Department of Chemistry and Chemical Biology, Harvard University , Cambridge, Massachusetts 02138, United States.
J Am Chem Soc. 2014 Sep 24;136(38):13442-52. doi: 10.1021/ja507740u. Epub 2014 Sep 12.
A unique subset of the Lycopodium alkaloid natural products share a 7-membered-ring substructure and may potentially arise from a common biosynthetic precursor. To both explore and exploit these structural relationships, we sought to develop a unified biosynthetically inspired strategy to efficiently access these complex polycyclic alkaloids through the use of a cascade sequence. In pursuit of these goals, the first total synthesis of (+)-fastigiatine (2) was accomplished via a series of cascade reactions; we describe herein a full account of our efforts. Insight from these endeavors led to critical modifications of our synthetic strategy, which enabled the first total syntheses of (-)-himeradine A (1), (-)-lycopecurine (3), and (-)-dehydrolycopecurine (4), as well as the syntheses of (+)-lyconadin A (5) and (-)-lyconadin B (6). Our approach features a diastereoselective one-pot sequence for constructing the common 7-membered-ring core system, followed by either a biomimetic transannular Mannich reaction to access himeradine A (1), lycopecurine (3), and dehydrolycopecurine (4) or an imine reduction for lyconadins A (5) and B (6). This strategy may potentially enable access to all 7-membered-ring-containing Lycopodium alkaloids and provides additional insight into their biosynthetic origin.
具有 7 元环结构的石松生物碱天然产物是一个独特的亚类,它们可能来源于一个共同的生物合成前体。为了探索和利用这些结构关系,我们寻求开发一种统一的、受生物合成启发的策略,通过级联序列来高效获得这些复杂的多环生物碱。在追求这些目标的过程中,我们首次通过一系列级联反应完成了 (+)-fastigiatine(2)的全合成;在此,我们详细描述了我们的努力。这些努力的见解促使我们对合成策略进行了关键修改,从而首次实现了 (-)-himeradine A(1)、(-)-lycopecurine(3)和 (-)-dehydrolycopecurine(4)的全合成,以及 (+)-lyconadin A(5)和 (-)-lyconadin B(6)的合成。我们的方法具有构建常见 7 元环核心系统的非对映选择性一锅法序列,然后要么通过仿生跨环 Mannich 反应来获得 himeradine A(1)、lycopecurine(3)和 dehydrolycopecurine(4),要么通过亚胺还原来获得 lyconadins A(5)和 B(6)。这种策略可能有潜力获得所有含有 7 元环的石松生物碱,并为它们的生物合成起源提供了更多的见解。