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首页> 外文期刊>Journal of Medicinal Chemistry >In silico prediction of cytochrome P450 2D6 and 3A4 inhibition using Gaussian kernel weighted k-nearest neighbor and extended connectivity fingerprints, including structural fragment analysis of inhibitors versus noninhibitors.
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In silico prediction of cytochrome P450 2D6 and 3A4 inhibition using Gaussian kernel weighted k-nearest neighbor and extended connectivity fingerprints, including structural fragment analysis of inhibitors versus noninhibitors.

机译:使用高斯核加权k近邻和扩展连接指纹对计算机色素P450 2D6和3A4抑制进行计算机模拟,包括抑制剂与非抑制剂的结构片段分析。

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摘要

Inhibition of cytochrome P450 (CYP) enzymes is unwanted because of the risk of severe side effects due to drug-drug interactions. We present two in silico Gaussian kernel weighted k-nearest neighbor models based on extended connectivity fingerprints that classify CYP2D6 and CYP3A4 inhibition. Data used for modeling consisted of diverse sets of 1153 and 1382 drug candidates tested for CYP2D6 and CYP3A4 inhibition in human liver microsomes. For CYP2D6, 82% of the classified test set compounds were predicted to the correct class. For CYP3A4, 88% of the classified compounds were correctly classified. CYP2D6 and CYP3A4 inhibition were additionally classified for an external test set on 14 drugs, and multidimensional scaling plots showed that the drugs in the external test set were in the periphery of the training sets. Furthermore, fragment analyses were performed and structural fragments frequent in CYP2D6 and CYP3A4 inhibitors and noninhibitors are presented.
机译:不需要抑制细胞色素P450(CYP)酶,因为存在药物相互作用引起严重副作用的风险。我们基于分类CYP2D6和CYP3A4抑制作用的扩展连接指纹,介绍了两个计算机高斯核加权k最近邻模型。用于建模的数据由测试人肝微粒体中CYP2D6和CYP3A4抑制作用的1153和1382种候选药物的不同集合组成。对于CYP2D6,有82%的分类测试集化合物被预测为正确的分类。对于CYP3A4,正确分类了88%的分类化合物。 CYP2D6和CYP3A4抑制作用还针对14种药物的外部测试集进行了分类,多维标度图显示外部测试集中的药物位于训练集的外围。此外,进行了片段分析,并给出了CYP2D6和CYP3A4抑制剂和非抑制剂中常见的结构片段。

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