Department of Chemistry and Biochemistry, Texas Tech University, Lubbock, TX, 79409-1061, USA.
J Am Soc Mass Spectrom. 2018 Sep;29(9):1892-1900. doi: 10.1007/s13361-018-1985-z. Epub 2018 Jun 18.
Glycomics continues to be a highly dynamic and interesting research area due to the need to comprehensively understand the biological attributes of glycosylation in many important biological functions such as the immune response, cell development, cell differentiation/adhesion, and host-pathogen interactions. Although matrix-assisted laser desorption ionization (MALDI) mass spectrometry (MS) has proven to be suitable for glycomic profiling studies, there is a need for improved sensitivity in the detection of native glycans, which ionize inefficiently. In this study, we investigated the efficiencies of graphene nanosheets (GNs) and carbon nanoparticles (CNPs) as MALDI matrices and co-matrices in glycan profiling. Our results indicated an enhancement of signal intensity by several orders of magnitude upon using GNs and CNPs in MALDI analysis of N-glycans derived from a variety of biological samples. Interestingly, increasing the amounts of CNPs and GNs improved not only the signal intensities but also prompted in-source decay (ISD) fragmentations, which produced extensive glycosidic and cross-ring cleavages. Our results indicated that the extent of ISD fragmentation could be modulated by CNP and GN concentrations, to obtain MS and pseudo-MS spectra. The results for glycan profiling in high salt solutions confirmed high salt-tolerance capacities for both CNPs and GNs. Finally, the results showed that by using CNPs and GNs as co-matrices, DHB crystal formation was more homogeneous which improved shot-to-shot reproducibility and sensitivity. Graphical Abstract ᅟ.
糖组学仍然是一个非常活跃和有趣的研究领域,因为需要全面了解糖基化在许多重要生物学功能中的生物学属性,如免疫反应、细胞发育、细胞分化/黏附以及宿主-病原体相互作用。尽管基质辅助激光解吸电离(MALDI)质谱(MS)已被证明适用于糖组学分析研究,但仍需要提高对天然糖的检测灵敏度,因为天然糖的离子化效率较低。在这项研究中,我们研究了石墨烯纳米片(GNs)和碳纳米粒子(CNPs)作为 MALDI 基质和共基质在糖谱分析中的效率。我们的结果表明,在 MALDI 分析中使用 GNs 和 CNPs 可以将来自各种生物样品的 N-聚糖的信号强度提高几个数量级。有趣的是,增加 CNPs 和 GNs 的用量不仅可以提高信号强度,还可以促进源内降解(ISD)碎裂,从而产生广泛的糖苷和交叉环裂解。我们的结果表明,ISD 碎裂的程度可以通过 CNP 和 GN 浓度进行调节,以获得 MS 和伪 MS 谱。在高盐溶液中进行糖谱分析的结果证实了 CNPs 和 GNs 都具有高耐盐能力。最后,结果表明,通过使用 CNPs 和 GNs 作为共基质,DHB 晶体形成更加均匀,从而提高了重复射击的重现性和灵敏度。