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Separation and Identification of Glycan Anomers Using Ultrahigh-Resolution Ion-Mobility Spectrometry and Cryogenic Ion Spectroscopy.使用超高分辨离子淌度质谱和低温离子光谱法分离和鉴定糖端基异构体。
J Am Soc Mass Spectrom. 2019 Nov;30(11):2204-2211. doi: 10.1007/s13361-019-02333-0. Epub 2019 Sep 13.
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Advancing Solutions to the Carbohydrate Sequencing Challenge.推进碳水化合物测序挑战解决方案。
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Spectroscopic diagnostic for the ring-size of carbohydrates in the gas phase: furanose and pyranose forms of GalNAc.气相中碳水化合物环大小的光谱诊断:N-乙酰半乳糖胺的呋喃糖和吡喃糖形式
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Cyclic Ion Mobility Mass Spectrometry Distinguishes Anomers and Open-Ring Forms of Pentasaccharides.循环离子淌度质谱法区分五糖的异头物和开环形式。
J Am Soc Mass Spectrom. 2019 Jun;30(6):1028-1037. doi: 10.1007/s13361-019-02168-9. Epub 2019 Apr 11.
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Combining Ultrahigh-Resolution Ion-Mobility Spectrometry with Cryogenic Infrared Spectroscopy for the Analysis of Glycan Mixtures.结合超高分辨离子淌度质谱和低温红外光谱分析聚糖混合物。
Anal Chem. 2019 Apr 2;91(7):4876-4882. doi: 10.1021/acs.analchem.9b00659. Epub 2019 Mar 14.
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Anomeric memory of the glycosidic bond upon fragmentation and its consequences for carbohydrate sequencing.糖苷键断裂时的异头记忆及其对碳水化合物测序的影响。
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Ion Mobility Separations of Isomers based upon Long Path Length Structures for Lossless Ion Manipulations Combined with Mass Spectrometry.基于长路径长度结构的异构体离子迁移分离用于无损离子操纵与质谱联用
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Cryogenic Vibrational Spectroscopy Provides Unique Fingerprints for Glycan Identification.低温振动光谱为糖链鉴定提供独特指纹。
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Glycan Fingerprinting via Cold-Ion Infrared Spectroscopy.糖指纹图谱分析的冷离子红外光谱技术
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用质谱法和气相红外光谱法鉴别半乳糖异构体。

Distinguishing Galactoside Isomers with Mass Spectrometry and Gas-Phase Infrared Spectroscopy.

机构信息

Department of Chemistry, Massachusetts Institute of Technology, 77 Massachusetts Avenue Cambridge, Massachusetts 02139, United States.

Univ. Lyon, Université Claude Bernard Lyon 1, CNRS, Institut Lumière Matière, F-69622 Villeurbanne, France.

出版信息

J Am Chem Soc. 2021 Jul 21;143(28):10509-10513. doi: 10.1021/jacs.0c11919. Epub 2021 Jul 8.

DOI:10.1021/jacs.0c11919
PMID:34236183
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC9867933/
Abstract

Sequencing glycans is demanding due to their structural diversity. Compared to mammalian glycans, bacterial glycans pose a steeper challenge because they are constructed from a larger pool of monosaccharide building blocks, including pyranose and furanose isomers. Though mammalian glycans incorporate only the pyranose form of galactose (Gal), many pathogens, including and , contain galactofuranose (Gal) residues in their cell envelope. Thus, glycan sequencing would benefit from methods to distinguish between pyranose and furanose isomers of different anomeric configurations. We used infrared multiple photon dissociation (IRMPD) spectroscopy with mass spectrometry (MS-IR) to differentiate between pyranose- and furanose-linked galactose residues. These targets pose a challenge for MS-IR because the saccharides lack basic groups, and galactofuranose residues are highly flexible. We postulated cationic groups that could complex through hydrogen bonding would offer a solution. Here, we present the first MS-IR analysis of hexose ammonium adducts. We compared their IR fingerprints with those of lithium adducts. We determined the diagnostic MS-IR signatures of the α- and β-anomers of galactose in furanose and pyranose forms. We also showed these signatures could be applied to disaccharides to assign galactose ring size. Our findings highlight the utility of MS-IR for analyzing the unique substructures that occur in bacterial glycans.

摘要

糖链测序具有挑战性,这是由于其结构多样性所致。与哺乳动物糖链相比,细菌糖链构成了更大的单糖构建块库,包括吡喃糖和呋喃糖异构体,因此带来了更大的挑战。尽管哺乳动物糖链仅包含半乳糖(Gal)的吡喃糖形式,但许多病原体,包括 和 ,在其细胞包膜中都含有半乳糖呋喃糖(GalF)残基。因此,糖链测序将受益于能够区分不同端基构型的吡喃糖和呋喃糖异构体的方法。我们使用红外多光子解离(IRMPD)光谱与质谱(MS-IR)相结合,以区分吡喃糖和呋喃糖连接的半乳糖残基。由于这些糖缺乏碱性基团,并且半乳糖呋喃糖残基具有高度的灵活性,因此它们对 MS-IR 构成了挑战。我们推测可以通过氢键络合的阳离子基团将提供解决方案。在这里,我们首次对六糖铵加合物进行了 MS-IR 分析。我们将它们的红外指纹与锂加合物进行了比较。我们确定了呋喃糖和吡喃糖形式中半乳糖的 α-和 β-异构体的诊断性 MS-IR 特征。我们还表明,这些特征可应用于二糖,以确定半乳糖环的大小。我们的研究结果突出了 MS-IR 用于分析细菌糖链中独特亚结构的实用性。