2023
DOI: 10.1038/s41467-023-43549-9
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Global pathogenomic analysis identifies known and candidate genetic antimicrobial resistance determinants in twelve species

Jason C. Hyun,
Jonathan M. Monk,
Richard Szubin
et al.

Abstract: Surveillance programs for managing antimicrobial resistance (AMR) have yielded thousands of genomes suited for data-driven mechanism discovery. We present a workflow integrating pangenomics, gene annotation, and machine learning to identify AMR genes at scale. When applied to 12 species, 27,155 genomes, and 69 drugs, we 1) find AMR gene transfer mostly confined within related species, with 925 genes in multiple species but just eight in multiple phylogenetic classes, 2) demonstrate that discovery-oriented supp… Show more

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