Genomics Research Center, Academia Sinica, Taipei, Taiwan.
Genomics Research Center, Academia Sinica, Taipei, Taiwan; CHO Pharma Inc., Taipei, Taiwan.
J Chromatogr A. 2020 Nov 22;1632:461610. doi: 10.1016/j.chroma.2020.461610. Epub 2020 Oct 10.
Due to the heterogeneous and isomeric nature of glycans, the development of an advanced separation of distinct glycan isomers is essential for glycan research and application. In this study, we utilized porous graphite carbon (PGC) chromatography for the separation of isomeric oligosaccharides without reduction or chemical derivatization at 190 °C in a custom-built heating oven. Furthermore, the fine structures of glycan isomers could be identified by using ultrahigh temperature PGC liquid chromatography mass spectrometry (UHT-PGC-LCMS). A nonreduced hydrolyzed dextran was applied to verify the performance of UHT-PGC. When the temperature of the PGC column was increased from 25 to 190 °C, the liquid chromatography separation power of the nonreduced dextran ladder significantly increased. The advantage of the UHT-PGC column was its high peak capacity with gradient elution in 10 min at 190 °C, 6700 psi, and a 250 μL/min flow rate for native glycan analysis. Four synthetic Lewis antigen isomers were used to elucidate the separation effectiveness in UHT-PGC. Moreover, mass spectrometry-based sequencing to generate specific diagnostic ions from the four synthetic Lewis antigens was used to predict isomeric glycans based on the relative intensity ratio (RIR) of diagnostic ions. The intensities of the diagnostic ions of synthetic isomers were used to identify each isomer of the fucosylated glycan. The results clearly showed that terminal Lewis A and X residues were in the 3- and 6-arms of N-glycan, respectively.
由于聚糖的异质和异构性质,开发先进的分离不同糖基异构体的方法对于糖基研究和应用至关重要。在本研究中,我们在定制的加热烘箱中于 190°C 下利用多孔石墨碳(PGC)色谱法对未还原或化学衍生的糖基异构体进行分离。此外,通过使用超高温度 PGC 液相色谱-质谱联用技术(UHT-PGC-LCMS)可以鉴定糖基异构体的精细结构。我们应用未经还原水解的葡聚糖来验证 UHT-PGC 的性能。当 PGC 柱的温度从 25°C 升高到 190°C 时,未经还原的葡聚糖梯级的液相色谱分离能力显著提高。UHT-PGC 柱的优势在于其在 190°C、6700psi 和 250μL/min 流速下以梯度洗脱方式在 10 分钟内即可实现高的峰容量,适用于天然糖基的分析。我们使用四个合成的 Lewis 抗原异构体来阐明在 UHT-PGC 中的分离效果。此外,我们基于质谱的测序从四个合成 Lewis 抗原中生成特定的诊断离子,用于根据诊断离子的相对强度比(RIR)预测糖基异构体。合成异构体的诊断离子强度可用于鉴定岩藻糖基化聚糖的每个异构体。结果清楚地表明,末端 Lewis A 和 X 残基分别位于 N-聚糖的 3-和 6-臂上。