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Updated: Mar 20, 2026

Author Spotlight: Exploring the Antibacterial Effects of Zinc Oxide Nanoparticles in Overcoming Antibiotic Resistance
Published on: September 27, 2024
Enhancing the Anti-Enterococci Activity of Different Antibiotics by Combining With Metal Oxide Nanoparticles
Saira Iram1, Jawad Akbar Khan2, Nargis Aman2
1Department of Microbiology, Quaid-i-Azam University, Islamabad, Pakistan; Department of Microbiology and Immunology, College of Medicine, University of Illinois, Chicago, USA.
Background:
Enterococci have emerged as more virulent and multidrug-resistant in community and hospital settings. The emergence of vancomycin resistant enterococci (VRE) in hospitals has posed a serious threat to public health. The widespread use of antibiotics to treat VRE infections has resulted in the development of resistant forms of these organisms.
Objectives:
Present study deals with the efficacy of antibiotic-nanoparticle combination against clinical isolates of VRE. This study has effectively evaluated the anti-enterococcal activity of metallic nanoparticles and their combination with antibiotics with the aim to search for new biocidal combinations.
Materials And Methods:
Initially, the isolates were identified by various biochemical tests and also by PCR, targeting ddl, vanA and vanB genes. Antibiotic susceptibility testing was carried out by disc diffusion method. Minimum inhibitory concentration (MIC) of both antibiotics and metal nanoparticles against VRE was done using broth dilution method. On the basis of MICs, a combination of both antibiotics and nanoparticles was used by physical mixing of antibiotics and different concentrations of nanoparticles.
Results:
The MIC of metal nanoparticles were found in the range of 0.31 - 30 mM. The combination of both antibiotics and nanoparticles has effectively reduced the MICs of ciprofloxacin from 16 - 256 μg/mL to 2 - 16 μg/mL, erythromycin 1024 - 2048 μg/mL to 128 - 512 μg/mL, methicillin 32 - 256 μg/mL to 8 - 64 μg/mL and vancomycin 2 - 512 μg/mL to 0.5 - 64 μg/mL.
Conclusions:
Among the nanoparticles, ZnO was found as a potent metallic nanoparticle which effectively reduced the MIC upon combination with the antibiotics. The combination exhibited enhanced bactericidal activity against multidrug resistant clinical strains of VRE with dose dependency. Further extensive study on this aspect can prove their beneficial clinical use against resistant pathogens to combat increasing resistance to antibiotics.
Insights
Metallic nanoparticles, particularly ZnO, combined with antibiotics show potent efficacy against multidrug-resistant vancomycin-resistant enterococci (VRE). This combination significantly reduces minimum inhibitory concentrations, offering a promising strategy to combat antibiotic resistance in VRE infections.
Area of Science:
- Microbiology
- Nanotechnology
- Infectious Diseases
Background:
- Enterococci are increasingly virulent and multidrug-resistant, posing a significant public health threat.
- Vancomycin-resistant enterococci (VRE) are a major concern in hospital settings due to antibiotic resistance.
- The overuse of antibiotics has led to the development of resistant enterococcal strains.
Purpose of the Study:
- To evaluate the efficacy of antibiotic-nanoparticle combinations against clinical VRE isolates.
- To explore novel biocidal combinations using metallic nanoparticles and antibiotics.
- To assess the anti-enterococcal activity of metallic nanoparticles and their synergistic effects with antibiotics.
Main Methods:
- VRE isolates were identified using biochemical tests and PCR targeting vanA and vanB genes.
- Antibiotic susceptibility and minimum inhibitory concentrations (MICs) were determined via disc diffusion and broth dilution methods.
- Combinations of antibiotics and metallic nanoparticles were tested based on MIC values.
Main Results:
- Metallic nanoparticles exhibited MICs in the range of 0.31 - 30 mM.
- Antibiotic-nanoparticle combinations significantly reduced MICs for ciprofloxacin, erythromycin, methicillin, and vancomycin.
- ZnO nanoparticles demonstrated potent activity, substantially lowering antibiotic MICs against VRE.
Conclusions:
- ZnO nanoparticles show significant potential in combination therapies against multidrug-resistant VRE.
- The combined approach exhibits dose-dependent enhanced bactericidal activity against resistant enterococci.
- Further research into these combinations could lead to new clinical strategies to combat antibiotic resistance.
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