Institute of Organic Chemistry, University of Vienna, Vienna 1090, Austria.
Institute of Theoretical Chemistry, University of Vienna, Vienna 1090, Austria.
J Am Chem Soc. 2023 Mar 15;145(10):5855-5863. doi: 10.1021/jacs.2c13116. Epub 2023 Feb 28.
Cationic cyclopropanation involves the γ-elimination at carbocations to form a new σ-C-C bond through proton loss. While exceedingly rare in bulk solution, it is recognized as one of the main biosynthetic cyclopropanation pathways. Despite the rich history of bioinspired synthetic chemistry, cationic cyclopropanation has not been appropriated for the synthetic toolbox, likely due to the preference of carbocations to undergo competing E1 β-elimination pathways. Here, we present an in-depth synthetic and computational study of cationic cyclopropanation, focusing on the 6,8-cycloeudesmanes as a platform for this investigation. We were able to apply biomimetic cationic cyclopropanation to the synthesis of several 6,8-cycloeudesmanes and non-natural analogues─in doing so, we showcase the power of this transformation in the preparation of complex cyclopropanes.
阳离子环丙烷化反应涉及碳正离子的γ-消除,通过质子缺失形成新的σ-C-C 键。虽然在大量溶液中极为罕见,但它被认为是主要的生物合成环丙烷化途径之一。尽管仿生合成化学有着丰富的历史,但阳离子环丙烷化并未被纳入合成工具包,这可能是由于碳正离子倾向于经历竞争的 E1β-消除途径。在这里,我们对阳离子环丙烷化进行了深入的合成和计算研究,重点是 6,8-环羊毛甾烷作为该研究的平台。我们能够将仿生阳离子环丙烷化应用于几种 6,8-环羊毛甾烷和非天然类似物的合成中——通过这样做,我们展示了这种转化在制备复杂环丙烷中的强大功能。