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1.
Braz. j. microbiol ; 49(1): 200-206, Jan.-Mar. 2018. tab, graf
Article in English | LILACS | ID: biblio-889189

ABSTRACT

ABSTRACT Bacteroides fragilis is the strict anaerobic bacteria most commonly found in human infections, and has a high mortality rate. Among other virulence factors, the remarkable ability to acquire resistance to a variety of antimicrobial agents and to tolerate nanomolar concentrations of oxygen explains in part their success in causing infection and colonizing the mucosa. Much attention has been given to genes related to multiple drug resistance derived from plasmids, integrons or transposon, but such genes are also detected in chromosomal systems, like the mar (multiple antibiotic resistance) locus, that confer resistance to a range of drugs. Regulators like MarR, that control expression of the locus mar, also regulate resistance to organic solvents, disinfectants and oxygen reactive species are important players in these events. Strains derived from the parental strain 638R, with mutations in the genes hereby known as marRI (BF638R_3159) and marRII (BF638R_3706) were constructed by gene disruption using a suicide plasmid. Phenotypic response of the mutant strains to hydrogen peroxide, cell survival assay against exposure to oxygen, biofilm formation, resistance to bile salts and resistance to antibiotics was evaluated. The results showed that the mutant strains exhibit statistically significant differences in their response to oxygen stress, but no changes were observed in survival when exposed to bile salts. Biofilm formation was not affected by either gene disruption. Both mutant strains however, became more sensitive to multiple antimicrobial drugs tested. This indicates that as observed in other bacterial species, MarR are an important resistance mechanism in B. fragilis.


Subject(s)
Humans , Anti-Bacterial Agents/pharmacology , Bacterial Proteins/genetics , Bacteroides fragilis/drug effects , Bacteroides fragilis/genetics , Bacteroides Infections/microbiology , Repressor Proteins/genetics , Bacterial Proteins/metabolism , Bacteroides fragilis/isolation & purification , Bacteroides fragilis/metabolism , Gene Expression Regulation, Bacterial/drug effects , Gene Silencing , Microbial Sensitivity Tests , Repressor Proteins/metabolism
2.
Braz J Microbiol ; 49(1): 200-206, 2018.
Article in English | MEDLINE | ID: mdl-28847541

ABSTRACT

Bacteroides fragilis is the strict anaerobic bacteria most commonly found in human infections, and has a high mortality rate. Among other virulence factors, the remarkable ability to acquire resistance to a variety of antimicrobial agents and to tolerate nanomolar concentrations of oxygen explains in part their success in causing infection and colonizing the mucosa. Much attention has been given to genes related to multiple drug resistance derived from plasmids, integrons or transposon, but such genes are also detected in chromosomal systems, like the mar (multiple antibiotic resistance) locus, that confer resistance to a range of drugs. Regulators like MarR, that control expression of the locus mar, also regulate resistance to organic solvents, disinfectants and oxygen reactive species are important players in these events. Strains derived from the parental strain 638R, with mutations in the genes hereby known as marRI (BF638R_3159) and marRII (BF638R_3706) were constructed by gene disruption using a suicide plasmid. Phenotypic response of the mutant strains to hydrogen peroxide, cell survival assay against exposure to oxygen, biofilm formation, resistance to bile salts and resistance to antibiotics was evaluated. The results showed that the mutant strains exhibit statistically significant differences in their response to oxygen stress, but no changes were observed in survival when exposed to bile salts. Biofilm formation was not affected by either gene disruption. Both mutant strains however, became more sensitive to multiple antimicrobial drugs tested. This indicates that as observed in other bacterial species, MarR are an important resistance mechanism in B. fragilis.


Subject(s)
Anti-Bacterial Agents/pharmacology , Bacterial Proteins/genetics , Bacteroides Infections/microbiology , Bacteroides fragilis/drug effects , Bacteroides fragilis/genetics , Repressor Proteins/genetics , Bacterial Proteins/metabolism , Bacteroides fragilis/isolation & purification , Bacteroides fragilis/metabolism , Gene Expression Regulation, Bacterial/drug effects , Gene Silencing , Humans , Microbial Sensitivity Tests , Repressor Proteins/metabolism
3.
Int J Med Microbiol ; 303(8): 443-8, 2013 Dec.
Article in English | MEDLINE | ID: mdl-23827141

ABSTRACT

The intestinal opportunistic pathogen Bacteroides fragilis is among the most aerotolerant species of strict anaerobic bacteria and survives exposure to atmospheric oxygen for up to 72h. Under these circumstances, a strong oxygen stress response (OSR) mechanism is activated and the expression of as much as 45% of B. fragilis genes is altered. One of the most important regulators of this response is the product of the oxyR gene, but other regulation systems are in place during the OSR. The MarR family of transcriptional regulators has been shown to control several physiological events in bacteria, including response to stress conditions. In B. fragilis, at least three homologs of MarR regulators are present, one of which, bmoR, is upregulated during oxidative stress independently of oxyR. In this study, we demonstrate that the inactivation of the bmoR gene in B. fragilis diminishes its ability to withstand oxidative stress caused either by exposure to atmospheric oxygen or hydrogen peroxide. Recovery of growth rate on pre-oxidized media under anaerobiosis is slower than that observed in parental strain. Addition of hydrogen peroxide has a similar effect on the growth rate. Complementation of the mutant strain partially recovered the oxygen resistance phenotype, but the overexpression of the gene in the parental strain was also deleterious to a lesser extent. Our results indicate that BmoR has a role in the OSR in B. fragilis, particularly in the initial stages of oxygen exposure.


Subject(s)
Bacteroides fragilis/drug effects , Bacteroides fragilis/physiology , Gene Expression Regulation, Bacterial , Microbial Viability/drug effects , Oxidative Stress , Transcription Factors/metabolism , Anaerobiosis , Bacteroides fragilis/genetics , Bacteroides fragilis/growth & development , Gene Knockout Techniques , Genetic Complementation Test , Humans , Hydrogen Peroxide/metabolism , Hydrogen Peroxide/toxicity , Oxygen/metabolism , Oxygen/toxicity , Transcription Factors/genetics
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