Simulated microgravity inhibits C2C12 myogenesis via phospholipase D2-induced Akt/FOXO1 regulation

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作者
Mi-Ock Baek
Chi Bum Ahn
Hye-Jeong Cho
Ji-Young Choi
Kuk Hui Son
Mee-Sup Yoon
机构
[1] GAIHST,Department of Health Sciences and Technology
[2] Gachon University,Lee Gil Ya Cancer and Diabetes Institute
[3] Gachon University,Department of Molecular Medicine
[4] School of Medicine,Department of Thoracic and Cardiovascular Surgery
[5] Gachon University,undefined
[6] Gachon University Gil Medical Center,undefined
[7] College of Medicine,undefined
[8] Gachon University,undefined
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Scientific Reports | / 9卷
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摘要
The skeletal muscle system has evolved to maintain body posture against a constant gravitational load. Mammalian target of rapamycin (mTOR) regulates the mechanically induced increase in the skeletal muscle mass. In the present study, we investigated mTOR pathway in C2C12 myoblasts in a model of mechanical unloading by creating a simulated microgravity (SM) using 3 D clinorotation. SM decreased the phosphorylation of Akt at Ser 473, which was mediated by mTOR complex 2 (mTORC2), in C2C12 myoblasts, leading to a decrease in the cell growth rate. Subsequently, SM inhibited C2C12 myogenesis in an Akt-dependent manner. In addition, SM increased the phospholipase D (PLD) activity by enhancing PLD2 expression, resulting in the dissociation of mSIN1 from the mTORC2, followed by decrease in the phosphorylation of Akt at Ser 473, and FOXO1 at Ser 256 in C2C12 myoblasts. Exposure to SM decreased the autophagic flux of C2C12 myoblasts by regulation of mRNA level of autophagic genes in a PLD2 and FOXO1-dependent manner, subsequently, resulting in a decrease in the C2C12 myogenesis. In conclusion, by analyzing the molecular signature of C2C12 myogenesis using SM, we suggest that the regulatory axis of the PLD2 induced Akt/FOXO1, is critical for C2C12 myogenesis.
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[1]  
Kurth F(2012)A new mechanobiological era: microfluidic pathways to apply and sense forces at the cellular level Curr Opin Chem Biol 16 400-408
[2]  
Eyer K(2013)Calcium-dependent deceleration of the cell cycle in muscle cells by simulated microgravity FASEB J 27 2045-2054
[3]  
Franco-Obregon A(2001)Myogenic satellite cells: physiology to molecular biology J Appl Physiol (1985) 91 534-551
[4]  
Dittrich PS(2018)Muscle Atrophy Induced by Mechanical Unloading: Mechanisms and Potential Countermeasures Front Physiol 9 235-595
[5]  
Benavides Damm T(2009)Effects of spaceflight on murine skeletal muscle gene expression J Appl Physiol (1985) 106 582-839
[6]  
Hawke TJ(2000)Physiology of a microgravity environment invited review: microgravity and skeletal muscle J Appl Physiol (1985) 89 823-371
[7]  
Garry DJ(2012)Mechanical stimulation induces mTOR signaling via an ERK-independent mechanism: implications for a direct activation of mTOR by phosphatidic acid PLoS One 7 e47258-35
[8]  
Gao Y(2017)mTOR Signaling in Growth, Metabolism, and Disease Cell 169 361-1209
[9]  
Arfat Y(2011)mTOR: from growth signal integration to cancer, diabetes and ageing Nat Rev Mol Cell Biol 12 21-4746
[10]  
Wang H(2015)PtdIns(3,4,5)P3-Dependent Activation of the mTORC2 Kinase Complex Cancer Discov 5 1194-43935