteristics and satellite cell function.
Main Methods:
- Analysis of skeletal muscle from AIF-deficient (Hq) mice.
- Assessment of myofiber atrophy, fiber type switching, myonuclei loss, and satellite cell pool.
- Evaluation of muscle regeneration after cardiotoxin injury.
- In vitro culture of primary myoblasts and myofibers.
Main Results:
- AIF-deficient skeletal myofibers exhibit oxidative stress, severe atrophy, myonuclei loss, and a fast-to-slow fiber type switch.
- Muscle regeneration is significantly delayed in Hq mice, with a reduced satellite cell pool.
- The free radical scavenger EUK-8 rescued the decreased satellite cell pool in Hq mice.
- AIF deficiency did not impair myoblast proliferation or differentiation.
Conclusions:
- AIF is crucial for protecting skeletal muscle against oxidative stress-induced damage.
- AIF safeguards skeletal muscle stem cells, maintaining their number and proper activation.
- AIF deficiency leads to sarcopenia through impaired satellite cell function and increased oxidative stress.
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