首页> 外文期刊>The Journal of Physiology >Coupling of the phosphatase activity of Ci-VSP to its voltage sensor activity over the entire range of voltage sensitivity.
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Coupling of the phosphatase activity of Ci-VSP to its voltage sensor activity over the entire range of voltage sensitivity.

机译:在整个电压灵敏度范围内,Ci-VSP的磷酸酶活性与其电压传感器活性的耦合。

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摘要

The voltage sensing phosphatase Ci-VSP is composed of a voltage sensor domain (VSD) and a cytoplasmic phosphatase domain. Upon membrane depolarization, movement of the VSD triggers the enzyme's phosphatase activity. To gain further insight into its operating mechanism, we studied the PI(4,5)P2 phosphatase activity of Ci-VSP expressed in Xenopus oocytes over the entire range of VSD motion by assessing the activity of coexpressed Kir2.1 channels or the fluorescence signal from a pleckstrin homology domain fused with green fluorescent protein (GFP) (PHPLC-GFP). Both assays showed greater phosphatase activity at 125 mV than at 75 mV, which corresponds to 'sensing' charges that were 90% and 75% of maximum, respectively. On the other hand, the activity at 160 mV (corresponding to 98% of the maximum 'sensing' charge) was indistinguishable from that at 125 mV. Modelling the kinetics of the PHPLC-GFP fluorescence revealed that its time course was dependent on both the level of Ci-VSP expression and the diffusion of PHPLC-GFP beneath the plasma membrane. Enzyme activity was calculated by fitting the time course of PHPLC-GFP fluorescence into the model. The voltage dependence of the enzyme activity was superimposable on the Q-V curve, which is consistent with the idea that the enzyme activity is tightly coupled to VSD movement over the entire range of membrane potentials that elicit VSD movement.
机译:电压传感磷酸酶Ci-VSP由电压传感器域(VSD)和细胞质磷酸酶域组成。膜去极化后,VSD的移动会触发酶的磷酸酶活性。为了进一步了解其运行机制,我们通过评估共表达的Kir2.1通道或荧光信号的活性,研究了非洲爪蟾卵母细胞在整个VSD运动范围内表达的Ci-VSP的PI(4,5)P2磷酸酶活性。来自与绿色荧光蛋白(GFP)(PHPLC-GFP)融合的pleckstrin同源结构域。两种测定均显示125 mV处的磷酸酶活性高于75 mV处的磷酸酶活性,这分别相当于“感应”电荷的最大值的90%和75%。另一方面,在160 mV时的活性(相当于最大“感测”电荷的98%)与125 mV时的活性没有区别。对PHPLC-GFP荧光的动力学建模表明,其时间过程既取决于Ci-VSP表达的水平,又取决于PHPLC-GFP在质膜下的扩散。通过将PHPLC-GFP荧光的时间过程拟合到模型中来计算酶活性。酶活性的电压依赖性可叠加在Q-V曲线上,这与酶活性在引起VSD运动的整个膜电位范围内与VSD运动紧密耦合的想法是一致的。

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