细胞生物学
安普克
腺苷
再生(生物学)
腺苷激酶
生物
祖细胞
mTORC1型
细胞外
骨骼肌
干细胞
癌症研究
激酶
信号转导
蛋白激酶A
内分泌学
PI3K/AKT/mTOR通路
腺苷脱氨酶
作者
Lifang Han,Gang Wang,Shaopu Zhou,Chenghao Situ,Zhiming He,Yuying Li,Yudan Qiu,Yü Huang,Aimin Xu,Michael Tim‐Yun Ong,Huating Wang,Jianfa Zhang,Zhenguo Wu
出处
期刊:Cell Reports
[Cell Press]
日期:2022-05-01
卷期号:39 (9): 110884-110884
被引量:12
标识
DOI:10.1016/j.celrep.2022.110884
摘要
Muscle regeneration is known to be defective under diabetic conditions. However, the underlying mechanisms remain less clear. Adult quiescent muscle satellite cells (MuSCs) from leptin-receptor-deficient (i.e., db/db) diabetic mice are defective in early activation in vivo, but not in culture, suggesting the involvement of pathogenic niche factors. Elevated extracellular adenosine (eAdo) and AMP (eAMP) are detected under diabetic conditions. eAdo and eAMP potently inhibit cell cycle re-entry of quiescent MuSCs and injury-induced muscle regeneration. Mechanistically, eAdo and eAMP engage the equilibrative Ado transporters (ENTs)-Ado kinase (ADK)-AMPK signaling axis in MuSCs to inhibit the mTORC1-dependent cell growth checkpoint. eAdo and eAMP also inhibit early activation of quiescent fibroadipogenic progenitors and human MuSCs by the same mechanism. Treatment of db/db diabetic mice with an ADK inhibitor partially rescues the activation defects of MuSCs in vivo. Thus, both ADK and ENTs represent potential therapeutic targets for restoring the regenerative functions of tissue stem cells in patients with diabetes.
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