Kovacs Eva M, Ali Radiya G, McCormack Ailsa J, Yap Alpha S
Department of Physiology & Pharmacology, School of Biomedical Science, The University of Queensland, St. Lucia, Brisbane, Queensland 4072, Australia.
J Biol Chem. 2002 Feb 22;277(8):6708-18. doi: 10.1074/jbc.M109640200. Epub 2001 Dec 13.
Classical cadherins mediate cell recognition and cohesion in many tissues of the body. It is increasingly apparent that dynamic cadherin contacts play key roles during morphogenesis and that a range of cell signals are activated as cells form contacts with one another. It has been difficult, however, to determine whether these signals represent direct downstream consequences of cadherin ligation or are juxtacrine signals that are activated when cadherin adhesion brings cell surfaces together but are not direct downstream targets of cadherin signaling. In this study, we used a functional cadherin ligand (hE/Fc) to directly test whether E-cadherin ligation regulates phosphatidylinositol 3-kinase (PI 3-kinase) and Rac signaling. We report that homophilic cadherin ligation recruits Rac to nascent adhesive contacts and specifically stimulates Rac signaling. Adhesion to hE/Fc also recruits PI 3-kinase to the cadherin complex, leading to the production of phosphatidylinositol 3,4,5-trisphosphate in nascent cadherin contacts. Rac activation involved an early phase, which was PI 3-kinase-independent, and a later amplification phase, which was inhibited by wortmannin. PI 3-kinase and Rac activity were necessary for productive adhesive contacts to form following initial homophilic ligation. We conclude that E-cadherin is a cellular receptor that is activated upon homophilic ligation to signal through PI 3-kinase and Rac. We propose that a key function of these cadherin-activated signals is to control adhesive contacts, probably via regulation of the actin cytoskeleton, which ultimately serves to mediate adhesive cell-cell recognition.
经典钙黏蛋白介导身体许多组织中的细胞识别和黏附。越来越明显的是,动态钙黏蛋白接触在形态发生过程中起关键作用,并且当细胞相互形成接触时会激活一系列细胞信号。然而,很难确定这些信号是钙黏蛋白连接的直接下游后果,还是当钙黏蛋白黏附使细胞表面聚集在一起时被激活但不是钙黏蛋白信号传导直接下游靶点的旁分泌信号。在这项研究中,我们使用功能性钙黏蛋白配体(hE/Fc)直接测试E-钙黏蛋白连接是否调节磷脂酰肌醇3激酶(PI 3激酶)和Rac信号传导。我们报告说,同源性钙黏蛋白连接将Rac募集到新生的黏附接触点并特异性刺激Rac信号传导。与hE/Fc的黏附也将PI 3激酶募集到钙黏蛋白复合物中,导致新生钙黏蛋白接触点中磷脂酰肌醇3,4,5-三磷酸的产生。Rac激活涉及一个早期阶段,该阶段不依赖PI 3激酶,以及一个后期放大阶段,该阶段被渥曼青霉素抑制。PI 3激酶和Rac活性对于初始同源连接后形成有效的黏附接触是必需的。我们得出结论,E-钙黏蛋白是一种细胞受体,在同源连接时被激活,通过PI 3激酶和Rac发出信号。我们提出,这些钙黏蛋白激活信号的关键功能可能是通过调节肌动蛋白细胞骨架来控制黏附接触,最终起到介导黏附性细胞间识别的作用。