Edelmann Simon, Lumb Jean-Philip
Department of Chemistry, McGill University, Montreal, Quebec, Canada.
Nat Chem. 2024 Jul;16(7):1193-1199. doi: 10.1038/s41557-024-01512-1. Epub 2024 Apr 17.
Phenols and their derivatives are ubiquitous in nature and critically important industrial chemicals. Their properties are intimately linked to the relative substitution pattern of the aromatic ring, reflecting well-known electronic effects of the OH group. Because of these ortho-, para-directing effects, meta-substituted phenols have historically been more difficult to synthesize. Here we describe a procedure to transpose phenols that hinges on a regioselective diazotization of the corresponding ortho-quinone. The procedure affords the meta-substituted phenol directly from its more common and accessible para-substituted isomer, and demonstrates good chemoselectivity that enables its application in late-stage settings. By changing the electronic effect of the OH group and its trajectory of hydrogen bonding, our transposition can be used to diversify natural products and existing chemical libraries, and potentially shorten the length and cost of producing underrepresented arene isomers.
酚类及其衍生物在自然界中广泛存在,是至关重要的工业化学品。它们的性质与芳环的相对取代模式密切相关,反映了羟基众所周知的电子效应。由于这些邻位、对位导向效应,间位取代的酚类在历史上更难合成。在此,我们描述了一种基于相应邻醌的区域选择性重氮化来转化酚类的方法。该方法可直接从更常见且易于获得的对位取代异构体得到间位取代的酚,并显示出良好的化学选择性,使其能够应用于后期合成。通过改变羟基的电子效应及其氢键作用轨迹,我们的转化方法可用于使天然产物和现有化学文库多样化,并有可能缩短生产代表性不足的芳烃异构体的长度和成本。