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手性分析中使用毛细管电泳技术的过去、现在和未来发展。

Past, present, and future developments in enantioselective analysis using capillary electromigration techniques.

机构信息

Leiden Academic Centre for Drug Research, Division of Systems Biomedicine and Pharmacology, Leiden University, Leiden, The Netherlands.

Division of BioAnalytical Chemistry, Department of Chemistry and Pharmaceutical Sciences, Amsterdam Institute for Molecular and Life Sciences, Vrije Universiteit Amsterdam, Amsterdam, The Netherlands.

出版信息

Electrophoresis. 2021 Jan;42(1-2):38-57. doi: 10.1002/elps.202000151. Epub 2020 Sep 28.

Abstract

Enantioseparation of chiral products has become increasingly important in a large diversity of academic and industrial applications. The separation of chiral compounds is inherently challenging and thus requires a suitable analytical technique that can achieve high resolution and sensitivity. In this context, CE has shown remarkable results so far. Chiral CE offers an orthogonal enantioselectivity and is typically considered less costly than chromatographic techniques, since only minute amounts of chiral selectors are needed. Several CE approaches have been developed for chiral analysis, including chiral EKC and chiral CEC. Enantioseparations by EKC benefit from the wide variety of possible pseudostationary phases that can be employed. Chiral CEC, on the other hand, combines chromatographic separation principles with the bulk fluid movement of CE, benefitting from reduced band broadening as compared to pressure-driven systems. Although UV detection is conventionally used for these approaches, MS can also be considered. CE-MS represents a promising alternative due to the increased sensitivity and selectivity, enabling the chiral analysis of complex samples. The potential contamination of the MS ion source in EKC-MS can be overcome using partial-filling and counter-migration techniques. However, chiral analysis using monolithic and open-tubular CEC-MS awaits additional method validation and a dedicated commercial interface. Further efforts in chiral CE are expected toward the improvement of existing techniques, the development of novel pseudostationary phases, and establishing the use of chiral ionic liquids, molecular imprinted polymers, and metal-organic frameworks. These developments will certainly foster the adoption of CE(-MS) as a well-established technique in routine chiral analysis.

摘要

对映异构体的分离在学术和工业的各个领域都变得越来越重要。手性化合物的分离具有固有的挑战性,因此需要一种合适的分析技术,以实现高分辨率和灵敏度。在这种情况下,CE 迄今为止已经取得了显著的成果。手性 CE 提供了一种正交的对映选择性,通常被认为比色谱技术成本更低,因为只需要微量的手性选择器。已经开发了几种用于手性分析的 CE 方法,包括手性 EKC 和手性 CEC。EKC 的对映体分离受益于可以使用的各种可能的拟固定相。另一方面,手性 CEC 将色谱分离原理与 CE 的整体流体运动相结合,与压力驱动系统相比,它受益于较小的带宽展宽。虽然这些方法通常使用 UV 检测,但也可以考虑 MS。CE-MS 由于灵敏度和选择性的提高,是一种很有前途的替代方法,能够对手性复杂样品进行分析。可以使用部分填充和逆流迁移技术来克服 EKC-MS 中 MS 离子源的潜在污染。然而,使用整体柱和开管 CEC-MS 进行手性分析还需要进一步的方法验证和专用的商业接口。在手性 CE 方面,预计将进一步改进现有技术,开发新型拟固定相,并建立手性离子液体、分子印迹聚合物和金属有机骨架的使用。这些发展必将促进 CE(-MS)作为一种常规手性分析的成熟技术得到广泛应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9ddc/7821218/ae275e12fd61/ELPS-42-38-g005.jpg

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