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PhenoMeter: A Metabolome Database Search Tool Using Statistical Similarity Matching of Metabolic Phenotypes for High-Confidence Detection of Functional Links

机译:PhenoMeter:一种代谢组学数据库搜索工具使用代谢表型的统计相似性匹配对功能链接进行高可信度检测

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摘要

This article describes PhenoMeter (PM), a new type of metabolomics database search that accepts metabolite response patterns as queries and searches the MetaPhen database of reference patterns for responses that are statistically significantly similar or inverse for the purposes of detecting functional links. To identify a similarity measure that would detect functional links as reliably as possible, we compared the performance of four statistics in correctly top-matching metabolic phenotypes of Arabidopsis thaliana metabolism mutants affected in different steps of the photorespiration metabolic pathway to reference phenotypes of mutants affected in the same enzymes by independent mutations. The best performing statistic, the PM score, was a function of both Pearson correlation and Fisher’s Exact Test of directional overlap. This statistic outperformed Pearson correlation, biweight midcorrelation and Fisher’s Exact Test used alone. To demonstrate general applicability, we show that the PM reliably retrieved the most closely functionally linked response in the database when queried with responses to a wide variety of environmental and genetic perturbations. Attempts to match metabolic phenotypes between independent studies were met with varying success and possible reasons for this are discussed. Overall, our results suggest that integration of pattern-based search tools into metabolomics databases will aid functional annotation of newly recorded metabolic phenotypes analogously to the way sequence similarity search algorithms have aided the functional annotation of genes and proteins. PM is freely available at MetabolomeExpress ().
机译:本文介绍了PhenoMeter(PM),这是一种新型的代谢组学数据库搜索,它接受代谢物反应模式作为查询,并在MetaPhen参考模式数据库中搜索统计上显着相似或相反的反应,以检测功能链接。为了确定可以尽可能可靠地检测功能连接的相似性度量,我们比较了四种统计数据在受光呼吸代谢途径不同步骤影响的拟南芥拟南芥代谢突变体的正确顶部匹配代谢表型与对照表型中影响的参考表型的性能。相同的酶通过独立的突变。表现最好的统计数据,即PM得分,是皮尔逊相关性和定向重叠的费舍尔精确检验的函数。该统计数据优于单独使用的皮尔逊相关性,二重加权中相关性和费舍尔精确检验。为了证明其普遍适用性,我们证明了当查询对各种环境和遗传扰动的响应时,PM能够可靠地检索到数据库中功能最密切的响应。在独立研究之间尝试匹配代谢表型的尝试获得了不同的成功,并讨论了可能的原因。总体而言,我们的研究结果表明,将基于模式的搜索工具整合到代谢组学数据库中,将有助于新记录的代谢表型的功能注释,类似于序列相似性搜索算法帮助基因和蛋白质的功能注释的方式。 PM可通过MetabolomeExpress()免费获得。

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