Department of Chemistry & Biochemistry, University of California, Santa Barbara , Santa Barbara, California 93106, United States.
Department of Chemistry, University of Pavia , Viale Taramelli, 10, 27100 Pavia, Italy.
J Am Chem Soc. 2017 Nov 15;139(45):16064-16067. doi: 10.1021/jacs.7b09136. Epub 2017 Nov 7.
An accelerative asymmetric gold catalysis is achieved for the first time via chiral ligand metal cooperation. An asymmetrically positioned remote amide group in the designed chiral binaphthyl-based ligand plays the essential role of a general base catalyst and selectively accelerates the cyclizations of 4-allen-1-ols into one prochiral allene face. The reactions are mostly highly enantioselective with achiral substrates, and due to the accelerated nature of the catalysis catalyst loadings as low as 100 ppm are allowed. With a pre-existing chiral center at any of the backbone sp-carbons, the reaction remained highly efficient and most importantly maintained excellent allene facial selectivities regardless of the substrate stereochemistry. By using different combinations of ligand and substrate enantiomers, it is now possible to access all four stereoisomers of versatile 2-vinyltetrahydrofurans with exceedingly high selectivity. The underpinning design of this chemistry reveals a novel and conceptually distinctive strategy to tackle challenging asymmetric gold catalysis, which to date has relied on decelerative asymmetric steric hindrance approaches.
首次通过手性配体与金属的协同作用实现了加速的不对称金催化。在设计的基于手性联萘的配体中,处于不对称位置的远程酰胺基团起到了通用碱催化剂的关键作用,并选择性地加速了 4-烯丙醇向一个前手性丙二烯面的环化反应。这些反应在使用非手性底物时大多具有高度对映选择性,并且由于催化的加速性质,可以允许使用低至 100ppm 的催化剂负载量。在手性轴上的任何一个 sp-碳原子上预先存在一个手性中心,反应仍然保持高效,并且最重要的是,无论底物的立体化学如何,都能保持优异的丙二烯面选择性。通过使用配体和底物对映异构体的不同组合,现在可以非常高的选择性获得四种立体异构体的多功能 2-乙烯基四氢呋喃。这种化学的基础设计揭示了一种新颖的、概念独特的策略,用于解决具有挑战性的不对称金催化问题,迄今为止,该催化问题一直依赖于减速不对称空间位阻方法。