Weh Manuel, Kroeger Asja A, Shoyama Kazutaka, Grüne Matthias, Karton Amir, Würthner Frank
Institut für Organische Chemie, Universität Würzburg, Am Hubland, 97074, Würzburg, Germany.
School of Molecular Sciences, The University of Western Australia, 35 Stirling Highway, Crawley, WA 6009, Australia.
Angew Chem Int Ed Engl. 2023 May 2;62(19):e202301301. doi: 10.1002/anie.202301301. Epub 2023 Apr 4.
Enzymes actuate catalysis through a combination of transition state stabilization and ground state destabilization, inducing enantioselectivity through chiral binding sites. Here, we present a supramolecular model system which employs these basic principles to catalyze the enantiomerization of [5]helicene. Catalysis is hereby mediated not through a network of functional groups but through π-π catalysis exerted from the curved aromatic framework of a chiral perylene bisimide (PBI) cyclophane offering a binding pocket that is intricately complementary with the enantiomerization transition structure. Although transition state stabilization originates simply from dispersion and electrostatic interactions, enantiomerization kinetics are accelerated by a factor of ca. 700 at 295 K. Comparison with the meso-congener of the catalytically active cyclophane shows that upon configurational inversion in only one PBI moiety the catalytic effect is lost, highlighting the importance of precise transition structure recognition in supramolecular enzyme mimics.
酶通过过渡态稳定和基态去稳定化的结合来启动催化作用,通过手性结合位点诱导对映选择性。在此,我们展示了一个超分子模型系统利用这些基本原理催化[5]螺旋烯的对映异构化。催化作用在此不是通过官能团网络介导,而是通过手性苝双酰亚胺(PBI)环番的弯曲芳香框架施加的π-π催化来介导,该环番提供了一个与对映异构化过渡结构复杂互补的结合口袋。尽管过渡态稳定仅仅源于色散和静电相互作用,但在295 K时对映异构化动力学加快了约700倍。与催化活性环番的内消旋类似物比较表明,仅在一个PBI部分构型反转时催化效果就会丧失,突出了在超分子酶模拟物中精确过渡结构识别的重要性。