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Human collagen-based hydrogel with zinc oxide nanoparticles for articular cartilage engineering

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dc.contributor.author Cobzac, Vitalie
dc.contributor.author Cojocari, Ștefan
dc.contributor.author Jian, Mariana
dc.contributor.author Stoian, Alina
dc.contributor.author Nacu, Ana-Maria
dc.contributor.author Motelica, Ludmila
dc.contributor.author Trusca, Roxana
dc.contributor.author Ficai, Anton
dc.contributor.author Nacu, Viorel
dc.date.accessioned 2026-04-08T14:30:19Z
dc.date.available 2026-04-08T14:30:19Z
dc.date.issued 2026
dc.identifier.citation COBZAC, Vitalie; Ștefan Cojocari; Mariana JIAN; Alina STOIAN; Ana-Maria NACU; Ludmila MOTELICA; Roxana Trusca; Anton FICAI and Viorel NACU. Human collagen-based hydrogel with zinc oxide nanoparticles for articular cartilage engineering. In: Cells and Tissues Transplantation. Actualities and Perspectives: The Materials of the National Scientific Conference with International Participation, the 4 th edition, Chisinau, March 20-21, 2026. Chișinău : CEP Medicina, 2026, p. 29. ISBN 978-9975-82-477-4 (PDF). en_US
dc.identifier.isbn 978-9975-82-477-4
dc.identifier.uri https://repository.usmf.md/handle/20.500.12710/33147
dc.description Acknowledgements: research founded by young researchers project #25.80012.8007.05TC en_US
dc.description.abstract Introduction. Articular cartilage tissue engineering has a long history of using three-dimensional matrices seeded with cells of chondrogenic potential. Recent studies show that chondrogenesis is influenced not only by growth factors, but also by the biochemical microenvironment, including ions such as Zn²⁺ and Cu²⁺. Materials and methods: With approval from the Ethics Committee of Nicolae Testemitanu State University of Medicine and Pharmacy and under a collaboration agreement with the Human Tissue Bank of the Clinical Hospital of Traumatology and Orthopaedics, articular cartilage was collected from a donated femoral head, along with processed umbilical-placental complex. Collagen hydrogels (3 mg/ml) were prepared in 24-well plates containing ZnO NPs (<50 nm; Sigma-Aldrich, USA) at 0 (control), 1, 10, 20, 40, 60, 80, and 100 µg/ml (n=4). Their elastic modulus (EM) was measured using a TX-BLM probe and a TX-700 texture analyzer (Lamy Rheology, France). For viability testing, human chondrocytes (1×105 cells/ml) were cultured on hydrogels containing 0 (control), 10, 50, or 100 µg/ml ZnO NPs. Resazurin (10 µg/ml; Acros TFS, Belgium) was used as the viability reagent, and blanks without cells were prepared for each concentration and control group (n=3). Measurements were performed at 24, 48, and 72 hours after 6 h incubation at 37°C and 5% CO₂. Absorbance was recorded at 570 and 600 nm using a Synergy H3 spectrophotometer (BioTek, USA). Results and Conclusions. ZnO NPs concentration markedly affected the mechanical properties of the hydrogels. Significant differences were found between the control group (470.73 ±38.00 N/m²) and most ZnO-loaded groups. EM was significantly reduced at 60, 80, and 100 µg/ml ZnO (p <0.05), whereas at 1, 10, and 20 µg/ml it was significantly higher than in the control group (p <0.05). No significant difference was observed at 40 µg/ml (p >0.05). The resazurin assay showed a dosedependent effect of ZnO NPs on chondrocyte viability. The highest viability was recorded at 10 µg/ml ZnO, remaining above 70% over three consecutive days, while higher concentrations caused a marked decrease in viability (p < 0.05). Therefore, 10 µg/ml ZnO appears to be the most promising concentration, offering a favorable balance between mechanical strength and cell viability. en_US
dc.language.iso en en_US
dc.publisher CEP Medicina en_US
dc.relation.ispartof Cells and Tissues Transplantation. Actualities and Perspectives: The Materials of the National Scientific Conference with International Participation, the 4 th edition, Chisinau, March 20-21, 2026 en_US
dc.subject cartilage engineering en_US
dc.subject collagen hydrogel en_US
dc.subject ZnO nanoparticles en_US
dc.subject human chondrocytes en_US
dc.title Human collagen-based hydrogel with zinc oxide nanoparticles for articular cartilage engineering en_US
dc.type Other en_US


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