Bakanas Ian, Lusi Robert F, Wiesler Stefan, Hayward Cooke Jack, Sarpong Richmond
Department of Chemistry, University of California, Berkeley, Berkeley, CA, USA.
Nat Rev Chem. 2023 Nov;7(11):783-799. doi: 10.1038/s41570-023-00534-6. Epub 2023 Sep 20.
The oxidation of unactivated C-H bonds has emerged as an effective tactic in natural product synthesis and has altered how chemists approach the synthesis of complex molecules. The use of C-H oxidation methods has simplified the process of synthesis planning by expanding the choice of starting materials, limiting functional group interconversion and protecting group manipulations, and enabling late-stage diversification. In this Review, we propose classifications for C-H oxidations on the basis of their strategic purpose: type 1, which installs functionality that is used to establish the carbon skeleton of the target; type 2, which is used to construct a heterocyclic ring; and type 3, which installs peripheral functional groups. The reactions are further divided based on whether they are directed or undirected. For each classification, examples from recent literature are analysed. Finally, we provide two case studies of syntheses from our laboratory that were streamlined by the judicious use of C-H oxidation reactions.
未活化C-H键的氧化反应已成为天然产物合成中的一种有效策略,并改变了化学家合成复杂分子的方式。C-H氧化方法的使用通过扩大起始原料的选择范围、限制官能团的相互转化和保护基的操作,并实现后期多样化,简化了合成规划过程。在本综述中,我们根据C-H氧化反应的战略目的提出了分类:1型,用于安装用于构建目标碳骨架的官能团;2型,用于构建杂环;3型,用于安装外围官能团。这些反应还根据其是导向的还是非导向的进一步划分。对于每种分类,分析了近期文献中的实例。最后,我们提供了两个来自我们实验室的合成案例研究,这些合成通过明智地使用C-H氧化反应而得到简化。