Suitability of Marine- and Porcine-Derived Collagen Type I Hydrogels for Bioprinting and Tissue Engineering Scaffolds
Abstract
:1. Introduction
2. Results
3. Discussion
4. Materials and Methods
4.1. Collagen Samples
4.2. Circular Dichroism
4.3. Rheology
4.4. Mechanical Testing
4.5. 3D Extrusion Printing
4.6. Cell Viability
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Conflicts of Interest
References
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Maher, M.; Glattauer, V.; Onofrillo, C.; Duchi, S.; Yue, Z.; Hughes, T.C.; Ramshaw, J.A.M.; Wallace, G.G. Suitability of Marine- and Porcine-Derived Collagen Type I Hydrogels for Bioprinting and Tissue Engineering Scaffolds. Mar. Drugs 2022, 20, 366. https://doi.org/10.3390/md20060366
Maher M, Glattauer V, Onofrillo C, Duchi S, Yue Z, Hughes TC, Ramshaw JAM, Wallace GG. Suitability of Marine- and Porcine-Derived Collagen Type I Hydrogels for Bioprinting and Tissue Engineering Scaffolds. Marine Drugs. 2022; 20(6):366. https://doi.org/10.3390/md20060366
Chicago/Turabian StyleMaher, Malachy, Veronica Glattauer, Carmine Onofrillo, Serena Duchi, Zhilian Yue, Timothy C. Hughes, John A. M. Ramshaw, and Gordon G. Wallace. 2022. "Suitability of Marine- and Porcine-Derived Collagen Type I Hydrogels for Bioprinting and Tissue Engineering Scaffolds" Marine Drugs 20, no. 6: 366. https://doi.org/10.3390/md20060366
APA StyleMaher, M., Glattauer, V., Onofrillo, C., Duchi, S., Yue, Z., Hughes, T. C., Ramshaw, J. A. M., & Wallace, G. G. (2022). Suitability of Marine- and Porcine-Derived Collagen Type I Hydrogels for Bioprinting and Tissue Engineering Scaffolds. Marine Drugs, 20(6), 366. https://doi.org/10.3390/md20060366