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利用 MALDI 离子源的离子淌度-质谱法对大肠杆菌进行代谢轮廓分析。

Metabolic profiling of Escherichia coli by ion mobility-mass spectrometry with MALDI ion source.

机构信息

Washington State University, Pullman, WA 99164, USA.

出版信息

J Mass Spectrom. 2010 Dec;45(12):1383-93. doi: 10.1002/jms.1850.

Abstract

Comprehensive metabolome analysis using mass spectrometry (MS) often results in a complex mass spectrum and difficult data analysis resulting from the signals of numerous small molecules in the metabolome. In addition, MS alone has difficulty measuring isobars and chiral, conformational and structural isomers. When a matrix-assisted laser desorption ionization (MALDI) source is added, the difficulty and complexity are further increased. Signal interference between analyte signals and matrix ion signals produced by MALDI in the low mass region (<1500 Da) cause detection and/or identification of metabolites difficult by MS alone. However, ion mobility spectrometry (IMS) coupled with MS (IM-MS) provides a rapid analytical tool for measuring subtle structural differences in chemicals. IMS separates gas-phase ions based on their size-to-charge ratio. This study, for the first time, reports the application of MALDI to the measurement of small molecules in a biological matrix by ion mobility-time of flight mass spectrometry (IM-TOFMS) and demonstrates the advantage of ion-signal dispersion in the second dimension. Qualitative comparisons between metabolic profiling of the Escherichia coli metabolome by MALDI-TOFMS, MALDI-IM-TOFMS and electrospray ionization (ESI)-IM-TOFMS are reported. Results demonstrate that mobility separation prior to mass analysis increases peak-capacity through added dimensionality in measurement. Mobility separation also allows detection of metabolites in the matrix-ion dominated low-mass range (m/z < 1500 Da) by separating matrix signals from non-matrix signals in mobility space.

摘要

采用质谱(MS)进行全面代谢组学分析时,由于代谢组中小分子的信号众多,往往会产生复杂的质谱和难以分析的数据。此外,MS 本身难以测量等质量体、手性、构象和结构异构体。当添加基质辅助激光解吸电离(MALDI)源时,难度和复杂性会进一步增加。MALDI 在低质量区域(<1500 Da)产生的分析物信号和基质离子信号之间的信号干扰,使得 MS 单独检测和/或识别代谢物变得困难。然而,离子淌度谱(IMS)与 MS(IM-MS)联用提供了一种快速分析工具,可用于测量化学物质细微的结构差异。本研究首次报道了 MALDI 通过离子淌度-飞行时间质谱(IM-TOFMS)用于测量生物基质中小分子的应用,并展示了二维离子信号色散的优势。本文报告了 MALDI-TOFMS、MALDI-IM-TOFMS 和电喷雾电离(ESI)-IM-TOFMS 对大肠杆菌代谢组代谢谱的定性比较。结果表明,在质量分析之前进行淌度分离通过增加测量的维度来增加峰容量。淌度分离还可以通过在淌度空间中从非基质信号中分离基质信号,从而在基质离子主导的低质量范围(m/z <1500 Da)中检测代谢物。

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Sum of the parts: mass spectrometry-based metabolomics.分而治之:基于质谱的代谢组学。
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