Abstract
Scaffolds for the filling and regeneration of osteochondral defects are a current challenge in the biomaterials field, and solutions with greater functionality are still being sought. The novel approach of this work was to obtain scaffolds with biologically active additives possessing microstructural, permeability, and mechanical properties, mimicking the complexity of natural cartilage. Four types of scaffolds with a gelatin/alginate matrix modified with hydroxyapatite were obtained, and the relationship between the modifiers and substrate properties was evaluated. They differed in the type of second modifier used, which was hydrated MgCl2 in two proportions, ZnO, and nanohydroxyapatite. The samples were obtained by freeze-drying by using two-stage freezing. Based on microstructural observations combined with X-ray microanalysis, the microstructure of the samples and the elemental content were assessed. Permeability and mechanical tests were also performed. The scaffolds exhibited a network of interconnected pores and complex microarchitecture, with lower porosity at the surface (15 ± 7 to 29 ± 6%) and higher porosity at the center (67 ± 8 to 75 ± 8%). The additives had varying effects on the pore sizes and permeabilities of the samples. ZnO yielded the most permeable scaffolds (5.92 × 10-11 m2), whereas nanohydroxyapatite yielded the scaffold with the lowest permeability (1.18 × 10-11 m2), values within the range reported for trabecular bone. The magnesium content had no statistically significant effect on the permeability. The best mechanical parameters were obtained for ZnO samples and those containing hydrated MgCl2. The scaffold’s properties meet the criteria for filling osteochondral defects. The developed scaffolds follow a biomimetic approach in terms of hierarchical microarchitecture and mechanical parameters as well as chemical composition. The obtained composite materials have the potential as biomimetic scaffolds for the regeneration of osteochondral defects.
Original language | English |
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Pages (from-to) | 4791-4801 |
Number of pages | 11 |
Journal | ACS Biomaterials Science and Engineering |
Volume | 10 |
Issue number | 8 |
Early online date | 16 Jul 2024 |
DOIs | |
Publication status | Published - 16 Jul 2024 |
Data Availability Statement
Data will be made available on request.Funding
This research was funded in part by National Science Centre, Poland, as part of research project 2023/07/X/ST11/00609. For the purpose of Open Access, the author has applied a CC-BY public copyright licence to any Author Accepted Manuscript (AAM) version arising from this submission. This work was also supported by the subsidy of the Ministry of Education and Science for the AGH University of Krakow (Project No. 16.16.160.557). M.D.M.I. also thanks the National Council for Scientific and Technological Development, CNPq, for their financial support (Process 302903/2022-4).
Funders | Funder number |
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National Science Centre | 2023/07/X/ST11/00609 |
AGH University of Krakow | 16.16.160.557 |
Conselho Nacional de Desenvolvimento Cientifico e Tecnologico | 302903/2022-4 |
Keywords
- biomimetic
- composite scaffolds
- magnesium
- nanohydroxyapatite
- permeability
- zinc oxide
ASJC Scopus subject areas
- Biomaterials
- Biomedical Engineering