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致心律失常性心肌病相关钙黏蛋白变体影响桥粒结合动力学。

Arrhythmogenic cardiomyopathy-related cadherin variants affect desmosomal binding kinetics.

机构信息

Department of Physics, Experimental Biophysics and Applied Nanoscience, Bielefeld University, Universitätsstraße 25, Bielefeld, Germany.

Erich & Hanna Klessmann Institute for Cardiovascular Research and Development, Heart and Diabetes Center NRW, University Hospital of the Ruhr-University Bochum, Georgstraße 11, Bad Oeynhausen, Germany.

出版信息

J Mol Cell Cardiol. 2024 Oct;195:36-44. doi: 10.1016/j.yjmcc.2024.07.009. Epub 2024 Jul 28.

Abstract

Cadherins are calcium dependent adhesion proteins that establish and maintain the intercellular mechanical contact by bridging the gap between adjacent cells. Desmoglein-2 (Dsg2) and desmocollin-2 (Dsc2) are tissue specific cadherin isoforms of the cell-cell contact in cardiac desmosomes. Mutations in the DSG2-gene and in the DSC2-gene are related to arrhythmogenic right ventricular cardiomyopathy (ARVC) a rare but severe heart muscle disease. Here, several possible homophilic and heterophilic binding interactions of wild-type Dsg2, wild-type Dsc2, as well as one Dsg2- and two Dsc2-variants, each associated with ARVC, are investigated. Using single molecule force spectroscopy (SMFS) with atomic force microscopy (AFM) and applying Jarzynski's equality the kinetics and thermodynamics of Dsg2/Dsc2 interaction can be determined. The free energy landscape of Dsg2/Dsc2 dimerization exposes a high activation energy barrier, which is in line with the proposed strand-swapping binding motif. Although the binding motif is not affected by any of the mutations, the binding kinetics of the interactions differ significantly from the wild-type. While wild-type cadherins exhibit an average complex lifetime of approx. 0.3 s interactions involving a variant consistently show - lifetimes that are substantially larger. The lifetimes of the wild-type interactions give rise to the picture of a dynamic adhesion interface consisting of continuously dissociating and (re)associating molecular bonds, while the delayed binding kinetics of interactions involving an ARVC-associated variant might be part of the pathogenesis. Our data provide a comprehensive and consistent thermodynamic and kinetic description of cardiac cadherin binding, allowing detailed insight into the molecular mechanisms of cell adhesion.

摘要

钙黏蛋白是一种依赖钙的黏附蛋白,通过桥接相邻细胞之间的间隙来建立和维持细胞间的机械接触。桥粒芯糖蛋白-2 (Dsg2) 和桥粒胶蛋白-2 (Dsc2) 是心肌桥粒细胞间连接的组织特异性钙黏蛋白同工型。DSG2 基因和 DSC2 基因的突变与致心律失常性右室心肌病 (ARVC) 有关,这是一种罕见但严重的心肌疾病。在这里,研究了野生型 Dsg2、野生型 Dsc2 以及与 ARVC 相关的一种 Dsg2 和两种 Dsc2 变体的几种可能的同型和异型结合相互作用。使用原子力显微镜 (AFM) 的单分子力谱 (SMFS) 和应用 Jarzynski 等式,可以确定 Dsg2/Dsc2 相互作用的动力学和热力学。Dsg2/Dsc2 二聚化的自由能景观暴露了一个高的激活能垒,这与提出的链交换结合基序一致。尽管结合基序不受任何突变的影响,但相互作用的结合动力学有显著差异。虽然野生型钙黏蛋白表现出平均约 0.3 s 的复合物寿命,但涉及变体的相互作用始终显示出寿命明显更长。野生型相互作用的寿命产生了一个动态黏附界面的图像,该界面由不断解离和 (再) 结合的分子键组成,而涉及 ARVC 相关变体的相互作用的延迟结合动力学可能是发病机制的一部分。我们的数据提供了对心脏钙黏蛋白结合的全面和一致的热力学和动力学描述,允许深入了解细胞黏附的分子机制。

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