Li Nian, Sitdikov Ruzal, Kale Ajit Prabhakar, Steverlynck Joost, Li Bo, Rueping Magnus
KAUST Catalysis Center (KCC), King Abdullah University Science and Technology (KAUST), Thuwal 23955-6900, Saudi Arabia.
Institute for Experimental Molecular Imaging, RWTH Aachen University, Forckenbeckstrasse 55, 52074, Aachen, Germany.
Beilstein J Org Chem. 2024 Oct 9;20:2500-2566. doi: 10.3762/bjoc.20.214. eCollection 2024.
With the resurgence of electrosynthesis in organic chemistry, there is a significant increase in the number of routes available for late-stage functionalization (LSF) of drugs. Electrosynthetic methods, which obviate the need for hazardous chemical oxidants or reductants, offer unprecedented control of reactions through the continuous variation of the applied potential and the possibility of combination with photochemical processes. This capability is a substantial advantage for performing electrochemical or photoelectrochemical LSF. Ultimately, these protocols are poised to become a vital component of the medicinal chemist's toolkit. In this review, we discuss electrochemical protocols that have been demonstrated to be applicable for the LSF of pharmaceutical drugs, their derivatives, and natural substrates. We present and analyze representative examples to illustrate the potential of electrochemistry or photoelectrochemistry for the LSF of valuable molecular scaffolds.
随着有机化学中电合成的复兴,可用于药物后期功能化(LSF)的路线数量显著增加。电合成方法无需使用危险的化学氧化剂或还原剂,通过连续改变施加的电势以及与光化学过程相结合的可能性,提供了前所未有的反应控制。这种能力对于进行电化学或光电化学后期功能化而言是一个显著优势。最终,这些方法有望成为药物化学家工具包的重要组成部分。在本综述中,我们讨论了已被证明适用于药物、其衍生物和天然底物后期功能化的电化学方法。我们展示并分析了代表性实例,以说明电化学或光电化学在有价值分子骨架后期功能化方面的潜力。