Lee Ju Yeon, Lee Hyun Kyoung, Park Gun Wook, Hwang Heeyoun, Jeong Hoi Keun, Yun Ki Na, Ji Eun Sun, Kim Kwang Hoe, Kim Jun Seok, Kim Jong Won, Yun Sung Ho, Choi Chi-Won, Kim Seung Il, Lim Jong-Sun, Jeong Seul-Ki, Paik Young-Ki, Lee Soo-Youn, Park Jisook, Kim Su Yeon, Choi Young-Jin, Kim Yong-In, Seo Jawon, Cho Je-Yoel, Oh Myoung Jin, Seo Nari, An Hyun Joo, Kim Jin Young, Yoo Jong Shin
Biomedical Omics Group, Korea Basic Science Institute , Ochang 28119, Republic of Korea.
Graduate School of Analytical Science and Technology, Chungnam National University , Daejeon 34134, Republic of Korea.
J Proteome Res. 2016 Dec 2;15(12):4146-4164. doi: 10.1021/acs.jproteome.5b01159. Epub 2016 Nov 9.
Glycoprotein conformations are complex and heterogeneous. Currently, site-specific characterization of glycopeptides is a challenge. We sought to establish an efficient method of N-glycoprotein characterization using mass spectrometry (MS). Using alpha-1-acid glycoprotein (AGP) as a model N-glycoprotein, we identified its tryptic N-glycopeptides and examined the data reproducibility in seven laboratories running different LC-MS/MS platforms. We used three test samples and one blind sample to evaluate instrument performance with entire sample preparation workflow. 165 site-specific N-glycopeptides representative of all N-glycosylation sites were identified from AGP 1 and AGP 2 isoforms. The glycopeptide fragmentations by collision-induced dissociation or higher-energy collisional dissociation (HCD) varied based on the MS analyzer. Orbitrap Elite identified the greatest number of AGP N-glycopeptides, followed by Triple TOF and Q-Exactive Plus. Reproducible generation of oxonium ions, glycan-cleaved glycopeptide fragment ions, and peptide backbone fragment ions was essential for successful identification. Laboratory proficiency affected the number of identified N-glycopeptides. The relative quantities of the 10 major N-glycopeptide isoforms of AGP detected in four laboratories were compared to assess reproducibility. Quantitative analysis showed that the coefficient of variation was <25% for all test samples. Our analytical protocol yielded identification and quantification of site-specific N-glycopeptide isoforms of AGP from control and disease plasma sample.
糖蛋白构象复杂且具有异质性。目前,糖肽的位点特异性表征是一项挑战。我们试图建立一种使用质谱(MS)对N - 糖蛋白进行表征的有效方法。以α-1-酸性糖蛋白(AGP)作为模型N - 糖蛋白,我们鉴定了其胰蛋白酶水解产生的N - 糖肽,并在运行不同液相色谱 - 串联质谱(LC-MS/MS)平台的七个实验室中检验了数据的重现性。我们使用三个测试样品和一个盲样,通过完整的样品制备流程来评估仪器性能。从AGP 1和AGP 2亚型中鉴定出了代表所有N - 糖基化位点的165个位点特异性N - 糖肽。基于质谱分析仪的不同,碰撞诱导解离或高能碰撞解离(HCD)产生的糖肽碎片化情况各异。Orbitrap Elite鉴定出的AGP N - 糖肽数量最多,其次是Triple TOF和Q - Exactive Plus。成功鉴定的关键在于可重现地生成鎓离子、糖链裂解的糖肽碎片离子和肽主链碎片离子。实验室操作熟练度会影响鉴定出的N - 糖肽数量。比较了四个实验室中检测到的AGP的10种主要N - 糖肽亚型的相对含量,以评估重现性。定量分析表明,所有测试样品的变异系数均<25%。我们的分析方案实现了对来自对照和疾病血浆样品的AGP位点特异性N - 糖肽亚型的鉴定和定量。