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通过钌催化 1,3-烯炔的 -氢化反应实现 C-H 插入。

C-H Insertion via Ruthenium Catalyzed -Hydrogenation of 1,3-Enynes.

机构信息

Max-Planck-Institut für Kohlenforschung, 45470 Mülheim/Ruhr, Germany.

出版信息

J Am Chem Soc. 2022 Mar 9;144(9):4158-4167. doi: 10.1021/jacs.1c13446. Epub 2022 Feb 16.

DOI:10.1021/jacs.1c13446
PMID:35170941
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC8915261/
Abstract

-Hydrogenation of an internal alkyne with the aid of [Cp*RuCl] as the precatalyst is a highly unorthodox transformation, in which one C atom of the triple bond is transformed into a methylene group, whereas the second C atom gets converted into a ruthenium carbene. In the case of 1,3-enynes bearing a propargylic steering substituent as the substrates, the reaction occurs regioselectively, giving rise to vinyl carbene complexes that adopt interconverting η/η-binding modes in solution; a prototypical example of such a reactive intermediate was characterized in detail by spectroscopic means. Although both forms are similarly stable, only the η-vinyl carbene proved kinetically competent to insert into primary, secondary, or tertiary C-H bonds on the steering group itself or another suitably placed ether, acetal, orthoester, or (sulfon)amide substituent. The ensuing net hydrogenative C-H insertion reaction is highly enabling in that it gives ready access to spirocyclic as well as bridged ring systems of immediate relevance as building blocks for medicinal chemistry. Moreover, the reaction scales well and lends itself to the formation of partly or fully deuterated isotopologues. Labeling experiments in combination with PHIP NMR spectroscopy (PHIP = parahydrogen induced polarization) confirmed that the reactions are indeed triggered by -hydrogenation, whereas kinetic data provided valuable insights into the very nature of the turnover-limiting transition state of the actual C-H insertion step.

摘要

在 [Cp*RuCl] 的协助下,对内部炔烃进行加氢反应是一种非常非常规的转化,其中三键的一个碳原子转化为亚甲基,而第二个碳原子转化为钌卡宾。对于带有炔丙基导向取代基的 1,3-烯炔作为底物,反应具有区域选择性,生成采用在溶液中相互转化的 η/η-键合模式的乙烯基卡宾络合物;这种反应性中间体的典型例子通过光谱手段进行了详细表征。尽管两种形式都同样稳定,但只有 η-乙烯基卡宾在动力学上能够插入导向基团本身或另一个适当放置的醚、缩醛、原酸酯或(磺酰胺)取代基上的伯、仲或叔 C-H 键。随后的净加氢 C-H 插入反应具有高度的启发性,因为它可以轻松获得螺环和桥环系统,这些系统是药物化学中立即相关的构建块。此外,该反应规模较大,并且适合形成部分或完全氘代的同位素类似物。结合 PHIP NMR 光谱(PHIP = 重氢诱导极化)的标记实验证实,反应确实是由 -氢化引发的,而动力学数据为实际 C-H 插入步骤的周转限制过渡态的本质提供了有价值的见解。

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