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通过选择性差向异构化合成稀有糖异构体。

Synthesis of rare sugar isomers through site-selective epimerization.

机构信息

Department of Chemistry, Massachusetts Institute of Technology, Cambridge, MA, USA.

出版信息

Nature. 2020 Feb;578(7795):403-408. doi: 10.1038/s41586-020-1937-1. Epub 2020 Jan 15.

Abstract

Glycans have diverse physiological functions, ranging from energy storage and structural integrity to cell signalling and the regulation of intracellular processes. Although biomass-derived carbohydrates (such as D-glucose, D-xylose and D-galactose) are extracted on commercial scales, and serve as renewable chemical feedstocks and building blocks, there are hundreds of distinct monosaccharides that typically cannot be isolated from their natural sources and must instead be prepared through multistep chemical or enzymatic syntheses. These 'rare' sugars feature prominently in bioactive natural products and pharmaceuticals, including antiviral, antibacterial, anticancer and cardiac drugs. Here we report the preparation of rare sugar isomers directly from biomass carbohydrates through site-selective epimerization reactions. Mechanistic studies establish that these reactions proceed under kinetic control, through sequential steps of hydrogen-atom abstraction and hydrogen-atom donation mediated by two distinct catalysts. This synthetic strategy provides concise and potentially extensive access to this valuable class of natural compounds.

摘要

糖具有多种生理功能,包括能量储存和结构完整性、细胞信号传递以及细胞内过程的调节。虽然商业上可以提取生物质衍生的碳水化合物(如 D-葡萄糖、D-木糖和 D-半乳糖),并将其作为可再生的化学原料和构建块,但仍有数百种独特的单糖通常无法从其天然来源中分离出来,而必须通过多步化学或酶合成来制备。这些“稀有”糖在生物活性天然产物和药物中占有重要地位,包括抗病毒、抗菌、抗癌和心脏药物。在这里,我们报告了通过选择性的差向异构化反应,直接从生物质碳水化合物制备稀有糖异构体。机理研究表明,这些反应在动力学控制下进行,通过两个不同催化剂介导的氢原子的抽提和氢原子的供体顺序步骤进行。这种合成策略为这一宝贵的天然化合物提供了简洁且具有广泛应用潜力的合成途径。

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