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切应力通过 VE-cadherin 信号通路稳定脑微血管内皮屏障功能,导致 pTyr-occludin 水平的调节。

Stabilization of brain microvascular endothelial barrier function by shear stress involves VE-cadherin signaling leading to modulation of pTyr-occludin levels.

机构信息

School of Biotechnology, Dublin City University, Glasnevin, Dublin 9, Ireland.

出版信息

J Cell Physiol. 2011 Nov;226(11):3053-63. doi: 10.1002/jcp.22655.

Abstract

Blood-brain barrier (BBB) regulation involves the coordinated interaction of intercellular adherens and tight junctions in response to stimuli. One such stimulus, shear stress, has been shown to upregulate brain microvascular endothelial cell (BMvEC) barrier function, although our knowledge of the signaling mechanisms involved is limited. In this article, we examined the hypothesis that VE-cadherin can transmit shear signals to tight junction occludin with consequences for pTyr-occludin and barrier function. In initial studies, chronic shear enhanced membrane localization of ZO-1 and claudin-5, decreased pTyr-occludin (in part via a dephostatin-sensitive mechanism), and reduced BMvEC permeability, with flow reduction in pre-sheared BMvECs having converse effects. In further studies, VE-cadherin inhibition (VE-cad ΔEXD) blocked shear-induced Rac1 activation, pTyr-occludin reduction, and barrier upregulation, consistent with an upstream role for VE-cadherin in transmitting shear signals to tight junctions through Rac1. As VE-cadherin is known to mediate Rac1 activation via Tiam1 recruitment, we subsequently confirmed that Tiam1 inhibition (Tiam1-C580) could elicit effects similar to VE-cad ΔEXD. Finally, the observed attenuation of shear-induced changes in pTyr-occludin level and barrier phenotype following Rac1 inhibition (NSC23766, T17N) establishes a downstream role for Rac1 in this pathway. In summary, we describe for the first time in BMvECs a role for VE-cadherin in the transmission of physiological shear signals to tight junction occludin through engagement of Tiam1/Rac1 leading to barrier stabilization. A downstream role is also strongly indicated for a protein tyrosine phosphatase in pTyr-occludin modulation. Importantly, these findings suggest an important route of inter-junctional signaling cross-talk during BBB response to flow.

摘要

血脑屏障(BBB)的调节涉及细胞间黏附分子和紧密连接的协调相互作用,以响应刺激。剪切力就是这样一种刺激,它已被证明可以上调脑微血管内皮细胞(BMvEC)的屏障功能,尽管我们对涉及的信号机制的了解有限。在本文中,我们假设 VE-钙黏蛋白可以将剪切信号传递到紧密连接的闭合蛋白,从而影响 pTyr-occludin 和屏障功能。在最初的研究中,慢性剪切力增强了 ZO-1 和闭合蛋白-5 的膜定位,减少了 pTyr-occludin(部分通过去磷酸酶敏感机制),并降低了 BMvEC 的通透性,而预剪切的 BMvEC 中的流量减少则产生相反的效果。在进一步的研究中,VE-钙黏蛋白抑制(VE-cad ΔEXD)阻断了剪切诱导的 Rac1 激活、pTyr-occludin 减少和屏障上调,这与 VE-钙黏蛋白在通过 Rac1 将剪切信号传递到紧密连接中起上游作用一致。由于已知 VE-钙黏蛋白通过 Tiam1 募集来介导 Rac1 激活,我们随后证实 Tiam1 抑制(Tiam1-C580)可以引起类似于 VE-cad ΔEXD 的效果。最后,Rac1 抑制(NSC23766,T17N)后剪切诱导的 pTyr-occludin 水平和屏障表型变化的观察结果表明,Rac1 在该途径中起下游作用。总之,我们首次在 BMvEC 中描述了 VE-钙黏蛋白在通过 Rac1 参与的 Tiam1/Rac1 介导的紧密连接 occludin 中传递生理剪切信号中的作用,导致屏障稳定。在 pTyr-occludin 调节中,蛋白酪氨酸磷酸酶也具有下游作用。重要的是,这些发现表明在 BBB 对流动的反应中,细胞间连接信号交叉对话的一个重要途径。

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