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Application of Stable Isotope-Assisted Metabolomics for Cell Metabolism Studies

机译:稳定同位素辅助代谢组学在细胞代谢研究中的应用

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The applications of stable isotopes in metabolomics have facilitated the study of cell metabolisms. Stable isotope-assisted metabolomics requires: (1) properly designed tracer experiments; (2) stringent sampling and quenching protocols to minimize isotopic alternations; (3) efficient metabolite separations; (4) high resolution mass spectrometry to resolve overlapping peaks and background noises; and (5) data analysis methods and databases to decipher isotopic clusters over a broad m/z range (mass-to-charge ratio). This paper overviews mass spectrometry based techniques for precise determination of metabolites and their isotopologues. It also discusses applications of isotopic approaches to track substrate utilization, identify unknown metabolites and their chemical formulas, measure metabolite concentrations, determine putative metabolic pathways, and investigate microbial community populations and their carbon assimilation patterns. In addition, 13C-metabolite fingerprinting and metabolic models can be integrated to quantify carbon fluxes (enzyme reaction rates). The fluxome, in combination with other “omics” analyses, may give systems-level insights into regulatory mechanisms underlying gene functions. More importantly, 13C-tracer experiments significantly improve the potential of low-resolution gas chromatography-mass spectrometry (GC-MS) for broad-scope metabolism studies. We foresee the isotope-assisted metabolomics to be an indispensable tool in industrial biotechnology, environmental microbiology, and medical research.
机译:稳定同位素在代谢组学中的应用促进了细胞代谢的研究。稳定的同位素辅助代谢组学需要:(1)设计适当的示踪剂实验; (2)严格的采样和淬灭方案,以最大程度地减少同位素变化; (3)有效的代谢物分离; (4)高分辨率质谱法解决重叠的峰和背景噪声; (5)数据分析方法和数据库,用于破译宽m / z范围(质荷比)中的同位素簇。本文概述了基于质谱技术的代谢物及其同位素同位素的精确测定技术。它还讨论了同位素方法在跟踪底物利用率,鉴定未知代谢物及其化学式,测量代谢物浓度,确定推定的代谢途径以及研究微生物群落种群及其碳同化模式方面的应用。此外,可以整合 13 C代谢物指纹图谱和代谢模型来量化碳通量(酶反应速率)。通量分析器与其他“组学”分析相结合,可以为系统功能提供有关基因功能潜在调控机制的见解。更重要的是, 13 C示踪剂实验显着提高了低分辨率气相色谱-质谱(GC-MS)进行广谱代谢研究的潜力。我们预见到,同位素辅助代谢组学将成为工业生物技术,环境微生物学和医学研究中必不可少的工具。

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