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无金属光催化交叉亲电偶联实现了羧酸与醛的C1同系化和烷基化反应。

Metal-free photocatalytic cross-electrophile coupling enables C1 homologation and alkylation of carboxylic acids with aldehydes.

作者信息

Bonciolini Stefano, Pulcinella Antonio, Leone Matteo, Schiroli Debora, Ruiz Adrián Luguera, Sorato Andrea, Dubois Maryne A J, Gopalakrishnan Ranganath, Masson Geraldine, Della Ca' Nicola, Protti Stefano, Fagnoni Maurizio, Zysman-Colman Eli, Johansson Magnus, Noël Timothy

机构信息

Flow Chemistry Group, Van't Hoff Institute for Molecular Sciences (HIMS), University of Amsterdam, Science Park 904, 1098, XH Amsterdam, The Netherlands.

Institut de Chimie des Substances Naturelles, CNRS, Univ. Paris-Saclay, 1 Avenue de la Terrasse, 91198, Gif-sur-Yvette, Cedex, France.

出版信息

Nat Commun. 2024 Feb 19;15(1):1509. doi: 10.1038/s41467-024-45804-z.

Abstract

In contemporary drug discovery, enhancing the sp-hybridized character of molecular structures is paramount, necessitating innovative synthetic methods. Herein, we introduce a deoxygenative cross-electrophile coupling technique that pairs easily accessible carboxylic acid-derived redox-active esters with aldehyde sulfonyl hydrazones, employing Eosin Y as an organophotocatalyst under visible light irradiation. This approach serves as a versatile, metal-free C(sp)-C(sp) cross-coupling platform. We demonstrate its synthetic value as a safer, broadly applicable C1 homologation of carboxylic acids, offering an alternative to the traditional Arndt-Eistert reaction. Additionally, our method provides direct access to cyclic and acyclic β-arylethylamines using diverse aldehyde-derived sulfonyl hydrazones. Notably, the methodology proves to be compatible with the late-stage functionalization of peptides on solid-phase, streamlining the modification of intricate peptides without the need for exhaustive de-novo synthesis.

摘要

在当代药物研发中,增强分子结构的sp杂化特性至关重要,这就需要创新的合成方法。在此,我们介绍一种脱氧交叉亲电偶联技术,该技术将易于获得的羧酸衍生的氧化还原活性酯与醛基磺酰腙配对,在可见光照射下使用曙红Y作为有机光催化剂。这种方法是一种通用的、无金属的C(sp)-C(sp)交叉偶联平台。我们展示了其作为一种更安全、广泛适用的羧酸C1同系化反应的合成价值,为传统的阿恩特-艾斯特尔特反应提供了一种替代方法。此外,我们的方法使用多种醛衍生的磺酰腙可直接获得环状和非环状β-芳基乙胺。值得注意的是,该方法被证明与固相肽的后期功能化兼容,无需进行详尽的从头合成即可简化复杂肽的修饰。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1fbf/10876646/e2d28fe0c1db/41467_2024_45804_Fig1_HTML.jpg

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