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Phenotypic Mapping of Metabolic Profiles Using Self-Organizing Maps of High-Dimensional Mass Spectrometry Data

机译:使用高维质谱数据的自组织映射进行代谢谱的表型作图

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A metabolic system is composed of inherently interconnected metabolic precursors, intermediates, and products. The analysis of untargeted metabolomics data has conventionally been performed through the use of comparative statistics or multivariate statistical analysis-based approaches; however, each falls short in representing the related nature of metabolic perturbations. Herein, we describe a complementary method for the analysis of large metabolite inventories using a data-driven approach based upon a self-organizing map algorithm. This workflow allows for the unsupervised clustering, and subsequent prioritization of, correlated features through Gestalt comparisons of metabolic heat maps. We describe this methodology in detail, including a comparison to conventional metabolomics approaches, and demonstrate the application of this method to the analysis of the metabolic repercussions of prolonged cocaine exposure in rat sera profiles.
机译:代谢系统由内在联系的代谢前体,中间体和产物组成。非目标代谢组学数据的分析通常通过使用比较统计或基于多元统计分析的方法进行;但是,每种方法都不能代表代谢紊乱的相关性质。在这里,我们描述了一种基于自组织映射算法的数据驱动方法,用于分析大型代谢物库存的补充方法。该工作流程允许通过代谢热图的格式塔比较对无相关特征进行聚类,并对相关特征进行优先排序。我们详细描述了该方法,包括与常规代谢组学方法的比较,并证明了该方法在延长可卡因暴露于大鼠血清中的代谢影响的分析中的应用。

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