Li Jing, Hou Bing, Tumova Sarka, Muraki Katsuhiko, Bruns Alexander, Ludlow Melanie J, Sedo Alicia, Hyman Adam J, McKeown Lynn, Young Richard S, Yuldasheva Nadira Y, Majeed Yasser, Wilson Lesley A, Rode Baptiste, Bailey Marc A, Kim Hyejeong R, Fu Zhaojun, Carter Deborah Al, Bilton Jan, Imrie Helen, Ajuh Paul, Dear T Neil, Cubbon Richard M, Kearney Mark T, Prasad Raj K, Evans Paul C, Ainscough Justin Fx, Beech David J
School of Medicine and Multidisciplinary Cardiovascular Research Centre, University of Leeds, Leeds, LS2 9JT, UK.
School of Pharmacy, Aichi-Gakuin University, 1-100 Kusumoto, Chikusa, Nagoya 464-8650, Japan.
Nature. 2014 Nov 13;515(7526):279-282. doi: 10.1038/nature13701. Epub 2014 Aug 10.
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.
物理力调节内皮细胞以决定血管结构和功能复杂性的机制尚不清楚。对感觉神经元的研究表明,Piezo蛋白是Ca(2+)通透的非选择性阳离子通道的亚基,用于检测有害的机械冲击。在此,我们展示了Piezo1(Fam38a)通道作为摩擦力(剪切应力)的传感器以及在发育和成年生理学中血管结构的决定因素。小鼠Piezo1的整体或内皮特异性破坏严重扰乱了发育中的脉管系统,并在心脏跳动数天内导致胚胎致死。单倍剂量不足并不致命,但在成熟血管中检测到内皮异常。Piezo1通道作为血流传感器的重要性体现在内皮细胞中剪切应力诱发的离子电流和钙内流对Piezo1的依赖性,以及外源性Piezo1赋予原本抗性细胞对剪切应力敏感性的能力。在这种钙内流的下游,有蛋白酶激活以及内皮细胞向施加力的极性进行空间重组。数据表明Piezo1通道在血管生物学中起关键整合作用。