Zhang Sheng, Williamson Brian L
Proteomics and Mass Spectrometry Core Facility, 135 Biotechnology Building, Cornell University, Ithaca, NY 14853, USA.
J Biomol Tech. 2005 Sep;16(3):209-19.
Glycosylation is one of the most important posttranslational modifications affecting the functions of proteins and cell activities. Mass spectrometry (MS) has proven to be an effective tool for structural glycobiology and has helped gain an understanding of glycoprotein-mediated diseases. Although electro-spray ionization-tandem MS remains widely recognized as an effective means for oligosaccharide characterization, the hydrophilic nature of glycans has often caused the poor ionization efficiency requiring either derivatization or nanoelectrospray to improve detection sensitivity. In this report we describe the use of a chip-based infusion nanoelectrospray platform coupled with the hybrid triple quadrupole/linear ion trap for identification and characterization of glycosylation in complex mixtures. The high-mannose-type N-glycosylation in ribonuclease B was used to map the glycosylation site and obtain glycan structures. Using the chip-based nanoelectro-spray with precursor ion scanning linear ion trap MS, we were able to map the glycosylation site and obtain the glycan structures in ribonuclease B at 100 fmol/microL in a single analysis. In addition, a new, low-abundant glycoform with an additional hexose (Hex10GlcNAc2) attached to ribonuclease B was discovered. The results reported here demonstrate that the chip-based infusion nanoelectrospray ionization coupled to a quadrupole/linear ion trap platform is a valuable system, as it provides high sensitivity and stability for nanoelectrospray analysis, and allows extended acquisition time for completing precursor ion scanning and subsequent MS2 and MS3 information in a single analysis.
糖基化是影响蛋白质功能和细胞活动的最重要的翻译后修饰之一。质谱(MS)已被证明是结构糖生物学的有效工具,并有助于了解糖蛋白介导的疾病。尽管电喷雾电离串联质谱仍然被广泛认为是寡糖表征的有效手段,但聚糖的亲水性常常导致电离效率低下,需要进行衍生化或纳米电喷雾来提高检测灵敏度。在本报告中,我们描述了基于芯片的进样纳米电喷雾平台与混合三重四极杆/线性离子阱联用,用于复杂混合物中糖基化的鉴定和表征。核糖核酸酶B中的高甘露糖型N-糖基化用于确定糖基化位点并获得聚糖结构。使用基于芯片的纳米电喷雾与前体离子扫描线性离子阱质谱联用,我们能够在单次分析中以100 fmol/μL的浓度确定核糖核酸酶B中的糖基化位点并获得聚糖结构。此外,还发现了一种新的、低丰度的糖型,其在核糖核酸酶B上连接了一个额外的己糖(Hex10GlcNAc2)。本文报道的结果表明,基于芯片的进样纳米电喷雾电离与四极杆/线性离子阱平台联用是一个有价值的系统,因为它为纳米电喷雾分析提供了高灵敏度和稳定性,并允许延长采集时间,以便在单次分析中完成前体离子扫描以及后续的MS2和MS3信息。