Department of Chemistry, University of North Carolina at Chapel Hill , Chapel Hill, North Carolina 27599-3290, United States.
J Am Chem Soc. 2017 Sep 13;139(36):12422-12425. doi: 10.1021/jacs.7b07745. Epub 2017 Aug 30.
Benzenoids in principle represent attractive and abundant starting materials for the preparation of substituted cyclohexanes; however, the synthetic tools available for overcoming the considerable aromatic energies inherent to these building blocks limit the available product types. In this paper, we demonstrate access to heretofore unknown heterotricyclic structures by leveraging oxidative dearomatization of 2-hydroxymethyl phenols with concurrent N-hydroxycarbamate dehydrogenation using a common oxidant. The pairwise-generated, mutually reactive species then participate in a second stage acylnitroso Diels-Alder cycloaddition. The reaction chemistry of the derived [2.2.2]-oxazabicycles, bearing four orthogonal functional groups and three stereogenic centers, is shown to yield considerable diversity in downstream products. The methodology allows for the expeditious synthesis of a functionalized intermediate bearing structural and stereochemical features in common with the complex alkaloid tetrodotoxin.
苯并环烷烃原则上代表了有吸引力且丰富的起始材料,可用于制备取代的环己烷;然而,可用于克服这些构建块固有的相当大的芳香能的合成工具限制了可用的产品类型。在本文中,我们通过利用 2-羟甲基苯酚的氧化脱芳构化作用,同时使用常见的氧化剂进行 N-羟基氨基甲酸酯脱氢作用,展示了对迄今未知的杂三环结构的获得。然后,成对生成的、相互反应的物种参与第二阶段的酰基亚硝酮 Diels-Alder 环加成。所得到的[2.2.2]-氧杂双环[3.2.1]辛烷具有四个正交官能团和三个立体中心,其反应化学显示出在下游产物中具有相当大的多样性。该方法允许快速合成具有与复杂生物碱河豚毒素共同的结构和立体化学特征的功能化中间体。