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Coupled Motions between Pore and Voltage-Sensor Domains: A Model for Shaker B a Voltage-Gated Potassium Channel

机译:孔和电压传感器域之间的耦合运动:摇控器B(电压门控钾通道)的模型

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摘要

A high-resolution crystal structure of KvAP, an archeabacterial voltage-gated potassium (Kv) channel, complexed with a monoclonal Fab fragment has been recently determined. Based on this structure, a mechanism for the activation (opening) of Kv channels has been put forward. This mechanism has since been criticized, suggesting that the resolved structure is not representative of the family of voltage-gated potassium channels. Here, we propose a model of the transmembrane domain of Shaker B, a well-characterized Kv channel, built by homology modeling and docking calculations. In this model, the positively charged S4 helices are oriented perpendicular to the membrane and localized in the groove between segments S5 and S6 of adjacent subunits. The structure and the dynamics of the full atomistic model embedded in a hydrated lipid bilayer were investigated by means of two large-scale molecular dynamics simulations under transmembrane-voltage conditions known to induce, respectively, the resting state (closed) and the activation (opening) of voltage-gated channels. Upon activation, the model undergoes conformational changes that lead to an increase of the hydration of the charged S4 helices, correlated with an upward translation and a tilting of the latter, concurrently with movements of the S5 helices and the activation gate. Although small, these conformational changes ultimately result in an alteration of the ion-conduction pathway. Our findings support the transporter model devised by Bezanilla and collaborators, and further underline the crucial role played by internal hydration in the activation of the channel.
机译:最近已经确定了与单克隆Fab片段复合的KvAP高分辨率晶体结构,即考古细菌电压门控钾(Kv)通道。基于这种结构,提出了一种用于激活(打开)Kv通道的机制。此后,该机制受到了批评,表明所解析的结构不能代表电压门控钾离子通道的家族。在这里,我们提出了一个通过同源性建模和对接计算建立的Shaker B跨膜结构域模型,该模型是一个特征明确的Kv通道。在此模型中,带正电的S4螺旋垂直于膜取向,并位于相邻亚基的S5和S6段之间的凹槽中。通过已知的跨膜电压条件下的两个大规模分子动力学模拟,研究了嵌入在水合脂质双层中的完整原子模型的结构和动力学,已知分别诱导了静止状态(关闭)和激活(打开) )的电压门控通道。激活后,模型会经历构象变化,从而导致带电S4螺旋的水合作用增加,这与后者的向上平移和倾斜相关,同时伴随S5螺旋和激活门的移动。这些构象变化虽然很小,但最终会导致离子传导途径的改变。我们的发现支持Bezanilla和合作者设计的转运蛋白模型,并进一步强调了内部水合作用在通道激活中所起的关键作用。

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