Zequn Zheng, Jiangfang Lian
Department of Cardiovascular, Medical College, Ningbo University, Ningbo, China.
Department of Cardiovascular, Lihuili Hospital Affiliated to Ningbo University, Ningbo, China.
Front Pharmacol. 2021 Jun 8;12:687007. doi: 10.3389/fphar.2021.687007. eCollection 2021.
The rapidly activating delayed rectifier K current generated by the cardiac hERG potassium channel encoded by is the most important reserve current for cardiac repolarization. The unique inward rectification characteristics of the hERG channel depend on the gating regulation, which involves crucial structural domains and key single amino acid residues in the full-length hERG channel. Identifying critical molecules involved in the regulation of gating kinetics for the hERG channel requires high-resolution structures and molecular dynamics simulation models. Based on the latest progress in hERG structure and molecular dynamics simulation research, summarizing the molecules involved in the changes in the channel state helps to elucidate the unique gating characteristics of the channel and the reason for its high affinity to cardiotoxic drugs. In this review, we aim to summarize the significant advances in understanding the voltage gating regulation of the hERG channel based on its structure obtained from cryo-electron microscopy and computer simulations, which reveal the critical roles of several specific structural domains and amino acid residues.
由编码的心脏hERG钾通道产生的快速激活延迟整流钾电流是心脏复极化最重要的储备电流。hERG通道独特的内向整流特性取决于门控调节,这涉及全长hERG通道中的关键结构域和关键单氨基酸残基。识别参与hERG通道门控动力学调节的关键分子需要高分辨率结构和分子动力学模拟模型。基于hERG结构和分子动力学模拟研究的最新进展,总结参与通道状态变化的分子有助于阐明通道独特的门控特性及其对心脏毒性药物高亲和力的原因。在这篇综述中,我们旨在基于从冷冻电子显微镜和计算机模拟获得的hERG通道结构,总结在理解hERG通道电压门控调节方面的重大进展,这些研究揭示了几个特定结构域和氨基酸残基的关键作用。