3D-printed oxygen-releasing scaffolds improve bone regeneration in mice.

Farris, Ashley L; Lambrechts, Dennis; Zhou, Yuxiao; Zhang, Nicholas Y; Sarkar, Naboneeta; Moorer, Megan C; Rindone, Alexandra N; Nyberg, Ethan L et al. · Biomaterials · 2022

basic_science · Level V

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Abstract

Low oxygen (O<sub>2</sub>) diffusion into large tissue engineered scaffolds hinders the therapeutic efficacy of transplanted cells. To overcome this, we previously studied hollow, hyperbarically-loaded microtanks (μtanks) to serve as O<sub>2</sub> reservoirs. To adapt these for bone regeneration, we fabricated biodegradable μtanks from polyvinyl alcohol and poly (lactic-co-glycolic acid) and embedded them to form 3D-printed, porous poly-ε-caprolactone (PCL)-μtank scaffolds. PCL-μtank scaffolds were loaded with pure O<sub>2</sub> at 300-500 psi. When placed at atmospheric pressures, the scaffolds released O<sub>2</sub> over a period of up to 8 h. We confirmed the inhibitory effects of hypoxia on the osteogenic differentiation of human adipose-derived stem cells (hASCs and we validated that μtank-mediated transient hyperoxia had no toxic impacts on hASCs, possibly due to upregulation of endogenous antioxidant regulator genes. We assessed bone regeneration in vivo by implanting O<sub>2</sub>-loaded, hASC-seeded, PCL-μtank scaffolds into murine calvarial defects (4 mm diameters × 0.6 mm height) and subcutaneously (4 mm diameter × 8 mm height). In both cases we observed increased deposition of extracellular matrix in the O<sub>2</sub> delivery group along with greater osteopontin coverages and higher mineral deposition. This study provides evidence that even short-term O<sub>2</sub> delivery from PCL-μtank scaffolds may enhance hASC-mediated bone tissue regeneration.

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