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Applying pattern recognition methods to analyze the molecular properties of a homologous series of nitrogen mustard agents

机译:应用模式识别方法分析同系列氮芥子气剂的分子特性

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摘要

The purpose of this research was to analyze the pharmacological properties of a homologous series of nitrogen mustard (N-mustard) agents formed after inserting 1 to 9 methylene groups (-CH2-) between 2-N(CH2CH2Cl)2 groups. These compounds were shown to have significant correlations and associations in their properties after analysis by pattern recognition methods including hierarchical classification, cluster analysis, nonmetric multi-dimensional scaling (MDS), detrended correspondence analysis, K-means cluster analysis, discriminant analysis, and self-organizing tree algorithm (SOTA) analysis. Detrended correspondence analysis showed a linear-like association of the 9 homologs, and hierarchical classification showed that each homolog had great similarity to at least one other member of the series—as did cluster analysis using paired-group distance measure. Nonmetric multi-dimensional scaling was able to discriminate homologs 2 and 3 (by number of methylene groups) from homologs 4, 5, and 6 as a group, and from homologs 7, 8, and 9 as a group. Discriminant analysis, K-means cluster analysis, and hierarchical classification distinguished the high molecular weight homologs from low molecular weight homologs. As the number of methylene groups increased the aqueous solubility decreased, dermal permeation coefficient increased, Log P increased, molar volume increased, parachor increased, and index of refraction decreased. Application of pattern recognition methods discerned useful interrelationships within the homologous series that will determine specific and beneficial clinical applications for each homolog and methods of administration.
机译:这项研究的目的是分析在2-N(CH2CH2Cl)2之间插入1至9个亚甲基(-CH2-)后形成的一系列同源的芥菜氮芥(N-芥末)药物的药理特性。通过模式识别方法进行分析后,包括层次分类,聚类分析,非度量多维标度(MDS),去趋势对应分析,K均值聚类分析,判别分析和自我,这些化合物在其性质上显示出显着的相关性和关联性。组织树算法(SOTA)分析。去趋势对应分析显示了9个同源物的线性关联,等级分类显示每个同源物与该系列的至少一个其他成员具有极大的相似性-使用成对组距离测度的聚类分析也是如此。非度量多维标度能够从同系物4、5、6和同系物7、8和9中区分同系物2和3(按亚甲基的数量)。判别分析,K-均值聚类分析和层次分类将高分子量同系物与低分子量同系物区分开。随着亚甲基数目的增加,水溶性降低,皮肤渗透系数增加,Log P增加,摩尔体积增加,降落伞增加,并且折射率降低。模式识别方法的应用在同源序列中发现了有用的相互关系,这将确定每种同源物和给药方法的特异性和有益的临床应用。

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