Carbene-catalyzed α,γ-deuteration of enals under oxidative conditions

Organic compounds with deuterated allyl groups are very attractive for drug entities to enhance pharmacokinetic properties, since allylic C-H bonds are prone to metabolic oxidation and the deuterated versions can be less prone to such metabolism. However, direct deuteration at allylic C-H moieties i...

全面介紹

Saved in:
書目詳細資料
Main Authors: Zhang, Xiaolei, Chen, Qiao, Song, Runjiang, Xu, Jun, Tian, Weiyi, Li, Shaoyuan, Jin, Zhichao, Chi, Robin Yonggui
其他作者: School of Physical and Mathematical Sciences
格式: Article
語言:English
出版: 2021
主題:
在線閱讀:https://hdl.handle.net/10356/148639
標簽: 添加標簽
沒有標簽, 成為第一個標記此記錄!
機構: Nanyang Technological University
語言: English
實物特徵
總結:Organic compounds with deuterated allyl groups are very attractive for drug entities to enhance pharmacokinetic properties, since allylic C-H bonds are prone to metabolic oxidation and the deuterated versions can be less prone to such metabolism. However, direct deuteration at allylic C-H moieties is still a challenge. Few examples have been reported by transition-metal catalysis and no such reports have been documented in an organocatalytic fashion. Herein, a carbene-catalyzed C-H deuteration of enal at allylic C(sp3) and C(sp2) centers is disclosed. Addition of the carbene catalyst to the aldehyde moiety of enals to eventually activate the α- A nd ?-carbon atom under oxidative conditions is critical to achieve high deuterium incorporation. Key mechanistic steps of our reaction include carbene catalyst addition, azolium ester formation, remote ?-carbon activation, reversible α- A nd ?-carbon enolization, and iterative H/D exchanges. The reaction is performed under mild conditions using D2O as the deuterium source to efficiently afford α,?-deuterated 2-alkenoic acids and their derivatives in good to excellent yields and high deuterium incorporation. These labeled products containing carbonyl and allyl bifunctionalities are valuable building blocks for further transformations, eventually leading to otherwise challenging labeled targets including deuterated allylic derivatives, aliphatic derivatives and polydeuterated drugs (e.g., Ibuprofen). The convenient and scalable synthesis has application potential for materials and pharmaceuticals.