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MAGIC:一种使用Y1离子模式匹配算法和计算机模拟MS²方法的自动化N-连接糖蛋白识别工具。

MAGIC: an automated N-linked glycoprotein identification tool using a Y1-ion pattern matching algorithm and in silico MS² approach.

作者信息

Lynn Ke-Shiuan, Chen Chen-Chun, Lih T Mamie, Cheng Cheng-Wei, Su Wan-Chih, Chang Chun-Hao, Cheng Chia-Ying, Hsu Wen-Lian, Chen Yu-Ju, Sung Ting-Yi

机构信息

Institute of Information Science, Academia Sinica , Taipei 11529, Taiwan.

出版信息

Anal Chem. 2015 Feb 17;87(4):2466-73. doi: 10.1021/ac5044829. Epub 2015 Jan 28.

Abstract

Glycosylation is a highly complex modification influencing the functions and activities of proteins. Interpretation of intact glycopeptide spectra is crucial but challenging. In this paper, we present a mass spectrometry-based automated glycopeptide identification platform (MAGIC) to identify peptide sequences and glycan compositions directly from intact N-linked glycopeptide collision-induced-dissociation spectra. The identification of the Y1 (peptideY0 + GlcNAc) ion is critical for the correct analysis of unknown glycoproteins, especially without prior knowledge of the proteins and glycans present in the sample. To ensure accurate Y1-ion assignment, we propose a novel algorithm called Trident that detects a triplet pattern corresponding to [Y0, Y1, Y2] or [Y0-NH3, Y0, Y1] from the fragmentation of the common trimannosyl core of N-linked glycopeptides. To facilitate the subsequent peptide sequence identification by common database search engines, MAGIC generates in silico spectra by overwriting the original precursor with the naked peptide m/z and removing all of the glycan-related ions. Finally, MAGIC computes the glycan compositions and ranks them. For the model glycoprotein horseradish peroxidase (HRP) and a 5-glycoprotein mixture, a 2- to 31-fold increase in the relative intensities of the peptide fragments was achieved, which led to the identification of 7 tryptic glycopeptides from HRP and 16 glycopeptides from the mixture via Mascot. In the HeLa cell proteome data set, MAGIC processed over a thousand MS(2) spectra in 3 min on a PC and reported 36 glycopeptides from 26 glycoproteins. Finally, a remarkable false discovery rate of 0 was achieved on the N-glycosylation-free Escherichia coli data set. MAGIC is available at http://ms.iis.sinica.edu.tw/COmics/Software_MAGIC.html .

摘要

糖基化是一种高度复杂的修饰,会影响蛋白质的功能和活性。完整糖肽谱的解析至关重要但具有挑战性。在本文中,我们提出了一种基于质谱的自动化糖肽鉴定平台(MAGIC),可直接从完整的N-连接糖肽碰撞诱导解离谱中鉴定肽序列和聚糖组成。Y1(肽Y0 + GlcNAc)离子的鉴定对于未知糖蛋白的正确分析至关重要,尤其是在对样品中存在的蛋白质和聚糖没有先验知识的情况下。为确保准确的Y1离子归属,我们提出了一种名为Trident的新算法,该算法从N-连接糖肽的常见三甘露糖核心片段中检测对应于[Y0, Y1, Y2]或[Y0-NH3, Y0, Y1]的三联体模式。为便于通过常见数据库搜索引擎进行后续肽序列鉴定,MAGIC通过用裸肽m/z覆盖原始前体并去除所有与聚糖相关的离子来生成虚拟谱。最后,MAGIC计算聚糖组成并对其进行排名。对于模型糖蛋白辣根过氧化物酶(HRP)和一种5种糖蛋白混合物,肽片段的相对强度提高了2至31倍,这使得通过Mascot从HRP中鉴定出7种胰蛋白酶糖肽,从混合物中鉴定出16种糖肽。在HeLa细胞蛋白质组数据集中,MAGIC在一台个人电脑上3分钟内处理了一千多个MS(2)谱,并报告了来自26种糖蛋白的36种糖肽。最后,在无糖基化的大肠杆菌数据集中实现了显著的0%的错误发现率。MAGIC可在http://ms.iis.sinica.edu.tw/COmics/Software_MAGIC.html获取。

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