Department of Chemistry, University of California, Berkeley, California, USA.
Ōmura Satoshi Memorial Institute and Graduate School of Infection Control Sciences, Kitasato University, 5-9-1 Shirokane, Minato-ku, Tokyo, Japan.
Nat Commun. 2024 May 15;15(1):4125. doi: 10.1038/s41467-024-48586-6.
Skeletal modifications enable elegant and rapid access to various derivatives of a compound that would otherwise be difficult to prepare. They are therefore a powerful tool, especially in the synthesis of natural products or drug discovery, to explore different natural products or to improve the properties of a drug candidate starting from a common intermediate. Inspired by the biosynthesis of the cephalotane natural products, we report here a single-atom insertion into the framework of the benzenoid subfamily, providing access to the troponoid congeners - representing the reverse of the proposed biosynthesis (i.e., a contra-biosynthesis approach). Computational evaluation of our designed transformation prompted us to investigate a Büchner-Curtius-Schlotterbeck reaction of a p-quinol methylether, which ultimately results in the synthesis of harringtonolide in two steps from cephanolide A, which we had previously prepared. Additional computational studies reveal that unconventional selectivity outcomes are driven by the choice of a Lewis acid and the nucleophile, which should inform further developments of these types of reactions.
骨架修饰可优雅、快速地获得各种化合物的衍生物,而这些衍生物在其他情况下则难以制备。因此,骨架修饰是一种强大的工具,尤其是在天然产物合成或药物发现中,可以用来探索不同的天然产物或从常见的中间体出发来改善候选药物的性质。受cephalotane 天然产物生物合成的启发,我们在此报告了一种单原子插入苯环亚家族的骨架中,从而获得了troponoid 同系物 - 代表了所提出的生物合成的反转(即,反生物合成方法)。我们设计的转化的计算评估促使我们研究了 p-苯醌甲醚的 Büchner-Curtius-Schlotterbeck 反应,该反应最终从我们之前制备的 cephanolide A 两步合成了 harringtonolide。额外的计算研究表明,非常规的选择性结果是由路易斯酸和亲核试剂的选择驱动的,这应该为这些类型的反应的进一步发展提供信息。