机械敏感通道
压电1
生物物理学
离子通道
机械转化
化学
突变体
门控
细胞生物学
跨膜蛋白
膜
螺旋(腹足类)
跨膜结构域
生物
生物化学
基因
受体
蜗牛
生态学
作者
Wang Zheng,Elena O. Gracheva,Sviatoslav N. Bagriantsev
出处
期刊:eLife
[eLife Sciences Publications Ltd]
日期:2019-01-10
卷期号:8
被引量:93
摘要
Piezo1 and Piezo2 belong to a family of mechanically-activated ion channels implicated in a wide range of physiological processes. Mechanical stimulation triggers Piezo channels to open, but their characteristic fast inactivation process results in rapid closure. Several disease-causing mutations in Piezo1 alter the rate of inactivation, highlighting the importance of inactivation to the normal function of this channel. However, despite the structural identification of two physical constrictions within the closed pore, the mechanism of inactivation remains unknown. Here we identify a functionally conserved inactivation gate in the pore-lining inner helix of mouse Piezo1 and Piezo2 that is distinct from the two constrictions. We show that this gate controls the majority of Piezo1 inactivation via a hydrophobic mechanism and that one of the physical constrictions acts as a secondary gate. Our results suggest that, unlike other rapidly inactivating ion channels, a hydrophobic barrier gives rise to fast inactivation in Piezo channels.
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