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首页> 外文期刊>SAR and QSAR in Environmental Research >Monte Carlo sampling and multivariate adaptive regression splines as tools for QSAR modelling of HIV-1 reverse transcriptase inhibitors
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Monte Carlo sampling and multivariate adaptive regression splines as tools for QSAR modelling of HIV-1 reverse transcriptase inhibitors

机译:蒙特卡洛采样和多元自适应回归样条作为HIV-1逆转录酶抑制剂QSAR建模的工具

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The present work focuses on the development of an interpretable quantitative structure-activity relationship (QSAR) model for predicting the anti-HIV activities of 67 thiazolylthiourea derivatives. This set of molecules has been proposed as potent HIV-1 reverse transcriptase inhibitors (RT-INs). The molecules were encoded to a diverse set of molecular descriptors, spanning different physical and chemical properties. Monte Carlo (MC) sampling and multivariate adaptive regression spline (MARS) techniques were used to select the most important descriptors and to predict the activity of the molecules. The most important descriptor was found to be the aspherisity index. The analysis of variance (ANOVA) and interpretable spline equations showed that the geometrical shape of the molecules has considerable effect on their activities. It seems that the linear molecules are more active than symmetric top compounds. The final MARS model derived displayed a good predictive ability judging from the determination coefficient corresponding to the leave multiple out (LMO) cross-validation technique, i.e. r 2 = 0.828 (M = 12) and r 2 = 0.813 (M = 20). The results of this work showed that the developed spline model is robust, has a good predictive power, and can then be used as a reliable tool for designing novel HIV-1 RT-INs.View full textDownload full textKeywordsmultivariate adaptive regression spline, HIV-1 reverse transcriptase, quantitative structure activity relationship, Monte Carlo sampling, analysis of variance, thiazolylthioureaRelated var addthis_config = { ui_cobrand: "Taylor & Francis Online", services_compact: "citeulike,netvibes,twitter,technorati,delicious,linkedin,facebook,stumbleupon,digg,google,more", pubid: "ra-4dff56cd6bb1830b" }; Add to shortlist Link Permalink http://dx.doi.org/10.1080/1062936X.2012.696552
机译:目前的工作侧重于开发可解释的定量结构-活性关系(QSAR)模型,用于预测67种噻唑基硫脲衍生物的抗HIV活性。已提议将这组分子用作有效的HIV-1逆转录酶抑制剂(RT-IN)。这些分子被编码为多种分子描述符,涵盖了不同的物理和化学性质。蒙特卡罗(MC)采样和多元自适应回归样条(MARS)技术用于选择最重要的描述符并预测分子的活性。发现最重要的描述符是球度指数。方差分析(ANOVA)和可解释的样条方程式表明,分子的几何形状对其活性有很大影响。线性分子似乎比对称的顶部化合物更具活性。最终的MARS模型派生显示了良好的预测能力,从与离开多出(LMO)交叉验证技术相对应的确定系数来看,即r 2≥sup== 0.828(M = 12)和r 2 = 0.813(M = 20)。这项工作的结果表明,所开发的样条模型很健壮,具有良好的预测能力,可以用作设计新型HIV-1 RT-IN的可靠工具。查看全文下载全文关键字多变量自适应回归样条,HIV- 1个逆转录酶,定量结构活性关系,蒙特卡洛采样,方差分析,噻唑基硫脲相关的变量addthis_config = { digg,google,more“,发布号:” ra-4dff56cd6bb1830b“};添加到候选列表链接永久链接http://dx.doi.org/10.1080/1062936X.2012.696552

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