Wang Sanshan, Chen Kaiqi, Guo Fusheng, Zhu Wenneng, Liu Chendi, Dong Haoran, Yu Jin-Quan, Lei Xiaoguang
Beijing National Laboratory for Molecular Sciences, Key Laboratory of Bioorganic Chemistry and Molecular Engineering of Ministry of Education, Department of Chemical Biology, College of Chemistry and Molecular Engineering, Synthetic and Functional Biomolecules Center, and Peking-Tsinghua Center for Life Sciences, Peking University, Beijing 100871, China.
Department of Chemistry, The Scripps Research Institute,10550 North Torrey Pines Road, La Jolla, California 92037, United States.
ACS Cent Sci. 2023 Jun 9;9(6):1129-1139. doi: 10.1021/acscentsci.3c00201. eCollection 2023 Jun 28.
-Glycosides are critical motifs embedded in many bioactive natural products. The inert -glycosides are privileged structures for developing therapeutic agents owing to their high chemical and metabolic stability. Despite the comprehensive strategies and tactics established in the past few decades, highly efficient -glycoside syntheses via C-C coupling with excellent regio-, chemo-, and stereoselectivity are still needed. Here, we report the efficient Pd-catalyzed glycosylation of C-H bonds promoted by weak coordination with native carboxylic acids without external directing groups to install various glycals to the structurally diverse aglycon parts. Mechanistic evidence points to the participation of a glycal radical donor in the C-H coupling reaction. The method has been applied to a wide range of substrates (over 60 examples), including many marketed drug molecules. Natural product- or drug-like scaffolds with compelling bioactivities have been constructed using a late-stage diversification strategy. Remarkably, a new potent sodium-glucose cotransporter-2 inhibitor with antidiabetic potential has been discovered, and the pharmacokinetic/pharmacodynamic profiles of drug molecules have been changed using our C-H glycosylation approach. The method developed here provides a powerful tool for efficiently synthesizing -glycosides to facilitate drug discovery.
糖苷是许多生物活性天然产物中嵌入的关键基序。惰性糖苷由于其高化学稳定性和代谢稳定性,是开发治疗剂的优势结构。尽管在过去几十年中已经建立了全面的策略和方法,但仍需要通过具有优异区域、化学和立体选择性的C-C偶联来高效合成糖苷。在此,我们报道了在没有外部导向基团的情况下,通过与天然羧酸的弱配位促进的高效钯催化C-H键糖基化反应,可将各种糖烯安装到结构多样的苷元部分。机理证据表明糖烯自由基供体参与了C-H偶联反应。该方法已应用于广泛的底物(超过60个实例),包括许多市售药物分子。利用后期多样化策略构建了具有引人注目的生物活性的天然产物或类药物支架。值得注意的是,发现了一种具有抗糖尿病潜力的新型强效钠-葡萄糖协同转运蛋白-2抑制剂,并且使用我们的C-H糖基化方法改变了药物分子的药代动力学/药效学特征。这里开发的方法为高效合成糖苷以促进药物发现提供了一个强大的工具。