A domino reaction strategy for facile and modular construction of synthetically challenging functionalized ortho-fluoroanilines†‡

Benedikt W. Grau , Sascha Kohlbauer , Yungyeong Gu , Friedrich Hahn , Josephine Lösing , Christina Wangen , Maximilian Stangier , Lutz Ackermann , Manfred Marschall , Svetlana B. Tsogoeva
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Abstract

The selective formation of ortho-fluoroanilines, representing versatile intermediates for the pharmaceutical and fine chemical industries, relies to date on, e.g., transition-metal-catalyzed fluorination of azobenzenes, which must be preformed from aniline derivatives. While few efficient methods for aniline synthesis were reported, sustainable, straightforward, and selective synthesis of fluoroanilines, and in particular ortho-fluoroanilines, remains challenging. Herein, we describe a domino approach that involves the simultaneous construction of a benzene ring and the installation of both amine and fluorine groups in a single operation under metal-free conditions, starting from readily available acyclic compounds. The developed atom- and cost-efficient, highly convenient, selective, and environmentally friendly four-step domino process allows the formation of a variety of functionalized ortho-fluoroanilines with yields of up to 80% and bypasses the selectivity issues of transition-metal-catalyzed aniline fluorination reactions. Furthermore, we show that the new domino products can efficiently be utilized to synthesize fluorinated azo dye and (tetrahydro)quinazoline derivatives in a bioactive form, i.e., possessing a first-time proven micromolar antiviral activity and high selectivity (EC50 (HCMV) down to 1.9 ± 0.7 μM, CC50 up to >100 μM), under conventional and/or visible-light mediated conditions.

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一种多米诺反应策略,用于简便、模块化地构建具有合成挑战性的功能化邻氟苯胺
正氟苯胺是制药和精细化工行业的多用途中间体,其选择性生成迄今仍依赖于偶氮苯的过渡金属催化氟化反应等方法,而偶氮苯必须预先由苯胺衍生物生成。尽管苯胺合成的高效方法鲜有报道,但氟苯胺,特别是正氟苯胺的可持续、直接和选择性合成仍然具有挑战性。在本文中,我们介绍了一种多米诺方法,即在无金属条件下,从容易获得的无环化合物开始,通过一次操作同时构建苯环并安装胺和氟基团。所开发的四步多米诺工艺具有原子和成本效率高、高度方便、选择性强和环境友好等特点,可生成各种官能化的邻氟苯胺,产率高达 80%,并绕过了过渡金属催化的苯胺氟化反应的选择性问题。此外,我们还表明,在常规和/或可见光介导的条件下,新的多米诺产物可以有效地用于合成具有生物活性的氟化偶氮染料和(四氢)喹唑啉衍生物,即具有首次被证实的微摩尔抗病毒活性和高选择性(EC50(HCMV)低至 1.9 ± 0.7 µM,CC50 高达 100 µM)。
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