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IRE1α regulates skeletal muscle regeneration through myostatin mRNA decay
Shengqi He, … , Zhenji Gan, Yong Liu
Shengqi He, … , Zhenji Gan, Yong Liu
Published July 20, 2021
Citation Information: J Clin Invest. 2021;131(17):e143737. https://doi.org/10.1172/JCI143737.
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Research Article Muscle biology

IRE1α regulates skeletal muscle regeneration through myostatin mRNA decay

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Abstract

Skeletal muscle can undergo a regenerative process in response to injury or disease to preserve muscle mass and function, which are critically influenced by cellular stress responses. Inositol-requiring enzyme 1 (IRE1) is an ancient endoplasmic reticulum stress sensor and mediates a key branch of the unfolded protein response. In mammals, IRE1α is implicated in the homeostatic control of stress responses during tissue injury and regeneration. Here, we show that IRE1α serves as a myogenic regulator in skeletal muscle regeneration in response to injury and muscular dystrophy. We found in mice that IRE1α was activated during injury-induced muscle regeneration, and muscle-specific IRE1α ablation resulted in impaired regeneration upon cardiotoxin-induced injury. Gain- and loss-of-function studies in myocytes demonstrated that IRE1α acts to sustain both differentiation in myoblasts and hypertrophy in myotubes through regulated IRE1-dependent decay (RIDD) of mRNA encoding myostatin, a key negative regulator of muscle repair and growth. Furthermore, in the mouse model of Duchenne muscular dystrophy, loss of muscle IRE1α resulted in augmented myostatin signaling and exacerbated the dystrophic phenotypes. These results reveal a pivotal role for the RIDD output of IRE1α in muscle regeneration, offering insight into potential therapeutic strategies for muscle loss diseases.

Authors

Shengqi He, Tingting Fu, Yue Yu, Qinhao Liang, Luyao Li, Jing Liu, Xuan Zhang, Qian Zhou, Qiqi Guo, Dengqiu Xu, Yong Chen, Xiaolong Wang, Yulin Chen, Jianmiao Liu, Zhenji Gan, Yong Liu

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Figure 3

IRE1α RNase blunts myostatin signaling and promotes myoblast differentiation.

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IRE1α RNase blunts myostatin signaling and promotes myoblast differentia...
Primary Myod1-Cre and Ern1-mKO myoblasts were infected with control recombinant adenovirus or adenoviruses expressing human WT or mutant (KD, kinase dead) IRE1α protein or XBP1s and then differentiated for 3 days (n = 4 independent experiments). (A) Representative images of anti-MyHC and DAPI staining. (B) Quantification of the fusion index. (C) Immunoblot analysis of the indicated proteins. (D) Quantification of MyoG/tubulin and MyHC/tubulin after normalization to the value of control. (E and F) Quantitative RT-PCR analysis of Xbp1 mRNA splicing (E) and the mRNA abundance of the indicated genes (F). All data are presented as mean ± SEM. Significance was calculated by 1-way ANOVA with Bonferroni’s multiple-comparison test. **P < 0.01, ***P < 0.001 vs. Myod1-Cre group. ###P < 0.001 vs. Ern1-mKO + control adenovirus. Scale bars: 100 μm.

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