Affiliation:
1. Department of Chemical and Materials Engineering, School of Engineering and Digital Sciences, Nazarbayev University, Astana 010000, Kazakhstan
2. Department of Chemistry and Biochemical Engineering, Satbayev University, Almaty 050013, Kazakhstan
Abstract
Fabrication of scaffolds via 3D printing is a promising approach for tissue engineering. In this study, we combined 3D printing with cryogenic crosslinking to create biocompatible gelatin/oxidized alginate (Gel/OxAlg) scaffolds with large pore sizes, beneficial for bone tissue regeneration. To enhance the osteogenic effects and mechanical properties of these scaffolds, we evaluated the impact of hydroxyapatite (HAp) on the rheological characteristics of the 2.86% (1:1) Gel/OxAlg ink. We investigated the morphological and mechanical properties of scaffolds with low, 5%, and high 10% HAp content, as well as the resulting bio- and osteogenic effects. Scanning electron microscopy revealed a reduction in pore sizes from 160 to 180 µm (HAp-free) and from 120 to 140 µm for both HAp-containing scaffolds. Increased stability and higher Young’s moduli were measured for 5% and 10% HAp (18 and 21 kPa, respectively) compared to 11 kPa for HAp-free constructs. Biological assessments with mesenchymal stem cells indicated excellent cytocompatibility and osteogenic differentiation in all scaffolds, with high degree of mineralization in HAp-containing constructs. Scaffolds with 5% HAp exhibited improved mechanical characteristics and shape fidelity, demonstrated positive osteogenic impact, and enhanced bone tissue formation. Increasing the HAp content to 10% did not show any advantages in osteogenesis, offering a minor increase in mechanical strength at the cost of significantly compromised shape fidelity.
Funder
Science Committee of the Ministry of Science and Higher Education of the Republic of Kazakhstan
Reference59 articles.
1. Polymeric Microgels for Bone Tissue Engineering Applications—A Review;Rather;Int. J. Polym. Mater. Polym. Biomater.,2020
2. Scaffolds for Bone-Tissue Engineering;Lee;Matter,2022
3. Recent Advances in Design of Functional Biocompatible Hydrogels for Bone Tissue Engineering;Xue;Adv. Funct. Mater.,2021
4. Xue, N., Ding, X., Huang, R., Jiang, R., Huang, H., Pan, X., Min, W., Chen, J., Duan, J.A., and Liu, P. (2022). Bone Tissue Engineering in the Treatment of Bone Defects. Pharmaceuticals, 15.
5. Gradients in Pore Size Enhance the Osteogenic Differentiation of Human Mesenchymal Stromal Cells in Three-Dimensional Scaffolds;Ostrowska;Sci. Rep.,2016