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Published on: February 10, 2023
A novel mitochondrial micropeptide MPM enhances mitochondrial respiratory activity and promotes myogenic
Yi-Fang Lin1, Man-Huan Xiao1, Hua-Xing Chen1
1MOE Key Laboratory of Gene Function and Regulation, School of Life Sciences, Collaborative Innovation Center for Cancer Medicine, Sun Yat-sen University, Xin Gang Xi Road 135, 510275, Guangzhou, China.
Abstract:
Micropeptides belong to a class of newly identified small molecules with <100 amino acids in length, and their functions remain largely unknown. Here, we identified a novel muscle-enriched micropeptide that was localized to mitochondria (named MPM, micropeptide in mitochondria) and upregulated during in vitro differentiation of C2C12 myoblasts and in vivo early postnatal skeletal muscle development, and muscle regeneration after cardiotoxin (CTX) damage. Downregulation of MPM was observed in the muscular tissues of tibial muscular dystrophy and Duchenne muscular dystrophy patients. Furthermore, MPM silencing inhibited the differentiation of C2C12 myoblasts into myotubes, whereas MPM overexpression stimulated it. MPM-/- mice exhibited smaller skeletal muscle fibers and worse muscle performance, such as decrease in the maximum grip force of limbs, the latency to fall off rotarod, and the exhausting swimming time. Muscle regeneration was also impaired in MPM-/- mice, as evidenced by lower expression of Pax7, MyoD, and MyoG after CTX injection and smaller regenerated myofibers, compared with wild-type mice. Mechanistical investigations based on both gain- and loss-of function studies revealed that MPM increased oxygen consumption and ATP production of mitochondria. Moreover, ectopic expression of PGC-1α, which can enhance mitochondrial respiration, attenuated the inhibitory effect of siMPM on myogenic differentiation. These results imply that MPM may promote myogenic differentiation and muscle fiber growth by enhancing mitochondrial respiratory activity, which highlights the importance of micropeptides in the elaborate regulatory network of both myogenesis and mitochondrial activity and implicates MPM as a potential target for muscular dystrophy therapy.
Insights
A novel muscle micropeptide, micropeptide in mitochondria (MPM), enhances muscle cell differentiation and growth by boosting mitochondrial function. This discovery offers a potential therapeutic target for muscular dystrophy.
Area of Science:
- Muscle biology
- Mitochondrial function
- Micropeptide research
Background:
- Micropeptides are small molecules with largely unknown functions.
- Muscle-specific micropeptides are of interest for understanding myogenesis.
Purpose of the Study:
- To identify and characterize a novel muscle-enriched micropeptide.
- To investigate the role of this micropeptide in muscle differentiation, development, and disease.
Main Methods:
- Identification and localization of a novel micropeptide (MPM) in mitochondria.
- In vitro studies using C2C12 myoblasts (differentiation, gene silencing, overexpression).
- In vivo studies in MPM knockout mice and after cardiotoxin-induced injury.
Main Results:
- MPM is upregulated during myogenesis and muscle regeneration, and downregulated in muscular dystrophy.
- MPM silencing inhibits myoblast differentiation; MPM overexpression enhances it.
- MPM knockout mice show impaired muscle fiber growth, performance, and regeneration.
- MPM enhances mitochondrial oxygen consumption and ATP production, potentially via PGC-1α.
Conclusions:
- MPM promotes myogenic differentiation and muscle fiber growth by enhancing mitochondrial activity.
- MPM is crucial for muscle development and regeneration.
- MPM represents a potential therapeutic target for muscular dystrophy.
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