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The Analysis of Alpha-1-Antitrypsin Glycosylation with Direct LC-MS/MS

机译:直接LC-MS / MS分析Alpha-1-抗胰蛋白酶糖基化

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摘要

A liquid chromatography-tandem mass spectrometry (LC-MS/MS)-based methodology has been developed to differentiate core- and antennary-fucosylated glycosylation of glycopeptides. Both the glycosylation sites (heterogeneity) and multiple possible glycan occupancy at each site (microheterogeneity) can be resolved via intact glycopeptide analysis. The serum glycoprotein alpha-1-antitrypsin (A1AT) which contains both core- and antennary-fucosylated glycosites was used in this study. Sialidase was used to remove the sialic acids in order to simplify the glycosylation microheterogeneity and to enhance the MS signal of glycopeptides with similar glycan structures. β1-3,4 galactosidase was used to differentiate core- and antennary-fucosylation. In-source dissociation was found to severely affect the identification and quantification of glycopeptides with low abundance glycan modification. The settings of the mass spectrometer were therefore optimized to minimize the in-source dissociation. A three-step mass spectrometry fragmentation strategy was used for glycopeptide identification, facilitated by pGlyco software annotation and manual checking. The collision energy used for initial glycopeptide fragmentation was found to be crucial for improved detection of oxonium ions and better selection of Y1 ion (peptide+GlcNAc). Structural assignments revealed that all 3 glycosylation sites of A1AT glycopeptides contain complex N-glycan structures: site Asn70 contains biantennary glycans without fucosylation; site Asn107 contains bi-, tri- and tetra-antennary glycans with both core- and antennary-fucosylation; site Asn271 contains bi- and tri-antennary glycans with both core- and antennary-fucosylation. The relative intensity of core- and antennary-fucosylation on Asn107 was similar to that of the A1AT protein indicating that the glycosylation level of Asn107 is much larger than the other 2 sites.
机译:已经开发了一种基于液相色谱-串联质谱(LC-MS / MS)的方法,以区分糖肽的核心和触角岩藻糖基化糖基化。糖基化位点(异质性)和每个位点上多个可能的聚糖占用(微异质性)都可以通过完整的糖肽分析来解决。这项研究使用了血清糖蛋白α-1-抗胰蛋白酶(A1AT),它既包含岩心岩藻糖基化的糖基,又包含触角岩藻糖基化的糖基。为了简化糖基化微异质性并增强具有相似聚糖结构的糖肽的MS信号,使用了唾液酸酶去除唾液酸。 β1-3,4半乳糖苷酶用于区分核心岩藻糖基化和触角岩藻糖基化。发现源内解离严重影响具有低丰度聚糖修饰的糖肽的鉴定和定量。因此,对质谱仪的设置进行了优化,以最大程度地减少源内离解。使用三步质谱碎裂策略进行糖肽鉴定,并通过pGlyco软件注释和手动检查来实现。发现用于初始糖肽片段化的碰撞能量对于改善氧离子的检测和更好地选择Y1离子(肽+ GlcNAc)至关重要。结构分配表明,A1AT糖肽的所有3个糖基化位点均具有复杂的N-聚糖结构:位点Asn70包含无触藻糖基化的双触角聚糖;位点Asn107含有双,三和四触角聚糖,其具有核心和触角岩藻糖基化。位点Asn271包含具有核心和触角岩藻糖基化的双和三触角聚糖。 Asn107的核心岩藻糖基化和触角岩藻糖基化的相对强度与A1AT蛋白的相对强度相似,表明Asn107的糖基化水平比其他2个位点大得多。

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