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位点选择性光氧化还原催化的后期苄基氢同位素交换

Site-selective Photoredox-Catalyzed Late-stage Benzylic Hydrogen Isotope Exchange.

作者信息

Stinglhamer Martin, Kuhlmann Jan Hendrik, Martinelli Elisa, Perulli Stefania, Sandvoss Martin, Mück-Lichtenfeld Christian, Derdau Volker, García Mancheño Olga

机构信息

Organic Chemistry Institute, University of Münster, Corrensstraße 36, 48149, Münster, Germany.

Sanofi Germany, R&D, Integrated Drug Discovery, Industriepark Höchst, 65926, Frankfurt am Main, Germany.

出版信息

Angew Chem Int Ed Engl. 2024 Dec 9;63(50):e202411567. doi: 10.1002/anie.202411567. Epub 2024 Nov 7.

Abstract

A highly regioselective visible light photoredox-catalyzed hydrogen isotope exchange (HIE) of benzylic positions in both simple and complex molecules is reported. The process follows a dual catalytic approach using an acridinium photocatalyst in combination with a thiol-based hydrogen atom transfer catalyst, while the use of DO as an isotope source ensures operational simplicity and cost-effectiveness. High reactivity has been achieved for electron-rich benzylic positions. Moreover, targeted radical formation enables unprecedented selective HIE on intramolecular competing benzylic and alpha to heteroatom positions with moderate to excellent deuterium incorporation. The utility of the reaction was demonstrated on the late-stage HIE of several natural compounds and drug derivatives. Experimental studies and density functional theory (DFT) calculations suggested a single electron transfer (SET) mechanism followed by deprotonation to generate the benzylic radical, and revealed the importance of halogenated solvents or additives. Upon a weak complexation of the halogenated species to the substrate, an oxidation potential lowering effect is induced, as well as a stabilization of the radical-cation species through spin delocalization.

摘要

报道了一种在简单和复杂分子中对苄基位置进行高度区域选择性可见光光氧化还原催化氢同位素交换(HIE)的方法。该过程采用双催化方法,使用吖啶鎓光催化剂与硫醇基氢原子转移催化剂相结合,同时使用DO作为同位素源确保操作简便且成本效益高。对于富电子苄基位置已实现高反应活性。此外,有针对性的自由基形成使得在分子内竞争性苄基和与杂原子相邻的α位置上实现前所未有的选择性HIE,并具有中等到优异的氘掺入率。该反应的实用性在几种天然化合物和药物衍生物的后期HIE中得到了证明。实验研究和密度泛函理论(DFT)计算表明,该反应遵循单电子转移(SET)机制,随后进行去质子化以生成苄基自由基,并揭示了卤代溶剂或添加剂的重要性。当卤代物种与底物发生弱络合时,会诱导氧化电位降低效应,以及通过自旋离域使自由基阳离子物种稳定。

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