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Activation of AMPKα2 Is Not Crucial for Mitochondrial Uncoupling-Induced Metabolic Effects but Required to Maintain Skeletal Muscle Integrity

机译:AMPKα2的激活对于线粒体解偶联诱导的代谢作用不是至关重要的但对于维持骨骼肌的完整性是必需的

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摘要

Transgenic (UCP1-TG) mice with ectopic expression of UCP1 in skeletal muscle (SM) show a phenotype of increased energy expenditure, improved glucose tolerance and increase substrate metabolism in SM. To investigate the potential role of skeletal muscle AMPKα2 activation in the metabolic phenotype of UCP1-TG mice we generated double transgenic (DTG) mice, by crossing of UCP1-TG mice with DN-AMPKα2 mice overexpressing a dominant negative α2 subunit of AMPK in SM which resulted in an impaired AMPKα2 activity by 90±9% in SM of DTG mice. Biometric analysis of young male mice showed decreased body weight, lean and fat mass for both UCP1-TG and DTG compared to WT and DN-AMPKα2 mice. Energy intake and weight-specific total energy expenditure were increased, both in UCP1-TG and DTG mice. Moreover, glucose tolerance, insulin sensitivity and fatty acid oxidation were not altered in DTG compared to UCP1-TG. Also uncoupling induced induction and secretion of fibroblast growth factor 21 (FGF21) from SM was preserved in DTG mice. However, voluntary physical cage activity as well as ad libitum running wheel access during night uncovered a severe activity intolerance of DTG mice. Histological analysis showed a progressive degenerative morphology in SM of DTG mice which was not observed in SM of UCP1-TG mice. Moreover, ATP-depletion related cellular stress response via heat shock protein 70 was highly induced, whereas capillarization regulator VEGF was suppressed in DTG muscle. In addition, AMPKα2-mediated induction of mitophagy regulator ULK1 was suppressed in DTG mice, as well as mitochondrial respiratory capacity and content. In conclusion, we demonstrate that AMPKα2 is dispensable for SM mitochondrial uncoupling induced metabolic effects on whole body energy balance, glucose homeostasis and insulin sensitivity. But strikingly, activation of AMPKα2 seems crucial for maintaining SM function, integrity and the ability to compensate chronic metabolic stress induced by SM mitochondrial uncoupling.
机译:在骨骼肌(SM)中具有UCP1异位表达的转基因(UCP1-TG)小鼠表现出能量消耗增加,葡萄糖耐量提高和SM中底物代谢增加的表型。为了研究骨骼肌AMPKα2激活在UCP1-TG小鼠代谢表型中的潜在作用,我们通过使UCP1-TG小鼠与DN-AMPKα2小鼠杂交,使它们在SM中过度表达了AMPK的显性负α2亚基,从而产生了双转基因(DTG)小鼠。在DTG小鼠的SM中导致AMPKα2活性降低90±9%。对年轻雄性小鼠的生物特征分析显示,与WT和DN-AMPKα2小鼠相比,UCP1-TG和DTG的体重,瘦肉和脂肪减少。在UCP1-TG和DTG小鼠中,能量摄入和体重特定总能量消耗均增加。此外,与UCP1-TG相比,DTG中的葡萄糖耐量,胰岛素敏感性和脂肪酸氧化没有改变。在DTG小鼠中也保留了脱偶联诱导的SM诱导和分泌成纤维细胞生长因子21(FGF21)。但是,自愿的笼子活动以及夜间随意放行的车轮发现了DTG小鼠的严重活动耐受性。组织学分析显示,在DTG小鼠的SM中进行性退化性形态,而在UCP1-TG小鼠的SM中未观察到。此外,通过热激蛋白70诱导了ATP耗竭相关的细胞应激反应,而DTG肌肉中的毛细血管调节因子VEGF被抑制。此外,在DTG小鼠中,AMPKα2介导的线粒体调节剂ULK1的诱导以及线粒体呼吸能力和含量受到抑制。总之,我们证明AMPKα2对于SM线粒体解偶联诱导的代谢对全身能量平衡,葡萄糖稳态和胰岛素敏感性的影响是必不可少的。但令人惊讶的是,AMPKα2的激活对于维持SM功能,完整性和补偿由SM线粒体解偶联引起的慢性代谢应激的能力至关重要。

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