Orthotopic Bone Regeneration within 3D Printed Bioceramic Scaffolds with Region-Dependent Porosity Gradients in an Equine Model

Publication date

2020

Authors

Diloksumpan, PaweenaISNI 0000000508084023
Bolaños, Rafael Vindas
Cokelaere, Stefan MISNI 0000000419433615
Pouran, Behdad
de Grauw, JannyISNI 0000000397213987
van Rijen, Mattie
van Weeren, P. RenéORCID 0000-0002-6654-1817ISNI 0000000390951215
Levato, RiccardoISNI 0000000492906546
Malda, JosORCID 0000-0002-9241-7676ISNI 0000000388144393

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Article
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Abstract

The clinical translation of three-dimensionally printed bioceramic scaffolds with tailored architectures holds great promise toward the regeneration of bone to heal critical-size defects. Herein, the long-term in vivo performance of printed hydrogel-ceramic composites made of methacrylated-oligocaprolactone-poloxamer and low-temperature self-setting calcium-phosphates is assessed in a large animal model. Scaffolds printed with different internal architectures, displaying either a designed porosity gradient or a constant pore distribution, are implanted in equine tuber coxae critical size defects. Bone ingrowth is challenged and facilitated only from one direction via encasing the bioceramic in a polycaprolactone shell. After 7 months, total new bone volume and scaffold degradation are significantly greater in structures with constant porosity. Interestingly, gradient scaffolds show lower extent of remodeling and regeneration even in areas having the same porosity as the constant scaffolds. Low regeneration in distal regions from the interface with native bone impairs ossification in proximal regions of the construct, suggesting that anisotropic architectures modulate the cross-talk between distant cells within critical-size defects. The study provides key information on how engineered architectural patterns impact osteoregeneration in vivo, and also indicates the equine tuber coxae as promising orthotopic model for studying materials stimulating bone formation.

Keywords

biofabrication, bone regeneration, equine models, low-temperature setting calcium phosphate, porous architectures

Citation

Diloksumpan, P, Bolaños, R V, Cokelaere, S, Pouran, B, de Grauw, J, van Rijen, M, van Weeren, R, Levato, R & Malda, J 2020, 'Orthotopic Bone Regeneration within 3D Printed Bioceramic Scaffolds with Region-Dependent Porosity Gradients in an Equine Model', Advanced healthcare materials, vol. 9, no. 10, e1901807, pp. 1-11. https://doi.org/10.1002/adhm.201901807