多米芬和苯并氯铵阻断HERG钾通道的分子决定因素。

IF 2.9 4区 医学 Q2 PHYSIOLOGY
Feng Tang, Zuoxian Lin, Rongqi Huang, Zhiyuan Li
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引用次数: 0

摘要

多菲芬溴化剂(DMP)和苄索氯铵(BZT)是广泛用作消毒剂的合成季铵类化合物。这两种药物都是人类乙醚-à-go-go-related基因(HERG)钾通道的有效抑制剂,这是心脏复极的关键因素。HERG功能障碍与长QT综合征和心律失常有关,但DMP和BZT抑制的分子机制尚不完全清楚。在这项研究中,我们采用定点诱变和全细胞膜片钳记录来鉴定介导DMP和BZT结合的关键残基。野生型和9个突变型HERG通道在HEK-293 T细胞中表达,靶向孔螺旋(T623A、S624A、V625A)、S6螺旋(G648A、Y652A、F656A)、s5 -孔连接体(S631A)和S5-S6连接体(N588K)上的残基,包括双突变体(N588K/S631A)。DMP主要依赖于S624、V625、Y652、N588和S631,而BZT主要依赖于S624、V625和Y652。计算对接发现,DMP与S624和Y652形成氢键、π-阳离子和π-π相互作用,BZT与Y652形成π-阳离子和π-π堆积相互作用,与S624形成疏水接触。重要的是,我们的数据强调了季铵基团作为一个关键的药效团,通过π阳离子、静电和氢键机制介导与丝氨酸和芳香残基的强相互作用,有助于高亲和通道封锁。总之,本研究确定了DMP和BZT与HERG通道结合的分子决定因素,并提供了机制见解,可以指导设计更安全的治疗方法,最大限度地减少HERG的风险。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Molecular determinants of HERG potassium channel blockade by domiphen bromide and benzethonium chloride.

Domiphen bromide (DMP) and benzethonium chloride (BZT) are synthetic quaternary ammonium compounds widely used as disinfectants. Both agents are potent inhibitors of the human ether-à-go-go-related gene (HERG) potassium channel, a key contributor to cardiac repolarization. Dysfunction of HERG is associated with long QT syndrome and arrhythmias, yet the molecular mechanisms underlying DMP and BZT inhibition remain incompletely understood. In this study, we employed site-directed mutagenesis and whole-cell patch-clamp recording to identify key residues mediating DMP and BZT binding. Wild-type and nine mutant HERG channels were expressed in HEK-293 T cells, targeting residues in the pore helix (T623A, S624A, V625A), S6 helix (G648A, Y652A, F656A), S5-pore linker (S631A), and S5-S6 connector (N588K), including a double mutant (N588K/S631A). DMP exhibited strong dependence on S624, V625, Y652, N588, and S631, whereas BZT primarily involved S624, V625, and Y652. Computational docking revealed that DMP forms hydrogen bonds, π-cation, and π-π interactions with S624 and Y652, while BZT interacts through π-cation and π-π stacking with Y652 and hydrophobic contacts with S624. Importantly, our data highlight the quaternary ammonium group as a critical pharmacophore, mediating strong interactions with serine and aromatic residues via π-cation, electrostatic, and hydrogen bonding mechanisms, contributing to high-affinity channel blockade. In conclusion, this study defines the molecular determinants underlying DMP and BZT binding to the HERG channel and provides mechanistic insight that may guide the design of safer therapeutics with minimized HERG liability.

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来源期刊
CiteScore
8.80
自引率
2.20%
发文量
121
审稿时长
4-8 weeks
期刊介绍: Pflügers Archiv European Journal of Physiology publishes those results of original research that are seen as advancing the physiological sciences, especially those providing mechanistic insights into physiological functions at the molecular and cellular level, and clearly conveying a physiological message. Submissions are encouraged that deal with the evaluation of molecular and cellular mechanisms of disease, ideally resulting in translational research. Purely descriptive papers covering applied physiology or clinical papers will be excluded. Papers on methodological topics will be considered if they contribute to the development of novel tools for further investigation of (patho)physiological mechanisms.
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