Department of Physics, National University of Singapore, Singapore 117546, Singapore.
Department of Biomedical Engineering, Southern University of Science and Technology, Shenzhen, Guangdong 518055, China.
J Am Chem Soc. 2021 Sep 15;143(36):14726-14737. doi: 10.1021/jacs.1c06223. Epub 2021 Aug 31.
Talin and vinculin are part of a multicomponent system involved in mechanosensing in cell-matrix adhesions. Both exist in autoinhibited forms, and activation of vinculin requires binding to mechanically activated talin, yet how forces affect talin's interaction with vinculin has not been investigated. Here by quantifying the kinetics of force-dependent talin-vinculin interactions using single-molecule analysis, we show that mechanical exposure of a single vinculin binding site (VBS) in talin is sufficient to relieve the autoinhibition of vinculin, resulting in high-affinity binding. We provide evidence that the vinculin undergoes dynamic fluctuations between an autoinhibited closed conformation and an open conformation that is stabilized upon binding to the VBS. Furthermore, we discover an additional level of regulation in which the mechanically exposed VBS binds vinculin significantly more tightly than the isolated VBS alone. Molecular dynamics simulations reveal the basis of this new regulatory mechanism, identifying a sensitive force-dependent change in the conformation of an exposed VBS that modulates binding. Together, these results provide a comprehensive understanding of how the interplay between force and autoinhibition provides exquisite complexity within this major mechanosensing axis.
塔林和纽蛋白是参与细胞-基质黏附中机械感受的多组分系统的一部分。两者都以自动抑制形式存在,纽蛋白的激活需要与机械激活的塔林结合,但力如何影响塔林与纽蛋白的相互作用尚未得到研究。在这里,我们通过使用单分子分析来量化力依赖性塔林-纽蛋白相互作用的动力学,表明机械暴露塔林中的单个纽蛋白结合位点 (VBS) 足以解除纽蛋白的自动抑制,从而导致高亲和力结合。我们提供的证据表明,纽蛋白在自动抑制的封闭构象和结合 VBS 后稳定的开放构象之间经历动态波动。此外,我们发现了一个额外的调节水平,其中机械暴露的 VBS 与纽蛋白的结合比单独的分离 VBS 紧密得多。分子动力学模拟揭示了这种新调节机制的基础,确定了暴露 VBS 的构象中敏感的力依赖性变化,从而调节结合。总之,这些结果提供了对这个主要机械感应轴内的力和自动抑制相互作用如何提供精细复杂性的全面理解。