蛋白质稳态
细胞生物学
生物
重编程
线粒体
转录组
表观遗传学
钙信号传导
活体细胞成像
逆行信号
钙
MFN2型
后生
钙显像
胞浆
细胞培养中氨基酸的稳定同位素标记
细胞应激反应
线粒体融合
基因表达调控
HEK 293细胞
调节器
信号转导
功能(生物学)
蛋白质组学
程序性细胞死亡
细胞命运测定
作者
Yanan Lv,Xuejing Zhao,Di Li,Zhaoqi Hao,Yue Zhao,Yuhang Zhou,Yujing Zhang,Han Chen,Zhongbing Lu,Dong Li,Yuting Guo
出处
期刊:Protein & Cell
[Springer Science+Business Media]
日期:2025-12-06
卷期号:17 (4): 304-319
标识
DOI:10.1093/procel/pwaf109
摘要
Mitochondrial calcium fluxes serve as pivotal regulators of optimal organellar function and cellular viability, yet the spatiotemporal regulation of nanodomain Ca2+ transients at mitochondria-ER contact sites (MERCS) and their integration into adaptive mitochondrial stress signaling remain unresolved. In this study, we employed custom-built high temporal-spatial resolution GI/3D-SIM imaging techniques to achieve nanoscale resolution of calcium transients. We identify that MERCS-localized calcium oscillations gate retrograde stress signaling. Mechanistically, we demonstrate that augmented mitochondria-associated ER membrane (MAMs) connectivity unexpectedly attenuated global mitochondrial Ca2+ efflux, which triggering ATF5 shuttling-mediated transcriptional licensing and calcium-sensitive epigenetic reprogramming that synergistically activating stress-resilience programs. Quantitative protein expression and transcriptome analyses confirm that CsA-mediated calcium retention mimics MAMs induction preserves mitochondrial integrity and protecting cells from apoptosis in Aβ1-42-challenged neurons through synchronized UPRmt activation. Our findings reveal a novel mechanism by which MERCS decode proteotoxic stress into transcriptional and epigenetic adaptations, offering therapeutic potential for neurodegenerative diseases.
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