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Electrospun nanofibrous constructs based on nanoparticles and biopolymers have recently been used in tissue engineering because of their similarity to the extracellular matrix in nature. In this study, electrospun chitosan-carbon quantum dot-titanium dioxide-graphene oxide (CS-CQD-TiO-GO) nanofibrous mats were synthesized for use as wound dressings by the electrospinning method. To increase the biodegradation rate and water resistance, the fabricated nanofibrous mats were cross-linked. SEM images showed a uniform and coherent structure of CS-CQD-TiO-GO nanocomposites and CS-CQD-TiO-GO electrospun nanofibers mats. FTIR analysis, XRD pattern, SEM mapping, and EDS spectrum demonstrate the accuracy of the synthesis as well as the elemental and chemical structure of the nanofibrous mat. The water contact angle indicated that the nanofibrous mat had a hydrophilic property, which is essential for controlling wound exudates. The tensile strength and elongation tests showed that the nanofibrous mat has suitable mechanical properties for wound dressing, including significant flexibility and strength. Interestingly, antimicrobial testing illustrated that the fabricated nanofibrous mat had antibacterial activity against Gram-negative and Gram-positive bacteria. Appropriate cell viability and cytocompatibility of treated mouse fibroblast NIH3T3 cells with the nanofibrous mat were determined using an MTT assay. The animal study results confirmed the proper potential of the nanofibrous mat in wound dressing applications.
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http://dx.doi.org/10.3390/jfb13040300 | DOI Listing |
Asian J Pharm Sci
August 2025
3B's Research Group-Research Institute on Biomaterials, Biodegradables and Biomimetics, University of Minho, Headquarters of the European Institute of Excellence on Tissue Engineering and Regenerative Medicine, Parque de Ciência e Tecnologia, Zona Industrial da Gandra - Avepark, Barco, Guimarães 4
Efficient reconstruction of severe cutaneous wounds necessitates the orchestration of effective cell-mediated matrix remodeling and robust protection against microbial invasion. Herein, we engineered a near-infrared light (NIR)-stimulated, thermo-responsive bilayer system based on a drug-loaded hydrogel with a thermal-responsive temperature of ∼42 °C as the matrix layer and an antibacterial nanofibrous mat as the top layer. The matrix layer integrates basic fibroblast growth factor (bFGF)-loaded thermosensitive gelatin (Gel) hydrogel with polydopamine-Cu coated short nanofibers (P@SF).
View Article and Find Full Text PDFJ Biomater Sci Polym Ed
July 2025
Zoology Department, Faculty of Science, Cairo University, Giza, Egypt.
The growing global demand for wound care has revealed the limitations of traditional dressings, particularly their insufficient antimicrobial and antioxidant properties. This study aims to develop a natural-based nanofibrous dressing that improves wound dressing effectiveness by addressing challenges such as antimicrobial activity and moisture regulation. The research focuses on developing antimicrobial and antioxidant mats using chitosan, polyvinyl alcohol (PVA), and crude extract (COE) electrospinning.
View Article and Find Full Text PDFAAPS PharmSciTech
May 2025
Biological Materials Laboratory, CSIR-Central Leather Research Institute (CSIR-CLRI), Sardar Patel Road, Adyar, Chennai, 600020, Tamil Nadu, India.
Chronic wounds, particularly those associated with diabetes, pose a significant challenge in medical care due to their persistent non-healing nature; it is estimated that by 2030, nearly 550 million individuals will be diagnosed with diabetes in the world. This study presents the design and fabrication of a nano-engineered hybridized polymeric framework aimed at enhancing chronic wound management. The designed scaffold is composed of a Polyvinylidene fluoride (PVDF) nanofibrous mat, a Collagen/Polyvinyl Alcohol (PVA) composite loaded with metformin hydrochloride, and polyhydroxybutyrate (PHB) embedded with aceclofenac.
View Article and Find Full Text PDFNano Lett
May 2025
Department of Biosystems Engineering, Kangwon National University, Chuncheon-24341, Republic of Korea.
A multifunctional, electrospun, ultrathin face mask is desirable for preventing disease spread while ensuring breathability. However, balancing ultrathin construction with antimicrobial efficacy is challenging. Here, we fabricated an ultrathin micro/nanofibrous electrospun matrix, consisting of three biodegradable polymer layers, for high antibacterial efficiency, breathability, and biodegradability.
View Article and Find Full Text PDFJ R Soc Interface
March 2025
School of Engineering and Materials Science and Institute of Bioengineering, Queen Mary University of London, London, UK.
Determining the mechano-structural relations in biological materials with hierarchical structure is crucial to understanding natural optimization strategies and designing functional bioinspired composites. However, measuring the nanoscale mechanics and dynamic response is challenging when the specimen geometry and loading environment are physiologically complex. To overcome this challenge, we develop a combination of synchrotron X-ray diffraction testing and analytical modelling to explore the mechano-structural changes during bending loads on stomatopod cuticle.
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