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Molecular basis of slow activation of the human ether-á-go-go related gene potassium channel

机译:人以太相关基因钾通道慢激活的分子基础

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摘要

The human ether-á-go-go related gene (HERG) encodes the pore forming α-subunit of the rapid delayed rectifier K+ channel which is central to the repolarization phase of the cardiac action potential. HERG K+ channels have unusual kinetics characterized by slow activation and deactivation, yet rapid inactivation. The fourth transmembrane domain (S4) of HERG, like other voltage-gated K+ channels, contains multiple positive charges and is the voltage sensor for activation. In this study, we mutated each of the positively charged residues in this region to glutamine (Q), expressed the mutant and wild-type (WT) channels in Xenopus laevis oocytes and studied them using two-electrode voltage clamp methods. K525Q channels activated at more hyperpolarized potentials than WT, whereas all the other mutant channels activated at more depolarized potentials. All mutants except for R531Q also had a reduction in apparent gating charge associated with activation. Mutation of K525 to cysteine (C) resulted in a less dramatic phenotype than K525Q. The addition of the positively charged MTSET to K525C altered the phenotype to one more similar to K525Q than to WT. Therefore it is not charge per se, but the specific lysine side chain at position 525, that is crucial for stabilizing the closed state. When rates of activation and deactivation for WT and mutant channels were compared at equivalent total (chemical + electrostatic) driving forces, K525Q and R528Q accelerated activation but had no effect on deactivation, R531Q slowed activation and deactivation, R534Q accelerated activation but slowed deactivation and R537Q accelerated deactivation but had no effect on activation. The main conclusions we can draw from these data are that in WT channels K525 stabilizes the closed state, R531 stabilizes the open state and R534 participates in interactions that stabilize pre-open closed states.
机译:人类以走相关基因(HERG)编码快速延迟的整流器K + 通道的成孔α-亚基,该通道在心脏动作电位的复极化阶段至关重要。 HERG K + 通道具有异常的动力学特性,其活化和失活缓慢,但失活迅速。像其他电压门控的K + 通道一样,HERG的第四个跨膜结构域(S4)包含多个正电荷,并且是用于激活的电压传感器。在这项研究中,我们将该区域中的每个带正电荷的残基突变为谷氨酰胺(Q),在非洲爪蟾卵母细胞中表达了突变型和野生型(WT)通道,并使用两电极电压钳制方法对其进行了研究。 K525Q通道比WT具有更高的超极化电位,而所有其他突变型通道均具有更高的去极化电位。除R531Q外,所有突变体的表观门控电荷均与激活有关。 K525突变为半胱氨酸(C)导致的表型不如K525Q显着。将带正电荷的MTSET添加到K525C,使表型与K525Q的相似性比与WT的相似。因此,对于稳定闭合状态至关重要的不是电荷本身,而是位置525处的特定赖氨酸侧链。在相同的总(化学+静电)驱动力下比较WT和突变通道的活化和失活速率时,K525Q和R528Q加速了活化,但对失活没有影响,R531Q减慢了活化和失活,R531Q加速了活化但减慢了失活和R537Q加速失活,但对激活没有影响。我们可以从这些数据得出的主要结论是,在WT通道中,K525稳定了关闭状态,R531稳定了打开状态,R534参与了稳定预打开关闭状态的相互作用。

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