Wang Hui, Gao Bin, Cheng Heli, Cao Shixuan, Ma Xinyi, Chen Yinjuan, Ye Yuxuan
Key Laboratory of Precise Synthesis of Functional Molecules of Zhejiang Province, Department of Chemistry, School of Science and Research Center for Industries of the Future, Westlake University, Hangzhou, China.
Key Laboratory of Precise Synthesis of Functional Molecules of Zhejiang Province, Instrumentation and Service Center for Molecular Sciences, Westlake University, Hangzhou, China.
Nat Chem. 2025 Jan;17(1):74-82. doi: 10.1038/s41557-024-01671-1. Epub 2024 Nov 26.
Carbonyl desaturation is a fundamental reaction widely practised in organic synthesis. While numerous methods have been developed to expand the scope of this important transformation, most of them necessitate multi-step protocols or suffer from the use of high loadings of metal or strong oxidizing conditions. Moreover, approaches that can achieve precise stereochemical control of the desaturation process are extremely rare. Here we report a biocatalytic platform for desymmetrizing desaturation of cyclohexanones to generate diverse cyclohexenones bearing a remote quaternary stereogenic centre, by reengineering 'ene'-reductases to efficiently mediate dehydrogenation, the reverse process of their native activity. This 'ene'-reductase-based desaturation system operates under mild conditions with air as the terminal oxidant, tolerates oxidation-sensitive or metal-incompatible functional groups and, more importantly, exhibits unparalleled stereoselectivity compared with those achieved with small-molecule catalysts. Mechanistic investigations suggest that the reaction proceeded through α-deprotonation followed by a rate-determining β-hydride transfer.
羰基去饱和反应是有机合成中广泛应用的一种基本反应。虽然已经开发出许多方法来扩展这一重要转化的范围,但其中大多数方法需要多步操作,或者存在使用高负载金属或强氧化条件的问题。此外,能够实现去饱和过程精确立体化学控制的方法极为罕见。在此,我们报道了一个生物催化平台,通过对“烯”还原酶进行改造,使其能够有效地介导脱氢反应(即其天然活性的逆过程),从而将环己酮的去对称化去饱和反应转化为带有远程季碳立体中心的多种环己烯酮。这种基于“烯”还原酶的去饱和系统在温和条件下以空气作为终端氧化剂运行,能够耐受对氧化敏感或与金属不相容的官能团,更重要的是,与小分子催化剂相比,它表现出无与伦比的立体选择性。机理研究表明,该反应通过α-去质子化,随后是速率决定步骤的β-氢转移进行。