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Large Scale Metabolic Characterization Using Flux Balance Analysis and Data Mining

机译:使用通量平衡分析和数据挖掘的大规模代谢物表征

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Genome-scale metabolic models of several microbes have been reconstructed from sequenced genomes in the last years. These have been used in several applications in Biotechnology and biological discovery, since they allow to predict the phenotype of the microorganism in distinct environmental or genetic conditions, using for instance Flux Balance Analysis (FBA). This work proposes an analysis workflow using a combination of FBA and Data Mining (DM) classification methods, aiming to characterize the metabolic behaviour of microorganisms using the available models. This framework allows the large scale comparison of the metabolism of different organisms and the prediction of gene expression patterns. Also, it can provide insights about transcrip-tional regulatory events leading to the predicted metabolic behaviour. DM techniques, namely decision tree and classification rules inference, are used to provide patterns of gene expression based on environmental conditions (presence/ absence of substrates in the media). The methods proposed are applied to the study of the metabolism of two related microbes: Escherichia coli and Salmonella typhimurium.
机译:近年来,已从测序的基因组重建了几种微生物的基因组规模代谢模型。这些已被用于生物技术和生物发现中的多种应用中,因为它们允许使用例如助焊剂平衡分析(FBA)来预测不同环境或遗传条件下微生物的表型。这项工作提出了一种结合FBA和数据挖掘(DM)分类方法的分析工作流程,旨在利用可用模型来表征微生物的代谢行为。该框架允许对不同生物的代谢进行大规模比较,并预测基因表达模式。此外,它还可以提供有关导致预期代谢行为的转录调控事件的见解。 DM技术(即决策树和分类规则推断)用于根据环境条件(介质中存在/不存在底物)提供基因表达模式。提出的方法用于研究两种相关微生物的代谢:大肠杆菌和鼠伤寒沙门氏菌。

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