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Capillary zone electrophoresis coupled to drift tube ion mobility-mass spectrometry for the analysis of native and APTS-labeled N-glycans

机译:毛细管区电泳耦合到漂移管离子迁移率质谱法,用于分析天然和APTS标记的N-聚糖

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Capillary zone electrophoresis (CZE) based on electrophoretic mobility in the liquid phase and ion mobility spectrometry (IMS) based on mobilities in the gas phase are both powerful techniques for the separation of complex samples. Protein glycosylation is one of the most common post-translational modifications associated with a wide range of biological functions and human diseases. Due to their high structural variability, the analysis of glycans still represents a challenging task. In this work, the first on-line coupling of CZE with drift tube ion mobility-mass spectrometry (DTIM-MS) has been perfomed to further improve separation capabilities for the analysis of native and 8-aminopyrene-1,3,6-trisulfonic acid (APTS)-labeled N-glycans. In this way, a complexity of glycan signals was revealed which could not be resolved by these techniques individually, shown for both native and APTS-labeled glycans. Each individual glycan signal separated in CZE exhibited an unexpectedly high number of peaks observed in the IMS dimension. This observation could potentially be explained by the presence of isomeric forms, including different linkages, and/or gas-phase conformers. In addition, the type of sialic acid attached to glycans has a significant impact on the obtained drift time profile. Furthermore, the application of alpha 2-3 neuraminidase enabled the partial assignment of peaks in the arrival time distribution considering their sialic acid linkages (alpha 2-3/alpha 2-6). This work is a showcase for the high potential of CZE-DTIM-MS, which is expected to find various applications in the future.
机译:基于气相中的迁移率的液相和离子迁移率(IMS)中的电泳迁移率基于电泳迁移率的毛细管区电泳(CZE)是用于分离复杂样品的强大技术。蛋白质糖基化是与各种生物功能和人类疾病相关的最常见的翻译后修饰之一。由于它们的结构性高,聚糖的分析仍然是一个具有挑战性的任务。在这项工作中,具有漂移管离子迁移率 - 质谱(DTIM-MS)的CZE的第一在线耦合已被疏水,以进一步改善天然和8-氨基芘-1,3,6-三轴孔的分析的分离能力酸(apts) - 标记的n-聚糖。以这种方式,揭示了甘草信号的复杂性,其不能单独通过这些技术解决,如本地和抗APTS标记的聚糖所示。在CZE中分离的每个单独的聚糖信号表现出在IMS尺寸中观察到的意外大量的峰。该观察可能通过异构形式的存在,包括不同的连杆和/或气相簇来解释。此外,附着在聚糖上的唾液酸的类型对所得漂移时间谱具有显着影响。此外,考虑到它们的唾液酸键(α2-3/α2-6),α2-3神经氨酸酶的应用使得到达时间分布中的峰值分配(α2-3/α2-6)。这项工作是CEE-DTIM-MS的高潜力的展示,预计将来会在未来寻找各种应用。

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