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破坏的艺术:在基于糖肽的糖蛋白质组学的四极杆飞行时间(Q-TOF)仪器中优化碰撞能量

The Art of Destruction: Optimizing Collision Energies in Quadrupole-Time of Flight (Q-TOF) Instruments for Glycopeptide-Based Glycoproteomics.

作者信息

Hinneburg Hannes, Stavenhagen Kathrin, Schweiger-Hufnagel Ulrike, Pengelley Stuart, Jabs Wolfgang, Seeberger Peter H, Silva Daniel Varón, Wuhrer Manfred, Kolarich Daniel

机构信息

Department of Biomolecular Systems, Max Planck Institute of Colloids and Interfaces, 14424, Potsdam, Germany.

Institute of Chemistry and Biochemistry, Freie Universität Berlin, Arnimallee 22, 14195, Berlin, Germany.

出版信息

J Am Soc Mass Spectrom. 2016 Mar;27(3):507-19. doi: 10.1007/s13361-015-1308-6. Epub 2016 Jan 4.

Abstract

In-depth site-specific investigations of protein glycosylation are the basis for understanding the biological function of glycoproteins. Mass spectrometry-based N- and O-glycopeptide analyses enable determination of the glycosylation site, site occupancy, as well as glycan varieties present on a particular site. However, the depth of information is highly dependent on the applied analytical tools, including glycopeptide fragmentation regimes and automated data analysis. Here, we used a small set of synthetic disialylated, biantennary N-glycopeptides to systematically tune Q-TOF instrument parameters towards optimal energy stepping collision induced dissociation (CID) of glycopeptides. A linear dependency of m/z-ratio and optimal fragmentation energy was found, showing that with increasing m/z-ratio, more energy is required for glycopeptide fragmentation. Based on these optimized fragmentation parameters, a method combining lower- and higher-energy CID was developed, allowing the online acquisition of glycan and peptide-specific fragments within a single tandem MS experiment. We validated this method analyzing a set of human immunoglobulins (IgA1+2, sIgA, IgG1+2, IgE, IgD, IgM) as well as bovine fetuin. These optimized fragmentation parameters also enabled software-assisted glycopeptide assignment of both N- and O-glycopeptides including information about the most abundant glycan compositions, peptide sequence and putative structures. Twenty-six out of 30 N-glycopeptides and four out of five O-glycopeptides carrying >110 different glycoforms could be identified by this optimized LC-ESI tandem MS method with minimal user input. The Q-TOF based glycopeptide analysis platform presented here opens the way to a range of different applications in glycoproteomics research as well as biopharmaceutical development and quality control.

摘要

对蛋白质糖基化进行深入的位点特异性研究是理解糖蛋白生物学功能的基础。基于质谱的N-糖肽和O-糖肽分析能够确定糖基化位点、位点占有率以及特定位点上存在的聚糖种类。然而,信息的深度高度依赖于所应用的分析工具,包括糖肽碎片化方案和自动化数据分析。在此,我们使用了一小套合成的双唾液酸化、双天线N-糖肽,系统地调整Q-TOF仪器参数,以实现糖肽的最佳能量步进碰撞诱导解离(CID)。发现质荷比与最佳碎片化能量呈线性关系,表明随着质荷比的增加,糖肽碎片化需要更多能量。基于这些优化的碎片化参数,开发了一种结合低能量和高能量CID的方法,允许在单个串联质谱实验中在线获取聚糖和肽特异性片段。我们通过分析一组人免疫球蛋白(IgA1+2、sIgA、IgG1+2、IgE、IgD、IgM)以及牛胎球蛋白对该方法进行了验证。这些优化的碎片化参数还实现了软件辅助的N-糖肽和O-糖肽分配,包括有关最丰富的聚糖组成、肽序列和推定结构的信息。通过这种优化的液相色谱-电喷雾串联质谱方法,在用户输入最少的情况下,可以鉴定出30个N-糖肽中的26个以及5个O-糖肽中的4个,这些糖肽携带>110种不同的糖型。本文介绍的基于Q-TOF的糖肽分析平台为糖蛋白组学研究以及生物制药开发和质量控制中的一系列不同应用开辟了道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2876/4756043/b70ff039f5c4/13361_2015_1308_Figa_HTML.jpg

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