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吡啶和喹啉光驱动C-H氟烷基化反应中C4选择性的研究

Insight into C4 Selectivity in the Light-Driven C-H Fluoroalkylation of Pyridines and Quinolines.

作者信息

Kim Leejae, Lee Wooseok, Hong Sungwoo

机构信息

Center for Catalytic Hydrocarbon Functionalizations, Institute for Basic Science (IBS), Daejeon, 34141, Republic of Korea.

Department of Chemistry, Korea Advanced Institute of Science and Technology (KAIST), Daejeon, 34141, Republic of Korea.

出版信息

Angew Chem Int Ed Engl. 2024 Nov 11;63(46):e202410408. doi: 10.1002/anie.202410408. Epub 2024 Oct 8.

Abstract

Given the prevalence of pyridine motifs in FDA-approved drugs, selective fluoroalkylation of pyridines and quinolines is essential for preparing diverse bioisosteres. However, challenges are often faced with conventional Minisci reactions in achieving precise regioselectivity owing to competing reaction sites of pyridine and the limited availability of fluoroalkyl radical sources. Herein, we present a light-driven, C4-selective fluoroalkylation of azines utilizing N-aminopyridinium salts and readily available sulfinates. Our approach employs electron donor-acceptor complexes, achieving highly C4-selective fluoroalkylation under mild conditions without an external photocatalyst. This practical method not only enables the installation of CFH groups but also allows for the incorporation of CF-alkyl groups with diverse functional entities, surpassing the limitations of previous methods. The versatility of the radical pathway is further demonstrated through straightforward three-component reactions involving alkenes and [1.1.1]propellane. Detailed experimental and computational studies have elucidated the origins of regioselectivity, providing profound insights into the mechanistic aspects.

摘要

鉴于吡啶基序在FDA批准的药物中普遍存在,吡啶和喹啉的选择性氟烷基化对于制备各种生物电子等排体至关重要。然而,由于吡啶的竞争反应位点以及氟烷基自由基源的可用性有限,传统的Minisci反应在实现精确的区域选择性方面常常面临挑战。在此,我们展示了一种利用N-氨基吡啶鎓盐和易于获得的亚磺酸盐对吖嗪进行光驱动的C4选择性氟烷基化反应。我们的方法采用电子给体-受体复合物,在温和条件下无需外部光催化剂即可实现高度的C4选择性氟烷基化。这种实用的方法不仅能够引入CFH基团,还允许将具有不同功能实体的CF-烷基引入,克服了先前方法的局限性。通过涉及烯烃和[1.1.1]丙烷的直接三组分反应,进一步证明了自由基途径的通用性。详细的实验和计算研究阐明了区域选择性的起源,为反应机理提供了深刻的见解。

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