Roger Adams Laboratory, Department of Chemistry, University of Illinois , Urbana, Illinois 61801, United States.
J Org Chem. 2011 Jun 3;76(11):4260-336. doi: 10.1021/jo2005445. Epub 2011 May 6.
Despite over three decades of research into asymmetric phase-transfer catalysis (APTC), a fundamental understanding of the factors that affect the rate and stereoselectivity of this important process are still obscure. This paper describes the initial stages of a long-term program aimed at elucidating the physical organic foundations of APTC employing a chemoinformatic analysis of the alkylation of a protected glycine imine with libraries of enantiomerically enriched quaternary ammonium ions. The synthesis of the quaternary ammonium ions follows a diversity-oriented approach wherein the tandem inter[4 + 2]/intra[3 + 2] cycloaddition of nitroalkenes serves as the key transformation. A two-part synthetic strategy comprised of (1) preparation of enantioenriched scaffolds and (2) development of parallel synthesis procedures is described. The strategy allows for the facile introduction of four variable groups in the vicinity of a stereogenic quaternary ammonium ion. The quaternary ammonium ions exhibited a wide range of activity and to a lesser degree enantioselectivity. Catalyst activity and selectivity are rationalized in a qualitative way on the basis of the effective positive potential of the ammonium ion.
尽管不对称相转移催化(APTC)的研究已经进行了三十多年,但对于影响这一重要过程速率和立体选择性的因素,我们仍然知之甚少。本文描述了一个长期项目的初始阶段,该项目旨在利用对一系列对映体富集的季铵离子对受保护甘氨酸亚胺进行烷基化的 chemoinformatic 分析,阐明 APTC 的物理有机基础。季铵离子的合成采用了一种多样化导向的方法,其中硝烯的串联[4 + 2]/内[3 + 2]环加成反应是关键转化。本文描述了一种由两部分组成的合成策略,包括(1)制备对映体富集的支架和(2)开发平行合成程序。该策略允许在一个手性季铵离子的附近轻松引入四个可变基团。这些季铵离子表现出广泛的活性和较小程度的对映选择性。基于铵离子的有效正电势,以定性的方式对催化剂的活性和选择性进行了合理化。