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首页> 外文期刊>Talanta: The International Journal of Pure and Applied Analytical Chemistry >MetaboQC: A tool for correcting untargeted metabolomics data with mass spectrometry detection using quality controls
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MetaboQC: A tool for correcting untargeted metabolomics data with mass spectrometry detection using quality controls

机译:metaboqc:使用质量控制校正具有质谱检测的未设定的代谢组数据的工具

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摘要

Nowadays most metabolomic studies involve the analysis of large sets of samples to find a representative metabolite pattern associated to the factor under study. During a sequence of analyses the instrument signals can be subjected to the influence of experimental variability sources. Implementation of quality control (QC) samples to check the contribution of experimental variability is the most common approach in metabolomics. This practice is based on the filtration of molecular entities experiencing a variation coefficient higher than that measured in the QC data set. Although other robust correction algorithms have been proposed, none of them has provided an easy-to-use and easy-to-install tool capable of correcting experimental variability sources. In this research an R-package the MetaboQC has been developed to correct intra-day and inter-days variability using QCs analyzed within a pre-set sequence of experiments. MetaboQC has been tested in two data sets to assess the correction effects by comparing the metabolites variability before and after application of the proposed tool. As a result, the number of entities in QCs significantly different between days was reduced from 86% to 19% in the negative ionization mode and from 100% to 13% in the positive ionization mode. Furthermore, principal component analysis allowed detecting the filtration of instrumental variability associated to the injection order.
机译:如今,大多数代原研究涉及大集样品的分析,以找到与研究因素相关的代表性代谢物模式。在一系列分析期间,仪器信号可以受到实验可变性来源的影响。确定质量控制(QC)样本检查实验变异性的贡献是代谢组科中最常见的方法。这种做法基于经历了高于QC数据集中测量的变化系数的分子实体的过滤。虽然已经提出了其他鲁棒校正算法,但它们都没有提供能够校正实验可变性来源的易于使用和易于安装的工具。在本研究中,R-Package MetaboQC已经开发出校正在预设的实验序列内分析的QCS的日期内和天间变异性。 MetaboQC已在两种数据集中进行测试,以通过在施加所提出的工具之前和之后进行比较代谢物可变性来评估校正效果。结果,在负电离模式下,QCS中的实体数目明显降低86%至19%,阳性电离模式下的100%至13%。此外,主要成分分析允许检测与喷射顺序相关的仪器可变性的过滤。

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