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首页> 外文期刊>Nature Communications >Voltage-dependent gating of KCNH potassium channels lacking a covalent link between voltage-sensing and pore domains
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Voltage-dependent gating of KCNH potassium channels lacking a covalent link between voltage-sensing and pore domains

机译:KCNH钾离子通道的电压依赖性门控在电压感应和孔结构域之间缺乏共价链接

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摘要

Voltage-gated channels open paths for ion permeation upon changes in membrane potential, but how voltage changes are coupled to gating is not entirely understood. Two modules can be recognized in voltage-gated potassium channels, one responsible for voltage sensing (transmembrane segments S1 to S4), the other for permeation (S5 and S6). It is generally assumed that the conversion of a conformational change in the voltage sensor into channel gating occurs through the intracellular S4–S5 linker that provides physical continuity between the two regions. Using the pathophysiologically relevant KCNH family, we show that truncated proteins interrupted at, or lacking the S4–S5 linker produce voltage-gated channels in a heterologous model that recapitulate both the voltage-sensing and permeation properties of the complete protein. These observations indicate that voltage sensing by the S4 segment is transduced to the channel gate in the absence of physical continuity between the modules.
机译:电压门控通道在膜电势变化时为离子渗透开辟了路径,但电压变化如何耦合到门控尚不完全清楚。电压门控钾通道中可以识别出两个模块,一个负责电压感测(跨膜段S1至S4),另一个负责渗透(S5和S6)。通常假定电压传感器中构象变化到通道门控的转换是通过细胞内S4–S5连接器发生的,该连接器在两个区域之间提供物理连续性。使用与病理生理相关的KCNH家族,我们显示在异源模型中被S4–S5接头中断或缺失的截短蛋白会产生电压门控通道,从而概括了完整蛋白的电压感测和渗透特性。这些观察结果表明,在模块之间没有物理连续性的情况下,由S4段进行的电压感测被转换为沟道栅极。

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