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Unmasking the reverse catalytic activity of 'ene'-reductases for asymmetric carbonyl desaturation. | LitMetric

Unmasking the reverse catalytic activity of 'ene'-reductases for asymmetric carbonyl desaturation.

Nat Chem

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.

Published: November 2024

AI Article Synopsis

  • Carbonyl desaturation is a key reaction in organic synthesis, but traditional methods often require complicated multi-step processes or harsh conditions.
  • Researchers developed a new biocatalytic system using engineered 'ene'-reductases to streamline the desaturation of cyclohexanones into cyclohexenones, ensuring better stereochemical control.
  • This method operates under mild conditions, uses air for oxidation, and shows improved tolerance to sensitive functional groups and greater stereoselectivity compared to conventional catalysts.

Article Abstract

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.

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Source
http://dx.doi.org/10.1038/s41557-024-01671-1DOI Listing

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