线粒体相关内质网在细胞凋亡中的作用

IF 2.8 3区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY
Mudan Sang, Xindong Li, Mi Chen, Xiaoli Ren, Sheng Kang, Zhenyu Chang, Qingxia Wu
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引用次数: 0

摘要

在生理和病理背景下,细胞凋亡是细胞清除的关键非炎症机制,通过促凋亡和抗凋亡信号之间的平衡精确调节。已经确定了三种具有良好特征的凋亡途径:(1)内在(线粒体介导)途径,(2)外在(死亡受体介导)途径,以及(3)内质网(ER)应激途径。这些过程通过线粒体相关内质网膜(MAMs)进行协调,MAMs是线粒体和内质网之间重要的耦合平台。MAMs在维持Ca 2 +的稳态和通过影响Ca 2 +运输和拴住蛋白表达的结构(例如间隙宽度、接触数)的动态改变来调节细胞凋亡中起关键作用。MAMs上的关键蛋白复合物(包括IP3Rs-Grp75-VDAC1复合物、Mfn1/Mfn2复合物和PTPIP51-containing复合物)通过三种主要机制调节细胞凋亡:ca2 +维持体内平衡、脂质合成和转运、线粒体形态和动力学。此外,mams介导的线粒体动力学,特别是线粒体裂变和嵴重塑,通过促进Bax/Drp1二聚化而促进细胞凋亡。这篇综述系统地研究了MAMs的结构动力学如何影响Ca 2 +的信号传导和拴系蛋白表达,MAMs拴系蛋白及其调节因子在Ca 2 +稳态、脂质代谢和线粒体动力学中的作用,以及线粒体动力学对细胞凋亡过程中Bax/Drp1二聚化的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Role of Mitochondria-Associated ER in Apoptosis

Apoptosis represents a critical noninflammatory mechanism for cell clearance in both physiological and pathological contexts, precisely regulated through the balance between proapoptotic and antiapoptotic signaling. Three well-characterized apoptotic pathways have been identified: (1) the intrinsic (mitochondria-mediated) pathway, (2) the extrinsic (death receptor-mediated) pathway, and (3) the endoplasmic reticulum (ER)-stress pathway. These processes are coordinated through the mitochondria-associated ER membrane (MAMs), which serves as a vital coupling platform between mitochondria and the ER. MAMs play pivotal roles in maintaining Ca²⁺ homeostasis and regulating apoptosis through dynamic alterations in architecture (e.g., gap width, contact number) that influence Ca²⁺ trafficking and tethering protein expression. Key protein complexes localized at MAMs (including the IP3Rs-Grp75-VDAC1 complex, Mfn1/Mfn2 complex, and PTPIP51-containing complex) regulate apoptosis through three primary mechanisms: Ca²⁺ homeostasis maintenance, lipid synthesis and transport, and mitochondrial morphology and dynamics. Furthermore, MAMs-mediated mitochondrial dynamics, particularly mitochondrial fission and cristae remodeling, contribute to apoptosis by facilitating Bax/Drp1 dimerization. This review systematically examines: how MAMs' structural dynamics influence Ca²⁺ signaling and tethering protein expression, the roles of MAMs-tethered proteins and their regulators in Ca²⁺ homeostasis, lipid metabolism, and mitochondrial dynamics, and the impact of mitochondrial dynamics on Bax/Drp1 dimerization during apoptosis.

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来源期刊
Cell Biochemistry and Function
Cell Biochemistry and Function 生物-生化与分子生物学
CiteScore
6.20
自引率
0.00%
发文量
93
审稿时长
6-12 weeks
期刊介绍: Cell Biochemistry and Function publishes original research articles and reviews on the mechanisms whereby molecular and biochemical processes control cellular activity with a particular emphasis on the integration of molecular and cell biology, biochemistry and physiology in the regulation of tissue function in health and disease. The primary remit of the journal is on mammalian biology both in vivo and in vitro but studies of cells in situ are especially encouraged. Observational and pathological studies will be considered providing they include a rational discussion of the possible molecular and biochemical mechanisms behind them and the immediate impact of these observations to our understanding of mammalian biology.
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