压电1
生物学中的钙
费斯特共振能量转移
细胞生物学
生物物理学
机械转化
细胞内
信号转导
钙
钙信号传导
生物
刺激
受体
离子通道
生物化学
化学
机械敏感通道
荧光
神经科学
有机化学
物理
量子力学
作者
Yijia Pan,Linda Shi,Chi Woo Yoon,Daryl Preece,Veronica Gomez‐Godinez,Shaoying Lu,Christopher Carmona,Seung‐Hyun Woo,Shu Chien,Michael W. Berns,Longwei Liu,Yingxiao Wang
出处
期刊:The EMBO Journal
[Springer Nature]
日期:2022-07-17
卷期号:41 (17): e111799-e111799
被引量:32
标识
DOI:10.15252/embj.2022111799
摘要
Abstract Piezo1 belongs to mechano‐activatable cation channels serving as biological force sensors. However, the molecular events downstream of Piezo1 activation remain unclear. In this study, we used biosensors based on fluorescence resonance energy transfer (FRET) to investigate the dynamic modes of Piezo1‐mediated signaling and revealed a bimodal pattern of Piezo1‐induced intracellular calcium signaling. Laser‐induced shockwaves (LIS) and its associated shear stress can mechanically activate Piezo1 to induce transient intracellular calcium (Ca [i] ) elevation, accompanied by an increase in FAK activity. Interestingly, multiple pulses of shockwave stimulation caused a more sustained calcium increase and a decrease in FAK activity. Similarly, tuning the degree of Piezo1 activation by titrating either the dosage of Piezo1 ligand Yoda1 or the expression level of Piezo1 produced a similar bimodal pattern of FAK responses. Further investigations revealed that SHP2 serves as an intermediate regulator mediating this bimodal pattern in Piezo1 sensing and signaling. These results suggest that the degrees of Piezo1 activation induced by both mechanical LIS and chemical ligand stimulation may determine downstream signaling characteristics.
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