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水合酰肼功能化亲水性聚合物杂化氧化石墨烯用于高效 N-糖肽富集及质谱鉴定。

Synthesis of hydrazide-functionalized hydrophilic polymer hybrid graphene oxide for highly efficient N-glycopeptide enrichment and identification by mass spectrometry.

机构信息

Beijing Institute of Microbiology and Epidemiology, Beijing 100073, PR China; Phase Ⅰ Clinical Trial Center, Beijing Shijitan Hospital of Capital Medical University, Beijing 100038, PR China.

National Center for Protein Sciences Beijing, State Key Laboratory of Proteomics, Beijing Proteome Research Center, Beijing Institute of Radiation Medicine, Beijing 102206, PR China.

出版信息

Talanta. 2017 Aug 15;171:124-131. doi: 10.1016/j.talanta.2017.04.076. Epub 2017 May 1.

Abstract

Protein N-glycosylation is one of the most important post-translational modifications, participating in many key biological and pathological processes. Large-scale and precise identification of N-glycosylated proteins and peptides is especially beneficial for understanding their biological functions and for discovery of new clinical biomarkers and therapeutic drug targets. However, protein N-glycosylation is microheterogeneous and low abundant in living organisms, therefore specific enrichment of N-glycosylated proteins/peptides before mass spectrometry analysis is a prerequisite. In this work, we developed a new type of polymer hybrid graphene oxide (GO) by in situ growth of hydrazide-functionalized hydrophilic polymer chains on the GO surface (GO-PAAH) for selective N-glycopeptide enrichment and identification by mass spectrometry. The densely attached and low steric hindrance hydrazide groups as well as the highly hydrophilic nature of GO-PAAH facilitate N-glycopeptide enrichment by the combination of hydrazide capturing and HILIC interaction. Taking advantage of the unique features of GO-PAAH, all of the three N-glycopeptides of bovine fetuin were successfully enriched and identified with significantly enhanced signal intensities from a digest mixture of bovine fetuin and bovine serum albumin at a mass ratio of 1:100, demonstrating the excellent enrichment selectivity of GO-PAAH. Furthermore, a total of 507 N-glycosylation sites and 480 N-glycopeptides in 232 N-glycoproteins were enriched and identified from 10μL of human serum by three replicates using this novel enrichment material, which is nearly two times higher than the commercial hydrazide resin based method (280 N-glycosylation sites, 261 N-glycopeptides and 144 N-glycoproteins in three experiments). Among the identified, 95 N-glycosylation sites were not reported in the Uniprot database, and 106 N-glycoproteins were disease related in the Nextprot database, indicating the potential of this new enrichment material in global mapping of protein N-glycosylation.

摘要

蛋白质 N-糖基化是最重要的翻译后修饰之一,参与许多关键的生物和病理过程。大规模、精确地鉴定 N-糖基化蛋白和肽类,特别有利于了解其生物学功能,并发现新的临床生物标志物和治疗药物靶点。然而,蛋白质 N-糖基化在生物体内具有微观异质性和低丰度,因此在质谱分析之前,特异性富集 N-糖基化蛋白/肽类是前提。在这项工作中,我们通过在 GO 表面原位生长酰肼功能化亲水性聚合物链,开发了一种新型聚合物杂化氧化石墨烯(GO)(GO-PAAH),用于通过质谱法选择性富集和鉴定 N-糖肽。GO-PAAH 上密集附着且空间位阻小的酰肼基团以及高度亲水的性质,有利于通过酰肼捕获和 HILIC 相互作用相结合进行 N-糖肽的富集。利用 GO-PAAH 的独特特性,从牛胎球蛋白和牛血清白蛋白质量比为 1:100 的混合物中,成功地从牛胎球蛋白的三个 N-糖肽中富集和鉴定出来,这表明 GO-PAAH 具有优异的富集选择性。此外,通过该新型富集材料,从 10μL 人血清中重复三次共鉴定出 232 个 N-糖蛋白中的 507 个 N-糖基化位点和 480 个 N-糖肽,这几乎是商业酰肼树脂基方法的两倍(三次实验中鉴定出 280 个 N-糖基化位点、261 个 N-糖肽和 144 个 N-糖蛋白)。在鉴定出的糖肽中,有 95 个 N-糖基化位点未在 Uniprot 数据库中报道,有 106 个 N-糖蛋白在 Nextprot 数据库中与疾病相关,这表明这种新型富集材料在蛋白质 N-糖基化的全局图谱绘制中具有潜力。

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