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Osteoblastic Cell Behavior and Gene Expression Related to Bone Metabolism on Different Titanium Surfaces

The surface topography of titanium dental implants has a great influence on osseointegration. In this work, we try to determine the osteoblastic behavior and gene expression of cells with different titanium surfaces and relate them to the physicochemical properties of the surface. For this purpose,...

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Autores principales: Velasco-Ortega, Eugenio, Fos-Parra, Isabel, Cabanillas-Balsera, Daniel, Gil, Javier, Ortiz-García, Iván, Giner, Mercè, Bocio-Núñez, Jesús, Montoya-García, María-José, Jiménez-Guerra, Álvaro
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9967211/
https://www.ncbi.nlm.nih.gov/pubmed/36834936
http://dx.doi.org/10.3390/ijms24043523
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author Velasco-Ortega, Eugenio
Fos-Parra, Isabel
Cabanillas-Balsera, Daniel
Gil, Javier
Ortiz-García, Iván
Giner, Mercè
Bocio-Núñez, Jesús
Montoya-García, María-José
Jiménez-Guerra, Álvaro
author_facet Velasco-Ortega, Eugenio
Fos-Parra, Isabel
Cabanillas-Balsera, Daniel
Gil, Javier
Ortiz-García, Iván
Giner, Mercè
Bocio-Núñez, Jesús
Montoya-García, María-José
Jiménez-Guerra, Álvaro
author_sort Velasco-Ortega, Eugenio
collection PubMed
description The surface topography of titanium dental implants has a great influence on osseointegration. In this work, we try to determine the osteoblastic behavior and gene expression of cells with different titanium surfaces and relate them to the physicochemical properties of the surface. For this purpose, we have used commercial titanium discs of grade 3: as-received corresponds to machined titanium without any surface treatment (MA), chemically acid etched (AE), treated via sand blasting with Al(2)O(3) particles (SB) and a sand-blasting treatment with acid etching (SB+AE). The surfaces have been observed using scanning electron microscopy (SEM) and the roughness, wettability and surface energy with dispersive and polar components have been characterized. Osteoblastic cultures were performed with SaOS-2 osteoblastic cells determining cell viability as well as alkaline phosphatase levels for 3 and 21 days, and osteoblastic gene expression was determined. The roughness values of the MA discs was 0.02 μm, which increases to 0.3 μm with acid attack and becomes the maximum for the sand-blasted samples, reaching values of 1.2 μm for SB and SB+AE. The hydrophilic behavior of the MA and AE samples with contact angles of 63° and 65° is superior to that of the rougher samples, being 75° for SB and 82° for SB+AE. In all cases, they show good hydrophilicity. GB and GB+AE surfaces present a higher polar component in the surface energy values, 11.96 and 13.18 mJ/m(2), respectively, than AE and MA, 6.64 and 9.79 mJ/m(2), respectively. The osteoblastic cell viability values at three days do not show statistically significant differences between the four surfaces. However, the viability of the SB and SB+AE surfaces at 21 days is much higher than that of the AE and MA samples. From the alkaline phosphatase studies, higher values were observed for those treated with sand blasting with and without acid etching compared to the other two surfaces, indicating a greater activity in osteoblastic differentiation. In all cases except in the Osterix (Ostx) —osteoblast-specific transcription factor—a decrease in gene expression is observed in relation to the MA samples (control). The most important increase was observed for the SB+AE condition. A decrease in the gene expression of Osteoprotegerine (OPG), Runt-related transcription factor 2 (Runx2), Receptor Activator of NF-κB Ligand (RANKL) and Alkaline Phosphatase (Alp) genes was observed in the AE surface.
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spelling pubmed-99672112023-02-26 Osteoblastic Cell Behavior and Gene Expression Related to Bone Metabolism on Different Titanium Surfaces Velasco-Ortega, Eugenio Fos-Parra, Isabel Cabanillas-Balsera, Daniel Gil, Javier Ortiz-García, Iván Giner, Mercè Bocio-Núñez, Jesús Montoya-García, María-José Jiménez-Guerra, Álvaro Int J Mol Sci Article The surface topography of titanium dental implants has a great influence on osseointegration. In this work, we try to determine the osteoblastic behavior and gene expression of cells with different titanium surfaces and relate them to the physicochemical properties of the surface. For this purpose, we have used commercial titanium discs of grade 3: as-received corresponds to machined titanium without any surface treatment (MA), chemically acid etched (AE), treated via sand blasting with Al(2)O(3) particles (SB) and a sand-blasting treatment with acid etching (SB+AE). The surfaces have been observed using scanning electron microscopy (SEM) and the roughness, wettability and surface energy with dispersive and polar components have been characterized. Osteoblastic cultures were performed with SaOS-2 osteoblastic cells determining cell viability as well as alkaline phosphatase levels for 3 and 21 days, and osteoblastic gene expression was determined. The roughness values of the MA discs was 0.02 μm, which increases to 0.3 μm with acid attack and becomes the maximum for the sand-blasted samples, reaching values of 1.2 μm for SB and SB+AE. The hydrophilic behavior of the MA and AE samples with contact angles of 63° and 65° is superior to that of the rougher samples, being 75° for SB and 82° for SB+AE. In all cases, they show good hydrophilicity. GB and GB+AE surfaces present a higher polar component in the surface energy values, 11.96 and 13.18 mJ/m(2), respectively, than AE and MA, 6.64 and 9.79 mJ/m(2), respectively. The osteoblastic cell viability values at three days do not show statistically significant differences between the four surfaces. However, the viability of the SB and SB+AE surfaces at 21 days is much higher than that of the AE and MA samples. From the alkaline phosphatase studies, higher values were observed for those treated with sand blasting with and without acid etching compared to the other two surfaces, indicating a greater activity in osteoblastic differentiation. In all cases except in the Osterix (Ostx) —osteoblast-specific transcription factor—a decrease in gene expression is observed in relation to the MA samples (control). The most important increase was observed for the SB+AE condition. A decrease in the gene expression of Osteoprotegerine (OPG), Runt-related transcription factor 2 (Runx2), Receptor Activator of NF-κB Ligand (RANKL) and Alkaline Phosphatase (Alp) genes was observed in the AE surface. MDPI 2023-02-09 /pmc/articles/PMC9967211/ /pubmed/36834936 http://dx.doi.org/10.3390/ijms24043523 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Velasco-Ortega, Eugenio
Fos-Parra, Isabel
Cabanillas-Balsera, Daniel
Gil, Javier
Ortiz-García, Iván
Giner, Mercè
Bocio-Núñez, Jesús
Montoya-García, María-José
Jiménez-Guerra, Álvaro
Osteoblastic Cell Behavior and Gene Expression Related to Bone Metabolism on Different Titanium Surfaces
title Osteoblastic Cell Behavior and Gene Expression Related to Bone Metabolism on Different Titanium Surfaces
title_full Osteoblastic Cell Behavior and Gene Expression Related to Bone Metabolism on Different Titanium Surfaces
title_fullStr Osteoblastic Cell Behavior and Gene Expression Related to Bone Metabolism on Different Titanium Surfaces
title_full_unstemmed Osteoblastic Cell Behavior and Gene Expression Related to Bone Metabolism on Different Titanium Surfaces
title_short Osteoblastic Cell Behavior and Gene Expression Related to Bone Metabolism on Different Titanium Surfaces
title_sort osteoblastic cell behavior and gene expression related to bone metabolism on different titanium surfaces
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9967211/
https://www.ncbi.nlm.nih.gov/pubmed/36834936
http://dx.doi.org/10.3390/ijms24043523
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