自噬
mTORC1型
细胞生物学
内质网
化学
瞬时受体电位通道
脂毒性
未折叠蛋白反应
氧化应激
平衡
线粒体
氧化磷酸化
细胞外
蛋白质稳态
内质网相关蛋白降解
细胞内
生物化学
溶酶体
ATP酶
活性氧
KEAP1型
蛋白质降解
TFEB
内科学
内分泌学
蛋白酶体
作者
Ha Thu Nguyen,Luong Dai Ly,Thuy Thi Thanh Ngo,Soo-Kyung Lee,Carlos Noriega Polo,Subo Lee,Taesic Lee,Seung Kuy Cha,Xaviera Riani Yasasilka,Kae Won Cho,Myung-Shik Lee,Andreas Wiederkehr,Claes B. Wollheim,Kyu-Sang Park
出处
期刊:JCI insight
[American Society for Clinical Investigation]
日期:2025-11-11
标识
DOI:10.1172/jci.insight.192827
摘要
Saturated fatty acids impose lipotoxic stress on pancreatic β-cells, leading to β-cell failure and diabetes. In this study, we investigate the critical role of organellar Ca2+ disturbance on defective autophagy and β-cell lipotoxicity. Palmitate, a saturated fatty acid, induced perilysosomal Ca2+ elevation, sustained mTORC1 activation on the lysosomal membrane, suppression of the lysosomal transient receptor potential mucolipin 1 (TRPML1) channel, and accumulation of undigested autophagosomes in β-cells. These Ca2+ aberrations with autophagy defects by palmitate were prevented by an mTORC1 inhibitor or a mitochondrial superoxide scavenger. To alleviate perilysosomal Ca2+ overload, strategies such as lowering extracellular Ca2+, employing voltage-gated Ca2+ channel blocker or ATP-sensitive K+ channel opener effectively abrogated mTORC1 activation and preserved autophagy. Furthermore, redirecting perilysosomal Ca2+ into the endoplasmic reticulum (ER) with an ER Ca2+ ATPase activator, restores TRPML1 activity, promotes autophagic flux, and improves survival of β-cells exposed to palmitate-induced lipotoxicity. Our findings suggest oxidative stress-Ca2+ overload-mTORC1 pathway involvement in TRPML1 suppression and defective autophagy during β-cell lipotoxicity. Restoring perilysosomal Ca2+ homeostasis emerges as a promising therapeutic strategy for metabolic diseases.
科研通智能强力驱动
Strongly Powered by AbleSci AI