Stavenhagen Kathrin, Hinneburg Hannes, Kolarich Daniel, Wuhrer Manfred
Division of BioAnalytical Chemistry, VU University Amsterdam, De Boelelaan 1083, Amsterdam, 1081, HV, The Netherlands.
Center for Proteomics and Metabolomics, Leiden University Medical Center, Albinusdreef 2, Leiden, 2333, ZA, The Netherlands.
Methods Mol Biol. 2017;1503:109-119. doi: 10.1007/978-1-4939-6493-2_9.
The vast heterogeneity of protein glycosylation, even of a single glycoprotein with only one glycosylation site, can give rise to a set of macromolecules with different physicochemical properties. Thus, the use of orthogonal approaches for comprehensive characterization of glycoproteins is a key requirement. This chapter describes a universal workflow for site-specific N- and O-glycopeptide analysis. In a first step glycoproteins are treated with Pronase to generate glycopeptides containing small peptide sequences for enhanced glycosylation site assignment and characterization. These glycopeptides are then separated and detected using an integrated C18-porous graphitized carbon-liquid chromatography (PGC-LC) setup online coupled to a high-resolution electrospray ionization (ESI)-quadrupole time-of-flight (QTOF)-mass spectrometer operated in a combined higher- and lower-energy CID (stepping-energy CID) mode. The LC-setup allows retention of more hydrophobic glycopeptides on C18 followed by subsequent capturing of C18-unbound (glyco)peptides by a downstream placed PGC stationary phase. Glycopeptides eluted from both columns are then analyzed within a single analysis in a combined data acquisition mode. Stepping-energy CID results in B- and Y-ion fragments originating from the glycan moiety as well as b- and y-ions derived from the peptide part. This allows simultaneous site-specific identification of the glycan and peptide sequence of a glycoprotein.
蛋白质糖基化具有极大的异质性,即使是仅具有一个糖基化位点的单一糖蛋白,也能产生一组具有不同物理化学性质的大分子。因此,采用正交方法对糖蛋白进行全面表征是一项关键要求。本章介绍了一种用于位点特异性N - 糖肽和O - 糖肽分析的通用工作流程。第一步,用链霉蛋白酶处理糖蛋白,以生成含有小肽序列的糖肽,用于增强糖基化位点的鉴定和表征。然后,使用与在组合的高能和低能CID(步进能量CID)模式下运行的高分辨率电喷雾电离(ESI)-四极杆飞行时间(QTOF)质谱仪在线联用的集成C18 - 多孔石墨化碳液相色谱(PGC - LC)装置对这些糖肽进行分离和检测。该LC装置可使更多疏水性糖肽保留在C18上,随后由下游放置的PGC固定相捕获未结合C18的(糖)肽。然后,在单一分析中以组合数据采集模式对从两根柱上洗脱的糖肽进行分析。步进能量CID产生源自聚糖部分的B和Y离子片段以及源自肽部分的b和y离子。这使得能够同时对糖蛋白的聚糖和肽序列进行位点特异性鉴定。