Department of Chemistry and Biochemistry, University of Notre Dame, Notre Dame, Indiana 46556, USA.
J Org Chem. 2010 Aug 6;75(15):4899-910. doi: 10.1021/jo100521g.
Eight Karplus relationships have been determined for use in conformational studies of saccharide N-acetyl side-chains in solution by NMR spectroscopy. Density functional theory was used to calculate (1)H-(1)H, (13)C-(1)H, and (13)C-(13)C NMR spin-coupling constants in four model compounds that mimic alpha-gluco, beta-gluco, alpha-allo, and beta-allo 2-acetamido-2-deoxy-D-aldohexopyranosyl ring configurations in order to study the effects of C1 and C3 configuration adjacent to the N-acetyl group on coupling behavior. Six vicinal J-couplings sensitive to the C2-N2 torsion angle were parametrized: (3)J(H2,NH), (3)J(H2,CO), (3)J(C1,NH), (3)J(C3,NH), (3)J(C1,CO) and (3)J(C3,CO). Two vicinal J-couplings sensitive to amide bond conformation (cis and trans amide) were also investigated, namely, (3)J(NH,CH(3)) and (3)J(C2,CH(3)). In relevant cases, comparisons were made to analogous coupling pathways found in proteins to evaluate the effects of peptide versus saccharide pathway structure on coupling magnitude. These parametrizations allow multiple, redundant J-couplings within the N-acetyl fragment of saccharides and related structures to be used for more confident assignments of side-chain conformation in biologically important saccharides, especially those where this structural element may play a role in molecular recognition or other biological processes. This application is illustrated in an analysis of experimental J-couplings measured within the N-acetyl side-chain of a (13)C-labeled methyl N-acetyl-alpha-D-glucosaminide.
已确定了 8 种 Karplus 关系,可用于通过 NMR 光谱法研究溶液中糖 N-乙酰侧链的构象研究。使用密度泛函理论计算了四个模型化合物中的 (1)H-(1)H、(13)C-(1)H 和 (13)C-(13)C NMR 自旋偶合常数,这些模型化合物模拟了 alpha-gluco、beta-gluco、alpha-allo 和 beta-allo 2-乙酰氨基-2-脱氧-D-aldopentopyranosyl 环构型,以研究与 N-乙酰基相邻的 C1 和 C3 构型对耦合行为的影响。参数化了六个对 C2-N2 扭转角敏感的邻位 J 耦合:(3)J(H2,NH)、(3)J(H2,CO)、(3)J(C1,NH)、(3)J(C3,NH)、(3)J(C1,CO)和(3)J(C3,CO)。还研究了两个对酰胺键构象敏感的邻位 J 耦合(顺式和反式酰胺),即 (3)J(NH,CH(3)) 和 (3)J(C2,CH(3))。在相关情况下,将其与在蛋白质中发现的类似耦合途径进行了比较,以评估肽与糖途径结构对耦合大小的影响。这些参数化允许在糖和相关结构的 N-乙酰片段内使用多个冗余的 J 耦合,以更有信心地分配侧链构象,特别是在这种结构元素可能在分子识别或其他生物过程中起作用的情况下。在对 (13)C 标记的甲基 N-乙酰-α-D-葡糖胺的 N-乙酰侧链中测量的实验 J 耦合的分析中说明了这种应用。