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钯催化的非活化烯烃的迁移环化反应构建氮杂杂环。

Construction of azaheterocycles via Pd-catalyzed migratory cycloannulation reaction of unactivated alkenes.

机构信息

State Key Laboratory of Organometallic Chemistry, Shanghai Institute of Organic Chemistry, University of Chinese Academy of Sciences, CAS 345 Lingling Road, Shanghai, 200032, PR China.

CAS Key Laboratory of Energy Regulation Materials, Shanghai Institute of Organic Chemistry, CAS 345 Lingling Road, Shanghai, 200032, PR China.

出版信息

Nat Commun. 2022 Aug 27;13(1):5059. doi: 10.1038/s41467-022-32726-x.

Abstract

Azahetereocycles constitute important structural components in many biologically active natural compounds and marketed drugs, and represent the most promising scaffolds in drug discovery. Accordingly, the development of efficient and general synthetic methods for the construction of diverse azaheterocycles is the major goal in synthetic chemistry. Herein, we report the efficient construction of a wide range of azaheterocycles via a Pd-catalyzed migratory cycloannulation strategy with unactivated alkenes. This strategy enables the rapid synthesis of a series of 6-, 7- and 8-membered azaheterocycles in high efficiency, and features a broad substrate scope, excellent functional group tolerance under redox-neutral conditions. The significance of this finding is demonstrated by the efficient synthesis of drug-like molecules with high step-economy. Preliminary mechanistic investigations reveal that this reaction underwent a sequentially migratory insertion to alkenes, metal migration process, and the aza-Michael addition to a quinone methide intermediate.

摘要

氮杂环化合物是许多具有生物活性的天然化合物和市售药物的重要结构组成部分,也是药物发现中最有前途的支架。因此,开发高效、通用的合成方法来构建各种氮杂环化合物是合成化学的主要目标。在此,我们报道了一种通过 Pd 催化的迁移环化策略,以未活化的烯烃高效构建广泛的氮杂环化合物的方法。该策略能够快速高效地合成一系列 6-、7-和 8 元氮杂环化合物,具有广泛的底物范围,在氧化还原中性条件下对官能团具有优异的耐受性。这一发现的意义在于高效合成具有高经济性的药物样分子。初步的机理研究表明,该反应经历了依次迁移插入到烯烃、金属迁移过程和氮杂-Michael 加成到醌甲基化物中间体。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2ad0/9420149/d873fd8baa2e/41467_2022_32726_Fig1_HTML.jpg

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