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Potassium channel opening: a subtle two-step

机译:钾通道的开放:微妙的两步走

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摘要

Voltage-gated K+ channels undergo a voltage-dependent conductance change that plays a key role in modulating cellular excitability. While the Open state is captured in crystal structures of Kv1.2 and a chimeric Kv1.2/Kv2.1 channel, the Close state and the mechanism of this transition are still a subject of debate. Here, we propose a model based on mutagenesis combined with measurements of both ionic and gating currents which is consistent with the idea that the Open state is the default state, the energy of the electric field being used to keep the channel closed. Our model incorporates an ‘Activated state’ where the bulk of sensor movement is completed without channel opening. The model accounts for the well characterized electrophysiology of the ‘V2’ and ‘ILT’ mutations in Shaker, where sensor movement and channel opening occur over distinct voltage ranges. Moreover, the model proposes relatively small protein rearrangements in going from the Activated to the Open state, consistent with the rapid transitions observed in single channel records of Shaker type channels at zero millivolts.
机译:电压门控的K + 通道发生电压依赖性电导变化,在调节细胞兴奋性中起关键作用。虽然在Kv1.2和嵌合的Kv1.2 / Kv2.1通道的晶体结构中捕获了打开状态,但闭合状态和这种转变的机制仍是争论的话题。在这里,我们提出了一个基于诱变并结合离子电流和门控电流测量的模型,该模型与“打开”状态为默认状态,电场能量用于保持通道闭合的想法是一致的。我们的模型整合了一个“激活状态”,在该状态下,大部分传感器移动完成而没有打开通道。该模型说明了Shaker中“ V2”和“ ILT”突变的特征鲜明的电生理特性,其中传感器移动和通道打开发生在不同的电压范围内。此外,该模型提出了从激活状态到打开状态的相对较小的蛋白质重排,这与在零毫伏的摇床型通道的单通道记录中观察到的快速转变相一致。

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