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Improvement of the quantitative differential metabolome pipeline for gas chromatography-mass spectrometry data by automated reliable peak selection

机译:通过自动可靠的峰选择改进气相色谱-质谱数据的定量差异代谢组学管线

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Recent advances in metabolomics technology have enabled large-scale comprehensive analyses of metabolites, but the throughput of data processing of non-targeted, quantitative differential analyses is very low. It is crucial to solve this problem to generate biological hypotheses from a large-scale dataset. To improve the analysis of metabolite data, we focused on the processing of quantitative differential analysis after multiple peak alignment. We have developed a program named FAQuant that automatically selects reliable peaks from each chromatogram, quantifies the mean of peak intensity to compare between sample groups, and selects the peaks with differences in accumulation of metabolites. This program was incorporated into a quantitative differential metabolome pipeline as a module to improve the throughput of gas chromatography-mass spectrometry dataset analysis. As a result, the module incorporation largely reduced the total processing time. Furthermore, differential analysis of metabolites in soybean (Glycine max) cultivars was demonstrated by use of the system. This system might facilitate biological hypothesis generation from large-scale comparative metabolome analysis.
机译:代谢组学技术的最新进展已实现了对代谢物的大规模综合分析,但非目标,定量差异分析的数据处理吞吐量非常低。解决此问题的关键是从大规模数据集中生成生物学假设。为了改善代谢物数据的分析,我们专注于多峰比对后定量差异分析的处理。我们开发了一个名为FAQuant的程序,该程序可从每个色谱图中自动选择可靠的峰,量化峰强度的平均值以在样品组之间进行比较,并选择代谢物积累差异的峰。该程序作为一个模块并入定量差分代谢组学管道中,以提高气相色谱-质谱数据集分析的通量。结果,模块的结合大大减少了总的处理时间。此外,通过使用该系统证明了大豆(Glycine max)品种中代谢物的差异分析。该系统可能有助于从大规模比较代谢组学分析中生成生物学假设。

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