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一种通用的羰基烷基化胺化反应用于叔胺合成。

A general carbonyl alkylative amination for tertiary amine synthesis.

机构信息

Department of Chemistry, University of Cambridge, Cambridge, UK.

出版信息

Nature. 2020 May;581(7809):415-420. doi: 10.1038/s41586-020-2213-0. Epub 2020 Apr 8.

Abstract

The ubiquity of tertiary alkylamines in pharmaceutical and agrochemical agents, natural products and small-molecule biological probes has stimulated efforts towards their streamlined synthesis. Arguably the most robust method for the synthesis of tertiary alkylamines is carbonyl reductive amination, which comprises two elementary steps: the condensation of a secondary alkylamine with an aliphatic aldehyde to form an all-alkyl-iminium ion, which is subsequently reduced by a hydride reagent. Direct strategies have been sought for a 'higher order' variant of this reaction via the coupling of an alkyl fragment with an alkyl-iminium ion that is generated in situ. However, despite extensive efforts, the successful realization of a 'carbonyl alkylative amination' has not yet been achieved. Here we present a practical and general synthesis of tertiary alkylamines through the addition of alkyl radicals to all-alkyl-iminium ions. The process is facilitated by visible light and a silane reducing agent, which trigger a distinct radical initiation step to establish a chain process. This operationally straightforward, metal-free and modular transformation forms tertiary amines, without structural constraint, via the coupling of aldehydes and secondary amines with alkyl halides. The structural and functional diversity of these readily available precursors provides a versatile and flexible strategy for the streamlined synthesis of complex tertiary amines.

摘要

叔烷基胺广泛存在于医药和农用化学品、天然产物和小分子生物探针中,这激发了人们对其简化合成方法的研究。合成叔烷基胺最有效的方法可能是羰基还原胺化,该方法包含两个基本步骤:仲胺与脂肪醛缩合形成全烷基亚胺离子,然后用氢化物试剂还原。人们一直在寻找通过与原位生成的烷基-亚胺离子偶联来实现这种反应的“更高阶”变体的直接策略。然而,尽管进行了广泛的努力,但尚未成功实现“羰基烷基化胺化”。在这里,我们通过向全烷基亚胺离子中添加烷基自由基来实现叔烷基胺的实际和通用合成。该过程由可见光和硅烷还原剂促进,引发明显的自由基引发步骤,建立链反应。这种操作简单、无金属和模块化的转化通过醛和仲胺与卤代烷烃的偶联形成叔胺,没有结构限制。这些易于获得的前体的结构和功能多样性为复杂叔胺的简化合成提供了一种通用且灵活的策略。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/39db/7116815/1245d750f061/EMS114549-f001.jpg

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