Slow-Myofiber Commitment by Semaphorin 3A Secreted from Myogenic Stem Cells

Author:

Tatsumi Ryuichi1ORCID,Suzuki Takahiro123,Do Mai-Khoi Q.1,Ohya Yuki1,Anderson Judy E.4,Shibata Ayumi1,Kawaguchi Mai1,Ohya Shunpei1,Ohtsubo Hideaki1,Mizunoya Wataru1,Sawano Shoko1,Komiya Yusuke1,Ichitsubo Riho1,Ojima Koichi5,Nishimatsu Shin-ichiro2,Nohno Tsutomu2,Ohsawa Yutaka6,Sunada Yoshihide6,Nakamura Mako7,Furuse Mitsuhiro1,Ikeuchi Yoshihide1,Nishimura Takanori3,Yagi Takeshi8,Allen Ronald E.9

Affiliation:

1. a Department of Animal and Marine Bioresource Sciences

2. b Department of Molecular and Developmental Biology

3. c Cell and Tissue Biology Laboratory, Research Faculty of Agriculture, Hokkaido University, Sapporo, Hokkaido, Japan

4. d Faculty of Science, Department of Biological Sciences, University of Manitoba, Winnipeg, Manitoba, Canada

5. e Muscle Biology Research Unit, Division of Animal Products Research, NARO Institute of Livestock and Grassland Science, Tsukuba, Ibaraki, Japan

6. f Department of Neurology, Kawasaki Medical School, Kurashiki, Okayama, Japan

7. g Graduate School of Agriculture, Kyushu University, Fukuoka, Japan

8. h KOKORO-Biology Group, Laboratories for Integrated Biology, Graduate School of Frontier Biosciences, Osaka University, Suita, Osaka, Japan

9. i The School of Animal and Comparative Biomedical Sciences, University of Arizona, Tucson, Arizona, USA

Abstract

Abstract Recently, we found that resident myogenic stem satellite cells upregulate a multi-functional secreted protein, semaphorin 3A (Sema3A), exclusively at the early-differentiation phase in response to muscle injury; however, its physiological significance is still unknown. Here we show that Sema3A impacts slow-twitch fiber generation through a signaling pathway, cell-membrane receptor (neuropilin2-plexinA3) → myogenin-myocyte enhancer factor 2D → slow myosin heavy chain. This novel axis was found by small interfering RNA-transfection experiments in myoblast cultures, which also revealed an additional element that Sema3A-neuropilin1/plexinA1, A2 may enhance slow-fiber formation by activating signals that inhibit fast-myosin expression. Importantly, satellite cell-specific Sema3A conditional-knockout adult mice (Pax7CreERT2-Sema3Afl°x activated by tamoxifen-i.p. injection) provided direct in vivo evidence for the Sema3A-driven program, by showing that slow-fiber generation and muscle endurance were diminished after repair from cardiotoxin-injury of gastrocnemius muscle. Overall, the findings highlight an active role for satellite cell-secreted Sema3A ligand as a key “commitment factor” for the slow-fiber population during muscle regeneration. Results extend our understanding of the myogenic stem-cell strategy that regulates fiber-type differentiation and is responsible for skeletal muscle contractility, energy metabolism, fatigue resistance, and its susceptibility to aging and disease.

Publisher

Oxford University Press (OUP)

Subject

Cell Biology,Developmental Biology,Molecular Medicine

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