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依赖于力的衔接蛋白与连环蛋白α的结合调控细胞-细胞黏附的稳定性和细胞的集体行为。

Force-dependent binding of vinculin to α-catenin regulates cell-cell contact stability and collective cell behavior.

机构信息

Institut Jacques Monod, Centre National de la Recherche Scientifique, CNRS UMR 7592, Université Paris-Diderot, 75205 Paris Cedex 13, France.

Mechanobiology Institute, National University of Singapore, Singapore 117411.

出版信息

Mol Biol Cell. 2018 Feb 15;29(4):380-388. doi: 10.1091/mbc.E17-04-0231. Epub 2017 Dec 27.

Abstract

The shaping of a multicellular body and repair of adult tissues require fine--tuning of cell adhesion, cell mechanics, and intercellular transmission of mechanical load. Adherens junctions (AJs) are the major intercellular junctions by which cells sense and exert mechanical force on each other. However, how AJs adapt to mechanical stress and how this adaptation contributes to cell-cell cohesion and eventually to tissue-scale dynamics and mechanics remains largely unknown. Here, by analyzing the tension-dependent recruitment of vinculin, α-catenin, and F-actin as a function of stiffness, as well as the dynamics of GFP-tagged wild-type and mutated α-catenins, altered for their binding capability to vinculin, we demonstrate that the force-dependent binding of vinculin stabilizes α-catenin and is responsible for AJ adaptation to force. Challenging cadherin complexes mechanical coupling with magnetic tweezers, and cell-cell cohesion during collective cell movements, further highlight that tension-dependent adaptation of AJs regulates cell-cell contact dynamics and coordinated collective cell migration. Altogether, these data demonstrate that the force-dependent α-catenin/vinculin interaction, manipulated here by mutagenesis and mechanical control, is a core regulator of AJ mechanics and long-range cell-cell interactions.

摘要

细胞黏附、细胞力学和细胞间机械力传递的精细调控对于多细胞生物形体的塑造和成年组织的修复至关重要。黏附连接(AJs)是细胞感知和相互施加机械力的主要细胞间连接。然而,AJ 如何适应机械应力,以及这种适应如何有助于细胞-细胞间的黏附和最终影响组织尺度的动力学和力学性质,目前仍知之甚少。在这里,我们通过分析黏着斑蛋白(vinculin)、连环蛋白(α-catenin)和 F-肌动蛋白(F-actin)在不同硬度下的张力依赖性募集情况,以及 GFP 标记的野生型和突变型α-catenin 的动力学变化(这些突变型α-catenin改变了与 vinculin 的结合能力),证明了 vinculin 的力依赖性结合稳定了α-catenin,并负责 AJ 对力的适应。利用磁镊挑战钙黏蛋白复合物的机械耦联,以及在细胞群体运动过程中的细胞-细胞黏附,进一步强调了 AJ 的张力依赖性适应调节细胞-细胞接触动力学和协调的群体细胞迁移。总之,这些数据表明,这里通过突变和力学控制操纵的力依赖性α-catenin/vinculin 相互作用是 AJ 力学和长程细胞间相互作用的核心调节因子。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d96d/6014167/cc69ea810740/mbc-29-380-g001.jpg

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