UMR 8601 CNRS, Université Paris Descartes, Sorbonne Paris Cité, UFR Biomédicale, 45 rue des Saints Pères, 75006 Paris, France.
Chemistry. 2013 May 3;19(19):6052-66. doi: 10.1002/chem.201203725. Epub 2013 Feb 18.
Herein we investigate the scope and limitations of a new synthetic approach towards α- and β-ketopyranosides relying on the functionalization of the anomeric C-H bond of carbohydrates by insertion of a metal carbene. A key bromoacetate grafted at the 2-position is the cornerstone of a stereoselective glycosylation/diazotransfer/quaternarization sequence that makes possible the construction of a quaternary center with complete control of the stereochemistry. This sequence shows a good tolerance toward protecting groups commonly used in carbohydrate chemistry and gives rise to quaternary disaccharides with good efficiency. In the case of a disaccharide with a more restricted conformation, this functionalization process can be hampered by the steric demand next to the targeted anomeric position. In addition, the formation of transient orthoesters during the glycosylation step may also reduce the overall efficiency of the synthetic sequence.
在此,我们研究了一种新的合成方法的范围和局限性,该方法依赖于通过插入金属卡宾来对糖的端基 C-H 键进行功能化,从而得到α-和β-酮吡喃糖苷。在 2 位接上的关键溴乙酸酯是立体选择性糖苷化/重氮转移/季铵化序列的基石,该序列可以构建具有完全立体化学控制的季碳原子。该序列对碳水化合物化学中常用的保护基具有良好的耐受性,并能有效地得到季戊四醇二糖。在具有更受限构象的二糖的情况下,该功能化过程可能会受到目标端基位置附近的空间位阻的阻碍。此外,在糖苷化步骤中形成的瞬态邻苯二甲酸酯也可能降低合成序列的整体效率。