Schuppe Alexander W, Liu Yannan, Gonzalez-Hurtado Elsie, Zhao Yizhou, Jiang Xuefeng, Ibarraran Sebastian, Huang David, Wang Emma, Lee Jaehoo, Loria J Patrick, Dixit Vishwa Deep, Li Xin, Newhouse Timothy R
Department of Chemistry, Yale University, 225 Prospect Street, New Haven, Connecticut 06520-8107, United States.
Department of Pathology, Immunobiology, Comparative Medicine, Yale School of Medicine, 310 Cedar Street, New Haven, Connecticut 06520, United States.
Chem. 2022 Oct 13;8(10):2856-2887. doi: 10.1016/j.chempr.2022.09.012. Epub 2022 Oct 4.
Highly substituted pyridine scaffolds are found in many biologically active natural products and therapeutics. Accordingly, numerous complementary approaches to obtain differentially substituted pyridines have been disclosed. This article delineates the evolution of the synthetic strategies designed to assemble the demanding tetrasubstituted pyridine core present in the limonoid alkaloids isolated from , including xylogranatopyridine B, granatumine A and related congeners. In addition, NMR calculations suggested structural misassignment of several limonoid alkaloids, and predicted their C3-epimers as the correct structures, which was further validated unequivocally through chemical synthesis. The materials produced in this study were evaluated for cytotoxicity, anti-oxidant effects, anti-inflammatory action, PTP1B and Nlrp3 inflammasome inhibition, which led to compelling anti-inflammatory activity and anti-oxidant effects being discovered.
高度取代的吡啶骨架存在于许多具有生物活性的天然产物和治疗药物中。因此,已经公开了许多获得不同取代吡啶的互补方法。本文描述了旨在组装从[具体植物名称]中分离出的柠檬苦素类生物碱(包括木糖石榴吡啶B、石榴碱A及相关同系物)中所需的四取代吡啶核心的合成策略的演变。此外,核磁共振计算表明几种柠檬苦素类生物碱的结构归属错误,并预测其C3-差向异构体为正确结构,这通过化学合成得到了进一步明确验证。对本研究中产生的材料进行了细胞毒性、抗氧化作用、抗炎作用、蛋白酪氨酸磷酸酶1B(PTP1B)和Nlrp3炎性小体抑制活性评估,结果发现了显著的抗炎活性和抗氧化作用。