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msPurity:基于质谱的代谢组学碎片化前体离子纯度的自动化评估。

msPurity: Automated Evaluation of Precursor Ion Purity for Mass Spectrometry-Based Fragmentation in Metabolomics.

机构信息

School of Biosciences and ‡Phenome Centre Birmingham, College of Life and Environmental Sciences, University of Birmingham , Edgbaston, Birmingham, B15 2TT, United Kingdom.

出版信息

Anal Chem. 2017 Feb 21;89(4):2432-2439. doi: 10.1021/acs.analchem.6b04358. Epub 2017 Feb 8.

Abstract

Tandem mass spectrometry (MS/MS or MS) is a widely used approach for structural annotation and identification of metabolites in complex biological samples. The importance of assessing the contribution of the precursor ion within an isolation window for MS experiments has been previously detailed in proteomics, where precursor ion purity influences the quality and accuracy of matching to mass spectral libraries, but to date, there has been little attention to this data-processing technique in metabolomics. Here, we present msPurity, a vendor-independent R package for liquid chromatography (LC) and direct infusion (DI) MS that calculates a simple metric to describe the contribution of the selected precursor. The precursor purity metric is calculated as "intensity of a selected precursor divided by the summed intensity of the isolation window". The metric is interpolated at the recorded point of MS acquisition using bordering full-scan spectra. Isotopic peaks of the selected precursor can be removed, and low abundance peaks that are believed to have limited contribution to the resulting MS spectra are removed. Additionally, the isolation efficiency of the mass spectrometer can be taken into account. The package was applied to Data Dependent Acquisition (DDA)-based MS metabolomics data sets derived from three metabolomics data repositories. For the 10 LC-MS DDA data sets with > ±1 Da isolation windows, the median precursor purity score ranged from 0.67 to 0.96 (scale = 0 to +1). The R package was also used to assess precursor purity of theoretical isolation windows from LC-MS data sets of differing sample types. The theoretical isolation windows being the same width used for an anticipated DDA experiment (±0.5 Da). The most complex sample had a median precursor purity score of 0.46 for the 64,498 XCMS determined features, in comparison to the less spectrally complex sample that had a purity score of 0.66 for 5071 XCMS features. It has been previously reported in proteomics that a purity score of <0.5 can produce unreliable spectra matching results. With this assumption, we show that for complex samples there will be a large number of metabolites where traditional DDA approaches will struggle to provide reliable annotations or accurate matches to mass spectral libraries.

摘要

串联质谱(MS/MS 或 MS)是一种广泛用于复杂生物样品中代谢物结构注释和鉴定的方法。在蛋白质组学中,已经详细研究了评估在 MS 实验中选择的前体离子在隔离窗口内的贡献的重要性,其中前体离子纯度会影响与质谱库匹配的质量和准确性,但迄今为止,代谢组学中对此数据处理技术的关注甚少。在这里,我们提出了 msPurity,这是一个独立于供应商的用于液相色谱(LC)和直接进样(DI)MS 的 R 包,它计算了一个简单的指标来描述所选前体的贡献。前体纯度指标是通过“选定前体的强度除以隔离窗口的总和强度”计算得出的。该指标使用边界全扫描谱在记录的 MS 采集点进行内插。可以去除选定前体的同位素峰,并且可以去除置信度较低的低丰度峰,因为这些峰对最终 MS 谱的贡献有限。此外,可以考虑质谱仪的隔离效率。该软件包已应用于三个代谢组学数据存储库中获得的基于数据依赖性采集(DDA)的 MS 代谢组学数据集。对于 10 个 LC-MS DDA 数据集,其隔离窗口的 ±1 Da 范围从 0.67 到 0.96(范围为 0 到 +1)。该 R 包还用于评估来自不同样本类型的 LC-MS 数据集的理论隔离窗口的前体纯度。理论隔离窗口与预期的 DDA 实验使用的相同宽度(±0.5 Da)。最复杂的样本在 XCMS 确定的 64498 个特征的理论隔离窗口中,前体纯度得分为 0.46,而光谱复杂度较低的样本在前体纯度得分为 0.66 的情况下,5071 个 XCMS 特征的理论隔离窗口中,前体纯度得分为 0.66。在蛋白质组学中已经报道过,纯度得分<0.5 可能会导致不可靠的光谱匹配结果。基于此假设,我们表明对于复杂样本,将有大量代谢物,传统的 DDA 方法将难以提供可靠的注释或与质谱库的准确匹配。

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