Backinowsky Leon V, Abronina Polina I, Shashkov Alexander S, Grachev Alexey A, Kochetkov Nikolay K, Nepogodiev Sergey A, Stoddart J Fraser
N. D. Zelinsky Institute of Organic Chemistry, Russian Academy of Sciences, Leninsky Prospect 47 117913 Moscow (Russian Federation).
Chemistry. 2002 Oct 4;8(19):4412-23. doi: 10.1002/1521-3765(20021004)8:19<4412::AID-CHEM4412>3.0.CO;2-F.
Glycosylation of sugar trityl ethers with sugar 1,2-O-(1-cyano)ethylidene derivatives (the trityl-cyanoethylidene condensation) has been applied to the synthesis of highly branched (dendritic) mannooligosaccharides incorporating a Manalpha1-->3(Manalpha1-->6)Man structural motif. The convergent synthetic strategy used to assemble these oligosaccharides was based on the use of glycosyl acceptors and/or a glycosyl donor already bearing this structural motif. The former were represented by mono- and ditrityl ethers of ManalphaOMe, Manalpha1-->3ManalphaOMe, and Manalpha1-->3(Manalpha1-->6)ManalphaX, where X=OMe or SEt. The pivotal glycosyl donor was the peracetylated 1,2-O-(1-cyano)ethylidene-3,6-di-O-(alpha-D-mannopyranosyl)-beta-D-mannopyranose (1), prepared by orthogonal Helferich glycosylation of the known 1,2-O-(1-cyano)ethylidene-beta-D-mannopyranose with tetra-O-acetyl-alpha-D-mannopyranosyl bromide followed by O-acetylation. Glycosylation of acetates of methyl 6-O-trityl-alpha-D-mannopyranoside and methyl 3,6-di-O-trityl-alpha-D-mannopyranoside with one equivalent of the donor 1 gave rise to the isomeric tetrasaccharide derivatives, Manalpha1-->3(Manalpha1-->6)Manalpha1-->6ManalphaOMe and Manalpha1-->3(Manalpha1-->6)Manalpha1-->3ManalphaOMe, respectively. The latter derivative was further mannosylated at the remaining 6-O-trityl acceptor site to give the protected pentasaccharide Manalpha1-->3(Manalpha1-->6)Manalpha1-->3(Manalpha1-->6)ManalphaOMe. The isomeric pentasaccharide, Manalpha1-->3(Manalpha1-->6)Manalpha1-->6(Manalpha1-->3)ManalphaOMe, was prepared by reaction of 1 with the 6-O-trityl derivative of (Manalpha1-->3)ManalphaOMe. In a similar fashion, 6'- and 6"-O-trityl derivatives of the branched trisaccharide Manalpha1-->3(Manalpha1-->6)ManalphaOMe served as precursors for two isomeric mannohexaosides. The 3,6-di-O-trityl ether of ManalphaOMe and the 6',6"-di-O-trityl ether of Manalpha1-->3(Manalpha1-->6)ManalphaX (X=OMe or SEt) were efficiently bis-glycosylated with the donor 1 to give the corresponding protected mannoheptaoside and mannononaoside. The yields of these glycosylations with the donor 1 ranged from 50 to 66 %. Final deprotection of all the oligosaccharides was straightforward and afforded the target products in high yields. Both the acylated and deprotected products were characterized, and the intersaccharide connectivities were elucidated by extensive one- and two-dimensional NMR spectroscopy. The described blockwise convergent approach allows assembly of a variety of 3,6-branched mannooligosaccharides.
糖三苯甲基醚与糖1,2 - O -(1 - 氰基)亚乙基衍生物(三苯甲基 - 氰基亚乙基缩合反应)已应用于具有Manα1→3(Manα1→6)Man结构基序的高度分支(树枝状)甘露寡糖的合成。用于组装这些寡糖的汇聚合成策略基于使用已经带有该结构基序的糖基受体和/或糖基供体。前者由ManαOMe、Manα1→3ManαOMe和Manα1→3(Manα1→6)ManαX(其中X = OMe或SEt)的单三苯甲基醚和二三苯甲基醚代表。关键的糖基供体是全乙酰化的1,2 - O -(1 - 氰基)亚乙基 - 3,6 - 二 - O -(α - D - 甘露吡喃糖基)-β - D - 甘露吡喃糖(1),它是通过已知的1,2 - O -(1 - 氰基)亚乙基 - β - D - 甘露吡喃糖与四 - O - 乙酰基 - α - D - 甘露吡喃糖基溴进行正交的赫尔费里希糖基化反应,然后进行O - 乙酰化反应制备得到的。6 - O - 三苯甲基 - α - D - 甘露吡喃糖苷的乙酸酯和3,6 - 二 - O - 三苯甲基 - α - D - 甘露吡喃糖苷的乙酸酯与一当量的供体1进行糖基化反应,分别得到异构体四糖衍生物Manα1→3(Manα1→6)Manα1→6ManαOMe和Manα1→3(Manα1→6)Manα1→3ManαOMe。后一种衍生物在剩余的6 - O - 三苯甲基受体位点进一步进行甘露糖基化反应,得到受保护的五糖Manα1→3(Manα1→6)Manα1→3(Manα1→6)ManαOMe。异构体五糖Manα1→3(Manα1→6)Manα1→6(Manα1→3)ManαOMe是通过1与(Manα1→3)ManαOMe的6 - O - 三苯甲基衍生物反应制备得到的。以类似的方式,分支三糖Manα1→3(Manα1→6)ManαOMe的6'-和6'' - O - 三苯甲基衍生物用作两种异构体甘露六糖的前体。ManαOMe的3,6 - 二 - O - 三苯甲基醚和Manα1→3(Manα1→6)ManαX(X = OMe或SEt)的6',6'' - 二 - O - 三苯甲基醚与供体1进行高效的双糖基化反应,得到相应的受保护的甘露七糖和甘露九糖。这些与供体1进行糖基化反应的产率范围为50%至66%。所有寡糖的最终脱保护操作简单直接,并且以高产率得到目标产物。对酰化产物和脱保护产物均进行了表征,并通过广泛的一维和二维核磁共振光谱对糖间连接进行了阐明。所描述的逐步汇聚方法允许组装多种3,6 - 分支的甘露寡糖。