Xing Qi, Jiang Ding, Zhang Jiayin, Guan Liangyu, Li Ting, Zhao Yi, Di Man, Chen Huangcan, Che Chao, Zhu Zhendong
BayRay Innovation Center, Shenzhen Bay Laboratory, Shenzhen, 518132, China.
State Key Laboratory of Chemical Oncogenomics and Key Laboratory of Chemical Genomics, Peking University Shenzhen Graduate School, Shenzhen, 518055, China.
Commun Chem. 2022 Jul 6;5(1):79. doi: 10.1038/s42004-022-00692-6.
Nitrene transfer chemistry is an effective strategy for introducing C-N bonds, which are ubiquitous in pharmaceuticals, agrochemicals and diverse bioactive natural products. The development of chemical methodology that can functionalize unique sites within natural products through nitrene transfer remains a challenge in the field. Herein, we developed copper catalyzed chemoselective allylic C-H amination and catalyst-free visible-light induced aziridination of alkenes through nitrene transfer. In general, both reactions tolerate a wide range of functional groups and occur with predictable regioselectivity. Furthermore, combination of these two methods enable the intermolecular chemo-selective late-stage amination of biologically active natural products, leading to C-H amination or C=C aziridination products in a tunable way. A series of control experiments indicate two-step radical processes were involved in both reaction systems.
氮宾转移化学是引入C-N键的有效策略,C-N键广泛存在于药物、农用化学品和各种生物活性天然产物中。开发能够通过氮宾转移使天然产物中独特位点官能化的化学方法仍然是该领域的一个挑战。在此,我们开发了铜催化的化学选择性烯丙基C-H胺化反应以及通过氮宾转移实现的无催化剂可见光诱导的烯烃氮杂环丙烷化反应。一般来说,这两种反应都能耐受多种官能团,并且具有可预测的区域选择性。此外,这两种方法的结合能够实现生物活性天然产物的分子间化学选择性后期胺化反应,以可调控的方式生成C-H胺化产物或C=C氮杂环丙烷化产物。一系列对照实验表明,两个反应体系均涉及两步自由基过程。