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March 21, 2026Journal of the American Chemical Society2 citations

Repurposing “Ene”-Reductase to Isomerase for Enantiodivergent Synthesis of Allenoates

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HCHeli ChengKZKun ZhangPCPing Chang

Key Points

  • This research aims to develop a method for synthesizing chiral allenoates using engineered isomerases from non-traditional enzymes.
  • Utilized directed evolution to modify flavin-dependent ene-reductases (EREDs) from Galdieria sulphuraria.
  • Targeted proton transfer reactions for asymmetric isomerization of achiral alkynoates.
  • Characterized the resulting isomerases for their efficiency in converting 3-butynoates and 2-butynoates.
  • Engineered EREDs successfully produced diverse chiral allenoates with high enantiodivergence.
  • Achieved negligible product inhibition in biochemical reactions.
  • Mutants exhibited both one- and two-base catalytic mechanisms, showcasing functional versatility.

Abstract

The synthesis of chiral allenoates through enzymatic asymmetric isomerization of achiral alkynoates via proton transfer is a highly desirable yet unachieved transformation, primarily due to significant product inhibition encountered with natural isomerases. To circumvent this, we repurposed flavin-dependent “ene”-reductases (EREDs), traditionally oxidoreductases, for redox-neutral stereoselective 1,3-proton transfer. Directed evolution of an ERED from Galdieria sulphuraria (GsOYE) generated a panel of new-to-nature isomerases proficient in isomerizing both 3-butynoates and 2-butynoates, affording diverse chiral allenoates with excellent enantiodivergence and negligible product inhibition. The resulting allenoates were leveraged in chirality transfer 2 + 2, 3 + 2, and 4 + 2 cycloadditions to create complex polycycles with up to three stereogenic centers. Mechanistic studies revealed that directed evolution yielded GsOYE mutants capable of operating via either one- or two-base mechanisms, a functional divergence rarely seen with small-molecule catalysts. This study expanded the catalytic repertoire of EREDs, establishing a biocatalytic platform for proton transfer catalysis to set axial chirality.

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Cite This Study

Cheng et al. (2026) studied this question.

synapsesocial.com/papers/69be38b56e48c4981c6794c0https://doi.org/10.1021/jacs.5c19848
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