Insect‐associated bacteria assemble the antifungal butenolide gladiofungin by non‐canonical polyketide chain termination

GND
1225691907
ORCID
0000-0002-2012-5949
Zugehörigkeit
Leibniz Institute for Natural Product Research and Infection Biology, HKI
Niehs, Sarah P.;
GND
1064760627
ORCID
0000-0003-3510-8276
Zugehörigkeit
Leibniz Institute for Natural Product Research and Infection Biology, HKI
Kumpfmüller, Jana;
GND
1237297516
Zugehörigkeit
Leibniz Institute for Natural Product Research and Infection Biology, HKI
Dose, Benjamin;
Zugehörigkeit
Leibniz Institute for Natural Product Research and Infection Biology, HKI
Little, Rory F.;
Zugehörigkeit
Leibniz Institute for Natural Product Research and Infection Biology, HKI
Ishida, Keishi;
Zugehörigkeit
Johannes Gutenberg University Mainz
Flórez, Laura V.;
Zugehörigkeit
Johannes Gutenberg University Mainz
Kaltenpoth, Martin;
GND
121283097
ORCID
0000-0002-0367-337X
Zugehörigkeit
Leibniz Institute for Natural Product Research and Infection Biology, HKI
Hertweck, Christian

Genome mining of one of the protective symbionts ( Burkholderia gladioli ) of the invasive beetle Lagria villosa revealed a cryptic gene cluster that codes for the biosynthesis of a novel antifungal polyketide with a glutarimide pharmacophore. Targeted gene inactivation, metabolic profiling, and bioassays led to the discovery of the gladiofungins as previously‐overlooked components of the antimicrobial armory of the beetle symbiont, which are highly active against the entomopathogenic fungus Purpureocillium lilacinum . By mutational analyses, isotope labeling, and computational analyses of the modular polyketide synthase, we found that the rare butenolide moiety of gladiofungins derives from an unprecedented polyketide chain termination reaction involving a glycerol‐derived C3 building block. The key role of an A‐factor synthase (AfsA)‐like offloading domain was corroborated by CRISPR‐Cas‐mediated gene editing, which facilitated precise excision within a PKS domain.

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