Han Yang, Wang Xiaoling, Tao Qiang, Yang Bo, Zhu Feng
Frontiers Science Center for Transformative Molecules (FSCTM), Center for Chemical Glycobiology, Shanghai Key Laboratory for Molecular Engineering of Chiral Drugs, School of Chemistry and Chemical Engineering, Zhangjiang Institute for Advanced Study, Shanghai Jiao Tong University, Shanghai, 200240, P.R. China.
School of Food Science and Pharmaceutical Engineering, Nanjing Normal University, Nanjing, 210023, P.R. China.
Angew Chem Int Ed Engl. 2025 May;64(21):e202504504. doi: 10.1002/anie.202504504. Epub 2025 Mar 23.
Metabolically robust C-glycosides are crucial in various biological and medical applications, underscoring the need for efficient synthesis methods. While radical C-glycosylation reactions are known for their reliability and functional group tolerance, challenges such as glycosyl donor stability and atom economy persist. In this study, we investigate the underexplored potential of condition-controlled divergent synthesis of C-glycosides through a switchable photocatalytic C-glycosylation strategy, involving reductive anomeric C─O bond cleavage. Utilizing simple, readily available, and bench-stable glycosyl benzoates as novel O-based glycosyl radical precursors, we successfully achieve deoxygenative glycosylation of simple alkenes and styryl boronic acids, establishing a versatile platform for C-glycoside synthesis. A critical aspect of the challenging reductive cleavage of these benzoate esters is the introduction of strong single-electron transfer (SET) reductants, combined with Brønsted acids to accelerate fragmentation following substrate reduction. Notably, CO , generated via the consecutive photon-induced electron transfer process, is utilized for the first time in glycosylation reactions. By meticulously tuning the reaction conditions, including photocatalysts and formate additives, we facilitate the divergent synthesis of alkyl and alkenyl C-glycosides with good to high stereoselectivity and yields. Mechanistic studies provide insight into the reaction pathway and the underlying rationale behind this finely tuned, easily controlled photocatalytic system.
代谢稳定的 C-糖苷在各种生物和医学应用中至关重要,这凸显了高效合成方法的必要性。虽然自由基 C-糖基化反应以其可靠性和官能团耐受性而闻名,但诸如糖基供体稳定性和原子经济性等挑战仍然存在。在本研究中,我们通过可切换的光催化 C-糖基化策略,研究了条件控制的 C-糖苷发散合成中尚未充分探索的潜力,该策略涉及还原性异头碳-氧键裂解。利用简单、易得且在实验室中稳定的苯甲酸糖酯作为新型基于氧的糖基自由基前体,我们成功实现了简单烯烃和苯乙烯硼酸的脱氧糖基化,建立了一个通用的 C-糖苷合成平台。这些苯甲酸酯具有挑战性的还原裂解的一个关键方面是引入强单电子转移(SET)还原剂,并结合布朗斯特酸以加速底物还原后的碎片化。值得注意的是,通过连续光子诱导电子转移过程产生的 CO 首次用于糖基化反应。通过精心调整反应条件,包括光催化剂和甲酸盐添加剂,我们促进了具有良好至高立体选择性和产率的烷基和烯基 C-糖苷的发散合成。机理研究深入了解了反应途径以及这个精细调节、易于控制的光催化系统背后的基本原理。