| Literature DB >> 29775069 |
Chengjian Wang1, Yu Lu1, Jianli Han1, Wanjun Jin1, Lingmei Li1, Ying Zhang1, Xuezheng Song2, Linjuan Huang1, Zhongfu Wang1.
Abstract
Most glycoproteins and biological protein samples undergo both O- and N-glycosylation, making characterization of their structures very complicated and time-consuming. Nevertheless, to fully understand the biological functions of glycosylation, both the glycosylation forms need to be analyzed. Herein we report a versatile, convenient one-pot method in which O- and N-glycans are simultaneously released from glycoproteins and chromogenically labeled in situ and thus available for further characterization. In this procedure, glycoproteins are incubated with 1-phenyl-3-methyl-5-pyrazolone (PMP) in aqueous ammonium hydroxide, making O-glycans released from protein backbones by β-elimination and N-glycans liberated by alkaline hydrolysis. The released glycans are promptly derivatized with PMP in situ by Knoevenagel condensation and Michael addition, with peeling degradation almost completely prevented. The recovered mixture of O- and N-glycans as bis-PMP derivatives features strong ultraviolet (UV) absorbing ability and hydrophobicity, allowing for high-resolution chromatographic separation and high-sensitivity spectrometric detection. Using this technique, O- and N-glycans were simultaneously prepared from some model glycoproteins and complex biological samples, without significant peeling, desialylation, deacetylation, desulfation or other side-reactions, and then comprehensively analyzed by online HILIC-UV-ESI-MS/MS and RP-HPLC-UV-ESI-MS/MS, with which some novel O- and N-glycan structures were first found. This method provides a simple, versatile strategy for high-throughput glycomics analysis.Entities:
Keywords: Glycoproteins; O- and N-glycans; One-pot release and labeling (OPRAL); Online LC-UV-ESI-MS/MS
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Year: 2018 PMID: 29775069 DOI: 10.1021/acs.jproteome.8b00038
Source DB: PubMed Journal: J Proteome Res ISSN: 1535-3893 Impact factor: 4.466