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亚烷基环丙烷的催化对映选择性合成

Catalytic enantioselective synthesis of alkylidenecyclopropanes.

作者信息

Golec Jonathan C, Tan Dong-Hang, Yamazaki Ken, Tiekink Eveline H, Christensen Kirsten E, Hamlin Trevor A, Dixon Darren J

机构信息

Chemistry Research Laboratory, Department of Chemistry, University of Oxford, Oxford, UK.

Sygnature Discovery, BioCity, Nottingham, UK.

出版信息

Nature. 2025 Aug 11. doi: 10.1038/s41586-025-09485-y.

Abstract

The enantioselective construction of small-ring carbocycles provides organic chemists with an enduring challenge. Despite their commercial importance, enantioselective synthetic routes towards alkylidenecyclopropanes, a class of small-ring carbocycles, remain underdeveloped. Alkylidenecyclopropanes can be converted into cyclopropanes, a common feature in drug molecules (for example, Nirmatrelvir 1), as well as both naturally occurring and synthetic agrochemicals (for example, permethrin 2). Here we describe the facile synthesis of highly enantioenriched alkylidenecyclopropanes through the use of a bifunctional iminophosphorane catalysed, stereo-controlled, strain-relieving deconjugation. Small modifications to the basic catalyst system were used to broaden the scope of the reaction to substrates containing ester, amide, phosphine oxide and ketone functionalities. Through the design of a suitable substrate and retuning of the catalyst's iminophosphorane moiety, the transformation was effectively applied to the synthesis of a single stereoisomer of the commonplace insecticide permethrin as well as a range of cyclopropane-based insecticide cores. State-of-the-art computational studies were performed to provide detailed insights into the mechanistic pathway and origin of both diastereoselectivities and enantioselectivities.

摘要

小环碳环化合物的对映选择性构建给有机化学家带来了长期的挑战。尽管它们具有商业重要性,但针对一类小环碳环化合物——亚烷基环丙烷的对映选择性合成路线仍未得到充分发展。亚烷基环丙烷可转化为环丙烷,这是药物分子(例如,奈玛特韦1)以及天然存在的和合成的农用化学品(例如,氯菊酯2)中的常见特征。在此,我们描述了通过使用双功能亚胺基膦烷催化、立体控制、应变释放去共轭反应,简便地合成高度对映体富集的亚烷基环丙烷。对基本催化剂体系进行了微小修改,以扩大反应对含有酯、酰胺、氧化膦和酮官能团的底物的适用范围。通过设计合适的底物并调整催化剂的亚胺基膦烷部分,该转化反应有效地应用于合成常见杀虫剂氯菊酯的单一立体异构体以及一系列基于环丙烷的杀虫剂核心。进行了前沿的计算研究,以深入了解非对映选择性和对映选择性的机理途径及起源。

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