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电化学促进的 2-苯基喹唑啉和喹喔啉的 C4-H 和 C3-H 功能化:通过脱氢 C-H/C-H、C-H/P-H 和 C-H/O-H 交叉偶联。

Electrochemically Enabled C4-H and C3-H Functionalization of 2-Phenyl Quinazoline and Quinoxaline through Dehydrogenative C-H/C-H, C-H/P-H, and C-H/O-H Cross-Coupling.

机构信息

Department of Chemistry, University of Calcutta, Kolkata 700009, India.

出版信息

J Org Chem. 2023 May 5;88(9):6071-6095. doi: 10.1021/acs.joc.3c00418. Epub 2023 Apr 16.

DOI:10.1021/acs.joc.3c00418
PMID:37061920
Abstract

Quinazoline moieties and particularly C4-substituted quinazoline scaffolds are widely distributed in biologically active molecules, and thus, direct C4-functionalization of quinazolines is the most convenient way to materialize new, straightforward, and sustainable strategies for the synthesis of useful medicinal targets. Retrospecting that, effort has been directed toward electrocatalytic C4-H bond diversification of quinazoline and related electron-deficient N-heterocycles (quinoxaline) offering C4 and C3 benzoyl-, acetyl-, phenol-, ether-, phosphonate-, and nitroalkane-incorporated N-heterocycles via a radical addition pathway under sacrificial oxidant- and additive-free conditions. Various coupling partners and quinazolines, as well as other structurally similar heterocyclic motifs, respond well, providing moderate to high yields of coupled products along with the gram-scale upgradation. Additionally, the performed control experiments and cyclic voltammetry investigations also nicely justified the proposed mechanism of the coupling process. Further, late-stage functionalization leading to the synthesis of indolo quinolines and vinyl-sulfonated products using the ruthenium-catalyzed skeletal transformation of benzoylated quinazoline nicely appropriated the developed methodology. Finally, this reaction can be summarized as (a) anodic activation of the functionalized Hantzsch ester to furnish key radical species; (b) radical addition to an activated N-heterocycle; and (c) oxidation leading to the target product without the assistance of any metal chelation.

摘要

喹唑啉部分,特别是 C4-取代的喹唑啉支架,广泛存在于生物活性分子中,因此,喹唑啉的直接 C4-功能化是实现新的、直接的和可持续的合成有用药物靶标策略的最方便方法。回顾过去,人们一直致力于电催化喹唑啉和相关缺电子 N-杂环(喹喔啉)的 C4-H 键多样化,在牺牲氧化剂和添加剂免费条件下,通过自由基加成途径提供 C4 和 C3 苯甲酰基、乙酰基、苯酚、醚、膦酸酯和硝基烷烃取代的 N-杂环。各种偶联试剂和喹唑啉,以及其他结构相似的杂环母核,都能很好地反应,得到中等至高产率的偶联产物,并可进行克级放大。此外,进行的对照实验和循环伏安研究也很好地证明了偶联过程的提出机制。此外,使用钌催化的苯甲酰化喹唑啉的骨架转化,进行晚期官能团化,以合成吲哚喹啉和乙烯基磺化产物,很好地利用了所开发的方法。最后,该反应可以总结为:(a)功能化的 Hantzsch 酯的阳极活化,以提供关键的自由基物种;(b)自由基加成到活化的 N-杂环;(c)在没有任何金属螯合作用的情况下,氧化生成目标产物。

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