Department of Biochemistry, Emory Comprehensive Glycomics Core, Emory University School of Medicine, Atlanta, GA, USA.
Educational Ministry Key Laboratory of Resource Biology and Biotechnology in Western China, College of Life Sciences, Northwest University, Xi'an, China.
SLAS Technol. 2020 Aug;25(4):388-396. doi: 10.1177/2472630319898150. Epub 2020 Jan 21.
Glycoscience has been recognized as an important area in biomedical research. Currently, a major obstacle for glycoscience study is the lack of diverse, biomedically relevant, and complex glycans in quantities sufficient for exploring their structural and functional aspects. Complementary to chemoenzymatic synthesis, natural glycans could serve as a great source of biomedically relevant glycans if they are available in sufficient quantities. We have recently developed oxidative release of natural glycans (ORNG) for large-scale release of -glycans as free reducing glycans. While free reducing glycans can be readily derivatized with ultraviolet or fluorescent tags for high-performance liquid chromatography (HPLC) and mass spectrometry (MS) analysis, it is difficult to remove tags for the regeneration of free reducing glycans without affecting the structural integrity of glycans. To address this inconvenience, we explored the use of a cleavable tag, -benzylhydroxylamine (BHA). Free reducing glycans are easily and efficiently labeled with BHA under mild conditions, enabling UV detection during HPLC purification. Individual glycan-BHA conjugates can then be separated using multidimensional HPLC and characterized by matrix-assisted laser desorption/ionization time-of-flight mass spectrometry (MALDI-TOF-MS) and MS/MS. The BHA tag can then be easily removed by palladium-on-carbon (Pd/C)-catalyzed hydrogenation to efficiently regenerate free reducing glycans with little effect on glycan structures. This procedure provides a simple and straightforward way to tag free reducing glycans for purification at a preparative scale using multidimensional HPLC and subsequently recover purified free reducing glycans.
糖科学已被公认为生物医学研究中的一个重要领域。目前,糖科学研究的一个主要障碍是缺乏足够数量的多样化、与生物医学相关且结构复杂的聚糖,以探索其结构和功能方面。如果天然聚糖的数量足够,它们可以作为与生物医学相关聚糖的重要来源,与化学酶合成互补。我们最近开发了一种用于大规模释放β-聚糖的天然聚糖氧化释放(ORNG)方法,将其作为游离还原聚糖释放。游离还原聚糖可以很容易地与紫外光或荧光标记物进行衍生化,以便用于高效液相色谱(HPLC)和质谱(MS)分析,但是在不影响聚糖结构完整性的情况下,去除标签以再生游离还原聚糖是很困难的。为了解决这个不便,我们探索了使用可裂解标签 - 苄基羟胺(BHA)。游离还原聚糖可以在温和条件下很容易和有效地与 BHA 标记,从而在 HPLC 纯化过程中实现 UV 检测。然后可以使用多维 HPLC 分离各个糖 -BHA 缀合物,并通过基质辅助激光解吸/电离飞行时间质谱(MALDI-TOF-MS)和 MS/MS 进行表征。BHA 标签可以通过钯碳(Pd/C)催化氢化很容易地去除,以有效地再生游离还原聚糖,对聚糖结构的影响很小。该方法提供了一种简单直接的方法,用于使用多维 HPLC 对游离还原聚糖进行纯化,并在制备规模上进行标记,然后回收纯化的游离还原聚糖。