压电1
细胞生物学
机械敏感通道
生物
剪应力
内皮
化学
离子通道
机械转化
解剖
生物物理学
神经科学
生物化学
内分泌学
材料科学
受体
复合材料
作者
Jing Li,Bing Hou,Sarka Tumova,Katsuhiko Muraki,Alexander Bruns,Melanie J. Ludlow,Alicia Sedó,Adam J. Hyman,Lynn McKeown,Richard S. Young,Nadira Yuldasheva,Yasser Majeed,Lesley Wilson,Baptiste Rode,Marc A. Bailey,Hyejeong R. Kim,Zhaojun Fu,Deborah A. L. Carter,Jan Bilton,Helen Imrie
出处
期刊:Nature
[Nature Portfolio]
日期:2014-08-07
卷期号:515 (7526): 279-282
被引量:1164
摘要
The mechanisms by which physical forces regulate endothelial cells to determine the complexities of vascular structure and function are enigmatic. Studies of sensory neurons have suggested Piezo proteins as subunits of Ca(2+)-permeable non-selective cationic channels for detection of noxious mechanical impact. Here we show Piezo1 (Fam38a) channels as sensors of frictional force (shear stress) and determinants of vascular structure in both development and adult physiology. Global or endothelial-specific disruption of mouse Piezo1 profoundly disturbed the developing vasculature and was embryonic lethal within days of the heart beating. Haploinsufficiency was not lethal but endothelial abnormality was detected in mature vessels. The importance of Piezo1 channels as sensors of blood flow was shown by Piezo1 dependence of shear-stress-evoked ionic current and calcium influx in endothelial cells and the ability of exogenous Piezo1 to confer sensitivity to shear stress on otherwise resistant cells. Downstream of this calcium influx there was protease activation and spatial reorganization of endothelial cells to the polarity of the applied force. The data suggest that Piezo1 channels function as pivotal integrators in vascular biology.
科研通智能强力驱动
Strongly Powered by AbleSci AI