研究碘化正丁基氟哌啶醇的心脏毒性:hERG 通道的抑制机制。

IF 4.8 3区 医学 Q1 PHARMACOLOGY & PHARMACY
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引用次数: 0

摘要

人类 Ether-à-go-go 相关基因(hERG)编码一种负责形成 IKr 通道α亚基的蛋白质,IKr 通道在心脏复极化过程中起着至关重要的作用。hERG 通道的正常功能对维持正常心律至关重要。抑制这些通道可导致 QT 间期延长和潜在的危及生命的心律失常。心脏毒性是药物开发领域的首要问题。碘化 N-正丁基氟哌啶醇(F2)是氟哌啶醇的一种衍生物,其治疗潜力已得到研究。然而,这种化合物对心脏毒性,特别是对 hERG 通道的影响仍不确定。本研究采用计算和实验方法研究 F2 对 hERG 通道的抑制机制。分子对接和分子动力学模拟是计算生物学中预测蛋白质配体复合物结合相互作用和稳定性的常用技术。就 F2-hERG 复合物而言,这些方法可以为了解 F2 与 hERG 蛋白的潜在结合模式和相互作用强度提供有价值的见解。另一方面,电生理学测定是一种实验技术,用于确定各种化合物对 hERG 通道抑制的程度和性质。通过测量 hERG 通道在不同刺激下的电活动,这些测定可提供配体与通道结合的功能效应的重要信息。研究的主要发现表明,F2 通过形成氢键、π-阳离子相互作用和疏水力与 hERG 通道相互作用。这种相互作用以浓度依赖的方式抑制了 hERG 电流,其 IC50 值为 3.75μM。本研究的结果证明了 F2 潜在的心脏毒性,并强调了在临床开发过程中考虑 hERG 通道相互作用的重要性。本研究旨在全面揭示 F2 与 hERG 之间的相互作用,从而指导我们安全使用 F2 以及开发高效低毒的新衍生物。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Investigating the cardiotoxicity of N-n-butyl haloperidol iodide: Inhibition mechanisms on hERG channels

The human Ether-à-go-go-Related Gene (hERG) encodes a protein responsible for forming the alpha subunit of the IKr channel, which plays a crucial role in cardiac repolarization. The proper functioning of hERG channels is paramount in maintaining a normal cardiac rhythm. Inhibition of these channels can result in the prolongation of the QT interval and potentially life-threatening arrhythmias. Cardiotoxicity is a primary concern in the field of drug development. N-n-Butyl haloperidol iodide (F2), a derivative of haloperidol, has been investigated for its therapeutic potential. However, the impact of this compound on cardiac toxicity, specifically on hERG channels, remains uncertain. This study employs computational and experimental methodologies to examine the inhibitory mechanisms of F2 on hERG channels. Molecular docking and molecular dynamics simulations commonly used techniques in computational biology to predict protein-ligand complexes' binding interactions and stability. In the context of the F2-hERG complex, these methods can provide valuable insights into the potential binding modes and strength of interaction between F2 and the hERG protein. On the other hand, electrophysiological assays are experimental techniques used to characterize the extent and nature of hERG channel inhibition caused by various compounds. By measuring the electrical activity of the hERG channel in response to different stimuli, these assays can provide important information about the functional effects of ligand binding to the channel. The study's key findings indicate that F2 interacts with the hERG channel by forming hydrogen bonding, π-cation interactions, and hydrophobic forces. This interaction leads to the inhibition of hERG currents in a concentration-dependent manner, with an IC50 of 3.75 μM. The results presented in this study demonstrate the potential cardiotoxicity of F2 and underscore the significance of considering hERG channel interactions during its clinical development. This study aims to provide comprehensive insights into the interaction between F2 and hERG, which will may guid us in the safe use of F2 and in the development of new derivatives with high efficiency while low toxicity.

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来源期刊
Toxicology
Toxicology 医学-毒理学
CiteScore
7.80
自引率
4.40%
发文量
222
审稿时长
23 days
期刊介绍: Toxicology is an international, peer-reviewed journal that publishes only the highest quality original scientific research and critical reviews describing hypothesis-based investigations into mechanisms of toxicity associated with exposures to xenobiotic chemicals, particularly as it relates to human health. In this respect "mechanisms" is defined on both the macro (e.g. physiological, biological, kinetic, species, sex, etc.) and molecular (genomic, transcriptomic, metabolic, etc.) scale. Emphasis is placed on findings that identify novel hazards and that can be extrapolated to exposures and mechanisms that are relevant to estimating human risk. Toxicology also publishes brief communications, personal commentaries and opinion articles, as well as concise expert reviews on contemporary topics. All research and review articles published in Toxicology are subject to rigorous peer review. Authors are asked to contact the Editor-in-Chief prior to submitting review articles or commentaries for consideration for publication in Toxicology.
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