Retromer 的受体再循环。

IF 4.3 3区 材料科学 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC
ACS Applied Electronic Materials Pub Date : 2023-01-01 Epub Date: 2023-06-23 DOI:10.1080/10985549.2023.2222053
Julian M Carosi, Donna Denton, Sharad Kumar, Timothy J Sargeant
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引用次数: 0

摘要

高度保守的 retromer 复合物控制着数百种通过内溶酶体系统的受体的命运,是各种代谢程序的核心调节节点。20 多年前,retromer 被发现是酵母内体到高尔基体转运的重要调控因子;从那时起,人们在研究元动物 retromer 成分如何组装以实现与内体膜的接触方面取得了重大进展,retromer 通过识别内体和高尔基体细胞质尾部的分拣图案,将货物受体从内体分拣到跨高尔基体网络或质膜。在这篇综述中,我们通过探讨 retromer 的组装结构来研究 retromer 的调控,重点是一系列适配蛋白如何影响受体的转运过程。具体来说,我们将重点关注 retromer 如何被招募到内体、选择货物并生成管泡载体将货物运送到目标膜。我们还研究了细胞如何通过协调 retromer 的表达和功能来适应不同的代谢状态。我们对比了 retromer 及其相关复合物:retriever 和 commander/CCC 的异同,以及它们在受体贩运中的相互作用。我们阐明了 retromer 失调如何成为各种神经退行性疾病、代谢性疾病以及微生物感染的病理核心,并强调了以 retromer 为靶点的疗法的机遇和注意事项。最后,我们以了解 retromer 的调控机制为重点,概述了该领域未来的新方向。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Receptor Recycling by Retromer.

The highly conserved retromer complex controls the fate of hundreds of receptors that pass through the endolysosomal system and is a central regulatory node for diverse metabolic programs. More than 20 years ago, retromer was discovered as an essential regulator of endosome-to-Golgi transport in yeast; since then, significant progress has been made to characterize how metazoan retromer components assemble to enable its engagement with endosomal membranes, where it sorts cargo receptors from endosomes to the trans-Golgi network or plasma membrane through recognition of sorting motifs in their cytoplasmic tails. In this review, we examine retromer regulation by exploring its assembled structure with an emphasis on how a range of adaptor proteins shape the process of receptor trafficking. Specifically, we focus on how retromer is recruited to endosomes, selects cargoes, and generates tubulovesicular carriers that deliver cargoes to target membranes. We also examine how cells adapt to distinct metabolic states by coordinating retromer expression and function. We contrast similarities and differences between retromer and its related complexes: retriever and commander/CCC, as well as their interplay in receptor trafficking. We elucidate how loss of retromer regulation is central to the pathology of various neurogenerative and metabolic diseases, as well as microbial infections, and highlight both opportunities and cautions for therapeutics that target retromer. Finally, with a focus on understanding the mechanisms that govern retromer regulation, we outline new directions for the field moving forward.

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来源期刊
CiteScore
7.20
自引率
4.30%
发文量
567
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