Department of Chemistry, Yale University, New Haven, CT, 06520-8107, USA.
Angew Chem Int Ed Engl. 2018 Nov 12;57(46):15107-15111. doi: 10.1002/anie.201808305. Epub 2018 Oct 18.
Reversible redox processes involving hydroquinones and quinones are ubiquitous in biological reaction networks, materials science, and catalysis. While extensively studied in intermolecular settings, less is known about intramolecular scenarios. Herein, we report hydroquinone-quinone hybrid molecules that form two-stereocenter dihydrobenzofurans via intramolecular cyclization under thermodynamic control. A π-methylhistidine peptide-catalyzed kinetic resolution allowed us to study the stereodynamic behavior of enantio- and diastereo-enriched dihydrofurans. In the course of this study, it was revealed that a reversible intramolecular redox-interconversion network connects all four possible stereoisomers via inversion of a quaternary carbon stereocenter without achiral intermediates. As a result, these findings on hydroquinone-quinone hybrid molecules provide insights into potential natural origin and synthetic access of the common dihydrobenzofuran motif.
涉及对苯二酚和醌的可逆氧化还原过程在生物反应网络、材料科学和催化中无处不在。虽然在分子间环境中得到了广泛研究,但对分子内情况的了解较少。本文报道了通过分子内环化在热力学控制下形成两个立体中心二氢苯并呋喃的对苯二酚-醌混合分子。通过π-甲基组氨酸肽催化的动力学拆分,我们能够研究对映体和非对映体富集的二氢呋喃的立体动力学行为。在这项研究过程中,揭示了一个可逆的分子内氧化还原互变网络,通过四元碳立体中心的反转将所有四个可能的立体异构体连接起来,而没有手性中间体。因此,这些关于对苯二酚-醌混合分子的发现为常见二氢苯并呋喃基序的潜在天然起源和合成途径提供了深入了解。