Xu Chunfa, Zhang Qinshuo, Yusupu Yimuran
Key Laboratory of Molecule Synthesis and Function Discovery, College of Chemistry, Fuzhou, University, Fuzhou, 350108, China.
Key Laboratory of Organofluorine Chemistry, Shanghai Institute of Organic Chemistry, Chinese Academy of Sciences, Shanghai, 200032, China.
Chembiochem. 2025 Feb 3;26(5):e202400864. doi: 10.1002/cbic.202400864. Epub 2025 Feb 5.
N-glycosides exhibit diverse biological and pharmacological activities, making their efficient synthesis crucial for both biological research and drug development. Traditional acid-promoted N-glycosylation methods, which rely on the formation of oxocarbenium intermediates, often face significant challenges. These methods are water-sensitive and typically require neighboring group participation to achieve high selectivity. Furthermore, they depend on acid activation, rendering them incompatible with alkyl amine. Additionally, low-nucleophilicity amides often need to be converted into their TMS-derivatives to enhance reactivity, limiting the direct use of such substrates. In contrast, radical-based strategies have emerged as a promising alternative, addressing many of these limitations and leading to notable advances in N-glycosylation. This review explores the unique properties of N-glycosides, the inherent challenges of traditional N-glycosylation techniques, and the transformative advantages offered by radical-based approaches. Specifically, it highlights recent advancements in radical-mediated N-glycosylation, including photoredox radical strategies, radical/ionic hybrid approaches, and metallaphotoredox catalysis, accompanied by a detailed discussion of the underlying mechanisms. Finally, the ongoing challenges and potential future directions of N-glycoside synthesis using radical strategies are presented.
N-糖苷具有多种生物和药理活性,因此其高效合成对于生物学研究和药物开发都至关重要。传统的酸促进N-糖基化方法依赖于氧鎓离子中间体的形成,常常面临重大挑战。这些方法对水敏感,通常需要邻基参与以实现高选择性。此外,它们依赖于酸活化,这使得它们与烷基胺不相容。另外,低亲核性的酰胺常常需要转化为其TMS衍生物以增强反应性,从而限制了此类底物的直接使用。相比之下,基于自由基的策略已成为一种有前途的替代方法,解决了许多这些限制,并在N-糖基化方面取得了显著进展。本综述探讨了N-糖苷的独特性质、传统N-糖基化技术固有的挑战以及基于自由基方法所提供的变革性优势。具体而言,它突出了自由基介导的N-糖基化的最新进展,包括光氧化还原自由基策略、自由基/离子混合方法和金属光氧化还原催化,并对其潜在机制进行了详细讨论。最后,介绍了使用自由基策略进行N-糖苷合成目前面临的挑战和潜在的未来方向。