结合配体竞争饱和度和物理化学性质的位点识别预测hERG阻断。

IF 2.4 Q3 CHEMISTRY, MULTIDISCIPLINARY Chemistry-Switzerland Pub Date : 2022-09-01 DOI:10.3390/chemistry4030045
Himanshu Goel, Wenbo Yu, Alexander D MacKerell
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引用次数: 3

摘要

人类乙醚-a-go-go相关基因(hERG)钾通道是众所周知的药物诱导心脏毒性的因素,因此在进行候选药物安全性评估时是一个极其重要的靶点。基于配体的方法与定量结构活性关系(QSAR)分析已经发展到预测hERG毒性。最近发表的hERG通道的低温电子显微镜(cryo-EM)结构的可用性为使用基于结构的模拟和对接方法进行hERG药物负荷预测开辟了前景。近年来,与单独基于配体的QSAR实践相比,结合基于结构和配体的方法来建模hERG药物负性的想法获得了动力,提供了可预测性的改进。本文展示了基于结构的SILCS(通过配体竞争饱和进行位点识别)方法与物理化学性质相结合,以开发hERG阻断的预测模型。这种组合导致基于Pearson’s R和正确率(表示配体的排序)度量的模型可预测性的提高,这些度量涉及不同的化学支架和大范围的pIC50值的hERG阻滞剂的不同验证集。包含基于SILCS结构的方法可以确定化合物结合的hERG区域以及化合物中不同化学成分对阻断的贡献,从而促进合理的配体设计以最小化hERG责任。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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hERG Blockade Prediction by Combining Site Identification by Ligand Competitive Saturation and Physicochemical Properties.

Human ether-a-go-go-related gene (hERG) potassium channel is well-known contributor to drug-induced cardiotoxicity and therefore an extremely important target when performing safety assessments of drug candidates. Ligand-based approaches in connection with quantitative structure active relationships (QSAR) analyses have been developed to predict hERG toxicity. Availability of the recent published cryogenic electron microscopy (cryo-EM) structure for the hERG channel opened the prospect for using structure-based simulation and docking approaches for hERG drug liability predictions. In recent time, the idea of combining structure- and ligand-based approaches for modeling hERG drug liability has gained momentum offering improvements in predictability when compared to ligand-based QSAR practices alone. The present article demonstrates uniting the structure-based SILCS (site-identification by ligand competitive saturation) approach in conjunction with physicochemical properties to develop predictive models for hERG blockade. This combination leads to improved model predictability based on Pearson's R and percent correct (represents rank-ordering of ligands) metric for different validation sets of hERG blockers involving diverse chemical scaffold and wide range of pIC50 values. The inclusion of the SILCS structure-based approach allows determination of the hERG region to which compounds bind and the contribution of different chemical moieties in the compounds to blockade, thereby facilitating the rational ligand design to minimize hERG liability.

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来源期刊
Chemistry-Switzerland
Chemistry-Switzerland CHEMISTRY, MULTIDISCIPLINARY-
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3.20
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hERG Blockade Prediction by Combining Site Identification by Ligand Competitive Saturation and Physicochemical Properties. The Non-Anhydrous, Minimally Basic Synthesis of the Dopamine D2 Agonist [18F]MCL-524. Reactive Sterol Electrophiles: Mechanisms of Formation and Reactions with Proteins and Amino Acid Nucleophiles.
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