线粒体
内质网
细胞生物学
细胞器
内科学
未折叠蛋白反应
内分泌学
生物
平衡
粒体自噬
化学
生物化学
医学
自噬
细胞凋亡
作者
Florian Dingreville,Baptiste Panthu,Charles Thivolet,Sylvie Ducreux,Yves Gouriou,Sandra Pesenti,Marie‐Agnès Chauvin,Karim Chikh,Elisabeth Errazuriz-Cerda,Fabien Van Coppenolle,Jennifer Rieusset,Anne‐Marie Madec
出处
期刊:Diabetes
[American Diabetes Association]
日期:2019-06-07
卷期号:68 (9): 1778-1794
被引量:58
摘要
Glucotoxicity-induced β-cell dysfunction in type 2 diabetes is associated with alterations of mitochondria and the endoplasmic reticulum (ER). Both organelles interact at contact sites, defined as mitochondria-associated membranes (MAMs), which were recently implicated in the regulation of glucose homeostasis. The role of MAMs in β-cells is still largely unknown, and their implication in glucotoxicity-associated β-cell dysfunction remains to be defined. Here, we report that acute glucose treatment stimulated ER-mitochondria interactions and calcium (Ca2+) exchange in INS-1E cells, whereas disruption of MAMs altered glucose-stimulated insulin secretion (GSIS). Conversely, chronic incubations with high glucose of either INS-1E cells or human pancreatic islets altered GSIS and concomitantly reduced ER Ca2+ store, increased basal mitochondrial Ca2+, and reduced ATP-stimulated ER-mitochondria Ca2+ exchanges, despite an increase of organelle interactions. Furthermore, glucotoxicity-induced perturbations of Ca2+ signaling are associated with ER stress, altered mitochondrial respiration, and mitochondria fragmentation, and these organelle stresses may participate in increased organelle tethering as a protective mechanism. Last, sustained induction of ER-mitochondria interactions using a linker reduced organelle Ca2+ exchange, induced mitochondrial fission, and altered GSIS. Therefore, dynamic organelle coupling participates in GSIS in β-cells, and over time, disruption of organelle Ca2+ exchange might be a novel mechanism contributing to glucotoxicity-induced β-cell dysfunction.
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