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Multiple Antibiotic Resistance (mar) Locus in Salmonella Enterica Serovar Typhimurium DT104

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Date 2001 Mar 7
PMID 11229910
Citations 18
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Abstract

In order to understand the role of the mar locus in Salmonella with regard to multiple antibiotic resistance, cyclohexane resistance, and outer membrane protein F (OmpF) regulation, a marA::gfp reporter mutant was constructed in an antibiotic-sensitive Salmonella enterica serovar Typhimurium DT104 background. Salicylate induced marA, whereas a number of antibiotics, disinfectants, and various growth conditions did not. Increased antibiotic resistance was observed upon salicylate induction, although this was shown to be by both mar-dependent and mar-independent pathways. Cyclohexane resistance, however, was induced by salicylate by a mar-dependent pathway. Complementation studies with a plasmid that constitutively expressed marA confirmed the involvement of mar in Salmonella with low-level antibiotic resistance and cyclohexane resistance, although the involvement of mar in down regulation of OmpF was unclear. However, marA overexpression did increase the expression of a ca. 50-kDa protein, but its identity remains to be elucidated. Passage of the marA::gfp reporter mutant with increasing levels of tetracycline, a method reported to select for mar mutants in Escherichia coli, led to both multiple-antibiotic and cyclohexane resistance. Collectively, these data indicate that low-level antibiotic resistance, cyclohexane resistance, and modulation of OMPs in Salmonella, as in E. coli, can occur in both a mar-dependent and mar-independent manner.

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References
1.
Sulavik M, Gambino L, Miller P . The MarR repressor of the multiple antibiotic resistance (mar) operon in Escherichia coli: prototypic member of a family of bacterial regulatory proteins involved in sensing phenolic compounds. Mol Med. 1995; 1(4):436-46. PMC: 2230000. View

2.
George A . Multidrug resistance in enteric and other gram-negative bacteria. FEMS Microbiol Lett. 1996; 139(1):1-10. DOI: 10.1111/j.1574-6968.1996.tb08172.x. View

3.
Ma D, Cook D, Alberti M, Pon N, Nikaido H, Hearst J . Genes acrA and acrB encode a stress-induced efflux system of Escherichia coli. Mol Microbiol. 1995; 16(1):45-55. DOI: 10.1111/j.1365-2958.1995.tb02390.x. View

4.
Nikaido H, Vaara M . Molecular basis of bacterial outer membrane permeability. Microbiol Rev. 1985; 49(1):1-32. PMC: 373015. DOI: 10.1128/mr.49.1.1-32.1985. View

5.
George A, Levy S . Amplifiable resistance to tetracycline, chloramphenicol, and other antibiotics in Escherichia coli: involvement of a non-plasmid-determined efflux of tetracycline. J Bacteriol. 1983; 155(2):531-40. PMC: 217720. DOI: 10.1128/jb.155.2.531-540.1983. View