Institute of Chemistry , Academia Sinica , Taipei 115 , Taiwan.
Department of Chemical Engineering , National Taiwan University of Science and Technology , Taipei 106 , Taiwan.
Anal Chem. 2019 Sep 17;91(18):11544-11552. doi: 10.1021/acs.analchem.9b01241. Epub 2019 Sep 5.
The in-depth characterization of glycan structures is crucial to understanding their structure-function relationships and their effects on health and various diseases. Despite advances in rapid analysis, the utility of matrix-assisted laser desorption/ionization mass spectrometry (MALDI MS) is limited for complex mixtures of carbohydrates due to their low ionization efficiency and the difficulty in separating oligosaccharides because of their high structural similarity. In this study, we developed an ionic liquid (IL)-stabilized, nanomatrix-decorated, thin-layer chromatography (TLC)-MALDI MS method for simultaneous and rapid separation, detection, and identification of oligosaccharides to achieve efficient profiling. The IL demonstrated good dispersion and stabilization for the spin coating of dihydroxybenzoic acid-functionalized magnetic nanoparticles (DHB@MNPs) on the TLC plate with spot homogeneity, which contributed to the observed high reproducibility (<20% CV) and 12- and 28-fold signal enhancement. Although the TLC was not able to separate isomeric glycans, the DHB@MNPs generate diagnostic glycosidic and cross-ring cleavage ions, enabling on-spot structural elucidation of composition, sequence, branching, and linkage of glycans in each separated spot. Without chemical derivatization of glycan samples, glycan visualization by TLC and tandem MS, our integrated platform, allowed the identification of 25 oligosaccharides from human milk, and heatmap analysis revealed the variability in the oligosaccharide abundance in samples from individual donors at different lactation times, which may provide insight into the microbiota and immunity of infants. With the demonstrated simplicity of our sample preparation method along with the achieved separation and in-depth structural characterization, our approach can be used for the rapid screening of other oligosaccharide-rich samples.
深入分析聚糖结构对于了解它们的结构-功能关系及其对健康和各种疾病的影响至关重要。尽管快速分析技术取得了进展,但基质辅助激光解吸/电离质谱(MALDI MS)的应用受到限制,因为其对碳水化合物混合物的电离效率低,并且由于其高结构相似性,分离寡糖的难度较大。在这项研究中,我们开发了一种离子液体(IL)稳定、纳米基质修饰的薄层色谱(TLC)-MALDI MS 方法,用于同时快速分离、检测和鉴定寡糖,以实现有效的分析。IL 对二羟基苯甲酸功能化磁性纳米粒子(DHB@MNPs)在 TLC 板上的旋涂具有良好的分散性和稳定性,斑点均匀性好,这有助于观察到高重现性(<20%CV)和 12 倍和 28 倍的信号增强。尽管 TLC 无法分离异构聚糖,但 DHB@MNPs 可产生诊断性糖苷和交联裂解离子,能够在斑点上对聚糖的组成、序列、分支和连接进行结构解析。无需对糖样品进行化学衍生化,通过 TLC 和串联 MS 进行糖可视化,我们的集成平台允许从人乳中鉴定出 25 种寡糖,热图分析显示了不同泌乳时间个体供体样本中寡糖丰度的可变性,这可能为婴儿的微生物组和免疫力提供了深入了解。由于我们的样品制备方法简单,并且实现了分离和深入的结构表征,因此我们的方法可用于快速筛选其他富含寡糖的样品。