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Screening Foodstuffs for Class 1 Integrons and Gene Cassettes
Published on: June 19, 2015
Analysis of a novel class 1 integron containing metallo-beta-lactamase gene VIM-2 in Pseudomonas aeruginosa
Jae Hoon Jeong1, Kyeong Seob Shin, Jang Won Lee
1Department of Microbiology and Institute of Basic Sciences, Dankook University, Cheonan 330-714, Republic of Korea.
Abstract:
Carbapenems such as imipenem are stable to most beta-lactamases. Recently, increased numbers of carbapenemase producing Gram-negative bacterial strains have been isolated because of the increased use of cabapenems. In this respect, control of these infectious carbapenemase producing Gram-negative bacteria and understanding their resistance mechanism are becoming more important. These carbapenem-hydrolyzing beta-lactamase genes have been reported to exist mostly as gene cassettes in an integron. This implies that antibiotic resistance genes may be transferred to other bacteria via the integron. In the present study, we identified and analyzed an integron containing VIM-2 type metallo-beta-lactamase gene in a carbapenemase producing Pseudomonas aeruginosa. In addition, the possibility of resistance spread by integron located in a plasmid was tested. Among glucose non-fermenting Gram-negative bacilli with reduced imipenem susceptibility (MIC > or = 8 microg/ml) isolated from Korean patients, P. aeruginosa 1082 showed resistance to most beta-lactams, cephalosporin, and aminoglycoside. We found that P. aeruginosa 1082 was inhibited by EDTA in EDTA double disk synergy test which means that this strain produces metallo-beta-lactamase. Class 1 integron containing bla (VIM-2) (carbapenem resistance gene), qacF (quaternary ammonium compound resistance gene), aacA4 (aminoglycoside resistance gene), catB3 (chloramphenicol resistance gene), bla (oxa-30) (extended-spectrum beta-lactam resistance gene), and aadAl (aminoglycoside resistance gene) gene cassettes was detected in P. aeruginosa 1082. The size of the integron was 5,246 bp and the structure and arrangement of the integron was a novel one in comparison with other integrons found in other P. aeruginosa. The integron could be transferred to Escherichia coli JM109 from P. aeruginosa 1082 possibly via self-transferable plasmid DNA. The integron and a bla (VIM-2) gene were detected in the plasmid DNA of the transconjugants whose imipenem resistance was slightly increased as a result of accepting the integron from the donor strain.
Insights
Carbapenem-resistant bacteria pose a growing threat. This study identified a novel integron in Pseudomonas aeruginosa carrying the VIM-2 carbapenemase gene, demonstrating its potential spread via plasmids.
Area of Science:
- Microbiology
- Molecular Biology
- Genetics
Background:
- Carbapenem antibiotics are crucial for treating Gram-negative bacterial infections.
- Increasing carbapenemase-producing Gram-negative bacteria necessitate understanding resistance mechanisms.
- Integrons are known mobile genetic elements facilitating antibiotic resistance gene spread.
Purpose of the Study:
- To identify and analyze a novel integron harboring a carbapenemase gene in Pseudomonas aeruginosa.
- To investigate the role of plasmids in the dissemination of this integron.
- To understand the genetic basis of carbapenem resistance in clinical isolates.
Main Methods:
- Isolation and characterization of carbapenem-resistant Pseudomonas aeruginosa.
- Detection of metallo-beta-lactamase activity using EDTA double disk synergy test.
- Identification and sequencing of integron and gene cassettes.
- Plasmid-mediated transfer experiments to Escherichia coli.
Main Results:
- A novel class 1 integron (5,246 bp) containing the VIM-2 carbapenemase gene was identified in P. aeruginosa 1082.
- The integron also carried genes for resistance to quaternary ammonium compounds, aminoglycosides, chloramphenicol, and extended-spectrum beta-lactams.
- The integron was successfully transferred to Escherichia coli via a self-transferable plasmid, conferring increased imipenem resistance.
Conclusions:
- The identified integron represents a novel genetic structure contributing to multidrug resistance.
- Plasmid-mediated transfer of this integron facilitates the spread of carbapenem resistance among Gram-negative bacteria.
- Effective control strategies must address the mobile nature of these resistance determinants.
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