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September 23, 2025Organic Letters0 citations

Chemoenzymatic Decarboxylative Bromination of Acetylenic Acids Using Vanadium-Dependent Chloroperoxidase

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ZZZhigang ZengRHRicha HuJPJ Peng

Key Points

  • The method achieves up to 99% conversion of substrates, integrating enzymatic and chemocatalytic processes.
  • Vanadium-dependent chloroperoxidase produces reactive hypobromite, enabling efficient bromination of acetylenic acids.
  • This study provides a green alternative to traditional bromination methods, significantly reducing waste generation.
  • The research explores the expanded oxidation chemistry associated with vanadium-dependent chloroperoxidases, promising versatile applications.

Abstract

Haloalkynes are versatile building blocks in organic transformations. However, the traditional synthesis of these compounds, using either Br2 or N-bromosuccinimide, suffers from significant waste generation. Herein, we use vanadium-dependent chloroperoxidase from Curvularia inaequalis (CiVCPO) for the in situ generation of reactive hypobromite, which enables the chemoenzymatic decarboxylation bromination of phenylpropiolic acids. A broad range of substrates were converted into the corresponding haloalkynes in up to 99% conversion and 99% chemoselectivity. This method was also cascaded with chemocatalysis to yield various important building blocks. This work not only reports a mild and environmentally friendly alternative to prepare the versatile haloalkynes but also expands the oxidation chemistry of vanadium-dependent chloroperoxidases.

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Cite This Study

Zeng et al. (2025) studied this question.

synapsesocial.com/papers/68d4739d31b076d99fa6bb14https://doi.org/10.1021/acs.orglett.5c03522
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