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Collagen-Coated Hyperelastic Bone Promotes Osteoblast Adhesion and Proliferation

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Publisher MDPI
Date 2023 Nov 14
PMID 37959593
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Abstract

Successfully reconstructing bone and restoring its dynamic function represents a significant challenge for medicine. Critical size defects (CSDs), resulting from trauma, tumor removal, or degenerative conditions, do not naturally heal and often require complex bone grafting. However, these grafts carry risks, such as tissue rejection, infections, and surgical site damage, necessitating the development of alternative treatments. Three-dimensional and four-dimensional printed synthetic biomaterials represent a viable alternative, as they carry low production costs and are highly reproducible. Hyperelastic bone (HB), a biocompatible synthetic polymer consisting of 90% hydroxyapatite and 10% poly(lactic-co-glycolic acid, PLGA), was examined for its potential to support cell adhesion, migration, and proliferation. Specifically, we seeded collagen-coated HB with MG-63 human osteosarcoma cells. Our analysis revealed robust cell adhesion and proliferation over 7 days in vitro, with cells forming uniform monolayers on the external surface of the scaffold. However, no cells were present on the core of the fibers. The cells expressed bone differentiation markers on days 3 and 5. By day 7, the scaffold began to degrade, developing microscopic fissures and fragmentation. In summary, collagen-coated HB scaffolds support cell adhesion and proliferation but exhibit reduced structural support after 7 days in culture. Nevertheless, the intricate 3D architecture holds promise for cellular migration, vascularization, and early osteogenesis.

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References
1.
Feng X . Chemical and Biochemical Basis of Cell-Bone Matrix Interaction in Health and Disease. Curr Chem Biol. 2010; 3(2):189-196. PMC: 2790195. DOI: 10.2174/187231309788166398. View

2.
Kim K, Yu M, Zong X, Chiu J, Fang D, Seo Y . Control of degradation rate and hydrophilicity in electrospun non-woven poly(D,L-lactide) nanofiber scaffolds for biomedical applications. Biomaterials. 2003; 24(27):4977-85. DOI: 10.1016/s0142-9612(03)00407-1. View

3.
Tharakan S, Khondkar S, Lee S, Ahn S, Mathew C, Gresita A . 3D Printed Osteoblast-Alginate/Collagen Hydrogels Promote Survival, Proliferation and Mineralization at Low Doses of Strontium Calcium Polyphosphate. Pharmaceutics. 2023; 15(1). PMC: 9865428. DOI: 10.3390/pharmaceutics15010011. View

4.
Li Z, Wang Q, Liu G . A Review of 3D Printed Bone Implants. Micromachines (Basel). 2022; 13(4). PMC: 9025296. DOI: 10.3390/mi13040528. View

5.
Valdoz J, Johnson B, Jacobs D, Franks N, Dodson E, Sanders C . The ECM: To Scaffold, or Not to Scaffold, That Is the Question. Int J Mol Sci. 2021; 22(23). PMC: 8657545. DOI: 10.3390/ijms222312690. View