Center for Biomedical Mass Spectrometry, Department of Biochemistry and Center for Biomedical Mass Spectrometry, Boston University School of Medicine, 670 Albany Street, 5th Floor, Boston, MA, 02118, USA.
Bioinformatics Program, Boston University, Boston, MA, 02215, USA.
J Am Soc Mass Spectrom. 2018 Jun;29(6):1262-1272. doi: 10.1007/s13361-018-1907-0. Epub 2018 Mar 21.
Among dissociation methods, negative electron transfer dissociation (NETD) has been proven the most useful for glycosaminoglycan (GAG) sequencing because it produces informative fragmentation, a low degree of sulfate losses, high sensitivity, and translatability to multiple instrument types. The challenge, however, is to distinguish positional sulfation. In particular, NETD has been reported to fail to differentiate 4-O- versus 6-O-sulfation in chondroitin sulfate decasaccharide. This raised the concern of whether NETD is able to differentiate the rare 3-O-sulfation from predominant 6-O-sulfation in heparan sulfate (HS) oligosaccharides. Here, we report that NETD generates highly informative spectra that differentiate sites of O-sulfation on glucosamine residues, enabling structural characterizations of synthetic HS isomers containing 3-O-sulfation. Further, lyase-resistant 3-O-sulfated tetrasaccharides from natural sources were successfully sequenced. Notably, for all of the oligosaccharides in this study, the successful sequencing is based on NETD tandem mass spectra of commonly observed deprotonated precursor ions without derivatization or metal cation adduction, simplifying the experimental workflow and data interpretation. These results demonstrate the potential of NETD as a sensitive analytical tool for detailed, high-throughput structural analysis of highly sulfated GAGs. Graphical Abstract.
在各种解离方法中,电子转移解离(NETD)已被证明对糖胺聚糖(GAG)测序最有用,因为它能产生信息丰富的片段,硫酸基损失程度低,灵敏度高,并且可转化为多种仪器类型。然而,挑战在于区分位置硫酸化。特别是,NETD 已被报道无法区分硫酸软骨素十糖中的 4-O-硫酸化与 6-O-硫酸化。这引发了人们的担忧,即 NETD 是否能够区分肝素硫酸盐(HS)寡糖中罕见的 3-O-硫酸化与主要的 6-O-硫酸化。在这里,我们报告称,NETD 产生了高度信息丰富的谱图,可以区分葡萄糖胺残基上的 O-硫酸化位点,从而能够对含有 3-O-硫酸化的合成 HS 异构体进行结构表征。此外,还成功地对天然来源的裂解酶抗性 3-O-硫酸化四糖进行了测序。值得注意的是,对于本研究中的所有寡糖,成功测序都是基于 NETD 串联质谱中常见的未衍生化或未加金属阳离子的去质子化前体离子,简化了实验工作流程和数据解释。这些结果表明 NETD 作为一种灵敏的分析工具,具有对高度硫酸化 GAG 进行详细、高通量结构分析的潜力。