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PIEZO1表面相互作用组的化学图谱鉴定出CADM1为通道失活的调节剂。

Chemical mapping of the surface interactome of PIEZO1 identifies CADM1 as a modulator of channel inactivation.

作者信息

Koster Anna K, Yarishkin Oleg, Dubin Adrienne E, Kefauver Jennifer M, Pak Ryan A, Cravatt Benjamin F, Patapoutian Ardem

机构信息

HHMI, Scripps Research, La Jolla CA 92037.

Department of Neuroscience, Scripps Research, La Jolla, CA 92037.

出版信息

Proc Natl Acad Sci U S A. 2024 Oct 8;121(41):e2415934121. doi: 10.1073/pnas.2415934121. Epub 2024 Oct 2.

Abstract

The propeller-shaped blades of the PIEZO1 and PIEZO2 ion channels partition into the plasma membrane and respond to indentation or stretching of the lipid bilayer, thus converting mechanical forces into signals that can be interpreted by cells, in the form of calcium flux and changes in membrane potential. While PIEZO channels participate in diverse physiological processes, from sensing the shear stress of blood flow in the vasculature to detecting touch through mechanoreceptors in the skin, the molecular details that enable these mechanosensors to tune their responses over a vast dynamic range of forces remain largely uncharacterized. To survey the molecular landscape surrounding PIEZO channels at the cell surface, we employed a mass spectrometry-based proteomic approach to capture and identify extracellularly exposed proteins in the vicinity of PIEZO1. This PIEZO1-proximal interactome was enriched in surface proteins localized to cell junctions and signaling hubs within the plasma membrane. Functional screening of these interaction candidates by calcium imaging and electrophysiology in an overexpression system identified the adhesion molecule CADM1/SynCAM that slows the inactivation kinetics of PIEZO1 with little effect on PIEZO2. Conversely, we found that CADM1 knockdown accelerates inactivation of endogenous PIEZO1 in Neuro-2a cells. Systematic deletion of CADM1 domains indicates that the transmembrane region is critical for the observed effects on PIEZO1, suggesting that modulation of inactivation is mediated by interactions in or near the lipid bilayer.

摘要

PIEZO1和PIEZO2离子通道的螺旋桨状叶片嵌入质膜,并对脂质双层的压痕或拉伸做出反应,从而将机械力转化为细胞能够以钙通量和膜电位变化的形式进行解读的信号。虽然PIEZO通道参与多种生理过程,从感知脉管系统中血流的剪切应力到通过皮肤中的机械感受器检测触觉,但在很大程度上,这些机械传感器在巨大的力动态范围内调节其反应的分子细节仍未得到充分表征。为了探究细胞表面PIEZO通道周围的分子环境,我们采用了基于质谱的蛋白质组学方法来捕获和鉴定PIEZO1附近细胞外暴露的蛋白质。这个PIEZO1近端相互作用组富含定位于质膜内细胞连接和信号枢纽的表面蛋白。通过在过表达系统中进行钙成像和电生理学对这些相互作用候选物进行功能筛选,鉴定出粘附分子CADM1/SynCAM,它减缓了PIEZO1的失活动力学,而对PIEZO2影响很小。相反,我们发现敲低CADM1会加速Neuro-2a细胞中内源性PIEZO1的失活。对CADM1结构域的系统性缺失表明,跨膜区域对于观察到的对PIEZO1的影响至关重要,这表明失活的调节是由脂质双层内或其附近的相互作用介导的。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/96fc/11474052/da73bedfe7b9/pnas.2415934121fig01.jpg

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