Department of Chemistry, City College of New York, New York, New York 10031, USA.
J Biol Chem. 2012 Oct 26;287(44):37119-33. doi: 10.1074/jbc.M112.380972. Epub 2012 Aug 26.
Ezrin is a member of the ezrin-radixin-moesin family (ERM) of adapter proteins that are localized at the interface between the cell membrane and the cortical actin cytoskeleton, and they regulate a variety of cellular functions. The structure representing a dormant and closed conformation of an ERM protein has previously been determined by x-ray crystallography. Here, using contrast variation small angle neutron scattering, we reveal the structural changes of the full-length ezrin upon binding to the signaling lipid phosphatidylinositol 4,5-bisphosphate (PIP(2)) and to F-actin. Ezrin binding to F-actin requires the simultaneous binding of ezrin to PIP(2). Once bound to F-actin, the opened ezrin forms more extensive contacts with F-actin than generally depicted, suggesting a possible role of ezrin in regulating the interfacial structure and dynamics between the cell membrane and the underlying actin cytoskeleton. In addition, using gel filtration, we find that the conformational opening of ezrin in response to PIP(2) binding is cooperative, but the cooperativity is disrupted by a phospho-mimic mutation S249D in the 4.1-ezrin/radixin/moesin (FERM) domain of ezrin. Using surface plasmon resonance, we show that the S249D mutation weakens the binding affinity and changes the kinetics of 4.1-ERM to PIP(2) binding. The study provides the first structural view of the activated ezrin bound to PIP(2) and to F-actin.
埃兹蛋白是埃兹蛋白-根蛋白-膜突蛋白(ERM)家族的成员之一,该家族的衔接蛋白位于细胞膜和皮质肌动蛋白细胞骨架的连接处,调节多种细胞功能。先前通过 X 射线晶体学已经确定了 ERM 蛋白的休眠和封闭构象的结构。在这里,我们使用对比变化小角中子散射,揭示了全长埃兹蛋白在与信号脂质磷脂酰肌醇 4,5-二磷酸(PIP(2))和 F-肌动蛋白结合时的结构变化。埃兹蛋白与 F-肌动蛋白的结合需要埃兹蛋白与 PIP(2)的同时结合。一旦与 F-肌动蛋白结合,打开的埃兹蛋白与 F-肌动蛋白形成比通常描述的更广泛的接触,这表明埃兹蛋白可能在调节细胞膜和下面的肌动蛋白细胞骨架之间的界面结构和动力学方面发挥作用。此外,通过凝胶过滤,我们发现埃兹蛋白对 PIP(2)结合的构象开放是协同的,但在埃兹蛋白的 4.1-埃兹蛋白/根蛋白/膜突蛋白(FERM)结构域中的磷酸模拟突变 S249D 破坏了协同性。通过表面等离子体共振,我们表明 S249D 突变削弱了 4.1-ERM 与 PIP(2)结合的结合亲和力并改变了动力学。该研究提供了第一个激活的埃兹蛋白与 PIP(2)和 F-肌动蛋白结合的结构视图。