Dynamic protein-protein interactions of KCNQ1 and KCNE1 measured by EPR line shape analysis

IF 2.8 3区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY
Rebecca B. Stowe , Alison Bates , Lauryn E. Cook , Gunjan Dixit , Indra D. Sahu , Carole Dabney-Smith , Gary A. Lorigan
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Abstract

KCNQ1, also known as Kv7.1, is a voltage gated potassium channel that associates with the KCNE protein family. Mutations in this protein has been found to cause a variety of diseases including Long QT syndrome, a type of cardiac arrhythmia where the QT interval observed on an electrocardiogram is longer than normal. This condition is often aggravated during strenuous exercise and can cause fainting spells or sudden death. KCNE1 is an ancillary protein that interacts with KCNQ1 in the membrane at varying molar ratios. This interaction allows for the flow of potassium ions to be modulated to facilitate repolarization of the heart. The interaction between these two proteins has been studied previously with cysteine crosslinking and electrophysiology. In this study, electron paramagnetic resonance (EPR) spectroscopy line shape analysis in tandem with site directed spin labeling (SDSL) was used to observe changes in side chain dynamics as KCNE1 interacts with KCNQ1. KCNE1 was labeled at different sites that were found to interact with KCNQ1 based on previous literature, along with sites outside of that range as a control. Once labeled KCNE1 was incorporated into vesicles, KCNQ1 (helices S1-S6) was titrated into the vesicles. The line shape differences observed upon addition of KCNQ1 are indicative of an interaction between the two proteins. This method provides a first look at the interactions between KCNE1 and KCNQ1 from a dynamics perspective using the full transmembrane portion of KCNQ1.

Abstract Image

通过 EPR 线形分析测量 KCNQ1 和 KCNE1 的动态蛋白质相互作用。
KCNQ1 又称 Kv7.1,是一种电压门控钾通道,与 KCNE 蛋白家族有关联。这种蛋白质的突变已被发现可导致多种疾病,包括长 QT 综合征,这是一种心律失常,心电图上观察到的 QT 间期比正常时间长。这种情况通常会在剧烈运动时加重,并可能导致晕厥或猝死。KCNE1 是一种辅助蛋白质,能以不同的摩尔比与膜中的 KCNQ1 相互作用。这种相互作用可调节钾离子的流动,从而促进心脏的复极化。以前曾用半胱氨酸交联法和电生理学方法研究过这两种蛋白质之间的相互作用。在本研究中,电子顺磁共振(EPR)光谱线形分析与位点定向自旋标记(SDSL)相结合,用于观察 KCNE1 与 KCNQ1 相互作用时侧链动力学的变化。根据以前的文献,KCNE1 被标记在与 KCNQ1 发生相互作用的不同位点上,同时还标记了该范围以外的位点作为对照。将标记的 KCNE1 加入囊泡后,再将 KCNQ1(螺旋 S1-S6)滴入囊泡。加入 KCNQ1 后观察到的线形差异表明这两种蛋白质之间存在相互作用。这种方法利用 KCNQ1 的完整跨膜部分,从动力学角度首次揭示了 KCNE1 和 KCNQ1 之间的相互作用。
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来源期刊
Biochimica et biophysica acta. Biomembranes
Biochimica et biophysica acta. Biomembranes 生物-生化与分子生物学
CiteScore
8.20
自引率
5.90%
发文量
175
审稿时长
2.3 months
期刊介绍: BBA Biomembranes has its main focus on membrane structure, function and biomolecular organization, membrane proteins, receptors, channels and anchors, fluidity and composition, model membranes and liposomes, membrane surface studies and ligand interactions, transport studies, and membrane dynamics.
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