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Author Spotlight: Metallic Nanocomposites to Eliminate Antibiotic-Resistant Bacteria
Published on: October 4, 2024
Phyto-Mediated Copper Oxide Nanoparticles for Antibacterial, Antioxidant and Photocatalytic Performances
Kenneth Ssekatawa1, Denis K Byarugaba1, Martin Kamilo Angwe1
1College of Veterinary Medicine Animal Resources and Biosecurity, Makerere University, Kampala, Uganda.
Abstract:
The greatest challenge of the current generation and generations to come is antimicrobial resistance, as different pathogenic bacteria have continuously evolved to become resistant to even the most recently synthesized antibiotics such as carbapenems. Resistance to carbapenems limits the therapeutic options of MDR infections as they are the only safe and effective drugs recommended to treat such infections. This scenario has complicated treatment outcomes, even to the commonest bacterial infections. Repeated attempts to develop other approaches have been made. The most promising novel therapeutic option is the use of nanomaterials as antimicrobial agents. Thus, this study examined the efficacy of Camellia sinensis extract (CSE) and Prunus africana bark extract (PAE) green synthesized Copper oxide nanoparticles (CuONPs) against carbapenem-resistant bacteria. Furthermore, the photocatalytic and antioxidant activities of CuONPs were evaluated to determine the potential of using them in a wide range of applications. CuONPs were biosynthesized by CSE and PAE. UV vis spectroscopy, X-ray Diffraction (XRD), Dynamic light scattering (DLS), Fourier Transform Infrared spectroscopy (FTIR), and Scanning Electron Microscopy (SEM) were used to characterize the nanoparticles. CuONPs susceptibility tests were carried out by the agar well diffusion method. The photocatalytic and antioxidant activities of the CuONPs were determined by the methylene blue and DPPH free radical scavenging assays, respectively. UV vis absorbance spectra registered surface plasmon resonance peaks between 272 and 286 nm, confirming the presence of CuONPs. The XRD array had nine strong peaks at 2θ values typical of CuONPs. FTIR spectra exhibited bands associated with organic functional groups confirming capping and functionalization of the CuONPs by the phytochemicals. DLS analysis registered a net zeta potential of +12.5 mV. SEM analysis revealed that the nanoparticles were spherical and clustered with a mean diameter of 6 nm. Phytosynthesized CuONPs exhibited the highest growth suppression zones of 30 mm with MIC ranging from 30 to 125 μg/ml against MDR bacteria. Furthermore, the CuONPs achieved a methylene blue dye photocatalysis degradation efficiency of 85.5% and a free radical scavenging activity of 28.8%. PAE and CSE successfully bio-reduced copper ions to the nanoscale level with potent antimicrobial, photocatalysis, and antioxidant activities.
Insights
Green synthesized copper oxide nanoparticles (CuONPs) using plant extracts show potent antimicrobial activity against carbapenem-resistant bacteria. These nanomaterials also exhibit significant photocatalytic and antioxidant properties, offering a promising alternative for treating drug-resistant infections.
Area of Science:
- Nanotechnology
- Materials Science
- Microbiology
Background:
- Antimicrobial resistance (AMR) poses a critical global health threat, limiting treatment options for multidrug-resistant (MDR) infections.
- Carbapenem resistance in bacteria necessitates the development of novel therapeutic strategies.
- Nanomaterials offer a promising avenue as antimicrobial agents to combat AMR.
Purpose of the Study:
- To investigate the efficacy of green synthesized Copper oxide nanoparticles (CuONPs) using *Camellia sinensis* extract (CSE) and *Prunus africana* bark extract (PAE) against carbapenem-resistant bacteria.
- To evaluate the photocatalytic and antioxidant activities of the synthesized CuONPs for diverse applications.
Main Methods:
- Biosynthesis of CuONPs using CSE and PAE.
- Characterization of CuONPs via UV-Vis spectroscopy, XRD, DLS, FTIR, and SEM.
- Antimicrobial susceptibility testing using the agar well diffusion method.
- Photocatalytic activity assessed using methylene blue degradation.
- Antioxidant activity evaluated via DPPH free radical scavenging assay.
Main Results:
- UV-Vis, XRD, FTIR, and SEM confirmed the successful synthesis and characterization of spherical CuONPs (mean diameter 6 nm).
- Phytosynthesized CuONPs demonstrated significant antimicrobial activity against MDR bacteria, with growth suppression zones up to 30 mm and MICs from 30-125 μg/ml.
- CuONPs achieved 85.5% methylene blue degradation and 28.8% free radical scavenging activity.
Conclusions:
- CSE and PAE effectively mediated the biosynthesis of CuONPs with potent antimicrobial, photocatalytic, and antioxidant properties.
- Green synthesized CuONPs represent a viable alternative therapeutic agent against carbapenem-resistant bacteria.
- The multifaceted activities of these CuONPs suggest broad applicability in various fields.
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