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电小体组装:来自高电压激活钙通道(CaV)-伴侣蛋白相互作用的结构见解。

Electrosome assembly: Structural insights from high voltage-activated calcium channel (CaV)-chaperone interactions.

作者信息

Chen Zhou, Minor Daniel L

机构信息

Cardiovascular Research Institute, University of California-San Francisco, San Francisco, CA 94158-9001, U.S.A.

Department of Biochemistry and Biophysics, and Cellular and Molecular Pharmacology, University of California-San Francisco, San Francisco, CA 94158-9001, U.S.A.

出版信息

Biochem Soc Trans. 2025 Feb 6;53(1):BST20240422. doi: 10.1042/BST20240422.

Abstract

Ion channels are multicomponent complexes (termed here as"electrosomes") that conduct the bioelectrical signals required for life. It has been appreciated for decades that assembly is critical for proper channel function, but knowledge of the factors that undergird this important process has been lacking. Although there are now exemplar structures of representatives of most major ion channel classes, there has been no direct structural information to inform how these complicated, multipart complexes are put together or whether they interact with chaperone proteins that aid in their assembly. Recent structural characterization of a complex of the endoplasmic membrane protein complex (EMC) chaperone and a voltage-gated calcium channel (CaV) assembly intermediate comprising the pore-forming CaVα1 and cytoplasmic CaVβ subunits offers the first structural view into the assembly of a member of the largest ion channel class, the voltagegated ion channel (VGIC) superfamily. The structure shows how the EMC remodels the CaVα1/CaVβ complex through a set of rigid body movements for handoff to the extracellular CaVα2δ subunit to complete channel assembly in a process that involves intersubunit coordination of a divalent cation and ordering of CaVα1 elements. These findings set a new framework for deciphering the structural underpinnings of ion channel biogenesis that has implications for understanding channel function, how drugs and disease mutations act, and for investigating how other membrane proteins may engage the ubiquitous EMC chaperone.

摘要

离子通道是传导生命所需生物电信号的多组分复合物(在此称为“电小体”)。几十年来,人们已经认识到组装对于通道的正常功能至关重要,但对于支撑这一重要过程的因素却缺乏了解。尽管现在大多数主要离子通道类别的代表都有示例结构,但尚无直接的结构信息来告知这些复杂的多部分复合物是如何组装在一起的,或者它们是否与有助于组装的伴侣蛋白相互作用。内质网蛋白复合物(EMC)伴侣与包含形成孔道的CaVα1和细胞质CaVβ亚基的电压门控钙通道(CaV)组装中间体的复合物的最新结构表征,首次为最大的离子通道类别——电压门控离子通道(VGIC)超家族成员的组装提供了结构视角。该结构展示了EMC如何通过一系列刚体运动重塑CaVα1/CaVβ复合物,以便将其交接给细胞外CaVα2δ亚基,从而在涉及二价阳离子亚基间协调和CaVα1元件排序的过程中完成通道组装。这些发现为破译离子通道生物发生的结构基础建立了一个新框架,这对于理解通道功能、药物和疾病突变的作用方式以及研究其他膜蛋白如何与普遍存在的EMC伴侣相互作用具有重要意义。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a784/12186537/80dfc81e938f/bst-53-01-bst-2024-0422-g001.jpg

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