Antibacterial Efficacy of Polysaccharide Capped Silver Nanoparticles Is Not Compromised by AcrAB-TolC Efflux Pump
Mitali Mishra1, Satish Kumar2, Rakesh K Majhi1
1School of Biological Sciences, National Institute of Science Education and Research, Homi Bhabha National Institute, Bhubaneswar, India.
Abstract:
Antibacterial therapy is of paramount importance in treatment of several acute and chronic infectious diseases caused by pathogens. Over the years extensive use and misuse of antimicrobial agents has led to emergence of multidrug resistant (MDR) and extensive drug resistant (XDR) pathogens. This drastic escalation in resistant phenotype has limited the efficacy of available therapeutic options. Thus, the need of the hour is to look for alternative therapeutic approaches to mitigate healthcare concerns caused due to MDR bacterial infections. Nanoparticles have gathered much attention as potential candidates for antibacterial therapy. Equipped with advantages of, wide spectrum bactericidal activity at very low dosage, inhibitor of biofilm formation and ease of permeability, nanoparticles have been considered as leading therapeutic candidates to curtail infections resulting from MDR bacteria. However, substrate non-specificity of efflux pumps, particularly those belonging to resistance nodulation division super family, have been reported to reduce efficacy of many potent antibacterial therapeutic drugs. Previously, we had reported antibacterial activity of polysaccharide-capped silver nanoparticles (AgNPs) toward MDR bacteria. We showed that AgNPs inhibits biofilm formation and alters expression of cytoskeletal proteins FtsZ and FtsA, with minimal cytotoxicity toward mammalian cells. In the present study, we report no reduction in antibacterial efficacy of silver nanoparticles in presence of AcrAB-TolC efflux pump proteins. Antibacterial tests were performed according to CLSI macrobroth dilution method, which revealed that both silver nanoparticles exhibited bactericidal activity at very low concentrations. Further, immunoblotting results indicated that both the nanoparticles modulate the transporter AcrB protein expression. However, expression of the membrane fusion protein AcrA did show a significant increase after exposure to AgNPs. Our results indicate that both silver nanoparticles are effective in eliminating MDR Enterobacter cloacae isolates and their action was not inhibited by AcrAB-TolC efflux protein expression. As such, the above nanoparticles have strong potential to be used as effective and alternate therapeutic candidates to combat MDR gram-negative Enterobacterial pathogens.
Insights
Silver nanoparticles show potent antibacterial activity against multidrug-resistant bacteria, even in the presence of efflux pumps. These nanoparticles are promising alternative therapeutics for challenging Gram-negative infections.
Area of Science:
- Nanomedicine
- Microbiology
- Biochemistry
Background:
- Multidrug-resistant (MDR) and extensively drug-resistant (XDR) pathogens pose a significant threat due to limited therapeutic options.
- Efflux pumps, particularly the resistance nodulation division (RND) superfamily, can reduce the efficacy of antibacterial drugs.
- Nanoparticles offer potential as alternative antibacterial agents due to their broad-spectrum activity and ability to inhibit biofilm formation.
Purpose of the Study:
- To investigate the efficacy of silver nanoparticles (AgNPs) against MDR bacteria in the presence of the AcrAB-TolC efflux pump.
- To determine if the AcrAB-TolC efflux pump affects the antibacterial activity of AgNPs.
- To explore the potential of AgNPs as alternative therapeutics for MDR Gram-negative pathogens.
Main Methods:
- Antibacterial activity was assessed using the CLSI macrobroth dilution method.
- Immunoblotting was employed to analyze the expression of AcrB and AcrA proteins.
- Studies were conducted on MDR *Enterobacter cloacae* isolates.
Main Results:
- Silver nanoparticles demonstrated bactericidal activity at very low concentrations.
- The efficacy of AgNPs was not reduced by the presence of the AcrAB-TolC efflux pump.
- AgNPs modulated AcrB protein expression and increased AcrA protein expression.
Conclusions:
- Silver nanoparticles are effective against MDR *Enterobacter cloacae* and their action is not hindered by the AcrAB-TolC efflux pump.
- These AgNPs hold significant potential as alternative therapeutic agents for combating MDR Gram-negative bacterial infections.
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