International Joint Research Laboratory of Nano-Micro Architecture Chemistry (NMAC), College of Chemistry, Jilin University, 699 Qianjin Street, Changchun, 130012, P. R. China.
Key Laboratory of Oil & Gas Fine Chemicals, Ministry of Education & Xinjiang Uyghur Autonomous Region, College of Chemistry, Xinjiang University, Urumqi, Xinjiang, 830000, P. R. China.
Chem Asian J. 2021 Jul 19;16(14):1864-1877. doi: 10.1002/asia.202100432. Epub 2021 Jun 7.
Quaternary stereocenters are of great importance to the three-dimensionality and enhanced properties of new molecules, but the synthetic challenges in creating quaternary stereocenters greatly hinder their wide use in drug discovery, organic material design, and natural product synthesis. The asymmetric allylic alkylation (AAA) of allylic substrates has proven to be a powerful methodology for enantioselective formation of structure skeletons bearing single or more quaternary carbon centers in modern asymmetric organocatalysis. AAA has certain advantages in constructing the tetrasubstituted stereocenters, including but not limited to mild reactive conditions, effective reaction rates, new functional group introduction, and carbon chains length extension. This review outlines the key considerations in the application of AAA reactions and summarizes the recent progress of AAA reactions in the enantioselective synthesis of products containing quaternary stereocenters. Meanwhile, a detailed discussion of the AAA reactions such as ligands, scope of substrates, transformations and the general reaction mechanisms is also provided. We hope this review could stimulate further advances in much broader areas, including organic synthesis, asymmetric catalysis, C-H activation, and symmetrical pharmaceutical chemistry.
季碳中心对于新分子的三维结构和增强性质非常重要,但在合成季碳中心时所面临的挑战极大地阻碍了它们在药物发现、有机材料设计和天然产物合成中的广泛应用。烯丙基底物的不对称烯丙基烷基化(AAA)已被证明是一种在现代不对称有机催化中用于对映选择性形成具有单或更多季碳原子中心的结构骨架的强大方法。AAA 在构建四取代立体中心方面具有一定的优势,包括但不限于温和的反应条件、有效的反应速率、新官能团的引入以及碳链长度的延长。本文综述了 AAA 反应应用中的关键考虑因素,并总结了 AAA 反应在含有季碳中心的对映选择性合成产物中的最新进展。同时,还对 AAA 反应(如配体、底物范围、转化和一般反应机制)进行了详细讨论。我们希望这篇综述能够激发更广泛领域的进一步进展,包括有机合成、不对称催化、C-H 活化和对称药物化学。