Development of antimicrobial nanocomposite scaffolds via loading CZTSe quantum dots for wound dressing applications.
Seda CeylanBuse SertFatma YurtAyça Tunçelİsmail ÖztürkDidem DemirKasim OcakogluPublished in: Biomedical materials (Bristol, England) (2022)
The antimicrobial properties of scaffolds designed for use in wound healing are accepted as an important factor in the healing process to accelerate the wound healing process without causing inflammation. For this purpose, chitosan-polyvinyl alcohol composite membranes loaded with Cu<sub>2</sub>ZnSnSe<sub>4</sub>quantum dots (CZTSe QDs) as an antibacterial and cytocompatible biomaterial to regulate the wound healing process were produced. CZTSe QDs particles were synthesized under hydrothermal conditions. Polymer-based nanocomposites with different concentrations of the synthesized nanoparticles were produced by the solvent casting method. After detailed physicochemical and morphological characterizations of CZTSe QDs and composite membranes, antibacterial activities and cell viability were extensively investigated against gram-positive and gram-negative bacterial and yeast strains, and L929 mouse fibroblast cells lines, respectively. The results show that the preparation of composite scaffolds at a QDs concentration of 3.3% by weight has the best antimicrobial activity. Composite scaffold membranes, which can be obtained as a result of an easy production process, are thought to have great potential applications in tissue engineering as wound dressing material due to their high mechanical properties, wettability, strong antibacterial properties and non-toxicity.
Keyphrases
- wound healing
- tissue engineering
- gram negative
- quantum dots
- multidrug resistant
- staphylococcus aureus
- oxidative stress
- induced apoptosis
- sensitive detection
- body mass index
- escherichia coli
- reduced graphene oxide
- cell cycle arrest
- weight loss
- cell death
- climate change
- signaling pathway
- gold nanoparticles
- risk assessment
- alcohol consumption
- hyaluronic acid
- pi k akt
- walled carbon nanotubes