Zhang Ding, Liang Weiqiu, Zhang Zhihan, Tan Lida, Yuan Zehao, Hu Zhennan, Liu Zhibo, Li Chao-Jun, Li Jianbin
School of Science and Engineering, The Chinese University of Hong Kong, Shenzhen, Guangdong, China.
Guangdong Basic Research Centre of Excellence for Aggregate Science, School of Science and Engineering, The Chinese University of Hong Kong, Shenzhen, Guangdong, China.
Nat Commun. 2025 Sep 18;16(1):8305. doi: 10.1038/s41467-025-61857-0.
Radical methylation ranks among the most important yet challenging transformations in chemistry and biology, which often involves small and unstable radical intermediates, such as the methyl radical, and results in low reactivity and poor selectivity. Herein, we report a photoactive, biomimetic reagent to address some facets of these challenges by leveraging a bulky and stabilised α-aminomethyl radical, which can offer enhanced control over radical generation and transfer. Our bioinspired transfer methylation protocol enables direct and selective C(sp)-H methylation across a wide spectrum of heteroarenes, from simple scaffolds to complex drug molecules, including the thus far elusive C4-methylation of free quinolines. Mechanistic studies reveal that the unique α-aminomethyl radical intermediate undergoes an addition-elimination sequence reminiscent of natural methyltransferases and yields balanced reactivity and selectivity.
自由基甲基化是化学和生物学中最重要但也最具挑战性的转化反应之一,该反应通常涉及如甲基自由基等小且不稳定的自由基中间体,导致反应活性低且选择性差。在此,我们报道了一种光活性仿生试剂,通过利用庞大且稳定的α-氨基甲基自由基来应对这些挑战的某些方面,该自由基能够增强对自由基生成和转移的控制。我们受生物启发的转移甲基化方案能够实现从简单骨架到复杂药物分子等多种杂芳烃的直接且选择性C(sp)-H甲基化,包括迄今为止难以实现的游离喹啉的C4甲基化。机理研究表明,独特的α-氨基甲基自由基中间体经历了类似于天然甲基转移酶的加成-消除序列,从而产生了平衡的反应活性和选择性。