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In-Depth Characterization of N-Linked Oligosaccharides Using Fluoride-Mediated Negative Ion Microfluidic Chip LC-MS

机译:使用氟化物介导的负离子微流控芯片LC-MS对N-连接寡糖进行深度表征

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Characterization of N-glycans by liquid chromatography-positive electrospray ionization (ESI) tandem mass spectrometry (LC-MS/MS) using a microfluidic chip packed with porous graphitized carbon (PGC) represents a rapidly developing area in oligosaccharide analysis. Positive ion ESI-MS generates B/Y-type glycosidic fragment ions under collisional-induced dissociation (CID). Although these ions facilitate glycan sequencing, they provide little information on linkage and positional isomers. Isomer identification in these cases is by retention on the PGC stationary phase where the specific structural isomers can, in principle, be separated. In this paper, we broaden the applicability of the PGC microfluidic chip/MS platform by implementing fluoride-mediated negative ESI-MS. Ammonium fluoride, added to the mobile phase, aids in the formation of pseudomolecular oligosaccharide anions due to the ability of fluoride to abstract a proton from the glycan structure. The negative charge results in the generation of C-type glycosidic fragments, highly informative A-type cross-ring fragment ions, and additional gas-phase ion reaction products (e.g., D- and E-type ions), which, when combined, lead to in-depth oligosaccharide characterization, including linkage and positional isomers. Due to the separation of anomers by the PGC phase, comparison of oligosaccharides with an intact reducing terminus to their experimentally prepared corresponding alditols was performed, revealing a more sensitive MS and, especially, MS/MS analysis from the glycans with a free reducing end. Fluoride also ensured recovery of charged oligosaccharides from the PGC stationary phase. Application to the characterization of N-glycans released from polyclonal human and murine serum IgG is presented to demonstrate the effectiveness of the chipegative ESI approach.
机译:使用装有多孔石墨化碳(PGC)的微流控芯片,通过液相色谱-正电喷雾电离(ESI)串联质谱(LC-MS / MS)对N-聚糖进行表征,代表了寡糖分析领域的快速发展。正离子ESI-MS在碰撞诱导解离(CID)下产生B / Y型糖苷碎片离子。尽管这些离子有助于聚糖测序,但它们几乎不提供有关键和位置异构体的信息。在这些情况下,通过保留在PGC固定相上可以鉴定异构体,原则上可以分离特定的结构异构体。在本文中,我们通过实施氟化物介导的负ESI-MS来扩展PGC微流控芯片/ MS平台的适用性。由于氟化物具有从聚糖结构中提取质子的能力,因此添加到流动相中的氟化铵有助于形成假分子寡糖阴离子。负电荷导致生成C型糖苷片段,高信息量的A型交叉环片段离子以及其他气相离子反应产物(例如D型和E型离子),将它们结合使用时,导致深入的寡糖表征,包括连接和位置异构体。由于通过PGC相分离了端基异构体,因此将具有完整还原末端的寡糖与其实验制备的相应糖醇进行了比较,揭示了更灵敏的MS,尤其是具有自由还原端的聚糖的MS / MS分析。氟化物还确保了从PGC固定相回收带电的寡糖。介绍了从多克隆人和鼠血清IgG释放的N-聚糖表征的应用,以证明芯片/阴性ESI方法的有效性。

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