Howard Hughes Medical Institute, Department of Neuroscience, Dorris Neuroscience Center, Scripps Research, La Jolla, CA, USA.
Advanced Imaging Center, Howard Hughes Medical Institute Janelia Research Campus, Ashburn, VA, USA.
Nature. 2023 Aug;620(7976):1117-1125. doi: 10.1038/s41586-023-06427-4. Epub 2023 Aug 16.
PIEZOs are mechanosensitive ion channels that convert force into chemoelectric signals and have essential roles in diverse physiological settings. In vitro studies have proposed that PIEZO channels transduce mechanical force through the deformation of extensive blades of transmembrane domains emanating from a central ion-conducting pore. However, little is known about how these channels interact with their native environment and which molecular movements underlie activation. Here we directly observe the conformational dynamics of the blades of individual PIEZO1 molecules in a cell using nanoscopic fluorescence imaging. Compared with previous structural models of PIEZO1, we show that the blades are significantly expanded at rest by the bending stress exerted by the plasma membrane. The degree of expansion varies dramatically along the length of the blade, where decreased binding strength between subdomains can explain increased flexibility of the distal blade. Using chemical and mechanical modulators of PIEZO1, we show that blade expansion and channel activation are correlated. Our findings begin to uncover how PIEZO1 is activated in a native environment. More generally, as we reliably detect conformational shifts of single nanometres from populations of channels, we expect that this approach will serve as a framework for the structural analysis of membrane proteins through nanoscopic imaging.
PIEZOs 是机械敏感的离子通道,可将力转化为化学电信号,在各种生理环境中起着重要作用。体外研究表明,PIEZO 通道通过源自中央离子传导孔的广泛跨膜域的叶片变形来传递机械力。然而,对于这些通道如何与它们的天然环境相互作用以及激活的基础分子运动知之甚少。在这里,我们使用纳米级荧光成像直接观察单个 PIEZO1 分子的叶片的构象动力学。与 PIEZO1 的先前结构模型相比,我们表明叶片在休息时通过质膜施加的弯曲应力显着扩展。叶片的扩展程度沿长度变化很大,其中亚结构之间的结合强度降低可以解释远端叶片的柔韧性增加。使用 PIEZO1 的化学和机械调节剂,我们表明叶片扩展和通道激活相关。我们的发现开始揭示 PIEZO1 在天然环境中是如何被激活的。更一般地说,由于我们可以从通道群体中可靠地检测到单个纳米的构象变化,我们预计这种方法将成为通过纳米级成像进行膜蛋白结构分析的框架。