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hERG1a and hERG1b potassium channel subunits directly interact and preferentially form heteromeric channels

机译:hERG1a和hERG1b钾通道亚基直接相互作用并优先形成异源通道

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摘要

Voltage-activated human ether-á-go-go–related gene (hERG) potassium channels are critical for the repolarization of cardiac action potentials and tune-spike frequency adaptation in neurons. Two isoforms of mammalian ERG1 channel subunits, ERG1a and ERG1b, are the principal subunits that conduct the IKr current in the heart and are also broadly expressed in the nervous system. However, there is little direct evidence that ERG1a and ERG1b form heteromeric channels. Here, using electrophysiology, biochemistry, and fluorescence approaches, we systematically tested for direct interactions between hERG1a and hERG1b subunits. We report 1) that hERG1a dominant-negative subunits suppress hERG1b currents (and vice versa), 2) that disulfide bonds form between single cysteine residues experimentally introduced into an extracellular loop of hERG1a and hERG1b subunits and produce hERG1a–hERG1b dimers, and 3) that hERG1a and hERG1b subunits tagged with fluorescent proteins that are FRET pairs exhibit robust energy transfer at the plasma membrane. Thus, multiple lines of evidence indicated a physical interaction between hERG1a and hERG1b, consistent with them forming heteromeric channels. Moreover, co-expression of variable ratios of hERG1a and hERG1b RNA yielded channels with deactivation kinetics that reached a plateau and were different from those of hERG1b channels, consistent with a preference of hERG1b subunits for hERG1a subunits. Cross-linking studies revealed that an equal input of hERG1a and hERG1b yields more hERG1a–hERG1a or hERG1a–hERG1b dimers than hERG1b–hERG1b dimers, also suggesting that hERG1b preferentially interacts with hERG1a. We conclude that hERG1b preferentially forms heteromeric ion channels with hERG1a at the plasma membrane.
机译:电压激活的人类以太相关基因(hERG)钾离子通道对于心脏动作电位的复极化和神经元的峰频率适应至关重要。哺乳动物ERG1通道亚基的两个同工型ERG1a和ERG1b是在心脏中传导IKr电流的主要亚基,并且在神经系统中也广泛表达。但是,几乎没有直接证据表明ERG1a和ERG1b形成异源通道。在这里,我们使用电生理学,生物化学和荧光方法,系统地测试了hERG1a和hERG1b亚基之间的直接相互作用。我们报告1)hERG1a显性负性亚基抑制了hERG1b电流(反之亦然),2)实验引入到hERG1a和hERG1b亚基的细胞外环中的单个半胱氨酸残基之间形成二硫键,并产生hERG1a–hERG1b二聚体,以及3)标记为FRET对的荧光蛋白的hERG1a和hERG1b亚基在质膜上显示出强大的能量转移。因此,多条证据表明hERG1a和hERG1b之间存在物理相互作用,与它们形成异源通道一致。此外,hERG1a和hERG1b RNA可变比例的共表达产生的通道具有失活动力学,达到了平稳状态,并且不同于hERG1b通道,这与hERG1b亚基对hERG1a亚基的偏好一致。交联研究表明,与hERG1b-hERG1b二聚体相比,相等输入的hERG1a和hERG1b产生更多的hERG1a-hERG1a或hERG1a-hERG1b二聚体,也表明hERG1b优先与hERG1a相互作用。我们得出的结论是,hERG1b优先与hERG1a在质膜上形成异聚离子通道。

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