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Installation of Electron Donating Protective Groups a Strategy for Glycosylating Unreactive Thioglycosyl Acceptors using the Pre-activation Based Glycosylation Method1

机译:电子给体保护基的安装一种使用基于预活化的糖基化方法将未反应的硫糖基受体糖基化的策略1

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摘要

The pre-activation based chemoselective glycosylation is a powerful strategy for oligosaccharide synthesis with its successful application in assemblies of many complex oligosaccharides. However, difficulties were encountered in reactions where glycosyl donors bearing multiple electron withdrawing groups failed to glycosylate hindered unreactive acceptors. In order to overcome this problem, it was discovered that the introduction of electron donating protective groups onto the glycosyl donors can considerably enhance their glycosylating power, leading to productive glycosylations even with unreactive acceptors. This observation is quite general, which can be extended to a wide range of glycosylation reactions, including one-pot syntheses of chondroitin and heparin trisaccharides. The structures of the reactive intermediates formed upon pre-activation were determined through low temperature NMR studies. It was found that for a donor with multiple electron withdrawing groups, the glycosyl triflate was formed following pre-activation, while the dioxalenium ion was the major intermediate with a donor bearing electron donating protective groups. As donors were all cleanly pre-activated prior to the addition of the acceptors, the observed reactivity difference between these donors was not due to selective activation encountered in the traditional armed-disarmed strategy. Rather, it was rationalized by the inherent internal energy difference between the reactive intermediates and associated oxacarbenium ion like transition states during nucleophilic attack by the acceptor.
机译:基于激活前的化学选择性糖基化是寡糖合成的一种有力策略,因为它成功地应用于许多复杂寡糖的组装中。但是,在带有多个吸电子基团的糖基供体不能糖基化的反应中遇到困难,阻碍了未反应的受体。为了克服该问题,发现在糖基供体上引入给电子保护基团可以显着增强其糖基化能力,即使在没有反应性受体的情况下也导致生产性糖基化。该观察是相当普遍的,其可以扩展到广泛的糖基化反应,包括软骨素和肝素三糖的一锅法合成。通过低温NMR研究确定在预活化时形成的反应性中间体的结构。发现对于具有多个吸电子基团的供体,预活化后形成三氟甲磺酸糖基酯,而二恶ox鎓离子是具有带电子给体保护基团的供体的主要中间体。由于所有供体在添加受体之前都已被完全预先激活,因此观察到的这些供体之间的反应性差异并不是由于传统的武装撤防策略中遇到的选择性激活所致。而是通过受体之间的亲核攻击期间反应性中间体与相关的氧杂碳鎓离子类似的过渡态之间固有的内在能量差异来合理化。

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