Halaszovich Christian R, Schreiber Daniela N, Oliver Dominik
Department of Neurophysiology, Institute of Physiology and Pathophysiology, Philipps-Universität Marburg, 35037 Marburg, Germany.
J Biol Chem. 2009 Jan 23;284(4):2106-13. doi: 10.1074/jbc.M803543200. Epub 2008 Dec 1.
Phosphoinositides are membrane-delimited regulators of protein function and control many different cellular targets. The differentially phosphorylated isoforms have distinct concentrations in various subcellular membranes, which can change dynamically in response to cellular signaling events. Maintenance and dynamics of phosphoinositide levels involve a complex set of enzymes, among them phospholipases and lipid kinases and phosphatases. Recently, a novel type of phosphoinositide-converting protein (termed Ci-VSP) that contains a voltage sensor domain was isolated. It was already shown that Ci-VSP can alter phosphoinositide levels in a voltage-dependent manner. However, the exact enzymatic reaction catalyzed by Ci-VSP is not known. We used fluorescent phosphoinositide-binding probes and total internal reflection microscopy together with patch-clamp measurements from living cells to delineate substrates and products of Ci-VSP. Upon activation of Ci-VSP by membrane depolarization, membrane association of phosphatidylinositol (PI) (4,5)P2- and PI(3,4,5)P3-specific binding domains decreased, revealing consumption of these phosphoinositides by Ci-VSP. Depletion of PI(4,5)P2 was coincident with an increase in membrane PI(4)P. Similarly, PI(3,4)P2 was generated during depletion of PI(3,4,5)P3. These results suggest that Ci-VSP acts as a 5'-phosphatase of PI(4,5)P2 and PI(3,4,5)P3.
磷酸肌醇是蛋白质功能的膜限定调节剂,可调控许多不同的细胞靶点。不同磷酸化异构体在各种亚细胞膜中的浓度不同,可随细胞信号事件动态变化。磷酸肌醇水平的维持和动态变化涉及一系列复杂的酶,其中包括磷脂酶、脂质激酶和磷酸酶。最近,一种新型的含电压传感器结构域的磷酸肌醇转化蛋白(称为Ci-VSP)被分离出来。已有研究表明,Ci-VSP能够以电压依赖的方式改变磷酸肌醇水平。然而,Ci-VSP催化的确切酶促反应尚不清楚。我们使用荧光磷酸肌醇结合探针和全内反射显微镜,结合活细胞的膜片钳测量,来确定Ci-VSP的底物和产物。通过膜去极化激活Ci-VSP后,磷脂酰肌醇(PI)(4,5)P2和PI(3,4,5)P3特异性结合结构域的膜结合减少,表明这些磷酸肌醇被Ci-VSP消耗。PI(4,5)P2的消耗与膜PI(4)P的增加同时发生。同样,在PI(3,4,5)P3消耗过程中产生了PI(3,4)P2。这些结果表明,Ci-VSP作为PI(4,5)P2和PI(3,4,5)P3的5'-磷酸酶发挥作用。