(2023) Chitosan/silk fibroin/nitrogen-doped carbon quantum dot/α-tricalcium phosphate nanocomposite electrospinned as a scaffold for wound healing application: In vitro and in vivo studies. International Journal of Biological Macromolecules. ISSN 01418130 (ISSN)
Full text not available from this repository.
Abstract
A highly porous nanofibrous network that can functionalize antibacterial and therapeutic agents can be considered a suitable option for skin wound healing. In this study, α-tricalcium phosphate (α-TCP)/nitrogen-doped carbon quantum dots (N-CQDs) nanocomposite was synthesized and then applied to the fabrication of novel chitosan (CS)/silk fibroin (SF)/N-CQDs/α-TCP wound dressing via electrospinning system. The prepared nanomaterials were well characterized using X-ray diffraction, Fourier-transform infrared, scanning and transmission electron microscopes analyses, and antibacterial assay. Furthermore, nanofibers were evaluated regarding their physical properties, such as tensile behavior, water uptake capacity, and water contact angle. The results reveal that CS/SF/N-CQDs/α-TCP showed lower MIC values against E. coli and S. aureus (1.45 ± 0.26 mg/mL and 1.59 ± 0.12 mg/mL) compared to other synthesized materials. Also, in-vitro investigations were performed, and the MTT assay on the HFF cell line revealed that CS/SF/N-CQDs/α-TCP nanofiber could possess good biocompatibility. Interestingly, the scratch test proved that faster cell migration and proliferation occurred in the presence of CS/SF/N-CQDs/α-TCP 73.23 ± 2.71 ). Finally, we examined the wound healing ability of CS/SF/N-CQDs/α-TCP nanofiber using an animal model. The results confirmed that produced nanofiber could efficiently promote wound closure by 96.73 ± 1.25 in 12 days. Histopathological analyses verified accelerated re-epithelization and well-structured epidermis in CS/SF/N-CQDs/α-TCP nanofiber-treated group. Based on our findings, the CS/SF/N-CQDs/α-TCP nanofiber with excellent antimicrobial properties is highly suitable for wound healing and skin tissue regeneration applications. © 2023 Elsevier B.V.
Item Type: | Article |
---|---|
Keywords: | Carbon quantum dots Chitosan Cytotoxicity Silk fibroin Wound healing α-Tricalcium phosphate Animals Anti-Bacterial Agents Carbon Escherichia coli Fibroins Nanocomposites Nanofibers Nitrogen Quantum Dots Staphylococcus aureus Water alpha tricalcium phosphate calcium phosphate carbon nanoparticle graphene oxide phenytoin quantum dot unclassified drug alpha-tricalcium phosphate antiinfective agent fibroin nanocomposite nanofiber animal experiment animal model antibacterial activity Article bacterial cell biocompatibility cell infiltration cell membrane permeability cell migration cell proliferation cell viability contact angle controlled study cross linking drug binding drug degradation drug synthesis electrospinning epithelization Fourier transform infrared spectroscopy HFF cell line histopathology human human cell hydrophilicity in vitro study in vivo study inflammatory cell male minimum inhibitory concentration MTT assay nanofabrication nonhuman physical chemistry pyrolysis rat scanning electron microscopy skin fibroblast static electricity tensile strength transmission electron microscopy water transport wound X ray diffraction Young modulus animal |
Journal or Publication Title: | International Journal of Biological Macromolecules |
Journal Index: | Scopus |
Volume: | 238 |
Identification Number: | https://doi.org/10.1016/j.ijbiomac.2023.124078 |
ISSN: | 01418130 (ISSN) |
Depositing User: | ms soheila Bazm |
URI: | http://eprints.ssu.ac.ir/id/eprint/34338 |
Actions (login required)
![]() |
View Item |