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用于通过电子转移解离质谱法对IgG N-糖基化进行精细定位的化学标记

Chemical labeling for fine mapping of IgG N-glycosylation by ETD-MS.

作者信息

Yang Lijun, Sun Zhenyu, Zhang Lei, Cai Yan, Peng Ye, Cao Ting, Zhang Ying, Lu Haojie

机构信息

Shanghai Cancer Center , Department of Chemistry , Fudan University , Shanghai 200032 , China . Email:

Institutes of Biomedical Sciences , NHC Key Laboratory of Glycoconjugates Research , Fudan University , Shanghai 200032 , China.

出版信息

Chem Sci. 2019 Aug 23;10(40):9302-9307. doi: 10.1039/c9sc02491c. eCollection 2019 Oct 28.

Abstract

Immunoglobulin G (IgG), which contains four subclasses (IgG1-4), is one of the most important classes of glycoproteins in the immune system. Because of its importance in the immune system, a steady increase of interest in developing IgG as the biomarker or biotherapeutic agent for the treatment of diseases has been seen, as most therapeutic mAbs were IgG-based. N-Glycosylation of IgG is crucial for its effector function and makes IgG highly heterogeneous both in structure and function, although all four subclasses of IgG contain only a single N-glycosylation site in the Fc region with a highly similar amino acid sequence. Therefore, fine mapping of IgG glycosylation is necessary for understanding the IgG function and avoiding aberrant glycosylation in mAbs. However, site-specific and comprehensive N-glycosylation analysis of IgG subclasses still cannot be achieved by MS alone due to the partial sequence coverage and loss of connections among glycosylation of the protein sequence. We report here a chemical labeling strategy to improve the electron transfer dissociation efficiency in mass spectrometry analysis, which enables a 100% peptide sequence coverage of N-glycopeptides in all subclasses of IgG. Combined with high-energy collisional dissociation for the fragmentation of glycans, fine mapping of the N-glycosylation profile of IgG is achieved. This comprehensive glycosylation analysis strategy for the first time allows the discrimination of IgG3 and IgG4 intact N-glycopeptides with high similarity in sequence without the antibody-based pre-separation. Using this strategy, aberrant serum IgG N-glycosylation for four IgG subclasses associated with cirrhosis and hepatocellular carcinoma was revealed. Moreover, this method identifies 5 times more intact glycopeptides from human serum than the native-ETD method, implying that the approach can also accommodate large-scale site-specific profiling of glycoproteomes.

摘要

免疫球蛋白G(IgG)包含四个亚类(IgG1 - 4),是免疫系统中最重要的糖蛋白类别之一。由于其在免疫系统中的重要性,随着大多数治疗性单克隆抗体都基于IgG,人们对将IgG开发为疾病治疗的生物标志物或生物治疗剂的兴趣持续稳步增长。IgG的N - 糖基化对其效应功能至关重要,并且使IgG在结构和功能上具有高度异质性,尽管IgG的所有四个亚类在Fc区域仅含有一个具有高度相似氨基酸序列的N - 糖基化位点。因此,对IgG糖基化进行精细图谱分析对于理解IgG功能和避免单克隆抗体中异常糖基化是必要的。然而,由于蛋白质序列糖基化之间的部分序列覆盖和连接丢失,仅通过质谱仍无法实现IgG亚类的位点特异性和全面的N - 糖基化分析。我们在此报告一种化学标记策略,以提高质谱分析中的电子转移解离效率,从而能够对IgG所有亚类中的N - 糖肽实现100%的肽序列覆盖。结合用于聚糖片段化的高能碰撞解离,实现了IgG N - 糖基化图谱的精细绘制。这种全面的糖基化分析策略首次允许在不进行基于抗体的预分离的情况下,区分序列高度相似的IgG3和IgG4完整N - 糖肽。使用该策略,揭示了与肝硬化和肝细胞癌相关的四种IgG亚类的血清IgG异常N - 糖基化。此外,该方法从人血清中鉴定出的完整糖肽比天然电子转移解离方法多5倍,这意味着该方法还可用于糖蛋白组的大规模位点特异性分析。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/368b/7006626/ea5f4fdcc45e/c9sc02491c-s1.jpg

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