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Isolation and Identification of Waterborne Antibiotic-Resistant Bacteria and Molecular Characterization of their Antibiotic Resistance Genes
Published on: March 3, 2023
Resistance determinants and mobile genetic elements of an NDM-1-encoding Klebsiella pneumoniae strain
Corey M Hudson1, Zachary W Bent1, Robert J Meagher2
1Department of Systems Biology, Sandia National Laboratories, Livermore, California, United States of America.
Abstract:
Multidrug-resistant Enterobacteriaceae are emerging as a serious infectious disease challenge. These strains can accumulate many antibiotic resistance genes though horizontal transfer of genetic elements, those for β-lactamases being of particular concern. Some β-lactamases are active on a broad spectrum of β-lactams including the last-resort carbapenems. The gene for the broad-spectrum and carbapenem-active metallo-β-lactamase NDM-1 is rapidly spreading. We present the complete genome of Klebsiella pneumoniae ATCC BAA-2146, the first U.S. isolate found to encode NDM-1, and describe its repertoire of antibiotic-resistance genes and mutations, including genes for eight β-lactamases and 15 additional antibiotic-resistance enzymes. To elucidate the evolution of this rich repertoire, the mobile elements of the genome were characterized, including four plasmids with varying degrees of conservation and mosaicism and eleven chromosomal genomic islands. One island was identified by a novel phylogenomic approach, that further indicated the cps-lps polysaccharide synthesis locus, where operon translocation and fusion was noted. Unique plasmid segments and mosaic junctions were identified. Plasmid-borne blaCTX-M-15 was transposed recently to the chromosome by ISEcp1. None of the eleven full copies of IS26, the most frequent IS element in the genome, had the expected 8-bp direct repeat of the integration target sequence, suggesting that each copy underwent homologous recombination subsequent to its last transposition event. Comparative analysis likewise indicates IS26 as a frequent recombinational junction between plasmid ancestors, and also indicates a resolvase site. In one novel use of high-throughput sequencing, homologously recombinant subpopulations of the bacterial culture were detected. In a second novel use, circular transposition intermediates were detected for the novel insertion sequence ISKpn21 of the ISNCY family, suggesting that it uses the two-step transposition mechanism of IS3. Robust genome-based phylogeny showed that a unified Klebsiella cluster contains Enterobacter aerogenes and Raoultella, suggesting the latter genus should be abandoned.
Insights
The first U.S. Klebsiella pneumoniae isolate with NDM-1 carbapenemase was sequenced, revealing extensive antibiotic resistance genes and mobile genetic elements. This provides insights into the evolution and spread of multidrug resistance in Enterobacteriaceae.
Area of Science:
- Microbiology
- Genomics
- Infectious Diseases
Background:
- Multidrug-resistant Enterobacteriaceae pose a significant global health threat.
- The spread of carbapenemase genes, such as New Delhi metallo-β-lactamase (NDM-1), is a major concern.
- Klebsiella pneumoniae is a key pathogen associated with hospital-acquired infections.
Purpose of the Study:
- To present the complete genome sequence of the first U.S. Klebsiella pneumoniae isolate encoding NDM-1 (ATCC BAA-2146).
- To characterize the antibiotic resistance gene repertoire and mobile genetic elements within this strain.
- To investigate the evolutionary mechanisms driving the acquisition and dissemination of antibiotic resistance.
Main Methods:
- Whole-genome sequencing of Klebsiella pneumoniae ATCC BAA-2146.
- Bioinformatic analysis to identify antibiotic resistance genes, mutations, plasmids, and genomic islands.
- Phylogenomic analysis to understand the evolutionary relationships of mobile elements and bacterial genera.
- High-throughput sequencing for detecting recombinant subpopulations and transposition intermediates.
Main Results:
- The genome revealed a comprehensive suite of 23 antibiotic-resistance enzymes, including eight β-lactamases (e.g., NDM-1, CTX-M-15).
- Characterization of four plasmids and eleven chromosomal genomic islands highlighted mosaic structures and unique segments.
- Novel phylogenomic approaches identified a polysaccharide synthesis locus with operon translocation and fusion.
- IS26 insertion sequences were frequently associated with recombination events, and ISKpn21 showed evidence of a two-step transposition mechanism.
Conclusions:
- The genome provides a detailed blueprint of a highly resistant Klebsiella pneumoniae strain, crucial for understanding NDM-1 spread.
- Mobile genetic elements, including plasmids and genomic islands, play a pivotal role in the evolution and dissemination of antibiotic resistance.
- Advanced sequencing techniques offer new avenues for studying bacterial evolution and recombination.
- Phylogenetic analysis suggests a unified Klebsiella cluster, potentially necessitating the reclassification of the Raoultella genus.
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