Effects of hindlimb unloading on the mevalonate and mechanistic target of rapamycin complex 1 signaling pathways in a fast-twitch muscle in rats

被引:2
作者
Uda, Munehiro [1 ,5 ]
Yoshihara, Toshinori [2 ]
Ichinoseki-Sekine, Noriko [2 ,3 ]
Baba, Takeshi [4 ]
机构
[1] Hirosaki Gakuin Univ, Sch Nursing, Hirosaki, Aomori, Japan
[2] Juntendo Univ, Grad Sch Hlth & Sports Sci, Chiba, Japan
[3] Open Univ Japan, Fac Liberal Arts, Chiba, Japan
[4] Juntendo Univ, Sch Med, Chiba, Japan
[5] Hirosaki Gakuin Univ, Sch Nursing, 20-7 Minori Cho, Hirosaki, Aomori 0368231, Japan
基金
日本学术振兴会;
关键词
mitochondria; mTORC1; prenylation; skeletal muscle atrophy; small GTPase; HMG-COA REDUCTASE; SKELETAL-MUSCLE; PROTEIN-SYNTHESIS; MAMMALIAN TARGET; SOLEUS MUSCLE; ACTIVATION; IMMOBILIZATION; ATROPHY; MTORC1; PHOSPHORYLATION;
D O I
10.14814/phy2.15969
中图分类号
Q4 [生理学];
学科分类号
071003 ;
摘要
Fast-twitch muscles are less susceptible to disuse atrophy, activate the mechanistic target of rapamycin complex 1 (mTORC1) signaling pathway, and increase protein synthesis under prolonged muscle disuse conditions. However, the mechanism underlying prolonged muscle disuse-induced mTORC1 signaling activation remains unclear. The mevalonate pathway activates the mTORC1 signaling pathway via the prenylation and activation of Ras homolog enriched in brain (Rheb). Therefore, we investigated the effects of hindlimb unloading (HU) for 14 days on the mevalonate and mTORC1 signaling pathways in the plantaris muscle, a fast-twitch muscle, in adult male rats. Rats were divided into HU and control groups. The plantaris muscles of both groups were harvested after the treatment period, and the expression and phosphorylation levels of metabolic and intracellular signaling proteins were analyzed using Western blotting. We found that HU increased the expression of 3-hydroxy-3-methylglutaryl-coenzyme A reductase, the rate-limiting enzyme of the mevalonate pathway, and activated the mTORC1 signaling pathway without activating AKT, an upstream activator of mTORC1. Furthermore, HU increased prenylated Rheb. Collectively, these findings suggest that the activated mevalonate pathway may be involved in the activation of the Rheb/mTORC1 signaling pathway without AKT activation in fast-twitch muscles under prolonged disuse conditions.
引用
收藏
页数:15
相关论文
共 63 条
[31]   Insulin Resistance Is Not Sustained Following Denervation in Glycolytic Skeletal Muscle [J].
McMillin, Shawna L. ;
Stanley, Erin C. ;
Weyrauch, Luke A. ;
Brault, Jeffrey J. ;
Kahn, Barbara B. ;
Witczak, Carol A. .
INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2021, 22 (09)
[32]   Early activation of mTORC1 signalling in response to mechanical overload is independent of phosphoinositide 3-kinase/Akt signalling [J].
Miyazaki, Mitsunori ;
McCarthy, John J. ;
Fedele, Mark J. ;
Esser, Karyn A. .
JOURNAL OF PHYSIOLOGY-LONDON, 2011, 589 (07) :1831-1846
[33]   The interplay between cell signalling and the mevalonate pathway in cancer [J].
Mullen, Peter J. ;
Yu, Rosemary ;
Longo, Joseph ;
Archer, Michael C. ;
Penn, Linda Z. .
NATURE REVIEWS CANCER, 2016, 16 (11) :718-731
[34]   Single muscle fiber proteomics reveals unexpected mitochondrial specialization [J].
Murgia, Marta ;
Nagaraj, Nagarjuna ;
Deshmukh, Atul S. ;
Zeiler, Marlis ;
Cancellara, Pasqua ;
Moretti, Irene ;
Reggiani, Carlo ;
Schiaffino, Stefano ;
Mann, Matthias .
EMBO REPORTS, 2015, 16 (03) :387-395
[35]   Mitochondrial pyruvate and fatty acid flux modulate MICU1-dependent control of MCU activity [J].
Nemani, Neeharika ;
Dong, Zhiwei ;
Daw, Cassidy C. ;
Madaris, Travis R. ;
Ramachandran, Karthik ;
Enslow, Benjamin T. ;
Rubannelsonkumar, Cherubina S. ;
Shanmughapriya, Santhanam ;
Mallireddigari, Varshini ;
Maity, Soumya ;
SinghMalla, Pragya ;
Natarajanseenivasan, Kalimuthusamy ;
Hooper, Robert ;
Shannon, Christopher E. ;
Tourtellotte, Warren G. ;
Singh, Brij B. ;
Reeves, W. Brian ;
Sharma, Kumar ;
Norton, Luke ;
Srikantan, Subramanya ;
Soboloff, Jonathan ;
Madesh, Muniswamy .
SCIENCE SIGNALING, 2020, 13 (628)
[36]   P38α MAPK coordinates the activities of several metabolic pathways that together induce atrophy of denervated muscles [J].
Odeh, Maali ;
Tamir-Livne, Yael ;
Haas, Tali ;
Bengal, Eyal .
FEBS JOURNAL, 2020, 287 (01) :73-93
[37]   Tissue-Specific Mitochondrial Decoding of Cytoplasmic Ca2+ Signals Is Controlled by the Stoichiometry of MICU1/2 and MCU [J].
Paillard, Melanie ;
Csordas, Gyoergy ;
Szanda, Gergoe ;
Golenar, Tuende ;
Debattisti, Valentina ;
Bartok, Adam ;
Wang, Nadan ;
Moffat, Cynthia ;
Seifert, Erin L. ;
Spaet, Andras ;
Hajnoczky, Gyoergy .
CELL REPORTS, 2017, 18 (10) :2291-2300
[38]   IDH2 Deficiency Is Critical in Myogenesis and Fatty Acid Metabolism in Mice Skeletal Muscle [J].
Pan, Jeong Hoon ;
Tang, Jingsi ;
Kim, Young Jun ;
Lee, Jin Hyup ;
Shin, Eui-Cheol ;
Zhao, Jiangchao ;
Kim, Kee-Hong ;
Hwang, Kyung A. ;
Huang, Yan ;
Kim, Jae Kyeom .
INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2020, 21 (16) :1-9
[39]   Proteasome-dependent Activation of Mammalian Target of Rapamycin Complex 1 (mTORC1) Is Essential for Autophagy Suppression and Muscle Remodeling Following Denervation [J].
Pham Nguyen Quy ;
Kuma, Akiko ;
Pierre, Philippe ;
Mizushima, Noboru .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2013, 288 (02) :1125-1134
[40]   Acetyl Coenzyme A: A Central Metabolite and Second Messenger [J].
Pietrocola, Federico ;
Galluzzi, Lorenzo ;
Bravo-San Pedro, Jose Manuel ;
Madeo, Frank ;
Kroemer, Guido .
CELL METABOLISM, 2015, 21 (06) :805-821