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Testing the Role of Multicopy Plasmids in the Evolution of Antibiotic Resistance
Published on: May 2, 2018
[Molecular epidemiology of beta-lactamases in ceftazidime-resistant Pseudomonas aeruginosa isolates]
Halil Er1, Mustafa Altındiş, Gülşah Aşık
1Muş State Hospital, Microbiology Laboratory, Muş, Turkey. haliler004@hotmail.com.
Abstract:
Pseudomonas aeruginosa is an important opportunistic pathogen that cause mainly nosocomial infections especially in the immunocompromised patients, the elderly and patients with severe burns. The bacterial feature of developing high degree of resistance against several antibiotics leads to increased morbidity and mortality of P.aeruginosa infections. The aims of this study were to investigate the antibiotic susceptibilities of P.aeruginosa strains isolated from hospitalized patients and to determine the presence of resistance enzymes namely PER, GES, KPC, VIM, IMP and OXA. A total of 195 P.aeruginosa strains isolated from different clinical samples (29 sputum, 67 wound, 53 tracheal aspirate, 23 blood, 18 urine, 3 cerebrospinal fluid, 2 pleural fluid) of inpatients (134 male, 61 female) in Afyon Kocatepe University School of Medicine Hospital between 2010-2012, were included in the study. The isolates were identified by conventional methods and automated systems (VITEK 2, BioMerieux, France), and their antibiotic susceptibilities were detected by disk diffusion and E-test methods. Inducible beta-lactamase (IBL), extended-spectrum beta-lactamase (ESBL) and metallo-beta-lactamase (MBL) productions of the isolates were phenotypically investigated by double disk induction, double disk synergy and E-test methods, respectively. The presence of resistance genes encoding PER, GES, KPC, VIM, IMP and OXA enzymes were determined by real-time polymerase chain reaction, and sequence analysis was applied to positive samples. In our study, the antibiotic resistance rates of 195 P.aeruginosa strains were found as follows: ceftazidime 100%, tazobactam/piperacillin 90.8%, aztreonam 60.5%, cefepime 50.2%, imipenem 48.2%, meropenem 47.2%, ofloxacin 47.2%, piperacillin 44.1%, levofloxacin 31.3%, ciprofloxacin 26.2%, gentamicin 11.8%, amikacin 8.7% and tobramycin 6.2%. With the use of phenotypical methods, IBL, ESBL and MBL production rates in the isolates were detected as 89.2% (174/195), 30.7% (60/195) and 26.7% (52/195), respectively. Molecular studies showed that, five strains harboured OXA-10, four OXA-14, four VIM-2, two IMP-1, 26 GES-1 and 87 ABC transporter permease genes, while PER and KPC genes were not detected in any of the isolates. In conclusion, it was considered that the detection of beta-lactamase genes in bacteria and the identification of beta-lactamase types may provide facilities in selection of antibiotics, monitorization of therapy, prevention of resistance development of infection control programs.
Insights
Pseudomonas aeruginosa infections are a major concern due to high antibiotic resistance. This study identified specific resistance enzymes like OXA and VIM, highlighting the need for targeted antibiotic selection and infection control to combat resistant bacterial strains.
Area of Science:
- Medical Microbiology
- Infectious Diseases
- Antimicrobial Resistance
Background:
- Pseudomonas aeruginosa is a significant opportunistic pathogen causing nosocomial infections, particularly in vulnerable populations.
- High antibiotic resistance in P. aeruginosa contributes to increased morbidity and mortality.
- Understanding resistance mechanisms is crucial for effective treatment and infection control.
Purpose of the Study:
- To investigate the antibiotic susceptibility patterns of P. aeruginosa strains from hospitalized patients.
- To determine the prevalence of specific resistance enzymes, including PER, GES, KPC, VIM, IMP, and OXA.
- To correlate phenotypic resistance with genotypic detection of resistance enzymes.
Main Methods:
- Isolation and identification of P. aeruginosa from various clinical samples using conventional and automated methods.
- Antibiotic susceptibility testing via disk diffusion and E-test.
- Phenotypic detection of inducible beta-lactamase (IBL), extended-spectrum beta-lactamase (ESBL), and metallo-beta-lactamase (MBL) production.
- Genotypic analysis using real-time PCR and sequence analysis to detect resistance genes (PER, GES, KPC, VIM, IMP, OXA).
Main Results:
- High resistance rates observed: ceftazidime (100%), tazobactam/piperacillin (90.8%), aztreonam (60.5%), cefepime (50.2%), imipenem (48.2%), meropenem (47.2%).
- Phenotypic resistance: IBL (89.2%), ESBL (30.7%), MBL (26.7%).
- Molecular detection revealed OXA (9 strains), VIM-2 (4 strains), IMP-1 (2 strains), GES-1 (26 strains), and ABC transporter permease (87 strains); PER and KPC genes were absent.
Conclusions:
- The study highlights a high prevalence of antibiotic resistance and specific beta-lactamase genes in P. aeruginosa isolates.
- Detection of resistance genes and enzyme types can aid in antibiotic selection and therapy monitoring.
- Findings emphasize the importance of infection control programs to prevent the spread of antimicrobial resistance.
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