Intrinsic class C extended-spectrum β-lactamases mediate resistance to oxyimino-cephalosporins in Antarctic Pseudomonas fluorescens complex bacteria
Coche-Miranda, J.; Cespedes-Navarro, I.; Cardemil, B.; Arros, P.; Berrios-Pasten, C.; Perez, I.; Chavez, F. P.; Marcoleta, A. E.
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From a One Health perspective, identifying environmental reservoirs of antibiotic resistance determinants with potential clinical relevance is increasingly important. Among resistance mechanisms, {beta}-lactamases are of particular concern because they compromise the efficacy of {beta}-lactam antibiotics, the most widely used class in clinical practice. Antarctic soils harbor thousands of putative {beta}-lactamase genes, yet the functional properties and resistance contributions of these enzymes remain largely unexplored. Here, we investigated the distribution, diversity, and functional impact of intrinsic class C {beta}-lactamases (AmpC-type) in Antarctic members of the Pseudomonas fluorescens species complex, a lineage widely distributed in Antarctic soils and increasingly recognized as an opportunistic pathogen of humans, animals, and plants. Genome-scale analyses revealed that class C {beta}-lactamases are intrinsic, widespread, and highly diverse within this lineage. Phenotypic assays demonstrated that Antarctic isolates exhibit elevated resistance to {beta}-lactam antibiotics, particularly oxyimino-cephalosporins such as cefotaxime and ceftazidime, and that this phenotype is largely attenuated by {beta}-lactamase inhibition. Heterologous expression of selected Antarctic AmpC variants in a susceptible Escherichia coli host confirmed their ability to increase minimum inhibitory concentrations to oxyimino-cephalosporins. Notably, several Antarctic {beta}-lactamases harbor amino acid substitutions previously associated with extended-spectrum AmpC (ESAC) variants, including M174L and N346I, while others display broader substrate profiles despite lacking known ESAC-associated signatures. Comparative analyses further showed that the sequence diversity of Antarctic class C {beta}-lactamases exceeds that reported for clinical PDC variants from Pseudomonas aeruginosa. Together, these findings provide functional evidence that pristine Antarctic environments constitute reservoirs of naturally occurring class C {beta}-lactamases with extended-spectrum potential. Our results highlight the evolutionary depth and functional diversity of environmental {beta}-lactamases and underscore the importance of incorporating remote ecosystems into One Health-oriented antimicrobial resistance surveillance frameworks.
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