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路易斯酸催化的多米诺反应:铵叶立德的生成/[2,3]-σ迁移重排反应以构建手性氮杂双环

Lewis acid-catalyzed domino generation/[2,3]-sigmatropic rearrangement of ammonium ylides to access chiral azabicycles.

作者信息

Xi Song, Dong Jiawei, Chen Haohua, Dong Qiuyan, Yang Jiao, Tan Qiuyuan, Zhang Changhui, Lan Yu, Zhang Min

机构信息

Chongqing Key Laboratory of Natural Product Synthesis and Drug Research, School of Pharmaceutical Sciences, Chongqing University, Chongqing, China.

Chongqing Key Laboratory of Theoretical and Computational Chemistry, School of Chemistry and Chemical Engineering, Chongqing University, Chongqing, China.

出版信息

Sci Adv. 2021 Jan 29;7(5). doi: 10.1126/sciadv.abd5290. Print 2021 Jan.

Abstract

[2,3]-Sigmatropic rearrangement of ammonium ylides represents a fundamental reaction for stereoselective synthesis of nitrogenous compounds. However, its applicability is limited by the scarcity of efficient, catalytic, and mild methods for generating ammonium ylides. Here, we report silver-catalyzed domino generation/[2,3]-sigmatropic rearrangement of ammonium ylides, furnishing chiral azabicycles with bridgehead quaternary stereogenic centers in high enantiomeric purity (up to 99% ). A combination of density functional theory calculations and experimental studies revealed that residual water in the reaction system is crucial for the mild reaction conditions by functioning as a proton shuttle to assist carbon-silver bond protonation and C2─H deprotonation to generate the ammonium ylide. This reaction has a broad application scope. Besides the diverse substituents, N-fused azabicycles of various ring sizes are also easily accessed. In addition to silver salts, this strategy has also been successfully implemented by using a stoichiometric amount of nonmetallic I.

摘要

铵叶立德的[2,3] - 迁移重排是立体选择性合成含氮化合物的一种基本反应。然而,其适用性受到生成铵叶立德的高效、催化且温和方法稀缺的限制。在此,我们报道了银催化的铵叶立德的多米诺生成/[2,3] - 迁移重排反应,该反应能以高对映体纯度(高达99%)提供具有桥头季碳立体中心的手性氮杂双环化合物。密度泛函理论计算和实验研究相结合表明,反应体系中的残余水对于温和的反应条件至关重要,它作为质子穿梭体协助碳 - 银键质子化和C2─H去质子化以生成铵叶立德。该反应具有广泛的应用范围。除了各种取代基外,各种环大小的N - 稠合氮杂双环也易于获得。除了银盐外,该策略还通过使用化学计量的非金属碘成功实现。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0616/7846163/a401f02ae797/abd5290-F1.jpg

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