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吡啶C5选择性C-H磺酰化的无痕亲核试剂策略

Traceless Nucleophile Strategy for C5-Selective C-H Sulfonylation of Pyridines.

作者信息

Kim Jieun, Kim Ye-Eun, Hong Sungwoo

机构信息

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

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

出版信息

Angew Chem Int Ed Engl. 2024 Nov 18;63(47):e202409561. doi: 10.1002/anie.202409561. Epub 2024 Oct 15.

DOI:10.1002/anie.202409561
PMID:39126202
Abstract

The functionalization of pyridines is crucial for the rapid construction and derivatization of agrochemicals, pharmaceuticals, and materials. Conventional functionalization approaches have primarily focused on the ortho- and para-positions, while achieving precise meta-selective functionalization, particularly at the C5 position in substituted pyridines, remains a formidable challenge due to the intrinsic electronic properties of pyridines. Herein, we present a new strategy for meta- and C5-selective C-H sulfonylation of N-amidopyridinium salts, which employs a transient enamine-type intermediate generated through a nucleophilic addition to N-amidopyridinium salts. This process harnesses the power of electron donor-acceptor complexes, enabling high selectivity and broad applicability, including the construction of complex pyridines bearing valuable sulfonyl functionalities under mild conditions without the need for an external photocatalyst. The remarkable C5 selectivity, combined with the broad applicability to late-stage functionalization, significantly expands the toolbox for pyridine functionalization, unlocking access to previously unattainable meta-sulfonylated pyridines.

摘要

吡啶的官能团化对于快速构建和衍生化农用化学品、药物及材料至关重要。传统的官能团化方法主要集中在邻位和对位,而实现精确的间位选择性官能团化,尤其是在取代吡啶的C5位,由于吡啶的固有电子性质,仍然是一项艰巨的挑战。在此,我们提出了一种用于N-酰胺基吡啶鎓盐间位和C5位选择性C-H磺酰化的新策略,该策略采用通过亲核加成到N-酰胺基吡啶鎓盐生成的瞬态烯胺型中间体。这一过程利用了电子供体-受体络合物的作用,实现了高选择性和广泛的适用性,包括在温和条件下构建带有有价值磺酰官能团的复杂吡啶,而无需外部光催化剂。显著的C5选择性,结合对后期官能团化的广泛适用性,极大地扩展了吡啶官能团化的工具库,开启了获得以前无法实现的间位磺酰化吡啶的途径。

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