Department of Animal and Marine Bioresource Sciences.
Department of Molecular and Developmental Biology.
Stem Cells. 2017 Jul;35(7):1815-1834. doi: 10.1002/stem.2639. Epub 2017 May 31.
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 (Pax7CreER -Sema3A ° 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. Stem Cells 2017;35:1815-1834.
最近,我们发现定居肌源性卫星细胞在肌肉损伤后早期分化阶段特异性地上调一种多功能分泌蛋白,神经 3A(Sema3A);然而,其生理意义尚不清楚。在这里,我们通过肌母细胞培养中的小干扰 RNA 转染实验表明 Sema3A 通过信号通路影响慢肌纤维的生成,细胞膜受体(神经 3A-神经纤毛蛋白 2-丛生蛋白 A3)→肌生成素-肌细胞增强因子 2D→慢肌球蛋白重链。在该研究中还发现了另一个元素,即 Sema3A-神经纤毛蛋白 1/丛生蛋白 A1、A2 可能通过激活抑制快肌表达的信号来增强慢肌纤维的形成。重要的是,卫星细胞特异性 Sema3A 条件敲除成年小鼠(Pax7CreER-Sema3A° 通过腹腔注射他莫昔芬激活)通过显示在腓肠肌心肌毒素损伤后的修复后,慢肌纤维生成和肌肉耐力降低,为 Sema3A 驱动的程序提供了直接的体内证据。总的来说,这些发现强调了卫星细胞分泌的 Sema3A 配体作为肌肉再生过程中慢肌纤维群体的关键“决定因素”的积极作用。结果扩展了我们对调节纤维类型分化的成肌干细胞策略的理解,该策略负责骨骼肌收缩性、能量代谢、抗疲劳性及其对衰老和疾病的易感性。干细胞 2017;35:1815-1834。