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Untargeted Comprehensive Two-Dimensional Liquid Chromatography Coupled with High-Resolution Mass Spectrometry Analysis of Rice Metabolome Using Multivariate Curve Resolution

机译:利用多变量曲线分辨率对水稻代谢组进行无目标二维液相色谱-高分辨率质谱联用

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摘要

In this work, a new strategy for the chemometric analysis of two-dimensional liquid chromatography-high-resolution mass spectrometry (LC × LC-HRMS) data is proposed. This approach consists of a preliminary compression step along the mass spectrometry (MS) spectral dimension based on the selection of the regions of interest (ROI), followed by a further data compression along the chromatographic dimension by wavelet transforms. In a secondary step, the multivariate curve resolution alternating least squares (MCR-ALS) method is applied to previously compressed data sets obtained in the simultaneous analysis of multiple LC × LC-HRMS chromatographic runs from multiple samples. The feasibility of the proposed approach is demonstrated by its application to a large experimental data set obtained in the untargeted LC × LC-HRMS study of the effects of different environmental conditions (watering and harvesting time) on the metabolism of multiple rice samples. An untargeted chromatographic setup coupling two different liquid chromatography (LC) columns [hydrophilic interaction liquid chromatography (HILIC) and reversed-phase liquid chromatography (RPLC)] together with an HRMS detector was developed and applied to analyze the metabolites extracted from rice samples at the different experimental conditions. In the case of the metabolomics study taken as example in this work, a total number of 154 metabolites from 15 different families were properly resolved after the application of MCR-ALS. A total of 139 of these metabolites could be identified by their HRMS spectra. Statistical analysis of their concentration changes showed that both watering and harvest time experimental factors had significant effects on rice metabolism. The biochemical insight of the effects of watering and harvesting experimental factors on the changes in concentration of these detected metabolites in the investigated rice samples is attempted. © 2017 American Chemical Society.
机译:在这项工作中,提出了一种用于二维液相色谱-高分辨率质谱(LC×LC-HRMS)数据化学分析的新策略。该方法包括基于对感兴趣区域(ROI)的选择,沿着质谱(MS)光谱维度的初步压缩步骤,然后通过小波变换沿着色谱维度进行进一步的数据压缩。在第二步骤中,将多元曲线分辨率交替最小二乘(MCR-ALS)方法应用于先前压缩的数据集,该数据集是在同时分析来自多个样品的多个LC×LC-HRMS色谱图中获得的。该方法的可行性通过将其应用到在无针对性的LC×LC-HRMS研究中获得的大量实验数据集中得到证明,该研究数据对不同环境条件(浇水和收获时间)对多种大米样品代谢的影响进行了研究。开发了结合两个不同液相色谱(LC)柱[亲水相互作用液相色谱(HILIC)和反相液相色谱(RPLC)]以及HRMS检测器的非目标色谱设置,并将其用于分析从大米样品中提取的代谢物不同的实验条件。以代谢组学研究为例,应用MCR-ALS后,来自15个不同家族的154种代谢物得到了正确分离。这些代谢物的HRMS谱图总共可以鉴定139种。对其浓度变化的统计分析表明,浇水和收获时间实验因素均对稻米的代谢产生显着影响。尝试对浇水和收获实验因素对所研究稻米样品中这些检测到的代谢物浓度变化的影响进行生化研究。 ©2017美国化学学会。

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