Engineering Copper Oxide–DNA nanocomposites as Novel Antibacterial Nanomaterials Against Antimicrobial Resistance
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جامعة الوادي university of eloued
Abstract
The rapid emergence of antimicrobial resistance (AMR) has become a major global
health concern, reducing the effectiveness of conventional antibiotics and increasing the
demand for alternative antimicrobial strategies. The aim of this work is try to overcome the
problem of antibiotic resistance by developing a nano-product used as a selective
antimicrobial agent. In this study, copper oxide nanoparticles (CuO NPs) were synthesized
using a chemical reduction–precipitation method with ascorbic acid as a reducing agent.
Furthermore, CuO-based nanocomposites functionalized with bacterial DNA extracted from
Escherichia coli and Staphylococcus aureus were developed to investigate their potential as
selective antibacterial agents. The synthesized Nano-composites were characterized using
UV–Visible spectroscopy, Fourier-transform infrared spectroscopy (FTIR), X-ray
diffraction (XRD), and scanning electron microscopy (SEM). UV–Vis analysis confirmed
nanoparticle formation through characteristic absorption peaks, while FTIR spectra revealed
the presence of Cu–O bonds and functional groups associated with bacterial DNA
conjugation. XRD analysis confirmed the successful formation of crystalline Cu₂O
structures, with crystallite sizes ranging from approximately 8.1 to 11.8 nm. SEM
observations revealed aggregated nanoscale structures with heterogeneous morphologies,
further confirming the formation of CuO–DNA nanocomposites. The biological activities of
the synthesized nanoparticles were evaluated through antioxidant, anti-inflammatory, and
antibacterial assays. CuO npsexhibited strong antioxidant activity, showing the lowest IC₅₀
value (1.13 µg/mL), whereas Staphylococcus aureus-nanoparticles (S-CuNPs) demonstrated
the highest anti-inflammatory activity, with an IC₅₀ value of 0.5 µg/mL. Antibacterial
activity, assessed using the disk diffusion method, revealed that DNA-functionalized
nanoparticles exhibited enhanced antibacterial effects compared with CuO npsalone. The
highest inhibition zone was observed for E-CuNPs against Escherichia coli at 40 mg/mL,
while S-CuNPs showed superior activity against Staphylococcus aureus, suggesting possible
strain-specific interactions between the nanocomposites and their corresponding bacterial
targets. In addition, molecular docking studies demonstrated favorable interactions between
Cu₂O nanoparticles and bacterial DNA gyrase-related proteins. The strongest binding
affinity was observed for receptor 8BN6 (−4.82 kcal/mol), supporting the proposed
antibacterial mechanism through interference with bacterial DNA replication processes.
Overall, these findings indicate that DNA-functionalized copper oxide nanoparticles
represent a promising and innovative strategy for to developing selective and efficient
antibacterial nanomaterials capable of combating antibiotic-resistant bacteria.
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master, 2026. DEPARTEMENT DE BIOLOGIE CELLULAIRE ET MOLECULAIRE. Faculté des Sciences de la Nature et de la Vie. Université d'El-Oued .