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首页> 外文期刊>The Journal of toxicological sciences >Nonlinear classification of hERG channel inhibitory activity by unsupervised classification method.
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Nonlinear classification of hERG channel inhibitory activity by unsupervised classification method.

机译:通过无监督分类方法对hERG通道抑制活性进行非线性分类。

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摘要

The side effects that occur in the central nervous system and circulatory system due to medicines are expected to be prevented by research and development. However, many of the compounds in medicines have the possibility of causing arrhythmia, and methods developed to detect this problem at the early stage of drug development are not always successful. In the present study, we classified drug compounds according to their activity using only structural information. To classify compounds, we used a self-organizing map (SOM), which is a nonlinear unsupervised classification method. We first analyzed a small-scale dataset, and an excellent classification result was obtained. We then applied our method to a large-scale dataset containing numerous inert compounds and were again able to classify the compounds according to their activity. Both classifications showed some compound activity, although a few differences between the two SOM maps were seen.
机译:预计通过药物研发可以预防中枢神经系统和循环系统因药物引起的副作用。但是,药物中的许多化合物都有可能引起心律不齐,并且在药物开发的早期阶段开发出检测此问题的方法并不总是成功的。在本研究中,我们仅根据结构信息根据其活性对药物化合物进行分类。为了对化合物进行分类,我们使用了自组织图(SOM),这是一种非线性的无监督分类方法。我们首先分析了一个小型数据集,并获得了出色的分类结果。然后,我们将我们的方法应用于包含大量惰性化合物的大规模数据集,并且再次能够根据其活性对化合物进行分类。两种分类均显示出一定的化合物活性,尽管在两个SOM图之间发现了一些差异。

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