Laboratoire de Chimie Physique Moléculaire, EPFL SB ISIC LCPM, École Polytechnique Fédérale de Lausanne, Station 6, Lausanne CH-1015, Switzerland.
Anal Chem. 2022 Jul 19;94(28):10101-10108. doi: 10.1021/acs.analchem.2c01181. Epub 2022 Jul 7.
Glycan analysis has evolved considerably during the last decade. The advent of high-resolution ion-mobility spectrometry has enabled the separation of isomers with only the slightest of structural differences. However, the ability to separate such species raises the problem of identifying all the mobility-resolved peaks that are observed, especially when analytical standards are not available. In this work, we report an approach based on the combination of IMS with cryogenic vibrational spectroscopy to identify -glycan reducing-end anomers. By identifying the reducing-end α and β anomers of diacetyl-chitobiose, which is a disaccharide that forms part of the common core of all -glycans, we are able to assign mobility peaks to reducing anomers of a selection of -glycans of different sizes, starting from trisaccharides such as Man-1 up to glycans containing nine monosaccharide units, such as G2. By building an infrared fingerprint database of the identified -glycans, our approach allows unambiguous identification of mobility peaks corresponding to reducing-end anomers and distinguishes them from positional isomers that might be present in a complex mixture.
聚糖分析在过去十年中得到了极大的发展。高分辨率离子淌度谱的出现使得仅存在最微小结构差异的异构体得以分离。然而,这种分离能力提出了一个问题,即如何识别所有观察到的淌度分辨峰,特别是在没有分析标准品的情况下。在这项工作中,我们报告了一种基于 IMS 与低温振动光谱相结合的方法,用于鉴定 -聚糖还原端端异构体。通过鉴定二乙酰基壳二糖的还原端 α 和 β 端异构体,二乙酰基壳二糖是所有 -聚糖核心部分的常见核心二聚糖,我们能够将淌度峰分配给不同大小的 -聚糖的还原端异构体,从三糖如 Man-1 开始,直到含有九个单糖单元的聚糖,如 G2。通过构建鉴定出的 -聚糖的红外指纹数据库,我们的方法允许对对应于还原端端异构体的淌度峰进行明确识别,并将它们与可能存在于复杂混合物中的位置异构体区分开来。