Mechanisms and physiological functions of ER-phagy

IF 2.5 Q2 PHYSIOLOGY Current Opinion in Physiology Pub Date : 2022-12-01 DOI:10.1016/j.cophys.2022.100613
Pablo Sanz-Martinez, Alexandra Stolz
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Abstract

The endoplasmic reticulum (ER) is the largest cellular organelle that undergoes constant turnover upon diverse functional demands and cellular signals. Removal of nonfunctional or superfluous subdomains is balanced by the parallel expansion and formation of ER membranes, leading to the dynamic exchange of ER components. In recent years, selective autophagy of the ER, termed ER-phagy, has emerged as a predominant process involved in ER degradation and maintenance of ER homeostasis. Identification of multiple ER-phagy receptors, many with additional ER-shaping functions, paved the way for our molecular understanding of ER turnover in different cells and organs. In this review, we describe the molecular principles underling the physiological functions of ER-phagy in maintaining ER homeostasis via receptor-mediated macroautophagy and elaborate current focus points of the field.

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er吞噬的机制和生理功能
内质网(ER)是最大的细胞器,根据不同的功能需求和细胞信号进行不断的更新。通过内质网膜的平行扩张和形成来平衡非功能性或多余的子结构域的去除,从而导致内质网成分的动态交换。近年来,内质网的选择性自噬被称为内质网吞噬,已成为内质网降解和维持内质网稳态的主要过程。多种ER吞噬受体的鉴定,其中许多具有额外的ER塑造功能,为我们了解不同细胞和器官中的ER转换分子铺平了道路。在这篇综述中,我们描述了内质网吞噬通过受体介导的巨噬维持内质网稳态的生理功能的分子原理,并阐述了目前该领域的热点。
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来源期刊
Current Opinion in Physiology
Current Opinion in Physiology Medicine-Physiology (medical)
CiteScore
5.80
自引率
0.00%
发文量
52
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