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Statistically correlating NMR spectra and LC-MS data to facilitate the identification of individual metabolites in metabolomics mixtures

机译:统计相关的NMR光谱和LC-MS数据,促进代谢组合混合物中个体代谢物的鉴定

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摘要

NMR and LC-MS are two powerful techniques for metabolomics studies. In NMR spectra and LC-MS data collected on a series of metabolite mixtures, signals of the same individual metabolite are quantitatively correlated, based on the fact that NMR and LC-MS signals are derived from the same metabolite covary. Deconvoluting NMR spectra and LC-MS data of the mixtures through this kind of statistical correlation, NMR and LC-MS spectra of individual metabolites can be obtained as if the specific metabolite is virtually isolated from the mixture. Integrating NMR and LC-MS spectra, more abundant and orthogonal information on the same compound can significantly facilitate the identification of individual metabolites in the mixture. This strategy was demonstrated by deconvoluting 1D C-13, DEPT, HSQC, TOCSY, and LC-MS spectra acquired on 10 mixtures consisting of 6 typical metabolites with varying concentration. Based on statistical correlation analysis, NMR and LC-MS signals of individual metabolites in the mixtures can be extracted as if their spectra are acquired on the purified metabolite, which notably facilitates structure identification. Statistically correlating NMR spectra and LC-MS data (CoNaM) may represent a novel approach to identification of individual compounds in a mixture. The success of this strategy on the synthetic metabolite mixtures encourages application of the proposed strategy of CoNaM to biological samples (such as serum and cell extracts) in metabolomics studies to facilitate identification of potential biomarkers.
机译:NMR和LC-MS是代谢组学研究的两种强大的技术。在收集在一系列代谢物混合物上的NMR光谱和LC-MS数据中,基于NMR和LC-MS信号衍生自相同的代谢物Covary,相同个体代谢物的信号量相定量相关。通过这种统计相关性的混合物的Deconvoluting NMR光谱和LC-MS数据可以获得各种代谢物的NMR和LC-MS光谱,好像特异性代谢物实际上与混合物分离。整合NMR和LC-MS光谱,在相同化合物上的更丰富和正交的信息可以显着促进混合物中单个代谢物的鉴定。通过在10个混合物中解作1D C-13,Dept,HSQC,Tocsy和LC-MS光谱来证明该策略。基于统计相关分析,可以提取混合物中单个代谢物的NMR和LC-MS信号,好像在纯化的代谢物上获取它们的光谱,这显着促进了结构鉴定。统计相关性NMR谱和LC-MS数据(CONAM)可以代表一种新的方法来鉴定混合物中的个体化合物。该策略对合成代谢产物混合物的成功促进了代谢组研究中提出的康诺人策略(如血清和细胞提取物),以便于鉴定潜在的生物标志物。

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  • 作者单位

    Chinese Acad Sci Kunming Inst Bot State Key Lab Phytochem &

    Plant Resources West Ch 132 Lanhei Rd Kunming 650201 Yunnan Peoples R China;

    Chinese Acad Sci Kunming Inst Bot State Key Lab Phytochem &

    Plant Resources West Ch 132 Lanhei Rd Kunming 650201 Yunnan Peoples R China;

    Chinese Acad Sci Kunming Inst Bot State Key Lab Phytochem &

    Plant Resources West Ch 132 Lanhei Rd Kunming 650201 Yunnan Peoples R China;

    Chinese Acad Sci Kunming Inst Bot State Key Lab Phytochem &

    Plant Resources West Ch 132 Lanhei Rd Kunming 650201 Yunnan Peoples R China;

    Chinese Acad Sci Kunming Inst Bot State Key Lab Phytochem &

    Plant Resources West Ch 132 Lanhei Rd Kunming 650201 Yunnan Peoples R China;

    Chinese Acad Sci Kunming Inst Bot State Key Lab Phytochem &

    Plant Resources West Ch 132 Lanhei Rd Kunming 650201 Yunnan Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 分析化学;
  • 关键词

    Deconvolution; LC-MS; NMR; Statistical correlation; Structure identification;

    机译:解卷积;LC-MS;NMR;统计相关;结构识别;

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