Right in two: capabilities of ion mobility spectrometry for untargeted metabolomics

Разрезая пополам: возможности спектрометрии подвижности ионов для нетаргетного метаболомного анализа
Karl Burgess, Tessa Moses
2023-08-04

collision cross sectionion mobility spectrometryliquid chromatographymultidimensional separationsuntargeted metabolomics
This mini review focuses on the opportunities provided by current and emerging separation techniques for mass spectrometry metabolomics. The purpose of separation technologies in metabolomics is primarily to reduce complexity of the heterogeneous systems studied, and to provide concentration enrichment by increasing sensitivity towards the quantification of low abundance metabolites. For this reason, a wide variety of separation systems, from column chemistries to solvent compositions and multidimensional separations, have been applied in the field. Multidimensional separations are a common method in both proteomics applications and gas chromatography mass spectrometry, allowing orthogonal separations to further reduce analytical complexity and expand peak capacity. These applications contribute to exponential increases in run times concomitant with first dimension fractionation followed by second dimension separations. Multidimensional liquid chromatography to increase peak capacity in metabolomics, when compared to the potential of running additional samples or replicates and increasing statistical confidence, mean that uptake of these methods has been minimal. In contrast, in the last 15 years there have been significant advances in the resolution and sensitivity of ion mobility spectrometry, to the point where high-resolution separation of analytes based on their collision cross section approaches chromatographic separation, with minimal loss in sensitivity. Additionally, ion mobility separations can be performed on a chromatographic timescale with little reduction in instrument duty cycle. In this review, we compare ion mobility separation to liquid chromatographic separation, highlight the history of the use of ion mobility separations in metabolomics, outline the current state-of-the-art in the field, and discuss the future outlook of the technology. "Where there is one, you're bound to divide it. Right in two", James Maynard Keenan.
1
Ion mobility separations can be performed on chromatographic timescales with little reduction in instrument duty cycle, offering high-resolution separation without major sensitivity loss.
2
Multidimensional liquid chromatography has seen minimal adoption in metabolomics because additional samples/replicates can alternatively increase statistical confidence more efficiently.
3
Multidimensional separations increase peak capacity but substantially lengthen run times and involve first-dimension fractionation followed by second-dimension separations.
4
Over the past 15 years, ion mobility spectrometry (IMS) resolution and sensitivity have improved sufficiently that high-resolution IMS can separate analytes by collision cross section approaching chromatographic separation.
5
Separation technologies in metabolomics primarily reduce sample complexity and increase sensitivity for low-abundance metabolite quantification.
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The review compares IMS to liquid chromatography, surveys IMS history and current state in metabolomics, and discusses future outlook and opportunities of the technology.

Ion mobility spectrometry (IMS) separation techniques applied in untargeted metabolomics

Capabilities and performance of IMS for reducing analytical complexity, increasing sensitivity and resolution (collision cross section–based separations), comparison to liquid chromatography, and prospects for application in untargeted metabolomics

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2023-08-04
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Karl Burgess
Tessa Moses
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