P450 Enzyme LyoI Performs Hydro‐2,2′‐Bifuran Oxidation in the Polyether Ionophore Lysocellin

M Michelle H. Rasmussen (Department of Chemistry, Aarhus University; Langelandsgade 140, Aarhus DK-8000, Aarhus C, Denmark) S Søren L. B. Møller (Department of Chemistry, Aarhus University; Langelandsgade 140, Aarhus DK-8000, Aarhus C, Denmark) E Esben B. Svenningsen (Department of Chemistry, Aarhus University; Langelandsgade 140, Aarhus DK-8000, Aarhus C, Denmark) T Thomas Tørring (Department of Biological and Chemical Engineering, Aarhus University, Gustav Wieds Vej 10, Aarhus DK-8000, Aarhus C, Denmark) T Thomas B. Poulsen (Department of Chemistry, Aarhus University; Langelandsgade 140, Aarhus DK-8000, Aarhus C, Denmark)

Abstract

Abstract Polyether ionophores are potent antimicrobials, albeit also cytotoxic against mammalian cells. We have identified several polyether ionophores containing a common hydro‐2,2′‐bifuran‐2‐ol (hemiketal) moiety, which cannot be derived from the canonical biosynthetic steps observed for the compound class, suggesting an unusual oxidative transformation. To identify the responsible enzyme, we applied CRISPR–BEST to knock out genes in the lysocellin‐producing strain S. longwoodensis . This allowed us to propose the first annotation of the lysocellin biosynthetic gene cluster and identify the responsible P450 enzyme, LyoI, through reconstitution of the function in vivo. LyoI knockout provided access to the non‐oxidized precursor (pre‐lysocellin) which allowed both in vitro validation of the unusual direct hydro‐2,2′‐bifuran to hydro‐2,2′‐bifuran‐2‐ol oxidation and investigation of the impact on biological activity. Interestingly, absence of the LyoI‐mediated oxidation greatly reduced the biological potency of the compound. Closer investigation of the sequence revealed that LyoI lacks a key conserved acidic residue, which proved essential for the unusual oxidative function of the enzyme. Through a sequence similarity network of LyoI, we were able to identify a wide range of non‐canonical P450 enzymes, highlighting the possibilities of a biosynthesis‐focused approach to discovering novel enzymes.

Article Details

Volume / Issue Vol. 64, Issue 43
Published October 20, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (5)

M

Michelle H. Rasmussen

Department of Chemistry, Aarhus University; Langelandsgade 140, Aarhus DK-8000, Aarhus C, Denmark

S

Søren L. B. Møller

Department of Chemistry, Aarhus University; Langelandsgade 140, Aarhus DK-8000, Aarhus C, Denmark

E

Esben B. Svenningsen

Department of Chemistry, Aarhus University; Langelandsgade 140, Aarhus DK-8000, Aarhus C, Denmark

T

Thomas Tørring

Department of Biological and Chemical Engineering, Aarhus University, Gustav Wieds Vej 10, Aarhus DK-8000, Aarhus C, Denmark

T

Thomas B. Poulsen

Department of Chemistry, Aarhus University; Langelandsgade 140, Aarhus DK-8000, Aarhus C, Denmark