Multiple Rap1 effectors control Epac1-mediated tightening of endothelial junctions.

Q2 Biochemistry, Genetics and Molecular Biology Small GTPases Pub Date : 2020-09-01 Epub Date: 2018-02-17 DOI:10.1080/21541248.2018.1431512
Willem-Jan Pannekoek, Marjolein J Vliem, Johannes L Bos
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引用次数: 15

Abstract

Epac1 and Rap1 mediate cAMP-induced tightening of endothelial junctions. We have previously found that one of the mechanisms is the inhibition of Rho-mediated tension in radial stress fibers by recruiting the RhoGAP ArhGAP29 in a complex containing the Rap1 effectors Rasip1 and Radil. However, other mechanisms have been proposed as well, most notably the induction of tension in circumferential actin cables by Cdc42 and its GEF FGD5. Here, we have investigated how Rap1 controls FGD5/Cdc42 and how this interconnects with Radil/Rasip1/ArhGAP29. Using endothelial barrier measurements, we show that Rho inhibition is not sufficient to explain the barrier stimulating effect of Rap1. Indeed, Cdc42-mediated tension is induced at cell-cell contacts upon Rap1 activation and this is required for endothelial barrier function. Depletion of potential Rap1 effectors identifies AF6 to mediate Rap1 enhanced tension and concomitant Rho-independent barrier function. When overexpressed in HEK293T cells, AF6 is found in a complex with FGD5 and Radil. From these results we conclude that Rap1 utilizes multiple pathways to control tightening of endothelial junctions, possibly through a multiprotein effector complex, in which AF6 functions to induce tension in circumferential actin cables.

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多个Rap1效应物控制epac1介导的内皮连接收紧。
Epac1和Rap1介导camp诱导的内皮连接收紧。我们之前发现其中一种机制是通过在含有Rap1效应器Rasip1和Radil的复合物中招募RhoGAP ArhGAP29来抑制rho介导的径向应力纤维张力。然而,其他机制也被提出,最值得注意的是Cdc42及其GEF FGD5在周向肌动蛋白电缆中诱导张力。在这里,我们研究了Rap1如何控制FGD5/Cdc42,以及它如何与Radil/Rasip1/ArhGAP29互连。通过内皮屏障测量,我们发现Rho抑制不足以解释Rap1的屏障刺激作用。事实上,在Rap1激活后,cdc42介导的张力在细胞-细胞接触时被诱导,这是内皮屏障功能所必需的。潜在Rap1效应物的损耗确定了AF6介导Rap1增强的张力和伴随的rho非依赖性屏障功能。当在HEK293T细胞中过表达时,AF6与FGD5和Radil形成复合物。从这些结果我们得出结论,Rap1利用多种途径来控制内皮连接的收紧,可能是通过一种多蛋白效应复合物,其中AF6的功能是在环肌动蛋白电缆中诱导张力。
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来源期刊
Small GTPases
Small GTPases Biochemistry, Genetics and Molecular Biology-Biochemistry
CiteScore
6.10
自引率
0.00%
发文量
6
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