Department of Neurobiology, Duke University Medical Center, Durham, NC 27710, USA.
Department of Neurobiology, Duke University Medical Center, Durham, NC 27710, USA.
Cell Rep. 2020 Jan 21;30(3):870-880.e2. doi: 10.1016/j.celrep.2019.12.040.
Piezo1 ion channels are activated by mechanical stimuli and mediate the sensing of blood flow. Although cryo-electron microscopy (cryo-EM) structures have revealed the overall architecture of Piezo1, the precise domains involved in activation and subsequent inactivation have remained elusive. Here, we perform a targeted chimeric screen between Piezo1 and the closely related isoform Piezo2 and use electrophysiology to characterize their inactivation kinetics during mechanical stimulation. We identify three small subdomains within the extracellular cap that individually can confer the distinct kinetics of inactivation of Piezo2 onto Piezo1. We further show by cysteine crosslinking that conformational flexibility of these subdomains is required for mechanical activation to occur and that electrostatic interactions functionally couple the cap to the extensive blades, which have been proposed to function as sensors of membrane curvature and tension. This study provides a demonstration of internal gating motions involved in mechanotransduction by Piezo1.
Piezo1 离子通道受机械刺激激活,并介导对血流的感知。尽管冷冻电子显微镜 (cryo-EM) 结构揭示了 Piezo1 的整体结构,但参与激活和随后失活的确切结构域仍然难以捉摸。在这里,我们在 Piezo1 和密切相关的同工型 Piezo2 之间进行了靶向嵌合体筛选,并使用电生理学来表征它们在机械刺激过程中的失活动力学。我们在细胞外帽内识别出三个小亚结构域,它们各自可以将 Piezo2 的独特失活动力学赋予 Piezo1。我们进一步通过半胱氨酸交联表明,这些亚结构域的构象灵活性对于机械激活的发生是必需的,并且静电相互作用将帽功能性地与广泛的叶片连接起来,这些叶片被提议作为膜曲率和张力传感器。这项研究提供了 Piezo1 机械转导中涉及的内部门控运动的证明。