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研究论文

光催化氰甲基自由基参与的串联环化反应

保德玉a, 陈彩平b, 潘炬彤b, 周冰洁b, 杨慧c, 李康葵a,*, 周永云a,*, 樊保敏a,b,*   

  1. a云南民族大学 化学与环境学院 云南省手性功能物质研究与利用重点实验室 昆明 650504;
    b云南民族大学 民族医药学院 民族药资源化学教育部重点实验室 昆明 650504;
    c西华大学 理学院 小分子靶向诊疗药物四川省工程研究中心 成都 610039
  • 投稿日期:2026-06-29
  • 通讯作者: *E-mail: likk@ymu.edu.cn; zhouyongyundf@163.com; fanbaomin1979@163.com.
  • 基金资助:
    项目受国家自然科学基金(No. 22501244), 云南省科技厅项目(Nos. 202402AN360010, 202401BC070018, 202605AF350008), 云南省教育厅科学研究基金项目(No. 2025J0473)和小分子靶向诊疗药物四川省工程研究中心开放基金(No. XFZBXZLYW2025-003)资助.

Photocatalytic Cyanomethyl Radical-Involved Tandem Cyclization Reaction

Bao Deyua, Chen Caipingb, Pan Jutongb, Zhou Bingjieb, Yang Huic, Li Kangkuia,*, Zhou Yongyuna,*, Fan Baomina,b,*   

  1. aSchool of Chemistry and Environment, Yunnan Key Laboratory of Chiral Functional Substance Research and Application,Yunnan Minzu University, Kunming 650504, China;
    bSchool of Ethnic Medicine, Key Laboratory of Chemistry in Ethnic Medicinal Resources, Ministry of Education, Yunnan Minzu University, Kunming 650504, China;
    cSchool of Science, Sichuan Engineering Research Center of Molecular Targeted Diagnostic & Therapeutic Drugs, Xihua University, Chengdu 610039, China
  • Received:2026-06-29
  • Supported by:
    Project supported by Project supported by the National Natural Science Foundation of China (No. 22501244), the Yunnan Province Science and Technology Department (Nos. 202402AN360010, 202401BC070018, 202605AF350008), the Yunnan Provincial Department of Education Science Research Fund Project (No. 2025J0473) and the Opening Project of Sichuan Engineering Research Center for Molecular Targeted Diagnostic & Therapeutic Drug (No. XFZBXZLYW2025-003).

以4-色满酮和1-茚满酮为代表的苯并环酮结构广泛存在于天然产物与生物活性分子当中. 由于氰基修饰是药物结构改造优化的重要手段,因而在上述结构中引入氰基具有重要意义. 自由基参与的串联环化反应是构建官能团化苯并环酮的有效途径. 然而,合成氰基化4-色满酮和1-茚满酮的方法还十分有限,且条件较为苛刻. 本工作以溴乙腈作为自由基前体,发展了一种光催化自由基串联环化反应构建氰基化苯并环酮分子的高效方法. 该方法在温和的光催化条件下,通过溴乙腈产生氰甲基自由基引发2-烯基芳醛发生加成/环化两步反应,从而实现氰基化修饰的4-色满酮、1-茚满酮和二氢喹诺酮的高效构建. 该反应体系具有较好的底物普适性,并表现出较好官能团兼容性.

关键词: 光催化, 自由基环化, 溴乙腈, 氰甲基化, 4-色满酮

Benzocyclonone structures, represented by 4-chromanone and 1-indanone, are widely found in natural compounds and pharmaceuticals with important biological activities. Since cyano modification is an important strategy for structural modification and optimization in medicinal chemistry, the introduction of a cyano group into these structures is of great significance. Radical-driven cascade cyclization reactions have been developed as an effective means to build benzocyclones bearing various functional groups. However, existing methods for synthesizing cyanated 4-chromanone and 1-indanone are limited and often require harsh conditions. In this study, bromoacetonitrile was employed both as a radical precursor and a cyano source to develop an efficient photocatalytic radical cascade cyclization method for constructing cyano-substituted benzocyclonones. Under mild photocatalytic conditions, bromoacetonitrile generates a cyanomethyl radical that initiates a two-step addition and cyclization with 2-(allyloxy) aromatic aldehydes or its analogues, enabling the effective synthesis of cyano-modified 4-chromanone, 1-indanone, and dihydroquinolone derivatives. This reaction system demonstrates a wide substrate scope and enables the rapid construction of these structures under uniform standard conditions. Meanwhile, it shows good tolerance for various functional groups. Substrates containing iodine, bromine, ester, and sulfonyl groups all successfully undergo the desired transformations, producing target products in moderate to good yields. Notably, compared to previously used cyanide sources like trimethylsilyl cyanide and diazo compounds, bromoacetonitrile is safer and more readily accessible. Mechanistic investigations suggest the reaction proceeds through the addition of a cyanomethyl radical to a carbon-carbon double bond, forming an alkyl radical, which then undergoes intramolecular addition to the carbonyl group to create an oxygen radical intermediate. This intermediate undergoes an intramolecular 1,2-hydrogen atom transfer (1,2-HAT), which is then followed by single-electron oxidation and deprotonation, resulting in the final desired cyclization product. Overall, this research provides a mild and efficient method for simultaneously constructing benzocyclonone and performing cyano-modification, which is expected to advance the synthesis and discovery of related bioactive molecules.

Key words: photocatalysis, radical cyclization, bromoacetonitrile, cyanomethylation, 4-chromanone