Department of Chemistry, Burke Laboratory, Dartmouth College , Hanover, New Hampshire 03755, United States.
Department of Chemistry, University of California-San Diego , La Jolla, California 92093, United States.
J Am Chem Soc. 2017 Sep 13;139(36):12374-12377. doi: 10.1021/jacs.7b06286. Epub 2017 Sep 1.
Densely substituted and highly oxygenated carbocycles are challenging targets for synthesis. In particular, those possessing numerous contiguous, fully substituted carbon atoms (i.e., tertiary alcohols and quaternary centers) are often not accessible in a direct fashion, necessitating the strategic decoupling of ring-formation from the establishment of functionality about the system. Here, we describe an approach to the construction of highly oxygenated mono-, di-, and polycyclic carbocycles from the reaction of disubstituted alkynes with β- or γ-dicarbonyl systems. These processes embrace a variant of metallacycle-mediated annulation chemistry where initial alkyne-carbonyl coupling is followed by a second, now intramolecular, stereoselective C-C bond-forming event. In addition to revealing the basic reactivity pattern in intermolecular settings, we demonstrate that this class of reactivity is quite powerful in a fully intramolecular context and, when terminated by a stereoselective oxidation process, can be used to generate polycyclic systems containing a fully substituted and highly oxygenated five-membered ring.
高度取代和富含氧的碳环是合成的具有挑战性的目标。特别是那些具有许多连续的、完全取代的碳原子(即三级醇和季碳原子)的碳环通常不能以直接的方式获得,因此需要从系统的功能建立中战略性地解耦环形成。在这里,我们描述了一种从取代的炔烃与β-或γ-二羰基体系反应来构建高度含氧的单环、二环和多环碳环的方法。这些过程包含一种金属环介导的环化化学的变体,其中初始的炔烃-羰基偶联后接着是第二个,现在是分子内的立体选择性 C-C 键形成事件。除了揭示分子间环境中的基本反应模式外,我们还证明了这种反应性在完全分子内环境中非常强大,并且当通过立体选择性氧化过程终止时,可以用于生成含有完全取代和高度含氧的五元环的多环系统。