首页> 外文期刊>The Journal of Physiology >Mutation of colocalized residues of the pore helix and transmembrane segments S5 and S6 disrupt deactivation and modify inactivation of KCNQ1 K+ channels.
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Mutation of colocalized residues of the pore helix and transmembrane segments S5 and S6 disrupt deactivation and modify inactivation of KCNQ1 K+ channels.

机译:孔螺旋和跨膜片段S5和S6的共定位残基的突变破坏失活并修饰KCNQ1 K +通道的失活。

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摘要

KCNQ1 (Kv 7.1) alpha-subunits and KCNE1 beta-subunits co-assemble to form channels that conduct the slow delayed rectifier K+ current (IKs) in the heart. Mutations in either subunit cause long QT syndrome (LQTS), an inherited disorder of cardiac repolarization. Here, the functional consequences of the LQTS-associated missense mutation V310I and several nearby residues were determined. Val310 is located at the base of the pore helix of KCNQ1, two residues below the TIGYG signature sequence that defines the K+ selectivity filter. Channels were heterologously expressed in Xenopus laevis oocytes and currents were recorded using the two-microelectrode voltage-clamp technique. V310I KCNQ1 reduced IKs amplitude when co-expressed with wild-type KCNQ1 and KCNE1 subunits. Val310 was also mutated to Gly, Ala or Leu to explore the importance of amino acid side chain volume at this position. Like V310I, V310L KCNQ1 channels gated normally. Unexpectedly, V310G and V310A KCNQ1 channels inactivated strongly and did not close normally in response to membrane hyperpolarization. Based on a homology model of the KCNQ1 channel pore, we speculate that the side group of residue 310 can interact with specific residues in the S5 and S6 domains to alter channel gating. When volume of the side chain is small, the stability of the closed state is disrupted and the extent of channel inactivation is enhanced. We mutated putative interacting residues in S5 and S6 and found that mutant Leu273 and Phe340 channels also can disrupt close states and modify inactivation. Together these findings indicate the importance of a putative pore helix-S5-S6 interaction for normal KCNQ1 channel deactivation and confirm its role in KCNQ1 inactivation. Disturbance of these interactions might underly LQTS associated with KCNQ1 mutant channels.
机译:KCNQ1(Kv 7.1)α亚基和KCNE1β亚基共同组装,形成传导心脏中延迟延迟的整流器K +电流(IKs)的通道。任一亚基的突变都会导致长QT综合征(LQTS),这是遗传性的心脏复极障碍。在此,确定了与LQTS相关的错义突变V310I和几个附近残基的功能后果。 Val310位于KCNQ1孔螺旋的底部,位于定义K +选择性滤膜的TIGYG标记序列下方的两个残基。通道在非洲爪蟾卵母细胞中异源表达,并使用双微电极电压钳技术记录电流。当与野生型KCNQ1和KCNE1亚基共表达时,V310I KCNQ1降低了IKs振幅。 Val310也被突变为Gly,Ala或Leu,以探索该位置氨基酸侧链体积的重要性。与V310I一样,V310L KCNQ1通道也门控正常。出乎意料的是,V310G和V310A KCNQ1通道会强烈失活,并且不会因膜超极化而正常关闭。基于KCNQ1通道孔的同源性模型,我们推测残基310的侧基可以与S5和S6结构域中的特定残基相互作用以改变通道门控。当侧链的体积小时,闭合状态的稳定性被破坏并且通道失活的程度增强。我们突变了S5和S6中的假定相互作用残基,发现突变Leu273和Phe340通道也可以破坏紧密状态并修饰失活。这些发现共同表明假定的孔螺旋-S5-S6相互作用对于正常的KCNQ1通道失活的重要性,并确认其在KCNQ1失活中的作用。这些相互作用的干扰可能是与KCNQ1突变体通道相关的LQTS的潜在原因。

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