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Mathematical structural descriptors and mutagenicity assessment: a study with congeneric and diverse datasets$

机译:数学结构描述符和致突变性评估:具有Congeneric和不同数据集的研究

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Quantitative bioactivity and toxicity assessment of chemical compounds plays a central role in drug discovery as it saves a substantial amount of resources. To this end, high-performance computing has enabled researchers and practitioners to leverage hundreds, or even thousands, of computed molecular descriptors for the activity prediction of candidate compounds. In this paper, we evaluate the utility of two large groups of chemical descriptors by such predictive modelling, as well as chemical structure discovery, through empirical analysis. We use a suite of commercially available and in-house software to calculate molecular descriptors for two sets of chemical mutagens – a homogeneous set of 95 amines, and a diverse set of 508 chemicals. Using calculated descriptors, we model the mutagenic activity of these compounds using a number of methods from the statistics and machine-learning literature, and use robust principal component analysis to investigate the low-dimensional subspaces that characterize these chemicals. Our results suggest that combining different sets of descriptors is likely to result in a better predictive model – but that depends on the compounds being modelled and the modelling technique being used.
机译:化学化合物的定量生物活性和毒性评估在药物发现中起着核心作用,因为它节省了大量资源。为此,高性能计算使研究人员和从业者能够利用数百,甚至数千,用于候选化合物的活性预测的计算分子描述符。在本文中,我们通过经验分析评估了这种预测建模的两组化学描述符的效用,以及化学结构发现。我们使用一套市售和内部软件来计算两组化学诱变剂的分子描述符 - 一种均匀的95胺,以及多样化的508种化学物质。使用计算的描述符,我们使用来自统计和机器学习文献的许多方法来模拟这些化合物的致突变性,并使用稳健的主成分分析来研究表征这些化学品的低维子空间。我们的结果表明,组合不同的描述符集可能导致更好的预测模型 - 但这取决于所建模的化合物和所使用的建模技术。

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