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首页> 外文期刊>Journal of Medicinal Chemistry >Simple linear QSAR models based on quantum similarity measures.
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Simple linear QSAR models based on quantum similarity measures.

机译:基于量子相似性度量的简单线性QSAR模型。

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摘要

A novel QSAR approach based on quantum similarity measures was developed and tested in this paper. This approach consists of replacing the usual physicochemical parameters employed in QSAR analysis, such as octanol-water partition coefficient or Hammett sigma constant, by appropriate quantum chemical descriptors. The methodological basis for this substitution is found in recent theoretical studies [J. Comput. Chem. 1998, 19, 1575-1583, J. Comput. -Aided Mol. Des. 1999, 13, 259-270], in which it was demonstrated that both molecular hydrophobic character and electronic substituent effect can be modeled by appropriately chosen quantum self-similarity measures (QS-SM). The most important aim of this study was to prove that selected QS-SM descriptors can be advantageously used in empirical QSAR analysis instead of classical descriptors. For this purpose several QSAR correlations are proposed, in which empirical descriptors such as Hammett sigma constants or log P values are replaced by the appropriate QS-SM. These examples involve: (i) a set of benzenesulfonamides which bind to human carbonic anhydrase, (ii) a set of benzylamines as competitive inhibitors of the enzyme trypsin, and (iii) a set of indole derivatives which are benzodiazepine receptor inverse agonist site ligands. Simple linear QSAR models were developed in order to obtain mathematical relationships between the biological activity and the pertinent quantum chemical descriptors. The validity of the obtained QSAR models is supported by comparison of the observed and predicted values of the biological activity and by a statistical analysis based on a randomization test.
机译:本文开发并测试了一种基于量子相似性度量的新型QSAR方法。该方法包括用适当的量子化学描述符代替QSAR分析中常用的理化参数,例如辛醇-水分配系数或Hammett sigma常数。在最近的理论研究中发现了这种替代的方法学基础[J.计算化学1998,19,1575-1583,J. -援助的摩尔。德斯1999,13,259-270],其中证明了可以通过适当选择的量子自相似性度量(QS-SM)来模拟分子疏水性和电子取代基效应。这项研究的最重要目的是证明所选的QS-SM描述符可以代替传统的描述符而有利地用于经验QSAR分析。为此,提出了几种QSAR相关性,其中用适当的QS-SM替换了诸如Hammett sigma常数或log P值之类的经验描述符。这些例子包括:(i)与人碳酸酐酶结合的一组苯磺酰胺,(ii)作为胰蛋白酶的竞争性抑制剂的一组苄胺,和(iii)一组苯并二氮杂receptor受体反向激动剂位点配体的吲哚衍生物。 。为了获得生物学活性和相关的量子化学描述子之间的数学关系,开发了简单的线性QSAR模型。通过比较观察到的和预测的生物活性值以及基于随机检验的统计分析,可以支持所获得的QSAR模型的有效性。

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