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Osteoinduction by foamed and 3D-printed calcium phosphate scaffolds: effect of nanostructure and pore architecture

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A. Barba et al. ACS Applied Materials & Interfaces 2017 (2,198Mb)
 
10.1021/acsami.7b14175
 
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Barba Serrahima, Albert
Díez Escudero, AnnaMés informacióMés informacióMés informació
Maazouz, Yassine
Rappe, K.
Español Pons, MontserratMés informacióMés informacióMés informació
Montufar Jiménez, Edgar Benjamin
Bonany Mariñosa, MarMés informacióMés informació
Sadowska, Joanna MariaMés informació
Guillem Martí, JordiMés informacióMés informacióMés informació
Ohman, Caroline
Persson, Cecilia
Manzanares, Maria Cristina
Franch Serracanta, Jordi
Ginebra Molins, Maria PauMés informacióMés informacióMés informació
CovenanteeUniversitat Autònoma de Barcelona. Departament de Medicina i Cirurgia Animal; Universitat de Barcelona. Departament de Patologia i Terapèutica Experimental
Document typeArticle
Defense date2017-12-06
Rights accessOpen Access
Attribution-NonCommercial-NoDerivs 3.0 Spain
This work is protected by the corresponding intellectual and industrial property rights. Except where otherwise noted, its contents are licensed under a Creative Commons license : Attribution-NonCommercial-NoDerivs 3.0 Spain
Abstract
Some biomaterials are osteoinductive, that is, they are able to trigger the osteogenic process by inducing the differentiation of mesenchymal stem cells to the osteogenic lineage. Although the underlying mechanism is still unclear, microporosity and specific surface area (SSA) have been identified as critical factors in material-associated osteoinduction. However, only sintered ceramics, which have a limited range of porosities and SSA, have been analyzed so far. In this work, we were able to extend these ranges to the nanoscale, through the foaming and 3D-printing of biomimetic calcium phosphates, thereby obtaining scaffolds with controlled micro- and nanoporosity and with tailored macropore architectures. Calcium-deficient hydroxyapatite (CDHA) scaffolds were evaluated after 6 and 12 weeks in an ectopic-implantation canine model and compared with two sintered ceramics, biphasic calcium phosphate and ß-tricalcium phosphate. Only foams with spherical, concave macropores and not 3D-printed scaffolds with convex, prismatic macropores induced significant ectopic bone formation. Among them, biomimetic nanostructured CDHA produced the highest incidence of ectopic bone and accelerated bone formation when compared with conventional microstructured sintered calcium phosphates with the same macropore architecture. Moreover, they exhibited different bone formation patterns; in CDHA foams, the new ectopic bone progressively replaced the scaffold, whereas in sintered biphasic calcium phosphate scaffolds, bone was deposited on the surface of the material, progressively filling the pore space. In conclusion, this study demonstrates that the high reactivity of nanostructured biomimetic CDHA combined with a spherical, concave macroporosity allows the pushing of the osteoinduction potential beyond the limits of microstructured calcium phosphate ceramics.
CitationBarba, A., Diez-Escudero, A., Maazouz, Y., Rappe, K., Español, M., Montufar, Edgar B., Bonany, M., Sadowska, J., Guillem-Marti, J., Ohman, C., Persson, C., Manzanares, M., Franch Serracanta, Jordi, Ginebra, M.P. Osteoinduction by foamed and 3D-printed calcium phosphate scaffolds: effect of nanostructure and pore architecture. "ACS applied materials and interfaces", 6 Desembre 2017, vol. 9, núm. 48, p. 41722-41736. 
URIhttp://hdl.handle.net/2117/113454
DOI10.1021/acsami.7b14175
ISSN1944-8244
Publisher versionhttp://pubs.acs.org/doi/10.1021/acsami.7b14175
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  • Departament de Ciència dels Materials i Enginyeria Metal·lúrgica - Articles de revista [960]
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