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ADAP-GC 4.0: Application of Clustering-Assisted Multivariate Curve Resolution to Spectral Deconvolution of Gas Chromatography-Mass Spectrometry Metabolomics Data

机译:ADAP-GC 4.0:应用聚类辅助多变量曲线分辨率,以气相色谱 - 质谱代谢组数据的光谱折应

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摘要

We report a multivariate curve resolution (MCR)-based spectral deconvolution workflow for untargeted gas chromatography-mass spectrometry metabolomics. As an essential step in preprocessing such data, spectral deconvolution computationally separates ions that are in the same mass spectrum but belong to coeluting compounds that are not resolved completely by chromatography. As a result of this computational separation, spectral deconvolution produces pure fragmentation mass spectra. Traditionally, spectral deconvolution has been achieved by using a model peak approach. We describe the fundamental differences between the model peak based and the MCR-based spectral deconvolution and report ADAP-GC 4.0 that employs the latter approach while overcoming the associated computational complexity. ADAP-GC 4.0 has been evaluated using GC-TOF data sets from a 27-standards mixture at different dilutions and urine with the mixture spiked in, and GC Orbitrap data sets from mixtures of different standards. It produced the average matching scores 960, 959, and 926 respectively. Moreover, its performance has been compared against MS-DIAL, eRah, and ADAP-GC 3.2, and ADAP-GC 4.0 demonstrated a higher number of matched compounds and up to 6% increase of the average matching score.
机译:我们报告了基于多元曲线分辨率(MCR)的基于光谱卷积工作流程,用于未确定的气相色谱 - 质谱代谢组合。作为预处理这些数据的基本步骤,光谱折叠计算地将离子分离在相同质谱中,但属于不完全通过色谱法分辨的共抑制化合物。由于该计算分离,光谱折叠产生纯碎片质谱。传统上,通过使用模型峰值方法实现了光谱折叠。我们描述了模型峰基的基于峰值和基于MCR的光谱解卷积和报告ADAP-GC 4.0之间的基本差异,其在克服相关的计算复杂度的同时采用后一种方法。已经使用GC-TOF数据组使用来自不同稀释液的27-标准混合物的GC-TOF数据集进行了评估,并使用不同标准的混合物和GC轨道数据组的GC轨道数据集。它分别产生了平均匹配分数960,959和926。此外,它的性能已经与MS表盘,ERAH和ADAP-GC 3.2进行了比较,ADAP-GC 4.0展示了较高的匹配化合物,平均匹配分数增加了6%。

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