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通过钪催化喹啉与炔烃的去芳构化环化反应实现螺-二氢喹啉的模块化构建。

Modular Access to Spiro-dihydroquinolines via Scandium-Catalyzed Dearomative Annulation of Quinolines with Alkynes.

机构信息

Advanced Catalysis Research Group, RIKEN Center for Sustainable Resource Science, 2-1 Hirosawa, Wako, Saitama 351-0198, Japan.

Organometallic Chemistry Laboratory, RIKEN Cluster for Pioneering Research, 2-1 Hirosawa, Wako, Saitama 351-0198, Japan.

出版信息

J Am Chem Soc. 2021 Dec 8;143(48):20462-20471. doi: 10.1021/jacs.1c10743. Epub 2021 Nov 23.

Abstract

The catalytic enantioselective construction of three-dimensional molecular architectures from planar aromatics such as quinolines is of great interest and importance from the viewpoint of both organic synthesis and drug discovery, but there still exist many challenges. Here, we report the scandium-catalyzed asymmetric dearomative spiro-annulation of quinolines with alkynes. This protocol offers an efficient and selective route for the synthesis of spiro-dihydroquinoline derivatives containing a quaternary carbon stereocenter with an unprotected N-H group from readily accessible quinolines and diverse alkynes, featuring high yields, high enantioselectivity, 100% atom-efficiency, and broad substrate scope. Experimental and density functional theory studies revealed that the reaction proceeded through the C-H activation of the 2-aryl substituent in a quinoline substrate by a scandium alkyl (or amido) species followed by alkyne insertion into the Sc-aryl bond and the subsequent dearomative 1,2-addition of the resulting scandium alkenyl species to the C═N unit in the quinoline moiety. This work opens a new avenue for the dearomatization of quinolines, leading to efficient and selective construction of spiro molecular architectures that were previously difficult to access by other means.

摘要

从有机合成和药物发现的角度来看,将平面芳烃(如喹啉)催化转化为具有三维分子架构具有重要意义,但仍存在许多挑战。在这里,我们报告了钪催化的喹啉与炔烃的不对称去芳构化螺环化反应。该方案提供了一种从易得的喹啉和各种炔烃高效、选择性地合成含有未保护 N-H 基团的螺二氢喹啉衍生物的有效途径,具有高产率、高对映选择性、100%原子效率和广泛的底物范围。实验和密度泛函理论研究表明,反应通过钪烷基(或酰胺基)物种对喹啉底物中 2-芳基取代基的 C-H 活化进行,然后是炔烃插入到 Sc-芳基键中,随后是生成的钪烯基物种对喹啉部分的 C═N 单元进行去芳构化 1,2-加成。这项工作为喹啉的去芳构化开辟了新途径,可有效且选择性地构建以前难以通过其他方法获得的螺分子架构。

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