School of Chemical and Physical Sciences & Centre for Glycoscience, Keele University, Keele, Staffordshire ST5 5BG, U.K.
J Org Chem. 2023 Aug 4;88(15):11130-11139. doi: 10.1021/acs.joc.3c01108. Epub 2023 Jul 17.
Reported herein is a scalable chemical synthesis of disaccharide building blocks for heparan sulfate (HS) oligosaccharide assembly. The use of d-glucuronate-based acceptors for dehydrative glycosylation with d-glucosamine partners is explored, enabling diastereoselective synthesis of appropriately protected HS disaccharide building blocks (d-GlcN-α-1,4-d-GlcA) on a multigram scale. Isolation and characterization of key donor (1,2 glycal)- and acceptor (ortho-ester, anhydro)-derived side products ensure methodology improvements to reduce their formation; protecting the d-glucuronate acceptor at the anomeric position with a -methoxyphenyl unit proves optimal. We also introduce glycal uronate acceptors, showing them to be comparative in reactivity to their pyranuronate counterparts. Taken together, this gram-scale access offers the capability to explore the iterative assembly of defined HS sequences containing the d-GlcN-α-1,4-d-GlcA repeat, highlighted by completing this for two tetrasaccharide syntheses.
本文报道了一种用于硫酸乙酰肝素(HS)寡糖组装的二糖砌块的规模化化学合成方法。探索了使用基于 D-葡萄糖醛酸的受体与 D-葡糖胺配体进行脱水糖基化反应,从而能够在多克规模上立体选择性地合成适当保护的 HS 二糖砌块(D-GlcN-α-1,4-D-GlcA)。关键供体(1,2 缩水甘油)和受体(邻酯、脱水)衍生的副产物的分离和表征确保了方法学的改进,以减少其形成;在糖醛酸受体的端基位置用 -甲氧基苯基单元进行保护被证明是最佳的。我们还引入了缩水甘油尿苷酸受体,发现它们与吡喃糖醛酸受体的反应性相当。总之,这种克级规模的方法提供了探索包含 D-GlcN-α-1,4-D-GlcA 重复单元的定义明确的 HS 序列的迭代组装的能力,这一点通过完成两个四糖合成得到了强调。