Division of Applied Life Sciences, Graduate School of Agriculture, Kyoto University, Sakyo-ku, Kyoto 606-8502, Japan.
Laboratory of Bioimaging and Cell Signaling, Graduate School of Biostudies, Kyoto University, Sakyo-ku, Kyoto 606-8501, Japan.
J Cell Sci. 2019 Jan 21;132(2):jcs217349. doi: 10.1242/jcs.217349.
Extracellular matrix (ECM) stiffness regulates various cell behaviors, including cell differentiation, proliferation and migration. Vinculin and vinexin α (an isoform encoded by the gene), both of which localize to focal adhesions, cooperatively function as mechanosensors of ECM stiffness. On a rigid ECM, vinexin α interacts with vinculin and induces a conformational change in vinculin to give an 'open' form, which promotes nuclear localization of Yes-associated protein (YAP, also known as YAP1) and transcriptional coactivator with a PDZ-binding motif (TAZ, also known as WWTR1) (hereafter YAP/TAZ). However, the detailed mechanism by which vinexin α induces the conformational change in vinculin has not been revealed. Here, we identify an amphipathic helix named H2 as a novel vinculin-binding site in vinexin α. The H2 helix interacts with the vinculin D1b subdomain and promotes the formation of a talin-vinculin-vinexin α ternary complex. Mutations in the H2 region not only impair the ability of vinexin α to induce the ECM stiffness-dependent conformational change in vinculin but also to promote nuclear localization of YAP/TAZ on rigid ECM. Taken together, these results demonstrate that the H2 helix in vinexin α plays a critical role in ECM stiffness-dependent regulation of vinculin and cell behaviors.
细胞外基质(ECM)的硬度调节着各种细胞行为,包括细胞分化、增殖和迁移。衔接蛋白(vinculin)和衔接蛋白α(一种由 基因编码的同工型)都定位于黏着斑,共同作为 ECM 硬度的机械感受器发挥作用。在刚性 ECM 上,衔接蛋白α与衔接蛋白相互作用,并诱导衔接蛋白构象发生变化,形成“开放”形式,从而促进 Yes 相关蛋白(YAP,也称为 YAP1)和 PDZ 结合基序的转录共激活因子(TAZ,也称为 WWTR1)(以下统称 YAP/TAZ)的核定位。然而,衔接蛋白α诱导衔接蛋白构象发生变化的详细机制尚未揭示。在这里,我们鉴定出一个名为 H2 的两亲性螺旋,作为衔接蛋白α中的一个新的衔接蛋白结合位点。H2 螺旋与衔接蛋白 D1b 亚结构域相互作用,并促进 talin-衔接蛋白-衔接蛋白α三元复合物的形成。H2 区的突变不仅削弱了衔接蛋白α诱导衔接蛋白在 ECM 硬度依赖性构象变化的能力,也削弱了其促进 YAP/TAZ 在刚性 ECM 上核定位的能力。总之,这些结果表明,衔接蛋白α中的 H2 螺旋在 ECM 硬度依赖性调节衔接蛋白和细胞行为中起着关键作用。