AKT2 regulates development and metabolic homeostasis via AMPK-depedent pathway in skeletal muscle

Author:

Chen Miao1,Ji Caoyu2,Yang Qingchen2,Gao Shuya2,Peng Yue1,Li Zhe345,Gao Xingyu1,Li Yaoting1,Jiang Nan1,Zhang Yubin1,Bian Xiaohong1,Chen Caiping6,Zhang Kaidi1,Sanchis Daniel7,Yan Fangrong2,Ye Junmei1ORCID

Affiliation:

1. State Key Laboratory of Natural Medicines, Department of Biochemistry, School of Life Science and Technology, China Pharmaceutical University, Nanjing 210006, China

2. Research Center of Biostatistics and Computational Pharmacy, China Pharmaceutical University, Nanjing 210006, China

3. Department of Cardiology, Renmin Hospital of Wuhan University, Wuhan 430060, China

4. Cardiovascular Research Institute, Wuhan University, Wuhan 430060, China

5. Hubei Key Laboratory of Cardiology, Wuhan 430060, China

6. Jiangsu Key Laboratory of Drug Discovery for Metabolic Disease, State Key Laboratory of Natural Medicines, China Pharmaceutical University, Nanjing 210009, China

7. Institut de Recerca Biomedica de Lleida (IRBLLEIDA)-Universitat de Lleida, Edifici Biomedicina-I. Av. Rovira Roure 80, Lleida 25198, Spain

Abstract

Abstract Skeletal muscle is responsible for the majority of glucose disposal in the body. Insulin resistance in the skeletal muscle accounts for 85–90% of the impairment of total glucose disposal in patients with type 2 diabetes (T2D). However, the mechanism remains controversial. The present study aims to investigate whether AKT2 deficiency causes deficits in skeletal muscle development and metabolism, we analyzed the expression of molecules related to skeletal muscle development, glucose uptake and metabolism in mice of 3- and 8-months old. We found that AMP-activated protein kinase (AMPK) phosphorylation and myocyte enhancer factor 2 (MEF2) A (MEF2A) expression were down-regulated in AKT2 knockout (KO) mice, which can be inverted by AMPK activation. We also observed reduced mitochondrial DNA (mtDNA) abundance and reduced expression of genes involved in mitochondrial biogenesis in the skeletal muscle of AKT2 KO mice, which was prevented by AMPK activation. Moreover, AKT2 KO mice exhibited impaired AMPK signaling in response to insulin stimulation compared with WT mice. Our study establishes a new and important function of AKT2 in regulating skeletal muscle development and glucose metabolism via AMPK-dependent signaling.

Publisher

Portland Press Ltd.

Subject

General Medicine

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