压电1
机械敏感通道
斑马鱼
细胞生物学
壁细胞
血管平滑肌
背主动脉
主动脉
解剖
生物
化学
内科学
内分泌学
离子通道
医学
平滑肌
受体
生物化学
干细胞
基因
造血
作者
Javier Abello,Ying Yin,Yonghui Zhao,Josh Maurer,Jihui Lee,Cherokee Bodell,Abigail J. Clevenger,Zarek Burton,Megan E. Goeckel,Michelle J. Lin,Stephanie Grainger,Carmen M. Halabi,Shreya Raghavan,Rajan Sah,Amber N. Stratman
标识
DOI:10.1101/2024.06.11.598539
摘要
Abstract Vascular stabilization is a mechanosensitive process, in part driven by blood flow. Here, we demonstrate the involvement of the mechanosensitive ion channel, Piezo1, in promoting arterial accumulation of vascular smooth muscle cells (vSMCs) during zebrafish development. Using a series of small molecule antagonists or agonists to temporally regulate Piezo1 activity, we identified a role for the Piezo1 channel in regulating klf2a levels and altered targeting of vSMCs between arteries and veins. Increasing Piezo1 activity suppressed klf2a and increased vSMC association with the cardinal vein, while inhibition of Piezo1 activity increased klf2a levels and decreased vSMC association with arteries. We supported the small molecule data with in vivo genetic suppression of piezo1 and 2 in zebrafish, resulting in loss of transgelin+ vSMCs on the dorsal aorta. Further, endothelial cell (EC)-specific Piezo1 knockout in mice was sufficient to decrease vSMC accumulation along the descending dorsal aorta during development, thus phenocopying our zebrafish data, and supporting functional conservation of Piezo1 in mammals. To determine mechanism, we used in vitro modeling assays to demonstrate that differential sensing of pulsatile versus laminar flow forces across endothelial cells changes the expression of mural cell differentiation genes. Together, our findings suggest a crucial role for EC Piezo1 in sensing force within large arteries to mediate mural cell differentiation and stabilization of the arterial vasculature.
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