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首页> 外文期刊>Mass Spectrometry Reviews >IOH MOBILITY SPECTROMETRY-MASS SPECTROMETRY (IMS-MS) OF SMALL MOLECULES: SEPARATING AND ASSIGNING STRUCTURES TO IONS
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IOH MOBILITY SPECTROMETRY-MASS SPECTROMETRY (IMS-MS) OF SMALL MOLECULES: SEPARATING AND ASSIGNING STRUCTURES TO IONS

机译:小分子的IOH流动色谱-质谱(IMS-MS):分离和分配离子结构

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摘要

The phenomenon of ion mobility (IM), the movement/transport of charged particles under the influence of an electric field, was first observed in the early 20th Century and harnessed later in ion mobility spectrometry (IMS). There have been rapid advances in instrumental design, experimental methods, and theory together with contributions from computational chemistry and gas-phase ion chemistry, which have diversified the range of potential applications of contemporary IMS techniques. Whilst IMS-mass spectrometry (IMS-MS) has recently been recognized for having significant research/applied industrial potential and encompasses multi-Zcross-disciplinary areas of science, the applications and impact from decades of research are only now beginning to be utilized for "small molecule" species. This review focuses on the application of IMS-MS to "small molecule" .species typically used in drug discovery (100-500Da) including an assessment of the limitations and possibilities of the technique. Potential future developments in instrumental design, experimental methods, and applications are addressed. The typical application of IMS-MS in relation to small molecules has been to separate species in fairly uniform molecular classes such as mixture analysis, including metabolites. Separation of similar species has historically been challenging using IMS as the resolving power, R, has been low (3-100) and the differences in collision cross-sections that could be measured have been relatively small, so instrument and method development has often focwsed on increasing resolving power However, IMS-MS has a range of other potential applications that are examined in this review where it displays unique advantages, including: determination of small molecule structure from drift time, "small molecule " separation in achiral and chiral mixtures, improvement in selectivity, identification of carbohydrate isomers, metabonom-ics, and for understanding the size and shape of small molecules. This review provides a broad but selective overview of current literature, concentrating on IMS-MS, not solely IMS, and .small molecule applications.
机译:离子迁移率(IM)现象是带电粒子在电场作用下的运动/传输,最早是在20世纪初发现的,后来在离子迁移谱(IMS)中得到利用。仪器设计,实验方法和理论的快速发展,以及计算化学和气相离子化学的贡献,使现代IMS技术的潜在应用范围变得多样化。尽管IMS质谱(IMS-MS)最近因其重大的研究/应用工业潜力而得到认可,并且涵盖了跨跨学科的科学领域,但数十年来研究的应用和影响直到现在才开始用于“小分子”物种。这篇综述着重于IMS-MS在“小分子”物种中的应用,该物种通常用于药物发现(100-500Da),包括对该技术的局限性和可能性的评估。解决了仪器设计,实验方法和应用方面的潜在未来发展。 IMS-MS与小分子有关的典型应用是以相当均匀的分子类别分离物种,例如混合物分析(包括代谢物)。使用IMS分离相似物种在历史上一直具有挑战性,因为分辨力R(3-100)很低,并且可以测量的碰撞截面的差异相对较小,因此经常关注仪器和方法的开发IMS-MS还具有一系列其他潜在应用,在本文中进行了审查,它具有独特的优势,包括:从漂移时间确定小分子结构,非手性和手性混合物中的“小分子”分离,提高选择性,鉴定碳水化合物异构体,代谢组学以及了解小分子的大小和形状。这篇综述提供了对当前文献的广泛而有选择性的概述,重点是IMS-MS,而不仅仅是IMS和小分子应用。

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