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首页> 外文期刊>Pharmaceutical research >Hybrid scoring and classification approaches to predict human pregnane X receptor activators.
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Hybrid scoring and classification approaches to predict human pregnane X receptor activators.

机译:预测人类妊娠X受体激活剂的混合评分和分类方法。

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摘要

PURPOSE: The human pregnane X receptor (PXR) is a transcriptional regulator of many genes involved in xenobiotic metabolism and excretion. Reliable prediction of high affinity binders with this receptor would be valuable for pharmaceutical drug discovery to predict potential toxicological responses MATERIALS AND METHODS: Computational models were developed and validated for a dataset consisting of human PXR (PXR) activators and non-activators. We used support vector machine (SVM) algorithms with molecular descriptors derived from two sources, Shape Signatures and the Molecular Operating Environment (MOE) application software. We also employed the molecular docking program GOLD in which the GoldScore method was supplemented with other scoring functions to improve docking results. RESULTS: The overall test set prediction accuracy for PXR activators with SVM was 72% to 81%. This indicates that molecular shape descriptors are useful in classification of compounds binding to this receptor. The best docking prediction accuracy (61%) was obtained using 1D Shape Signature descriptors as a weighting factor to the GoldScore. By pooling the available human PXR data sets we revealed those molecular features that are associated with human PXR activators. CONCLUSIONS: These combined computational approaches using molecular shape information may assist scientists to more confidently identify PXR activators.
机译:目的:人类孕烷X受体(PXR)是涉及异源生物代谢和排泄的许多基因的转录调节因子。可靠地预测具有这种受体的高亲和力结合物,对于发现药物以预测潜在的毒理学反应将具有重要的价值。材料和方法:计算模型已开发并验证了由人PXR(PXR)激活剂和非激活剂组成的数据集。我们将支持向量机(SVM)算法与分子描述符一起使用,该描述符来自两个来源,形状签名和分子操作环境(MOE)应用程序软件。我们还采用了分子对接程序GOLD,其中GoldScore方法还添加了其他计分功能,以改善对接结果。结果:带有SVM的PXR激活剂的总体测试集预测准确性为72%至81%。这表明分子形状描述符可用于分类与该受体结合的化合物。使用1D形状签名描述符作为GoldScore的加权因子,可以获得最佳的对接预测精度(61%)。通过汇总可用的人类PXR数据集,我们揭示了与人类PXR激活剂相关的那些分子特征。结论:这些使用分子形状信息的组合计算方法可以帮助科学家更自信地识别PXR激活剂。

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