Department of Chemistry, Merkert Chemistry Center, Boston College, Chestnut Hill, Massachusetts 02467, USA.
Nat Chem. 2017 Dec;9(12):1269-1275. doi: 10.1038/nchem.2816. Epub 2017 Jul 17.
There are many biologically active organic molecules that contain one or more nitrogen-containing moieties, and broadly applicable and efficient catalytic transformations that deliver them diastereoselectively and/or enantioselectively are much sought after. Various methods for enantioselective synthesis of α-secondary amines are available (for example, from additions to protected/activated aldimines), but those involving ketimines are much less common. There are no reported additions of carbon-based nucleophiles to unprotected/unactivated (or N-H) ketimines. Here, we report a catalytic, diastereo- and enantioselective three-component strategy for merging an N-H ketimine, a monosubstituted allene and B(pin), affording products in up to 95% yield, >98% diastereoselectivity and >99:1 enantiomeric ratio. The utility of the approach is highlighted by synthesis of the tricyclic core of a class of compounds that have been shown to possess anti-Alzheimer activity. Stereochemical models developed with the aid of density functional theory calculations, which account for the observed trends and levels of enantioselectivity, are presented.
有许多含有一个或多个含氮部分的生物活性有机分子,人们迫切需要广泛适用且高效的催化转化方法,以便将它们非对映选择性和/或对映选择性地转化。目前已有多种方法可用于α-仲胺的对映选择性合成(例如,通过向保护/活化的亚胺加成),但涉及酮亚胺的方法则较少见。尚未有报道过碳亲核试剂对未保护/未活化(或 N-H)酮亚胺的加成反应。在这里,我们报告了一种催化的、非对映选择性和对映选择性的三组分策略,用于合并 N-H 酮亚胺、单取代烯丙基和 B(pin),以高达 95%的收率、>98%的非对映选择性和>99:1 的对映体比例得到产物。该方法的实用性通过合成一类具有抗阿尔茨海默病活性的化合物的三环核心得到了突出体现。提出了借助密度泛函理论计算开发的立体化学模型,这些模型解释了观察到的趋势和对映选择性水平。