Guangdong Key Laboratory of Natural Medicine Research and Development, College of Pharmacy, The First Dongguan Affiliated Hospital, Guangdong Medical University, Dongguan 523808, China.
College of Chemistry, Zhengzhou University, Zhengzhou 450001, China.
Sci Adv. 2023 Jan 27;9(4):eade2981. doi: 10.1126/sciadv.ade2981.
Late-stage skeletal reorganization (LSSR) is a type of fascinating organic transformation processes in natural product total synthesis. However, few facile and effective LSSR methodologies have hitherto been developed. Here, LSSR of limonoid natural products via photochemical cascades is first reported. Starting from xyloelves A and B, nine distinct limonoid products with five unprecedented scaffolds are generated. The photocascade pathways of these natural products and mechanistic rationale via intramolecular triplet energy transfer are revealed by quantum mechanical calculations. Most notably, ultraviolet light-driven transannular and stereoselective C → C 1,4-acyl migration is first found as a photochemical approach, particularly for LSSR of natural products. This approach holds promise for designing LSSR strategies to access bioactive cage-like molecules. Besides that, our findings provide a clear proof of concept for natural product photobiosynthesis. Xyloelf A, substantially ameliorating concanavalin A-induced liver injury in mice, could be used as a unique molecular template for hepatoprotective drug discovery.
晚期骨骼重组(LSSR)是天然产物全合成中一种引人入胜的有机转化过程。然而,迄今为止,很少有简单有效的 LSSR 方法得到发展。在此,首次报道了通过光化学反应级联实现的萜类天然产物的 LSSR。从 xyloelves A 和 B 出发,生成了九个具有五个前所未有的骨架的独特的柠檬苦素产物。通过量子力学计算揭示了这些天然产物的光反应途径和通过分子内三重态能量转移的机理。值得注意的是,首次发现了紫外光驱动的环间和立体选择性 C→C 1,4-酰基迁移作为一种光化学方法,特别是用于天然产物的 LSSR。这种方法有望设计 LSSR 策略来获得生物活性笼状分子。此外,我们的发现为天然产物光生物合成提供了明确的概念验证。Xyloelf A 可显著改善小鼠的伴刀豆球蛋白 A 诱导的肝损伤,可用作肝保护药物发现的独特分子模板。