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应激致死——内质网应激诱导细胞死亡的机制

Stressed to death - mechanisms of ER stress-induced cell death.

作者信息

Sovolyova Natalia, Healy Sandra, Samali Afshin, Logue Susan E

出版信息

Biol Chem. 2014 Jan;395(1):1-13. doi: 10.1515/hsz-2013-0174.

Abstract

The endoplasmic reticulum (ER) is a highly dynamic organelle of fundamental importance present in all eukaryotic cells. The majority of synthesized structural and secreted proteins undergo post-translational modification, folding and oligomerization in the ER lumen, enabling proteins to carry out their physiological functions. Therefore, maintenance of ER homeostasis and function is imperative for proper cellular function. Physiological and pathological conditions can disturb ER homeostasis and thus negatively impact upon protein folding, resulting in an accumulation of unfolded proteins. Examples include hypoxia, hypo- and hyperglycemia, acidosis, and fluxes in calcium levels. Increased levels of unfolded/misfolded proteins within the ER lumen triggers a condition commonly referred to as 'ER stress'. To combat ER stress, cells have evolved a highly conserved adaptive stress response referred to as the unfolded protein response (UPR). UPR signaling affords the cell a 'window of opportunity' for stress resolution however, if prolonged or excessive the UPR is insufficient and ER stress-induced cell death ensues. This review discusses the role of ER stress sensors IRE1, PERK and ATF6, describing their role in ER stress-induced death signaling with specific emphasis placed upon the importance of the intrinsic cell death pathway and Bcl-2 family regulation.

摘要

内质网(ER)是所有真核细胞中存在的一种极其重要的高度动态的细胞器。大多数合成的结构蛋白和分泌蛋白在内质网腔中进行翻译后修饰、折叠和寡聚化,使蛋白质能够发挥其生理功能。因此,维持内质网的稳态和功能对于细胞的正常功能至关重要。生理和病理状况会扰乱内质网稳态,从而对蛋白质折叠产生负面影响,导致未折叠蛋白的积累。例子包括缺氧、低血糖和高血糖、酸中毒以及钙水平的波动。内质网腔内未折叠/错误折叠蛋白水平的升高引发了一种通常称为“内质网应激”的状况。为了应对内质网应激,细胞进化出了一种高度保守的适应性应激反应,称为未折叠蛋白反应(UPR)。UPR信号传导为细胞提供了一个解决应激的“机会窗口”,然而,如果UPR持续时间过长或过度,它就会不足,继而引发内质网应激诱导的细胞死亡。本综述讨论了内质网应激传感器IRE1、PERK和ATF6的作用,描述了它们在内质网应激诱导的死亡信号传导中的作用,并特别强调了内在细胞死亡途径和Bcl-2家族调节的重要性。

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