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减少质谱代谢组学数据中假阳性和假阴性化合物鉴定的新进展:构建提取离子色谱图和检测色谱峰的新算法

One Step Forward for Reducing False Positive and False Negative Compound Identifications from Mass Spectrometry Metabolomics Data: New Algorithms for Constructing Extracted Ion Chromatograms and Detecting Chromatographic Peaks.

作者信息

Myers Owen D, Sumner Susan J, Li Shuzhao, Barnes Stephen, Du Xiuxia

机构信息

University of North Carolina at Charlotte , Charlotte, North Carolina 28223, United States.

University of North Carolina at Chapel Hill , Chapel Hill, North Carolina 27514, United States.

出版信息

Anal Chem. 2017 Sep 5;89(17):8696-8703. doi: 10.1021/acs.analchem.7b00947. Epub 2017 Aug 17.

Abstract

False positive and false negative peaks detected from extracted ion chromatograms (EIC) are an urgent problem with existing software packages that preprocess untargeted liquid or gas chromatography-mass spectrometry metabolomics data because they can translate downstream into spurious or missing compound identifications. We have developed new algorithms that carry out the sequential construction of EICs and detection of EIC peaks. We compare the new algorithms to two popular software packages XCMS and MZmine 2 and present evidence that these new algorithms detect significantly fewer false positives. Regarding the detection of compounds known to be present in the data, the new algorithms perform at least as well as XCMS and MZmine 2. Furthermore, we present evidence that mass tolerance in m/z should be favored rather than mass tolerance in ppm in the process of constructing EICs. The mass tolerance parameter plays a critical role in the EIC construction process and can have immense impact on the detection of EIC peaks.

摘要

从提取离子色谱图(EIC)中检测到的假阳性和假阴性峰是现有软件包在预处理非靶向液相或气相色谱 - 质谱代谢组学数据时面临的一个紧迫问题,因为它们可能会在下游转化为虚假或缺失的化合物鉴定结果。我们开发了新的算法,用于进行EIC的顺序构建和EIC峰的检测。我们将新算法与两个流行的软件包XCMS和MZmine 2进行比较,并提供证据表明这些新算法检测到的假阳性明显更少。对于已知存在于数据中的化合物的检测,新算法的表现至少与XCMS和MZmine 2一样好。此外,我们提供证据表明,在构建EIC的过程中,应优先选择m/z的质量容差而不是ppm的质量容差。质量容差参数在EIC构建过程中起着关键作用,并且可能对EIC峰的检测产生巨大影响。

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