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Biological Responses of Ceramic Bone Spacers Produced by Green Processing of Additively Manufactured Thin Meshes

Bone spacers are exclusively used for replacing the tissue after trauma and/or diseases. Ceramic materials bring positive opportunities to enhance greater osteointegration and performance of implants, yet processing of porous geometries can be challenging. Additive Manufacturing (AM) opens opportuni...

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Autores principales: Minguella-Canela, Joaquim, Calero, Jose Antonio, Korkusuz, Feza, Korkusuz, Petek, Kankılıç, Berna, Bilgiç, Elif, De los Santos-López, M. Antonia
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7321431/
https://www.ncbi.nlm.nih.gov/pubmed/32486136
http://dx.doi.org/10.3390/ma13112497
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author Minguella-Canela, Joaquim
Calero, Jose Antonio
Korkusuz, Feza
Korkusuz, Petek
Kankılıç, Berna
Bilgiç, Elif
De los Santos-López, M. Antonia
author_facet Minguella-Canela, Joaquim
Calero, Jose Antonio
Korkusuz, Feza
Korkusuz, Petek
Kankılıç, Berna
Bilgiç, Elif
De los Santos-López, M. Antonia
author_sort Minguella-Canela, Joaquim
collection PubMed
description Bone spacers are exclusively used for replacing the tissue after trauma and/or diseases. Ceramic materials bring positive opportunities to enhance greater osteointegration and performance of implants, yet processing of porous geometries can be challenging. Additive Manufacturing (AM) opens opportunities to grade porosity levels in a part; however, its productivity may be low due to its batch processing approach. The paper studies the biological responses yielded by hydroxyapatite with β-TCP (tricalcium phosphate) ceramic porous bone spacers manufactured by robocasting 2-layer meshes that are rolled in green and sintered. The implants are assessed in vitro and in vivo for their compatibility. Human bone marrow mesenchymal stem cells attached, proliferated and differentiated on the bone spacers produced. Cells on the spacers presented alkaline phosphatase staining, confirming osteogenic differentiation. They also expressed bone-specific COL1A1, BGAP, BSP, and SPP1 genes. The fold change of these genes ranged between 8 to 16 folds compared to controls. When implanted into the subcutaneous tissue of rabbits, they triggered collagen fibre formation and mild fibroblastic proliferation. In conclusion, rolled AM-meshes bone spacers stimulated bone formation in vitro and were biocompatible in vivo. This technology may give the advantage to custom produce spacers at high production rates if industrially upscaled.
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spelling pubmed-73214312020-06-29 Biological Responses of Ceramic Bone Spacers Produced by Green Processing of Additively Manufactured Thin Meshes Minguella-Canela, Joaquim Calero, Jose Antonio Korkusuz, Feza Korkusuz, Petek Kankılıç, Berna Bilgiç, Elif De los Santos-López, M. Antonia Materials (Basel) Article Bone spacers are exclusively used for replacing the tissue after trauma and/or diseases. Ceramic materials bring positive opportunities to enhance greater osteointegration and performance of implants, yet processing of porous geometries can be challenging. Additive Manufacturing (AM) opens opportunities to grade porosity levels in a part; however, its productivity may be low due to its batch processing approach. The paper studies the biological responses yielded by hydroxyapatite with β-TCP (tricalcium phosphate) ceramic porous bone spacers manufactured by robocasting 2-layer meshes that are rolled in green and sintered. The implants are assessed in vitro and in vivo for their compatibility. Human bone marrow mesenchymal stem cells attached, proliferated and differentiated on the bone spacers produced. Cells on the spacers presented alkaline phosphatase staining, confirming osteogenic differentiation. They also expressed bone-specific COL1A1, BGAP, BSP, and SPP1 genes. The fold change of these genes ranged between 8 to 16 folds compared to controls. When implanted into the subcutaneous tissue of rabbits, they triggered collagen fibre formation and mild fibroblastic proliferation. In conclusion, rolled AM-meshes bone spacers stimulated bone formation in vitro and were biocompatible in vivo. This technology may give the advantage to custom produce spacers at high production rates if industrially upscaled. MDPI 2020-05-30 /pmc/articles/PMC7321431/ /pubmed/32486136 http://dx.doi.org/10.3390/ma13112497 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
Minguella-Canela, Joaquim
Calero, Jose Antonio
Korkusuz, Feza
Korkusuz, Petek
Kankılıç, Berna
Bilgiç, Elif
De los Santos-López, M. Antonia
Biological Responses of Ceramic Bone Spacers Produced by Green Processing of Additively Manufactured Thin Meshes
title Biological Responses of Ceramic Bone Spacers Produced by Green Processing of Additively Manufactured Thin Meshes
title_full Biological Responses of Ceramic Bone Spacers Produced by Green Processing of Additively Manufactured Thin Meshes
title_fullStr Biological Responses of Ceramic Bone Spacers Produced by Green Processing of Additively Manufactured Thin Meshes
title_full_unstemmed Biological Responses of Ceramic Bone Spacers Produced by Green Processing of Additively Manufactured Thin Meshes
title_short Biological Responses of Ceramic Bone Spacers Produced by Green Processing of Additively Manufactured Thin Meshes
title_sort biological responses of ceramic bone spacers produced by green processing of additively manufactured thin meshes
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7321431/
https://www.ncbi.nlm.nih.gov/pubmed/32486136
http://dx.doi.org/10.3390/ma13112497
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