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IPP复合物通过传递张力依赖性信号来抑制整合素周转,从而增强黏附。

IPP Complex Reinforces Adhesion by Relaying Tension-Dependent Signals to Inhibit Integrin Turnover.

作者信息

Vakaloglou Katerina M, Chrysanthis Georgios, Rapsomaniki Maria Anna, Lygerou Zoi, Zervas Christos G

机构信息

Center of Basic Research, Biomedical Research Foundation, Academy of Athens, Soranou Efessiou 4, 11527 Athens, Greece.

Department of Biology, University of Patras, 26500 Rio, Greece.

出版信息

Cell Rep. 2016 Mar 22;14(11):2668-82. doi: 10.1016/j.celrep.2016.02.052. Epub 2016 Mar 10.

Abstract

Cytoskeleton-mediated forces regulate the assembly and function of integrin adhesions; however, the underlying mechanisms remain unclear. The tripartite IPP complex, comprising ILK, Parvin, and PINCH, mediates the integrin-actin link at Drosophila embryo muscle attachment sites (MASs). Here, we demonstrate a developmentally earlier function for the IPP complex: to reinforce integrin-extracellular matrix (ECM) adhesion in response to tension. In IPP-complex mutants, the integrin-ECM linkage at MASs breaks in response to intense muscle contractility. Mechanistically, the IPP complex is required to relay force-elicited signals that decelerate integrin turnover at the plasma membrane so that the integrin immobile fraction is adequate to withstand tension. Epistasis analysis shows that alleviation of muscle contractility, downregulation of endocytosis, and enhanced integrin binding to the ECM are sufficient to restore integrin-ECM adhesion and maintain integrin-adhesome organization in IPP-complex mutants. Our findings reveal a role for the IPP complex as an essential mechanosensitive regulatory switch of integrin turnover in vivo.

摘要

细胞骨架介导的力调节整合素黏附的组装和功能;然而,其潜在机制仍不清楚。由整合素连接激酶(ILK)、帕文(Parvin)和富含半胱氨酸的整合素结合蛋白(PINCH)组成的三方IPP复合物,在果蝇胚胎肌肉附着点(MASs)介导整合素与肌动蛋白的连接。在此,我们证明了IPP复合物在发育早期的功能:响应张力增强整合素与细胞外基质(ECM)的黏附。在IPP复合物突变体中,MASs处的整合素-ECM连接在强烈的肌肉收缩时会断裂。从机制上讲,IPP复合物是传递力引发的信号所必需的,这些信号会减缓质膜上整合素的周转,从而使整合素的固定部分足以承受张力。上位性分析表明,减轻肌肉收缩性、下调内吞作用以及增强整合素与ECM的结合足以恢复IPP复合物突变体中的整合素-ECM黏附并维持整合素-黏附体组织。我们的研究结果揭示了IPP复合物在体内作为整合素周转的重要机械敏感调节开关的作用。

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