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用于酰胺合成的光介导硝基芳烃与醛的还原偶联反应。

Photomediated reductive coupling of nitroarenes with aldehydes for amide synthesis.

作者信息

Li Qingyao, Dai Peng, Tang Haidi, Zhang Muliang, Wu Jie

机构信息

Department of Chemistry, National University of Singapore 3 Science Drive 3 117543 Singapore

出版信息

Chem Sci. 2022 Aug 3;13(32):9361-9365. doi: 10.1039/d2sc03047k. eCollection 2022 Aug 17.

Abstract

In view of the widespread significance of amide functional groups in organic synthesis and pharmaceutical studies, an efficient and practical synthetic protocol that avoids the use of stoichiometric activating reagents or metallic reductants is highly desirable. A straight-forward pathway to access amides from abundant chemical feedstock would offer a strategic advantage in the synthesis of complex amides. We herein disclose a direct reductive amidation reaction using readily available aldehydes and nitroarenes enabled by photo-mediated hydrogen atom transfer catalysis. It avoids the use of metallic reductants and production of toxic chemical waste. While aldehydes represent a classic class of electrophilic synthons, the corresponding nucleophilic acyl radicals could be directly accessed by photo hydrogen atom transfer catalysis, enabling polarity inversion. Our method provides an orthogonal strategy to conventional amide couplings, tolerating nucleophilic substituents such as free alcohols and sensitive functional groups to amines such as carbonyl or formyl groups. The synthetic utilization of this reductive amidation is demonstrated by the late-stage modification of complex biologically active molecules and direct access of drug molecules leflunomide and lidocaine.

摘要

鉴于酰胺官能团在有机合成和药物研究中的广泛重要性,一种高效实用且避免使用化学计量活化试剂或金属还原剂的合成方法是非常必要的。从丰富的化学原料制备酰胺的直接途径将为复杂酰胺的合成提供战略优势。我们在此公开了一种通过光介导的氢原子转移催化,利用易得的醛和硝基芳烃进行的直接还原酰胺化反应。该反应避免了使用金属还原剂以及产生有毒化学废物。虽然醛是一类经典的亲电合成子,但相应的亲核酰基自由基可通过光氢原子转移催化直接获得,实现了极性反转。我们的方法为传统酰胺偶联提供了一种正交策略,可耐受亲核取代基如游离醇,以及对胺敏感的官能团如羰基或甲酰基。这种还原酰胺化反应在复杂生物活性分子的后期修饰以及直接制备药物分子来氟米特和利多卡因中展示了其合成应用价值。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f773/9384791/7bea618be3e9/d2sc03047k-f1.jpg

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