Rab44 deficiency accelerates recovery from muscle damage by regulating mTORC1 signaling and transport of fusogenic regulators

Author:

Oyakawa Shun12,Yamaguchi Yu1,Kadowaki Tomoko3,Sakai Eiko1,Noguromi Mayuko123,Tanimoto Ayuko1,Ono Yusuke4,Murata Hiroshi2,Tsukuba Takayuki1ORCID

Affiliation:

1. Department of Dental Pharmacology Graduate School of Biomedical Sciences, Nagasaki University Nagasaki Japan

2. Department of Prosthetic Dentistry Graduate School of Biomedical Sciences, Nagasaki University Nagasaki Japan

3. Department of Frontier Oral Science Graduate School of Biomedical Sciences, Nagasaki University Nagasaki Japan

4. Department of Muscle Development and Regeneration Institute of Molecular Embryology and Genetics, Kumamoto University Kumamoto Japan

Abstract

AbstractThe skeletal muscle is a tissue that shows remarkable plasticity to adapt to various stimuli. The development and regeneration of skeletal muscles are regulated by numerous molecules. Among these, we focused on Rab44, a large Rab GTPase, that has been recently identified in immune cells and osteoclasts. Recently, bioinformatics data has revealed that Rab44 is upregulated during the myogenic differentiation of myoblasts into myotubes in C2C12 cells. Thus, Rab44 may be involved in myogenesis. Here, we have investigated the effects of Rab44 deficiency on the development and regeneration of skeletal muscle in Rab44 knockout (KO) mice. Although KO mice exhibited body and muscle weights similar to those of wild‐type (WT) mice, the histochemical analysis showed that the myofiber cross‐sectional area (CSA) of KO mice was significantly smaller than that of WT mice. Importantly, the results of muscle regeneration experiments using cardiotoxin revealed that the CSA of KO mice was significantly larger than that of WT mice, suggesting that Rab44 deficiency promotes muscle regeneration. Consistent with the in vivo results, in vitro experiments indicated that satellite cells derived from KO mice displayed enhanced proliferation and differentiation. Mechanistically, KO satellite cells exhibited an increased mechanistic target of rapamycin complex 1 (mTORC1) signaling compared to WT cells. Additionally, enhanced cell surface transport of myomaker and myomixer, which are essential membrane proteins for myoblast fusion, was observed in KO satellite cells compared to WT cells. Therefore, Rab44 deficiency enhances muscle regeneration by modulating the mTORC1 signaling pathway and transport of fusogenic regulators.

Funder

Japan Society for the Promotion of Science

Publisher

Wiley

Subject

Cell Biology,Clinical Biochemistry,Physiology

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