压电1
血流
脑血流
反馈控制
离子通道
频道(广播)
化学
神经科学
生物物理学
医学
计算机科学
心脏病学
生物
生物化学
计算机网络
受体
控制工程
工程类
机械敏感通道
作者
Xin Rui Lim,Mohammad M. Abd‐Alhaseeb,M. Ippolito,Masayo Koide,Amanda J. Senatore,Curtis Plante,Ashwini Hariharan,Nick Weir,Thomas A. Longden,Kathryn Laprade,James M. Stafford,Dorothea Ziemens,Markus Schwaninger,Jan Wenzel,Dmitry D. Postnov,Osama F. Harraz
标识
DOI:10.1038/s41467-024-52969-0
摘要
Hyperemia in response to neural activity is essential for brain health. A hyperemic response delivers O2 and nutrients, clears metabolic waste, and concomitantly exposes cerebrovascular endothelial cells to hemodynamic forces. While neurovascular research has primarily centered on the front end of hyperemia-neuronal activity-to-vascular response-the mechanical consequences of hyperemia have gone largely unexplored. Piezo1 is an endothelial mechanosensor that senses hyperemia-associated forces. Using genetic mouse models and pharmacologic approaches to manipulate endothelial Piezo1 function, we evaluated its role in blood flow control and whether it impacts cognition. We provide evidence of a built-in brake system that sculpts hyperemia, and specifically show that Piezo1 activation triggers a mechano-feedback system that promotes blood flow recovery to baseline. Further, genetic Piezo1 modification led to deficits in complementary memory tasks. Collectively, our findings establish a role for endothelial Piezo1 in cerebral blood flow regulation and a role in its behavioral sequelae.
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