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血流依赖 Piezo1 调节脑血管发育中的周细胞增殖。

Piezo1-dependent regulation of pericyte proliferation by blood flow during brain vascular development.

机构信息

Institute of Neuroscience, State Key Laboratory of Neuroscience, CAS Center for Excellence in Brain Science and Intelligence Technology, Chinese Academy of Sciences, 320 Yue-Yang Road, Shanghai 200031, China; University of Chinese Academy of Sciences, 19A Yu-Quan Road, Beijing 100049, China.

Institute of Neuroscience, State Key Laboratory of Neuroscience, CAS Center for Excellence in Brain Science and Intelligence Technology, Chinese Academy of Sciences, 320 Yue-Yang Road, Shanghai 200031, China.

出版信息

Cell Rep. 2024 Jan 23;43(1):113652. doi: 10.1016/j.celrep.2023.113652. Epub 2024 Jan 3.

Abstract

Blood flow is known to regulate cerebrovascular development through acting on vascular endothelial cells (ECs). As an indispensable component of the neurovascular unit, brain pericytes physically couple with ECs and play vital roles in blood-brain barrier integrity maintenance and neurovascular coupling. However, it remains unclear whether blood flow affects brain pericyte development. Using in vivo time-lapse imaging of larval zebrafish, we monitored the developmental dynamics of brain pericytes and found that they proliferate to expand their population and increase their coverage to brain vessels. In combination with pharmacological and genetic approaches, we demonstrated that blood flow enhances brain pericyte proliferation through Piezo1 expressed in ECs. Moreover, we identified that EC-intrinsic Notch signaling is downstream of Piezo1 to promote the activation of Notch signaling in pericytes. Thus, our findings reveal a role of blood flow in pericyte proliferation, extending the functional spectrum of hemodynamics on cerebrovascular development.

摘要

血流已知通过作用于血管内皮细胞 (ECs) 来调节脑血管发育。作为神经血管单元的不可或缺的组成部分,脑周细胞与 ECs 物理偶联,并在血脑屏障完整性维持和神经血管偶联中发挥重要作用。然而,血流是否影响脑周细胞的发育尚不清楚。通过对幼鱼斑马鱼的活体延时成像,我们监测了脑周细胞的发育动态,发现它们通过 EC 中表达的 Piezo1 增殖以扩大其种群并增加其对脑血管的覆盖。结合药理学和遗传学方法,我们证明血流通过 EC 中表达的 Piezo1 增强脑周细胞的增殖。此外,我们发现 EC 内在的 Notch 信号转导是 Piezo1 的下游,以促进周细胞中 Notch 信号转导的激活。因此,我们的研究结果揭示了血流在周细胞增殖中的作用,扩展了血流动力学对脑血管发育的功能谱。

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