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用于在高通量正离子 LC-FLR-IMS-MS 工作流程中推断多电荷聚糖和糖肽分支的离子淌度谱的实用性。

Utility of Ion-Mobility Spectrometry for Deducing Branching of Multiply Charged Glycans and Glycopeptides in a High-Throughput Positive ion LC-FLR-IMS-MS Workflow.

机构信息

Bioprocessing Technology Institute, Agency for Science Technology and Research, 20 Biopolis Way, Biopolis 138668, Singapore.

School of Chemistry & Manchester Institute of Biotechnology (MIB), The University of Manchester, Princess Street, Manchester M1 7DN, United Kingdom.

出版信息

Anal Chem. 2020 Dec 1;92(23):15323-15335. doi: 10.1021/acs.analchem.0c01954. Epub 2020 Nov 9.

Abstract

High-throughput glycan analysis has become an important part of biopharmaceutical production and quality control. However, it is still a significant challenge in the field of glycomics to easily deduce isomeric glycan structures, especially in a high-throughput manner. Ion mobility spectrometry (IMS) is an excellent tool for differentiating isomeric glycan structures. However, demonstrations of the utility of IMS in high-throughput workflows such as liquid chromatography-fluorescence-mass spectrometry (LC-FLR-MS) workflows have been limited with only a small amount of collision cross section (CCS) data available. In particular, IMS data of glycan fragments obtained in positive ion mode are limited in comparison to those obtained in negative ion mode despite positive ion mode being widely used for glycomics. Here, we describe IMS CCSN data obtained from a high-throughput LC-FLR-IMS-MS workflow in positive ion mode. We obtained IMS data from a selection of RapiFluor-MS (RFMS) labeled -glycans and also glycopeptides. We describe how IMS is able to distinguish isomeric -glycans and glycopeptides using both intact IMS and fragment-based IMS glycan sequencing experiments in positive ion mode, without significantly altering the high-throughput nature of the analysis. For the first time, we were able to successfully use IMS in positive ion mode to determine the branching of isomeric glycopeptides and RFMS labeled glycans. Further, we highlight that IMS glycan sequencing of fragments obtained from RFMS labeled glycans was similar to that of glycopeptides. Finally, we show that the IMS glycan sequencing approach can highlight shared structural features of nonisomeric glycans in a high-throughput LC-FLR-IMS-MS workflow.

摘要

高通量聚糖分析已成为生物制药生产和质量控制的重要组成部分。然而,在糖组学领域中,轻松推断出异构聚糖结构仍然是一个重大挑战,尤其是在高通量的情况下。离子淌度谱(IMS)是区分异构聚糖结构的绝佳工具。然而,IMS 在高通量工作流程(如液相色谱-荧光-质谱(LC-FLR-MS)工作流程)中的应用实例有限,因为可用的碰撞截面(CCS)数据很少。特别是,与负离子模式相比,正离子模式下获得的聚糖片段的 IMS 数据有限,尽管正离子模式在糖组学中被广泛使用。在这里,我们描述了在正离子模式下从高通量 LC-FLR-IMS-MS 工作流程中获得的 IMS CCSN 数据。我们从选择的 RapiFluor-MS(RFMS)标记的 -聚糖和糖肽中获得了 IMS 数据。我们描述了 IMS 如何在正离子模式下使用完整的 IMS 和基于片段的 IMS 聚糖测序实验来区分异构 -聚糖和糖肽,而不会显著改变分析的高通量性质。我们首次成功地使用 IMS 在正离子模式下确定了异构糖肽和 RFMS 标记聚糖的分支。此外,我们强调 IMS 对 RFMS 标记聚糖碎片的聚糖测序与糖肽相似。最后,我们表明 IMS 聚糖测序方法可以在高通量 LC-FLR-IMS-MS 工作流程中突出非异构聚糖的共享结构特征。

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