Department of Chemical and Biological Physics, Weizmann Institute of Science, 76100 Rehovot, Israel.
Laboratory of Bacterial Polysaccharides, Center for Biologics Evaluation and Research, Food and Drug Administration, 10903 New Hampshire Avenue, Silver Spring, Maryland 20993, United States.
J Am Chem Soc. 2021 Jun 16;143(23):8935-8948. doi: 10.1021/jacs.1c04512. Epub 2021 Jun 4.
Glycan structures are often stabilized by a repertoire of hydrogen-bonded donor/acceptor groups, revealing longer-lived structures that could represent biologically relevant conformations. NMR provides unique data on these hydrogen-bonded networks from multidimensional experiments detecting cross-peaks resulting from through-bond (TOCSY) or through-space (NOESY) interactions. However, fast OH/HO exchange, and the spectral proximity among these NMR resonances, hamper the use of glycans' labile protons in such analyses; consequently, studies are often restricted to aprotic solvents or supercooled aqueous solutions. These nonphysiological conditions may lead to unrepresentative structures or to probing a small subset of accessible conformations that may miss "active" glycan conformations. Looped, projected spectroscopy (L-PROSY) has been recently shown to substantially enhance protein NOESY and TOCSY cross-peaks, for Hs that undergo fast exchange with water. This study shows that even larger enhancements can be obtained for rapidly exchanging OHs in saccharides, leading to the retrieval of previously undetectable 2D TOCSY/NOESY cross-peaks with nonlabile protons. After demonstrating ≥300% signal enhancements on model monosaccharides, these experiments were applied at 1 GHz to elucidate the structural network adopted by a sialic acid homotetramer, used as a model for α,2-8 linked polysaccharides. High-field L-PROSY NMR enabled these studies at higher temperatures and provided insight previously unavailable from lower-field NMR investigations on supercooled samples, involving mostly nonlabile nuclei. Using L-PROSY's NOEs and other restraints, a revised structural model for the homotetramer was obtained combining rigid motifs and flexible segments, that is well represented by conformations derived from 40 μs molecular dynamics simulations.
糖链结构通常由一系列氢键供体/受体稳定,揭示出具有更长寿命的结构,这些结构可能代表具有生物学意义的构象。NMR 通过多维实验提供有关这些氢键网络的独特数据,这些实验检测到源自键间(TOCSY)或键间空间(NOESY)相互作用的交叉峰。然而,OH/HO 的快速交换以及这些 NMR 共振之间的光谱接近性,妨碍了在这些分析中使用糖链的不稳定质子;因此,研究通常限于非质子溶剂或过冷水溶液。这些非生理条件可能导致结构代表性不足,或者仅探测到一小部分可及构象,从而错过“活性”糖链构象。最近已经证明,Loop,projected spectroscopy(L-PROSY)可大大增强 Hs 与水快速交换时的蛋白质 NOESY 和 TOCSY 交叉峰。本研究表明,对于糖中快速交换的 OHs,甚至可以获得更大的增强,从而可以获得以前无法检测到的非稳定质子的二维 TOCSY/NOESY 交叉峰。在对模型单糖进行了≥300%的信号增强后,这些实验在 1GHz 下应用于阐明唾液酸四聚体采用的结构网络,该四聚体用作α,2-8 连接多糖的模型。高场 L-PROSY NMR 能够在更高的温度下进行这些研究,并提供了以前在对过冷样品进行低场 NMR 研究中无法获得的见解,这些研究主要涉及非稳定核。使用 L-PROSY 的 NOEs 和其他约束条件,结合刚性基元和柔性片段,获得了四聚体的修订结构模型,该模型由源自 40μs 分子动力学模拟的构象很好地表示。