Davy S. Lin, Georg Späth, Zhanchao Meng, Lianne H. E. Wieske, Christophe Farès, Alois Fürstner
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引用次数: 0
Abstract
It was recognized only recently that the sister norcembranoids scabrolides A and B have notably different carbotricyclic scaffolds. Therefore, our synthesis route leading to scabrolide A could not be extended to its sibling. Rather, a conceptually new approach had to be devised that relied on a challenging intramolecular alkenylation of a ketone to forge the congested central cycloheptene ring at the bridgehead enone site; the required cyclization precursor was attained by a lanthanide-catalyzed Mukaiyama–Michael addition. The dissonant 1,4-oxygenation pattern was then installed by allylic rearrangement/oxidation of the enone, followed by suprafacial 1,3-transposition. Synthetic scabrolide B was transformed into sinuscalide C by dehydration and into ineleganolide by base-mediated isomerization/oxa-Michael addition, which has potential biosynthetic implications; under basic conditions, the latter compound converts into horiolide by an intricate biomimetic cascade.
右旋糖苷类化合物 Scabrolide B 的全合成及其向 Sinuscalide C、Ineleganolide 和 Horiolide 的转化
人们直到最近才认识到,葶苈子内酯 A 和 B 的碳环支架明显不同。因此,我们合成葶苈子内酯 A 的路线无法推广到它的同胞兄弟。相反,我们必须设计出一种概念新颖的方法,依靠酮的分子内烯化来在桥头烯酮位点形成拥挤的中央环庚烯环;所需的环化前体是通过镧系元素催化的 Mukaiyama-Michael 加成反应获得的。然后,通过烯丙基烯酮重排/氧化作用,再通过面上 1,3- 反式反应,形成不和谐的 1,4- 氧合模式。合成的莨菪内酯 B 通过脱水转化为 sinuscalide C,并通过碱介导的异构化/oxa-Michael 加成转化为ineleganolide,这具有潜在的生物合成意义;在碱性条件下,后一种化合物通过复杂的生物模拟级联转化为 horiolide。
期刊介绍:
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