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The evaluation of the impact of titania nanotube covers morphology and crystal phase on their biological properties

ABSTRACT: The highly ordered titanium dioxide nanotube coatings were produced under various electrochemical conditions on the surface of titanium foil. The anodization voltage changes proved to be a main factor which directly affects the nanotube morphology, structure, and wettability. Moreover we h...

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Autores principales: Lewandowska, Żaneta, Piszczek, Piotr, Radtke, Aleksandra, Jędrzejewski, Tomasz, Kozak, Wiesław, Sadowska, Beata
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Springer US 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4366560/
https://www.ncbi.nlm.nih.gov/pubmed/25791457
http://dx.doi.org/10.1007/s10856-015-5495-2
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author Lewandowska, Żaneta
Piszczek, Piotr
Radtke, Aleksandra
Jędrzejewski, Tomasz
Kozak, Wiesław
Sadowska, Beata
author_facet Lewandowska, Żaneta
Piszczek, Piotr
Radtke, Aleksandra
Jędrzejewski, Tomasz
Kozak, Wiesław
Sadowska, Beata
author_sort Lewandowska, Żaneta
collection PubMed
description ABSTRACT: The highly ordered titanium dioxide nanotube coatings were produced under various electrochemical conditions on the surface of titanium foil. The anodization voltage changes proved to be a main factor which directly affects the nanotube morphology, structure, and wettability. Moreover we have noticed a significant dependence between the size and crystallinity of TiO(2) layers and the adhesion/proliferation of fibroblasts and antimicrobial properties. Cellular functionality were investigated for up to 3 days in culture using a cell viability assay and scanning electron microscopy. In general, results of our studies revealed that fibroblasts adhesion, proliferation, and differentiation on the titania nanotube coatings is clearly higher than on the surface of the pure titanium foil. The formation of crystallic islands in the nanotubes structure induced a significant acceleration in the growth rate of fibroblasts cells by as much as ~200 %. Additionally, some types of TiO(2) layers revealed the ability to the reduce of the staphylococcal aggregates/biofilm formation. The nanotube coatings formed during the anodization process using the voltage 4 V proved to be the stronger S. aureus aggregates/biofilm inhibitor in comparison to the uncovered titanium substrate. That accelerated eukaryotic cell growth and anti-biofilm activity is believed to be advantageous for faster cure of dental and orthopaedic patients, and also for a variety of biomedical diagnostic and therapeutic applications. GRAPHICAL ABSTRACT: The highly ordered titanium dioxide nanotube coatings were produced under various electrochemical conditions on the surface of titanium foil. The anodization voltage changes proved to be a main factor which directly affects the nanotube morphology, structure, and wettability. Moreover we have noticed a significant dependence between the size and crystallinity of TiO(2) layers and the adhesion/proliferation of fibroblasts and antimicrobial properties. [Image: see text]
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spelling pubmed-43665602015-03-26 The evaluation of the impact of titania nanotube covers morphology and crystal phase on their biological properties Lewandowska, Żaneta Piszczek, Piotr Radtke, Aleksandra Jędrzejewski, Tomasz Kozak, Wiesław Sadowska, Beata J Mater Sci Mater Med Engineering and Nano-engineering Approaches for Medical Devices ABSTRACT: The highly ordered titanium dioxide nanotube coatings were produced under various electrochemical conditions on the surface of titanium foil. The anodization voltage changes proved to be a main factor which directly affects the nanotube morphology, structure, and wettability. Moreover we have noticed a significant dependence between the size and crystallinity of TiO(2) layers and the adhesion/proliferation of fibroblasts and antimicrobial properties. Cellular functionality were investigated for up to 3 days in culture using a cell viability assay and scanning electron microscopy. In general, results of our studies revealed that fibroblasts adhesion, proliferation, and differentiation on the titania nanotube coatings is clearly higher than on the surface of the pure titanium foil. The formation of crystallic islands in the nanotubes structure induced a significant acceleration in the growth rate of fibroblasts cells by as much as ~200 %. Additionally, some types of TiO(2) layers revealed the ability to the reduce of the staphylococcal aggregates/biofilm formation. The nanotube coatings formed during the anodization process using the voltage 4 V proved to be the stronger S. aureus aggregates/biofilm inhibitor in comparison to the uncovered titanium substrate. That accelerated eukaryotic cell growth and anti-biofilm activity is believed to be advantageous for faster cure of dental and orthopaedic patients, and also for a variety of biomedical diagnostic and therapeutic applications. GRAPHICAL ABSTRACT: The highly ordered titanium dioxide nanotube coatings were produced under various electrochemical conditions on the surface of titanium foil. The anodization voltage changes proved to be a main factor which directly affects the nanotube morphology, structure, and wettability. Moreover we have noticed a significant dependence between the size and crystallinity of TiO(2) layers and the adhesion/proliferation of fibroblasts and antimicrobial properties. [Image: see text] Springer US 2015-03-20 2015 /pmc/articles/PMC4366560/ /pubmed/25791457 http://dx.doi.org/10.1007/s10856-015-5495-2 Text en © The Author(s) 2015 https://creativecommons.org/licenses/by/4.0/ Open AccessThis article is distributed under the terms of the Creative Commons Attribution License which permits any use, distribution, and reproduction in any medium, provided the original author(s) and the source are credited.
spellingShingle Engineering and Nano-engineering Approaches for Medical Devices
Lewandowska, Żaneta
Piszczek, Piotr
Radtke, Aleksandra
Jędrzejewski, Tomasz
Kozak, Wiesław
Sadowska, Beata
The evaluation of the impact of titania nanotube covers morphology and crystal phase on their biological properties
title The evaluation of the impact of titania nanotube covers morphology and crystal phase on their biological properties
title_full The evaluation of the impact of titania nanotube covers morphology and crystal phase on their biological properties
title_fullStr The evaluation of the impact of titania nanotube covers morphology and crystal phase on their biological properties
title_full_unstemmed The evaluation of the impact of titania nanotube covers morphology and crystal phase on their biological properties
title_short The evaluation of the impact of titania nanotube covers morphology and crystal phase on their biological properties
title_sort evaluation of the impact of titania nanotube covers morphology and crystal phase on their biological properties
topic Engineering and Nano-engineering Approaches for Medical Devices
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4366560/
https://www.ncbi.nlm.nih.gov/pubmed/25791457
http://dx.doi.org/10.1007/s10856-015-5495-2
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