胰岛素抵抗
骨骼肌
胰岛素
内质网
内科学
内分泌学
线粒体
生物
葡萄糖稳态
肌发生
胰岛素受体
细胞生物学
医学
作者
Emily Tubbs,Stéphanie Chanon,Maud Robert,Nadia Bendridi,Gabriel Bidaux,Marie‐Agnès Chauvin,J. Cao,Christine Durand,Daphné Gauvrit-Ramette,Hubert Vidal,Étienne Lefai,Jennifer Rieusset
出处
期刊:Diabetes
[American Diabetes Association]
日期:2018-01-11
卷期号:67 (4): 636-650
被引量:188
摘要
Modifications of the interactions between endoplasmic reticulum (ER) and mitochondria, defined as mitochondria-associated membranes (MAMs), were recently shown to be involved in the control of hepatic insulin action and glucose homeostasis, but with conflicting results. Whereas skeletal muscle is the primary site of insulin-mediated glucose uptake and the main target for alterations in insulin-resistant states, the relevance of MAM integrity in muscle insulin resistance is unknown. Deciphering the importance of MAMs on muscle insulin signaling could help to clarify this controversy. Here, we show in skeletal muscle of different mice models of obesity and type 2 diabetes (T2D) a marked disruption of ER-mitochondria interactions as an early event preceding mitochondrial dysfunction and insulin resistance. Furthermore, in human myotubes, palmitate-induced insulin resistance is associated with a reduction of structural and functional ER-mitochondria interactions. Importantly, experimental increase of ER-mitochondria contacts in human myotubes prevents palmitate-induced alterations of insulin signaling and action, whereas disruption of MAM integrity alters the action of the hormone. Lastly, we found an association between altered insulin signaling and ER-mitochondria interactions in human myotubes from obese subjects with or without T2D compared with healthy lean subjects. Collectively, our data reveal a new role of MAM integrity in insulin action of skeletal muscle and highlight MAM disruption as an essential subcellular alteration associated with muscle insulin resistance in mice and humans. Therefore, reduced ER-mitochondria coupling could be a common alteration of several insulin-sensitive tissues playing a key role in altered glucose homeostasis in the context of obesity and T2D.
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