生物
胰岛素抵抗
胰岛素受体
细胞生物学
信号转导
mTORC1型
内分泌学
胰岛素
2型糖尿病
磷酸化
PI3K/AKT/mTOR通路
糖尿病
作者
Thiago M. Batista,Ashok Kumar Jayavelu,Nicolai J. Wewer Albrechtsen,Salvatore Iovino,Jasmin Lebastchi,Hui Pan,Jonathan M. Dreyfuss,Anna Krook,Juleen R. Zierath,Matthias Mann,C. Ronald Kahn
出处
期刊:Cell Metabolism
[Cell Press]
日期:2020-09-03
卷期号:32 (5): 844-859.e5
被引量:106
标识
DOI:10.1016/j.cmet.2020.08.007
摘要
Skeletal muscle insulin resistance is the earliest defect in type 2 diabetes (T2D), preceding and predicting disease development. To what extent this reflects a primary defect or is secondary to tissue cross talk due to changes in hormones or circulating metabolites is unknown. To address this question, we have developed an in vitro disease-in-a-dish model using iPS cells from T2D patients differentiated into myoblasts (iMyos). We find that T2D iMyos in culture exhibit multiple defects mirroring human disease, including an altered insulin signaling, decreased insulin-stimulated glucose uptake, and reduced mitochondrial oxidation. More strikingly, global phosphoproteomic analysis reveals a multidimensional network of signaling defects in T2D iMyos going beyond the canonical insulin-signaling cascade, including proteins involved in regulation of Rho GTPases, mRNA splicing and/or processing, vesicular trafficking, gene transcription, and chromatin remodeling. These cell-autonomous defects and the dysregulated network of protein phosphorylation reveal a new dimension in the cellular mechanisms underlying the fundamental defects in T2D.
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