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首页> 外文期刊>Journal of Molecular Biology >Probing the transition state of the allosteric pathway of the Shaker Kv channel pore by linear free-energy relations.
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Probing the transition state of the allosteric pathway of the Shaker Kv channel pore by linear free-energy relations.

机译:通过线性自由能关系探查摇床Kv通道孔的变构途径的过渡态。

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Long-range coupling between distant functional elements of proteins may rely on allosteric communication trajectories lying along the protein structure, as described in the case of the Shaker voltage-activated potassium (Kv) channel model allosteric system. Communication between the distant Kv channel activation and slow inactivation pore gates was suggested to be mediated by a network of local pairwise and higher-order interactions among the functionally unique residues that constitute the allosteric trajectory. The mechanism by which conformational changes propagate along the Kv channel allosteric trajectory to achieve pore opening, however, remains unclear. Such conformational changes may propagate in either a concerted or a sequential manner during the reaction coordinate of channel opening. Residue-level structural information on the transition state of channel gating is required to discriminate between these possibilities. Here, we combine patch-clamp electrophysiology recordings of Kv channel gating and analysis using linear free-energy relations, focusing on a select set of residues spanning the allosteric trajectory of the Kv channel pore. We show that all allosteric trajectory residues tested exhibit an open-like conformation in the transition state of channel opening, implying that coupling interactions occur along the trajectory break in a concerted manner upon moving from the closed to the open state. Energetic coupling between the Kv channel gates thus occurs in a concerted fashion in both the spatial and the temporal dimensions, strengthening the notion that such trajectories correspond to pathways of mechanical deformation along which conformational changes propagate.
机译:蛋白质远距离功能元件之间的远程偶联可能依赖于沿着蛋白质结构的变构通讯轨迹,如在Shaker电压激活钾(Kv)通道模型变构系统中所述。遥远的Kv通道激活和慢速灭活孔门之间的通讯被认为是由构成变构轨迹的功能独特残基之间的局部成对和高阶相互作用网络介导的。构象变化沿Kv通道变构轨迹传播以实现开孔的机制尚不清楚。这样的构象变化可以在通道打开的反应坐标期间以一致或顺序的方式传播。需要有关通道门控转换状态的残留级结构信息来区分这些可能性。在这里,我们结合线性通道的自由能关系,结合了Kv通道门控的膜片钳电生理学记录和分析,重点是跨越Kv通道孔的变构轨迹的一组选定残基。我们表明,测试的所有变构轨迹残基在通道打开的过渡状态下都显示出类似开放的构象,这意味着从闭合状态向打开状态移动时,沿着轨迹断裂以协调的方式发生耦合相互作用。因此,Kv通道门之间的能量耦合在空间和时间维度上都以一致的方式发生,从而强化了这样的观念,即这种轨迹与构象变化沿其传播的机械变形路径相对应。

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