有机化学 ›› 2026, Vol. 46 ›› Issue (3): 941-950.DOI: 10.6023/cjoc202509001 上一篇    下一篇

研究论文

基于联烯类底物的去芳构化[4+2]反应研究

秦永圳a, 陈洋a,b,*(), 何述钟a,b,*(), 杨岚a,b,*()   

  1. a 贵州大学药学院 贵阳 550025
    b 贵州省合成药物工程实验室 贵阳 550025
  • 收稿日期:2025-09-01 修回日期:2025-11-21 发布日期:2025-12-25
  • 通讯作者: 陈洋, 何述钟, 杨岚
  • 基金资助:
    国家自然科学基金(22361008); 国家自然科学基金(82473814); 国家自然科学基金(22061008); 贵州省基础研究计划(ZK[2023]-097); 贵州省基础研究计划(MS[2025]-654)

Study on Dearomatization [4+2] Reactions of Allene Substrates

Yongzhen Qina, Yang Chena,b,*(), Shuzhong Hea,b,*(), Lan Yanga,b,*()   

  1. a College of Pharmacy, Guizhou University, Guiyang 550025
    b Drug Synthetic Engineering Laboratory of Guizhou Province, Guizhou University, Guiyang 550025
  • Received:2025-09-01 Revised:2025-11-21 Published:2025-12-25
  • Contact: Yang Chen, Shuzhong He, Lan Yang
  • Supported by:
    National Natural Science Foundation of China(22361008); National Natural Science Foundation of China(82473814); National Natural Science Foundation of China(22061008); Guizhou Provincial Science and Technology Foundation(ZK[2023]-097); Guizhou Provincial Science and Technology Foundation(MS[2025]-654)

双环[2.2.2]辛烷骨架广泛存在于具有复杂结构的天然产物中, 这类化合物因其生物活性的多样性而备受关注. 因此如何构建这类分子的笼状结构是药物合成中一个重要的课题. 本研究发展了一类联烯类底物的去芳构化[4+2]反应, 实现了二氢呋喃并双环[2.2.2]辛烷三环骨架的构建. 本课题围绕基于苯环为双烯体的[4+2]反应策略, 开发了一类新的芳环烷氧基联烯底物的去芳构化[4+2]反应, 反应具有原料易得, 未使用催化剂催化, 反应条件更加温和, 环境友好程度更佳, 产物结构单一, 反应步骤少, 成本更加低廉, 最终产率优秀等优点. 相对于报道的苯环联烯类底物的去芳构化[4+2]反应, 该反应更简捷, 在未使用催化剂催化的条件下, 仅在热力学条件下完成了环加成产物的构建, 最终完成了化合物2a~2r的合成. 对化合物2e2f进行了单晶培养, 通过X-ray单晶衍射实验确定了二氢呋喃并双环[2.2.2]辛烷三环骨架的绝对构型. 在此基础上通过Suzuki偶联反应完成了化合物4a~4d的合成, 通过生物活性测定发现化合物4a对白血病HL-60体外肿瘤生长有半数抑制活性, 其对白血病HL-60细胞的IC50值为(11.96±0.30) μmol/L, 继而为此类复杂三环体系的药物化学研究奠定了基础.

关键词: 双环[2.2.2]辛烷, [4+2]反应, 联烯, 去芳构化

The bicyclic [2.2.2] octane skeleton is widely present in natural products with complex structures, and such compounds have attracted much attention due to the diversity of their biological activities. Therefore, how to construct the cage structure of such molecules is an important issue in drug synthesis. In this study, a class of dearomatization [4+2] reactions of diene substrates were developed, and the construction of a dihydrofuran bicyclic [2.2.2] octane tricyclic skeleton was achieved. This project focuses on the [4+2] reaction strategy based on benzene rings as dienes, and has developed a new type of dearomatization [4+2] reaction for arylcycloalkoxy diene substrates. By employing accessible raw materials and catalyst-free conditions, this approach offers the advantages of mild reactions, environmental benignity, single-product selectivity, fewer synthetic steps, and high cost-effectiveness, with the [4+2] reaction affording an excellent final yield. Compared with the reported dearomatization [4+2] reaction of phenylcyclopropene substrates, this reaction is more straightforward. The construction of cycloaddition products was completed only under thermodynamic conditions without the use of a catalyst. Finally, the synthesis of compounds 2a~2r was completed, and the single crystal cultures of compounds 2e and 2f were carried out. The absolute configuration of the dihydrofuran bicyclic [2.2.2] octane tricyclic skeleton was determined through X-ray single crystal diffraction experiments. On this basis, the synthesis of 4a~4d was completed through Suzuki coupling reaction. Through bioactivity determination, it was found that compound 4a had half inhibitory activity on the in vitro tumor growth of leukemia HL-60, and its IC50 value for leukemia HL-60 cells was (11.96±0.30) μmol/L. This then laid the foundation for the medicinal chemistry research of such complex tricyclic systems.

Key words: bicyclic [2.2.2] octane, [4+2] reaction, allenes, dearomatization