Zhu Wenqing, Shi Yue, Lu Jinfei, Han Fengan, Luo Wenhao, Xu Dezhu, Guo Tenglong, Huang Genping, Kühn Fritz E, Zhang Bo, Zhang Tao
CAS Key Laboratory of Science and Technology on Applied Catalysis, Dalian Institute of Chemical Physics, Chinese Academy of Sciences, Dalian, 116023, China.
University of Chinese Academy of Sciences, Beijing, 100049, China.
ChemSusChem. 2024 Mar 8;17(5):e202301421. doi: 10.1002/cssc.202301421. Epub 2024 Jan 15.
An efficiently catalyzed synthesis of pharmaceutically relevant 1,2,3-trazoles from renewable resources is highly desirable. However, due to incompatible catalysis conditions, this endeavor remained challenging so far. Herein, a practical access protocol to 1,2,3-triazoles, starting from lignin phenolic β-O-4 with γ-OH group utilizing a vanadium-based catalyst is presented. A broad substrate scope reaching up to 97 % yield of 1,2,3-triazoles are obtained. The reaction pathway includes selective cleavage of double C-O bonds, cycloaddition, and dehydrogenation. Mechanistic studies and density-functional theory (DFT) calculations suggest that the V-based complex acts as a bifunctional catalyst for both selective C-O bonds cleavage and dehydrogenation. This synthetic pathway has been applied for the synthesis of pharmacological and biological active carbohydrate derivatives starting from biomass components as feedstock, enabling a potential sustainable route to triazolyl carbohydrate derivatives, which paves the way for lignin-based heterocyclic aromatics in the pharmaceutical applications.
从可再生资源高效催化合成与药物相关的1,2,3-三唑是非常可取的。然而,由于催化条件不兼容,到目前为止,这一努力仍然具有挑战性。在此,提出了一种从具有γ-OH基团的木质素酚类β-O-4出发,利用钒基催化剂制备1,2,3-三唑的实用方法。获得了高达97%产率的1,2,3-三唑的广泛底物范围。反应途径包括双C-O键的选择性断裂、环加成和脱氢。机理研究和密度泛函理论(DFT)计算表明,钒基配合物作为一种双功能催化剂,用于选择性C-O键断裂和脱氢。这种合成途径已被应用于从生物质成分作为原料合成药理和生物活性碳水化合物衍生物,为三唑基碳水化合物衍生物提供了一条潜在的可持续路线,为木质素基杂环芳烃在药物应用中铺平了道路。