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通过氧化还原中性氢转移过程实现的去饱和反应:2-烯丙基苯胺的合成、机理及应用

Desaturation via Redox-Neutral Hydrogen Transfer Process: Synthesis of 2-Allyl Anilines, Mechanism and Applications.

作者信息

Zheng Yang, Dai Ping, Gao Dafang, Hong Kemiao, Kou Luyao, Dong Shanliang, Hu Jundie, Qiu Lihua, Hu Wenhao, Bao Xiaoguang, Xu Xinfang

机构信息

Key Laboratory of Organic Synthesis of Jiangsu Province, College of Chemistry, Chemical Engineering and Materials Science Soochow University, Suzhou 215123, China.

Guangdong Key Laboratory of Chiral Molecule and Drug Discovery, School of Pharmaceutical Sciences, Sun Yat-sen University, Guangzhou 510006, China.

出版信息

iScience. 2020 Jun 26;23(6):101168. doi: 10.1016/j.isci.2020.101168. Epub 2020 May 15.

Abstract

An unprecedented desaturation method via redox-neutral hydrogen transfer process has been disclosed under mild conditions for the selective formation of terminal alkene with alkyl diazo compounds and aza-o-QMs. The control experiments and DFT calculations suggest that the visible light was introduced as a key parameter to enhance the reactivity via a radical process in the formation of closed-shell cyclopropane intermediate, followed by a ring opening and redox-neutral hydrogen transfer process to give the desaturated product. The high regioselectivity in this transformation is enabled by the internal amino species as an ancillary group (AG) in the final olefin formation step. This method provides a missing link in the expeditious preparation of synthetically useful 2-allyl anilines with broad substrate generality. Further applications of these generated products in N-heterocycle construction, including 5- and 6-membered rings with structural diversity, have been tactfully explored, which highlight the potential in methodology development and drug discovery.

摘要

在温和条件下,通过氧化还原中性氢转移过程公开了一种前所未有的去饱和方法,用于选择性地由烷基重氮化合物和氮杂邻醌甲基化物形成末端烯烃。对照实验和密度泛函理论计算表明,引入可见光作为关键参数,通过自由基过程增强形成闭壳环丙烷中间体时的反应活性,随后进行开环和氧化还原中性氢转移过程以得到去饱和产物。在最终烯烃形成步骤中,内部氨基物种作为辅助基团(AG)使得该转化具有高区域选择性。该方法为快速制备具有广泛底物通用性的合成有用的2-烯丙基苯胺提供了缺失的环节。巧妙地探索了这些生成产物在构建氮杂环(包括具有结构多样性的5元和6元环)中的进一步应用,这突出了该方法在方法学开发和药物发现中的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3326/7262561/4c01dc5c2dca/fx1.jpg

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