压电1
机械转化
机械敏感通道
机械反应
离子通道
细胞生物学
生物
伸展激活离子通道
剪应力
神经科学
解剖
遗传学
材料科学
受体
复合材料
作者
Sanjeev S. Ranade,Zhaozhu Qiu,Seung Hyun Woo,Sung Sik Hur,Swetha E. Murthy,Stuart M. Cahalan,Jie Xu,Jayanti Mathur,Michael Bandell,Bertrand Coste,Yi Shuan J. Li,Shu Chien,Ardem Patapoutian
标识
DOI:10.1073/pnas.1409233111
摘要
Mechanosensation is perhaps the last sensory modality not understood at the molecular level. Ion channels that sense mechanical force are postulated to play critical roles in a variety of biological processes including sensing touch/pain (somatosensation), sound (hearing), and shear stress (cardiovascular physiology); however, the identity of these ion channels has remained elusive. We previously identified Piezo1 and Piezo2 as mechanically activated cation channels that are expressed in many mechanosensitive cell types. Here, we show that Piezo1 is expressed in endothelial cells of developing blood vessels in mice. Piezo1-deficient embryos die at midgestation with defects in vascular remodeling, a process critically influenced by blood flow. We demonstrate that Piezo1 is activated by shear stress, the major type of mechanical force experienced by endothelial cells in response to blood flow. Furthermore, loss of Piezo1 in endothelial cells leads to deficits in stress fiber and cellular orientation in response to shear stress, linking Piezo1 mechanotransduction to regulation of cell morphology. These findings highlight an essential role of mammalian Piezo1 in vascular development during embryonic development.
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