
Molecular analysis of fluoroquinolone-resistance inEscherichia colion the aspect of gyrase and multiple antibiotic resistance (mar) genes
Author(s) -
Yoon-Hee Park,
Jeong Joon Yoo,
Dong-Ho Huh,
YoonKyoung Cho,
JungHyun Choi,
Wan Shik Shin
Publication year - 1998
Publication title -
yonsei medical journal/yonsei medical journal
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.702
H-Index - 63
eISSN - 1976-2437
pISSN - 0513-5796
DOI - 10.3349/ymj.1998.39.6.534
Subject(s) - dna gyrase , ciprofloxacin , single strand conformation polymorphism , biology , escherichia coli , microbiology and biotechnology , gene , genetics , quinolone , polymerase chain reaction , restriction fragment length polymorphism , locus (genetics) , antibiotics
We analyzed the fluoroquinolone resistance mechanism of 28 isolates of ciprofloxacin-resistant E. coli from patients who received ciprofloxacin as a regimen of a selective gut decontamination. Isolates distinctive by infrequent restriction site polymerase chain reaction (IRS-PCR) were subjected to Hinf I restriction fragment length polymorphism analysis, single-stranded conformation polymorphism (SSCP), and nucleotide sequencing of the quinolone resistance determining region (QRDR) in gyrA. Double mutations in QRDR of gyrA (Ser83 Leu and Asp87Asn) were found from most of the strains. Nucleotide sequencing of the marR locus showed that 18 out of 28 (64%) ciprofloxacin-resistant E. coli strains had three types of base change in marR loci: a double-base change at nucleotides 1628 and 1751, or 1629 and 1751: and a single-base change at 1751. However, all the mutated strains showed no tolerance to cyclohexane test, suggesting the mutation in the marR region had no influence on overexpression of the MarA protein. In conclusion, mutation in gyrA was the main mechanism of ciporfloxacin resistance in E. coli from patients with selective gut decontamination. Therefore, mutation in the mar region did not influence the levels of ciprofloxacin resistance in our isolates.