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In Vitro Comparative Study of Oxygen Plasma Treated Poly(Lactic–Co–Glycolic) (PLGA) Membranes and Supported Nanostructured Oxides for Guided Bone Regeneration Processes

(1) Background: The use of physical barriers to prevent the invasion of gingival and connective tissue cells into bone cavities during the healing process is called guided bone regeneration. The objective of this in-vitro study was to compare the growth of human osteoblasts on Poly(Lactic–co–Glycoli...

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Autores principales: Torres-Lagares, Daniel, Castellanos-Cosano, Lizett, Serrera-Figallo, Maria-Angeles, López-Santos, Carmen, Barranco, Angel, Rodríguez-González-Elipe, Agustín, Gutierrez-Perez, Jose-Luis
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5978129/
https://www.ncbi.nlm.nih.gov/pubmed/29738457
http://dx.doi.org/10.3390/ma11050752
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author Torres-Lagares, Daniel
Castellanos-Cosano, Lizett
Serrera-Figallo, Maria-Angeles
López-Santos, Carmen
Barranco, Angel
Rodríguez-González-Elipe, Agustín
Gutierrez-Perez, Jose-Luis
author_facet Torres-Lagares, Daniel
Castellanos-Cosano, Lizett
Serrera-Figallo, Maria-Angeles
López-Santos, Carmen
Barranco, Angel
Rodríguez-González-Elipe, Agustín
Gutierrez-Perez, Jose-Luis
author_sort Torres-Lagares, Daniel
collection PubMed
description (1) Background: The use of physical barriers to prevent the invasion of gingival and connective tissue cells into bone cavities during the healing process is called guided bone regeneration. The objective of this in-vitro study was to compare the growth of human osteoblasts on Poly(Lactic–co–Glycolic) (PLGA) membranes modified with oxygen plasma and Hydroxyapatite (HA), silicon dioxide (SiO(2)), and titanium dioxide (TiO(2)) composite nanoparticles, respectively. (2) Methods: All the membranes received a common treatment with oxygen plasma and were subsequently treated with HA nanostructured coatings (n = 10), SiO(2) (n = 10) and TiO(2) (n = 10), respectively and a PLGA control membrane (n = 10). The assays were performed using the human osteoblast line MG-63 acquired from the Center for Scientific Instrumentation (CIC) from the University of Granada. The cell adhesion and the viability of the osteoblasts were analyzed by means of light-field microphotographs of each condition with the inverted microscope Axio Observer A1 (Carl Zeiss). For the determination of the mitochondrial energy balance, the MitoProbe™ JC-1 Assay Kit was employed. For the determination of cell growth and the morphology of adherent osteoblasts, two techniques were employed: staining with phalloidin-TRITC and staining with DAPI. (3) Results: The modified membranes that show osteoblasts with a morphology more similar to the control osteoblasts follow the order: PLGA/PO(2)/HA > PLGA/PO(2)/SiO(2) > PLGA/PO(2)/TiO(2) > PLGA (p < 0.05). When analysing the cell viability, a higher percentage of viable cells bound to the membranes was observed as follows: PLGA/PO(2)/SiO(2) > PLGA/PO(2)/HA > PLGA/PO(2)/TiO(2) > PLGA (p < 0.05), with a better energy balance of the cells adhered to the membranes PLGA/PO(2)/HA and PLGA/PO(2)/SiO(2). (4) Conclusion: The membrane in which osteoblasts show characteristics more similar to the control osteoblasts is the PLGA/PO(2)/HA, followed by the PLGA/PO(2)/SiO(2).
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spelling pubmed-59781292018-05-31 In Vitro Comparative Study of Oxygen Plasma Treated Poly(Lactic–Co–Glycolic) (PLGA) Membranes and Supported Nanostructured Oxides for Guided Bone Regeneration Processes Torres-Lagares, Daniel Castellanos-Cosano, Lizett Serrera-Figallo, Maria-Angeles López-Santos, Carmen Barranco, Angel Rodríguez-González-Elipe, Agustín Gutierrez-Perez, Jose-Luis Materials (Basel) Article (1) Background: The use of physical barriers to prevent the invasion of gingival and connective tissue cells into bone cavities during the healing process is called guided bone regeneration. The objective of this in-vitro study was to compare the growth of human osteoblasts on Poly(Lactic–co–Glycolic) (PLGA) membranes modified with oxygen plasma and Hydroxyapatite (HA), silicon dioxide (SiO(2)), and titanium dioxide (TiO(2)) composite nanoparticles, respectively. (2) Methods: All the membranes received a common treatment with oxygen plasma and were subsequently treated with HA nanostructured coatings (n = 10), SiO(2) (n = 10) and TiO(2) (n = 10), respectively and a PLGA control membrane (n = 10). The assays were performed using the human osteoblast line MG-63 acquired from the Center for Scientific Instrumentation (CIC) from the University of Granada. The cell adhesion and the viability of the osteoblasts were analyzed by means of light-field microphotographs of each condition with the inverted microscope Axio Observer A1 (Carl Zeiss). For the determination of the mitochondrial energy balance, the MitoProbe™ JC-1 Assay Kit was employed. For the determination of cell growth and the morphology of adherent osteoblasts, two techniques were employed: staining with phalloidin-TRITC and staining with DAPI. (3) Results: The modified membranes that show osteoblasts with a morphology more similar to the control osteoblasts follow the order: PLGA/PO(2)/HA > PLGA/PO(2)/SiO(2) > PLGA/PO(2)/TiO(2) > PLGA (p < 0.05). When analysing the cell viability, a higher percentage of viable cells bound to the membranes was observed as follows: PLGA/PO(2)/SiO(2) > PLGA/PO(2)/HA > PLGA/PO(2)/TiO(2) > PLGA (p < 0.05), with a better energy balance of the cells adhered to the membranes PLGA/PO(2)/HA and PLGA/PO(2)/SiO(2). (4) Conclusion: The membrane in which osteoblasts show characteristics more similar to the control osteoblasts is the PLGA/PO(2)/HA, followed by the PLGA/PO(2)/SiO(2). MDPI 2018-05-08 /pmc/articles/PMC5978129/ /pubmed/29738457 http://dx.doi.org/10.3390/ma11050752 Text en © 2018 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
Torres-Lagares, Daniel
Castellanos-Cosano, Lizett
Serrera-Figallo, Maria-Angeles
López-Santos, Carmen
Barranco, Angel
Rodríguez-González-Elipe, Agustín
Gutierrez-Perez, Jose-Luis
In Vitro Comparative Study of Oxygen Plasma Treated Poly(Lactic–Co–Glycolic) (PLGA) Membranes and Supported Nanostructured Oxides for Guided Bone Regeneration Processes
title In Vitro Comparative Study of Oxygen Plasma Treated Poly(Lactic–Co–Glycolic) (PLGA) Membranes and Supported Nanostructured Oxides for Guided Bone Regeneration Processes
title_full In Vitro Comparative Study of Oxygen Plasma Treated Poly(Lactic–Co–Glycolic) (PLGA) Membranes and Supported Nanostructured Oxides for Guided Bone Regeneration Processes
title_fullStr In Vitro Comparative Study of Oxygen Plasma Treated Poly(Lactic–Co–Glycolic) (PLGA) Membranes and Supported Nanostructured Oxides for Guided Bone Regeneration Processes
title_full_unstemmed In Vitro Comparative Study of Oxygen Plasma Treated Poly(Lactic–Co–Glycolic) (PLGA) Membranes and Supported Nanostructured Oxides for Guided Bone Regeneration Processes
title_short In Vitro Comparative Study of Oxygen Plasma Treated Poly(Lactic–Co–Glycolic) (PLGA) Membranes and Supported Nanostructured Oxides for Guided Bone Regeneration Processes
title_sort in vitro comparative study of oxygen plasma treated poly(lactic–co–glycolic) (plga) membranes and supported nanostructured oxides for guided bone regeneration processes
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5978129/
https://www.ncbi.nlm.nih.gov/pubmed/29738457
http://dx.doi.org/10.3390/ma11050752
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