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首页> 外文期刊>Current medicinal chemistry >Predictive models for HERG channel blockers: ligand-based and structure-based approaches.
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Predictive models for HERG channel blockers: ligand-based and structure-based approaches.

机译:HERG通道阻滞剂的预测模型:基于配体和基于结构的方法。

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摘要

Acquired long QT syndrome caused by drugs that block the human ether-a-go-go-related-gene (hERG) K(+) channel causes severe side effects and thus represents a major problem in clinical studies of drug candidates. Therefore, early prediction of hERG K(+) channel affinity of drug candidates is becoming increasingly important in the drug discovery process. Both structure-based and ligand-based approaches have been undertaken to shed more light on the molecular basis of drug-channel interaction. In this article, in silico approaches for prediction of interaction with hERG are reviewed. Special attention is drawn to the in vitro biological testing systems as well as to consensus approaches for improvement of predictive power.
机译:由阻断人与人为携带的相关基因(hERG)K(+)通道的药物引起的获得性长QT综合征引起严重的副作用,因此代表了候选药物临床研究中的主要问题。因此,候选药物的hERG K(+)通道亲和力的早期预测在药物发现过程中变得越来越重要。已经采取了基于结构的方法和基于配体的方法,以从药物通道相互作用的分子基础上获得更多的启示。在本文中,回顾了用于预测与hERG相互作用的计算机方法。特别注意体外生物测试系统以及提高预测能力的共识方法。

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