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通过区域控制的钌C()-H官能化反应在芳烃内精确安装硅烷基合成手柄。 (注:原文中“ruthenium C( )-H”括号处内容缺失,可能影响准确理解)

Precision installation of silyl synthetic handles within arenes by regiocontrolled ruthenium C( )-H functionalization.

作者信息

Docherty Jamie H, Hareram Mishra Deepak, Nichols Luke M, Pérez-Ortega Ignacio, Vitorica-Yrezabal Iñigo J, Larrosa Igor

机构信息

Department of Chemistry, University of Manchester, Manchester, UK.

Department of Chemistry, Lancaster University, Lancaster, UK.

出版信息

Nat Catal. 2025;8(4):301-314. doi: 10.1038/s41929-025-01309-6. Epub 2025 Apr 2.

Abstract

The site-selective functionalization of C( )-H bonds represents a powerful strategy for the synthesis of structurally diverse compounds with broad applicability. Here we report efficient regioselective catalytic methods for the formation of benzyltrimethylsilanes through ruthenium-catalysed C( )-H silylmethylation. The developed protocols enable selective functionalization at both and positions within arenes bearing N-based directing groups. The resulting silylmethyl compounds can undergo diverse transformations, including nucleophilic aromatic substitution, carbonyl addition, olefination and desilylation. Significantly, the regiodivergent installation of silylmethyl synthetic handles allows for the synthesis of the pharmaceutical losmapimod and could further be applied in direct late-stage functionalizations. Mechanistically, an essential role for biscyclometallated ruthenium(II) species has been found, with the formation of intermediate ruthenium(III) species indicated by paramagnetic NMR experiments. These synthetic inventions and mechanistic elucidations signify a transformative step within ruthenium-catalysed C( )-H functionalization, enabling diverse syntheses and providing a framework for future development.

摘要

C( )-H键的位点选择性官能团化是合成具有广泛适用性的结构多样化合物的有力策略。在此,我们报道了通过钌催化的C( )-H硅基甲基化反应高效区域选择性催化生成苄基三甲基硅烷的方法。所开发的方案能够在带有N-基导向基团的芳烃的 和 位置进行选择性官能团化。所得的硅基甲基化合物可进行多种转化,包括亲核芳香取代、羰基加成、烯化和脱硅反应。值得注意的是,硅基甲基合成手柄的区域发散性安装使得能够合成药物洛索匹明,并且可以进一步应用于直接后期官能团化反应。从机理上讲,已发现双环金属化钌(II)物种起着至关重要的作用,顺磁NMR实验表明生成了中间体钌(III)物种。这些合成发明和机理阐释标志着钌催化的C( )-H官能团化反应迈出了变革性的一步,实现了多样化的合成,并为未来的发展提供了框架。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1d0a/12031671/c513800c73a8/41929_2025_1309_Fig1_HTML.jpg

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