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Biomimetic Mineralization on 3D Printed PLA Scaffolds: On the Response of Human Primary Osteoblasts Spheroids and In Vivo Implantation

This study aimed to assess the response of 3D printed polylactic acid (PLA) scaffolds biomimetically coated with apatite on human primary osteoblast (HOb) spheroids and evaluate the biological response to its association with Bone Morphogenetic Protein 2 (rhBMP-2) in rat calvaria. PLA scaffolds were...

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Autores principales: Maia-Pinto, Marianna O. C., Brochado, Ana Carolina B., Teixeira, Bruna Nunes, Sartoretto, Suelen C., Uzeda, Marcelo J., Alves, Adriana T. N. N., Alves, Gutemberg G., Calasans-Maia, Mônica D., Thiré, Rossana M. S. M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7795773/
https://www.ncbi.nlm.nih.gov/pubmed/33375451
http://dx.doi.org/10.3390/polym13010074
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author Maia-Pinto, Marianna O. C.
Brochado, Ana Carolina B.
Teixeira, Bruna Nunes
Sartoretto, Suelen C.
Uzeda, Marcelo J.
Alves, Adriana T. N. N.
Alves, Gutemberg G.
Calasans-Maia, Mônica D.
Thiré, Rossana M. S. M.
author_facet Maia-Pinto, Marianna O. C.
Brochado, Ana Carolina B.
Teixeira, Bruna Nunes
Sartoretto, Suelen C.
Uzeda, Marcelo J.
Alves, Adriana T. N. N.
Alves, Gutemberg G.
Calasans-Maia, Mônica D.
Thiré, Rossana M. S. M.
author_sort Maia-Pinto, Marianna O. C.
collection PubMed
description This study aimed to assess the response of 3D printed polylactic acid (PLA) scaffolds biomimetically coated with apatite on human primary osteoblast (HOb) spheroids and evaluate the biological response to its association with Bone Morphogenetic Protein 2 (rhBMP-2) in rat calvaria. PLA scaffolds were produced via 3D printing, soaked in simulated body fluid (SBF) solution to promote apatite deposition, and characterized by physical-chemical, morphological, and mechanical properties. PLA-CaP scaffolds with interconnected porous and mechanical properties suitable for bone repairing were produced with reproducibility. The in vitro biological response was assessed with human primary osteoblast spheroids. Increased cell adhesion and the rise of in vitro release of growth factors (Platelet-Derived Growth Factor (PDGF), Basic Fibroblast Growth Factor (bFGF), Vascular Endothelial Growth Factor (VEGF) was observed for PLA-CaP scaffolds, when pre-treated with fetal bovine serum (FBS). This pre-treatment with FBS was done in a way to enhance the adsorption of serum proteins, increasing the number of bioactive sites on the surface of scaffolds, and to partially mimic in vivo interactions. The in vivo analysis was conducted through the implantation of 3D printed PLA scaffolds either alone, coated with apatite (PLA-CaP) or PLA-CaP loaded with rhBMP-2 on critical-sized defects (8 mm) of rat calvaria. PLA-CaP+rhBMP2 presented higher values of newly formed bone (NFB) than other groups at all in vivo experimental periods (p < 0.05), attaining 44.85% of NFB after six months. These findings indicated two new potential candidates as alternatives to autogenous bone grafts for long-term treatment: (i) 3D-printed PLA-CaP scaffold associated with spheroids, since it can reduce the time of repair in situ by expression of biomolecules and growth factors; and (ii) 3D-printed PLA-CaP functionalized rhBMP2 scaffold, a biocompatible, bioactive biomaterial, with osteoconductivity and osteoinductivity.
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spelling pubmed-77957732021-01-10 Biomimetic Mineralization on 3D Printed PLA Scaffolds: On the Response of Human Primary Osteoblasts Spheroids and In Vivo Implantation Maia-Pinto, Marianna O. C. Brochado, Ana Carolina B. Teixeira, Bruna Nunes Sartoretto, Suelen C. Uzeda, Marcelo J. Alves, Adriana T. N. N. Alves, Gutemberg G. Calasans-Maia, Mônica D. Thiré, Rossana M. S. M. Polymers (Basel) Article This study aimed to assess the response of 3D printed polylactic acid (PLA) scaffolds biomimetically coated with apatite on human primary osteoblast (HOb) spheroids and evaluate the biological response to its association with Bone Morphogenetic Protein 2 (rhBMP-2) in rat calvaria. PLA scaffolds were produced via 3D printing, soaked in simulated body fluid (SBF) solution to promote apatite deposition, and characterized by physical-chemical, morphological, and mechanical properties. PLA-CaP scaffolds with interconnected porous and mechanical properties suitable for bone repairing were produced with reproducibility. The in vitro biological response was assessed with human primary osteoblast spheroids. Increased cell adhesion and the rise of in vitro release of growth factors (Platelet-Derived Growth Factor (PDGF), Basic Fibroblast Growth Factor (bFGF), Vascular Endothelial Growth Factor (VEGF) was observed for PLA-CaP scaffolds, when pre-treated with fetal bovine serum (FBS). This pre-treatment with FBS was done in a way to enhance the adsorption of serum proteins, increasing the number of bioactive sites on the surface of scaffolds, and to partially mimic in vivo interactions. The in vivo analysis was conducted through the implantation of 3D printed PLA scaffolds either alone, coated with apatite (PLA-CaP) or PLA-CaP loaded with rhBMP-2 on critical-sized defects (8 mm) of rat calvaria. PLA-CaP+rhBMP2 presented higher values of newly formed bone (NFB) than other groups at all in vivo experimental periods (p < 0.05), attaining 44.85% of NFB after six months. These findings indicated two new potential candidates as alternatives to autogenous bone grafts for long-term treatment: (i) 3D-printed PLA-CaP scaffold associated with spheroids, since it can reduce the time of repair in situ by expression of biomolecules and growth factors; and (ii) 3D-printed PLA-CaP functionalized rhBMP2 scaffold, a biocompatible, bioactive biomaterial, with osteoconductivity and osteoinductivity. MDPI 2020-12-27 /pmc/articles/PMC7795773/ /pubmed/33375451 http://dx.doi.org/10.3390/polym13010074 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Maia-Pinto, Marianna O. C.
Brochado, Ana Carolina B.
Teixeira, Bruna Nunes
Sartoretto, Suelen C.
Uzeda, Marcelo J.
Alves, Adriana T. N. N.
Alves, Gutemberg G.
Calasans-Maia, Mônica D.
Thiré, Rossana M. S. M.
Biomimetic Mineralization on 3D Printed PLA Scaffolds: On the Response of Human Primary Osteoblasts Spheroids and In Vivo Implantation
title Biomimetic Mineralization on 3D Printed PLA Scaffolds: On the Response of Human Primary Osteoblasts Spheroids and In Vivo Implantation
title_full Biomimetic Mineralization on 3D Printed PLA Scaffolds: On the Response of Human Primary Osteoblasts Spheroids and In Vivo Implantation
title_fullStr Biomimetic Mineralization on 3D Printed PLA Scaffolds: On the Response of Human Primary Osteoblasts Spheroids and In Vivo Implantation
title_full_unstemmed Biomimetic Mineralization on 3D Printed PLA Scaffolds: On the Response of Human Primary Osteoblasts Spheroids and In Vivo Implantation
title_short Biomimetic Mineralization on 3D Printed PLA Scaffolds: On the Response of Human Primary Osteoblasts Spheroids and In Vivo Implantation
title_sort biomimetic mineralization on 3d printed pla scaffolds: on the response of human primary osteoblasts spheroids and in vivo implantation
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7795773/
https://www.ncbi.nlm.nih.gov/pubmed/33375451
http://dx.doi.org/10.3390/polym13010074
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