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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
Molecular characterization of multidrug-resistant Klebsiella pneumoniae isolates
Xiang-hua Hou1, Xiu-yu Song2, Xiao-bo Ma2
1Department of Nephrology, the First Affiliated Hospital of Xiamen University, Xiamen, China .
Abstract:
Klebsiella pneumoniae is an important cause of healthcare-associated infections worldwide. Selective pressure, the extensive use of antibiotics, and the conjugational transmission of antibiotic resistance genes across bacterial species and genera facilitate the emergence of multidrug-resistant (MDR) K. pneumoniae. Here, we examined the occurrence, phenotypes and genetic features of MDR K. pneumoniae isolated from patients in intensive care units (ICUs) at the First Affiliated Hospital of Xiamen University in Xiamen, China, from January to December 2011. Thirty-eight MDR K. pneumoniae strains were collected. These MDR K. pneumoniae isolates possessed at least seven antibiotic resistance determinants, which contribute to the high-level resistance of these bacteria to aminoglycosides, macrolides, quinolones and β-lactams. Among these isolates, 24 strains were extended-spectrum β-lactamase (ESBL) producers, 2 strains were AmpC producers, and 12 strains were both ESBL and AmpC producers. The 38 MDR isolates also contained class I (28/38) and class II integrons (10/38). All 28 class I-positive isolates contained aacC1, aacC4, orfX, orfX' and aadA1 genes. β-lactam resistance was conferred through bla SHV (22/38), bla TEM (10/38), and bla CTX-M (7/38). The highly conserved bla KPC-2 (37/38) and bla OXA-23(1/38) alleles were responsible for carbapenem resistance, and a gyrAsite mutation (27/38) and the plasmid-mediated qnrB gene (13/38) were responsible for quinolone resistance. Repetitive-sequence-based PCR (REP-PCR) fingerprinting of these MDR strains revealed the presence of five groups and sixteen patterns. The MDR strains from unrelated groups showed different drug resistance patterns; however, some homologous strains also showed different drug resistance profiles. Therefore, REP-PCR-based analyses can provide information to evaluate the epidemic status of nosocomial infection caused by MDR K. pneumoniae; however, this test lacks the power to discriminate some isolates. Thus, we propose that both genotyping and REP-PCR typing should be used to distinguish genetic groups beyond the species level.
Insights
Multidrug-resistant Klebsiella pneumoniae strains from ICUs showed high resistance to common antibiotics. Genotyping and REP-PCR typing are recommended for tracking these infections.
Area of Science:
- Microbiology
- Infectious Diseases
- Genetics
Background:
- Klebsiella pneumoniae is a significant cause of healthcare-associated infections globally.
- The rise of multidrug-resistant (MDR) K. pneumoniae is driven by antibiotic use and gene transfer.
- MDR K. pneumoniae poses a substantial threat in intensive care units (ICUs).
Purpose of the Study:
- To investigate the prevalence, resistance phenotypes, and genetic characteristics of MDR K. pneumoniae in ICUs.
- To identify specific antibiotic resistance genes and mechanisms.
- To evaluate the utility of Repetitive-sequence-based PCR (REP-PCR) for epidemiological surveillance.
Main Methods:
- Collection and analysis of 38 MDR K. pneumoniae strains from ICU patients.
- Phenotypic antibiotic susceptibility testing.
- Detection of antibiotic resistance genes, integrons, and mutations.
- Repetitive-sequence-based PCR (REP-PCR) for strain typing.
Main Results:
- All 38 MDR K. pneumoniae isolates exhibited resistance to at least seven antibiotic classes.
- Common resistance mechanisms included ESBL/AmpC production, blaKPC-2, blaOXA-23, gyrA mutations, and qnrB genes.
- Integrons (class I and II) and specific resistance genes (e.g., aacC1, aadA1, blaSHV, blaTEM, blaCTX-M) were identified.
- REP-PCR revealed five distinct groups and sixteen patterns, indicating genetic diversity.
Conclusions:
- MDR K. pneumoniae strains in Xiamen University's ICU possess diverse resistance mechanisms, including carbapenem and quinolone resistance.
- REP-PCR is a useful tool for assessing the epidemic potential of MDR K. pneumoniae, but combining it with genotyping offers superior discrimination.
- Integrated molecular approaches are crucial for effective surveillance and control of nosocomial infections caused by MDR K. pneumoniae.
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