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首页> 外文期刊>Molecular informatics >Prediction of hERG Potassium Channel Blocking Actions Using Combination of Classification and Regression Based Models: A Mixed Descriptors Approach
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Prediction of hERG Potassium Channel Blocking Actions Using Combination of Classification and Regression Based Models: A Mixed Descriptors Approach

机译:基于分类和回归模型相结合的hERG钾通道阻滞作用的预测:混合描述符方法

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摘要

Abstract: A set of 242 compounds with diverse molecular structures and having different mechanisms of therapeutic actions was used to develop classification and regression based QSAR models for the identification of potential hERG channel blockers. The developed in silico models made it possible to obtain a quantitative interpretation of the structural information and physicochemical properties of the molecules for their hERG binding affinity along with exploration of the discriminant functions differentiating between lower and higher hERG blocking potency compounds by the classification approach. The developed models were rigorously validated internally as well as externally with the application of the principles of Organization for Economic Cooperation and Development (OECD) for the validation purpose. The test for domain of applicability was also carried out for checking reliability of the predictions. Pharmacological distribution diagrams (PDDs) were employed as a visualizing technique for the classification approach. Important fragments relevant to hERG binding affinity were identified through critical analysis and interpretation of the developed models. Finally, the developed models were implemented to screen hERG channel blocking properties for a huge number compounds of the DrugBank database. In silico prediction for hERG channel blocking potential for each of the DrugBank compounds is possible from the developed models.
机译:摘要:一组242种具有不同分子结构且具有不同治疗作用机制的化合物被用于开发基于分类和回归的QSAR模型,以鉴定潜在的hERG通道阻滞剂。先进的计算机模拟模型使得可以通过分子生物学方法对分子的hERG结合亲和力进行结构信息和理化性质的定量解释,并通过分类方法探索区分高低hERG阻断剂的判别功能。所开发的模型在内部和外部均经过经济合作与发展组织(OECD)原则的严格验证,以进行验证。还进行了适用范围测试,以检查预测的可靠性。药理分布图(PDD)被用作分类方法的可视化技术。通过关键分析和开发模型的解释,鉴定了与hERG结合亲和力有关的重要片段。最终,开发出的模型被实施,以筛选DrugBank数据库中大量化合物的hERG通道阻断特性。在计算机上可以通过已开发的模型预测每种DrugBank化合物的hERG通道阻断潜力。

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