吡啶、喹啉和异喹啉亲核化的最新策略。

IF 55.8 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Marcos Escolano, Daniel Gaviña, Gloria Alzuet-Piña, Santiago Díaz-Oltra, María Sánchez-Roselló* and Carlos del Pozo*, 
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引用次数: 0

摘要

脱芳烃反应已成为有机合成中的基本化学变化,因为它们可以从二维前体生成三维复杂结构,并将炔类原料与脂环结构连接起来。当这些过程应用于吡啶、喹啉和异喹啉时,就会形成部分或完全饱和的氮杂环,它们是药物和天然产品中最重要的结构成分。这些转化过程的内在挑战在于杂芳香族底物的低反应活性,这使得脱芳烃过程在热力学上是不利的。通常情况下,将脱芳烃事件与不可逆的强 C-C、C-H 或 C-杂原子键的形成联系起来,可以补偿破坏芳香性所需的能量。这种芳香性断裂通常会导致杂环的 1,2- 或 1,4- 官能化。此外,将这些脱芳烃过程与后续转化串联或逐步进行,可实现杂环的多重官能化,从而获得复杂的分子骨架。本综述的时间跨度为 2016 年至 2022 年,旨在更新吡啶、喹啉和异喹啉亲核脱芳烃化的最新进展,展示脱芳烃方法在有机合成中的非凡能力,并指出其局限性和未来趋势。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Recent Strategies in the Nucleophilic Dearomatization of Pyridines, Quinolines, and Isoquinolines

Recent Strategies in the Nucleophilic Dearomatization of Pyridines, Quinolines, and Isoquinolines

Recent Strategies in the Nucleophilic Dearomatization of Pyridines, Quinolines, and Isoquinolines

Dearomatization reactions have become fundamental chemical transformations in organic synthesis since they allow for the generation of three-dimensional complexity from two-dimensional precursors, bridging arene feedstocks with alicyclic structures. When those processes are applied to pyridines, quinolines, and isoquinolines, partially or fully saturated nitrogen heterocycles are formed, which are among the most significant structural components of pharmaceuticals and natural products. The inherent challenge of those transformations lies in the low reactivity of heteroaromatic substrates, which makes the dearomatization process thermodynamically unfavorable. Usually, connecting the dearomatization event to the irreversible formation of a strong C–C, C–H, or C–heteroatom bond compensates the energy required to disrupt the aromaticity. This aromaticity breakup normally results in a 1,2- or 1,4-functionalization of the heterocycle. Moreover, the combination of these dearomatization processes with subsequent transformations in tandem or stepwise protocols allows for multiple heterocycle functionalizations, giving access to complex molecular skeletons. The aim of this review, which covers the period from 2016 to 2022, is to update the state of the art of nucleophilic dearomatizations of pyridines, quinolines, and isoquinolines, showing the extraordinary ability of the dearomative methodology in organic synthesis and indicating their limitations and future trends.

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来源期刊
Chemical Reviews
Chemical Reviews 化学-化学综合
CiteScore
106.00
自引率
1.10%
发文量
278
审稿时长
4.3 months
期刊介绍: Chemical Reviews is a highly regarded and highest-ranked journal covering the general topic of chemistry. Its mission is to provide comprehensive, authoritative, critical, and readable reviews of important recent research in organic, inorganic, physical, analytical, theoretical, and biological chemistry. Since 1985, Chemical Reviews has also published periodic thematic issues that focus on a single theme or direction of emerging research.
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