Graduate School of Pharmaceutical Sciences, Chiba University.
Molecular Chirality Research Center, Chiba University.
Chem Pharm Bull (Tokyo). 2020;68(11):1104-1108. doi: 10.1248/cpb.c20-00557.
Catalytic dearomative transformations of phenol variants via an ipso-Friedel-Crafts reaction could provide a straightforward method for the rapid assembly of functionalized spiromolecules as versatile synthetic scaffolds. We previously reported a dearomative spirocyclization reaction by merging Brønsted acid and hydrogen-bonding catalysis. However, it was unclear how the reaction proceeded and how the synergic effect was triggered. Described herein are the computational studies used to elucidate the reaction mechanism. Such calculations indicated that the applied catalysts, maleic acid and Schreiner's thiourea, work cooperatively. The synergic effect enabled the chemoselectivity to interconvert between phenol dearomatization and O-H insertion, which is a major side reaction. This investigation also revealed that not only does the Schreiner's thiourea catalyst serve as a hydrogen bonding donor, but the sulfur atom in thiourea possesses a general base function. The dual functional support of the thiourea along with maleic acid would thus realize the chemoselective prioritization of dearomatization over the O-H insertion reaction under mild conditions.
通过芳环 ipso-Friedel-Crafts 反应的催化去芳构化转化,可以为快速组装官能化螺环分子提供一种直接的方法,作为多功能合成支架。我们之前报道了通过合并 Brønsted 酸和氢键催化的去芳构化螺环化反应。然而,反应的进行方式和协同效应的触发机制尚不清楚。本文描述了用于阐明反应机理的计算研究。这些计算表明,所应用的催化剂马来酸和 Schreiner 的硫脲协同作用。协同效应使得酚类去芳构化和 O-H 插入之间的化学选择性相互转换成为主要的副反应。这项研究还表明,Schreiner 的硫脲催化剂不仅作为氢键供体,而且硫脲中的硫原子具有广义碱功能。因此,硫脲与马来酸的双重功能支持可以实现在温和条件下,优先进行去芳构化反应,而不是 O-H 插入反应的化学选择性。