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Bioactivity Performance of Pure Mg after Plasma Electrolytic Oxidation in Silicate-Based Solutions

The biodegradable metals, including magnesium (Mg), are a convenient alternative to permanent metals but fast uncontrolled corrosion limited wide clinical application. Formation of a barrier coating on Mg alloys could be a successful strategy for the production of a stable external layer that preven...

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Autores principales: Husak, Yevheniia, Michalska, Joanna, Oleshko, Oleksandr, Korniienko, Viktoriia, Grundsteins, Karlis, Dryhval, Bohdan, Altundal, Sahin, Mishchenko, Oleg, Viter, Roman, Pogorielov, Maksym, Simka, Wojciech
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
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Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8038674/
https://www.ncbi.nlm.nih.gov/pubmed/33917454
http://dx.doi.org/10.3390/molecules26072094
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author Husak, Yevheniia
Michalska, Joanna
Oleshko, Oleksandr
Korniienko, Viktoriia
Grundsteins, Karlis
Dryhval, Bohdan
Altundal, Sahin
Mishchenko, Oleg
Viter, Roman
Pogorielov, Maksym
Simka, Wojciech
author_facet Husak, Yevheniia
Michalska, Joanna
Oleshko, Oleksandr
Korniienko, Viktoriia
Grundsteins, Karlis
Dryhval, Bohdan
Altundal, Sahin
Mishchenko, Oleg
Viter, Roman
Pogorielov, Maksym
Simka, Wojciech
author_sort Husak, Yevheniia
collection PubMed
description The biodegradable metals, including magnesium (Mg), are a convenient alternative to permanent metals but fast uncontrolled corrosion limited wide clinical application. Formation of a barrier coating on Mg alloys could be a successful strategy for the production of a stable external layer that prevents fast corrosion. Our research was aimed to develop an Mg stable oxide coating using plasma electrolytic oxidation (PEO) in silicate-based solutions. 99.9% pure Mg alloy was anodized in electrolytes contained mixtures of sodium silicate and sodium fluoride, calcium hydroxide and sodium hydroxide. Scanning electron microscopy (SEM), energy-dispersive X-ray spectroscopy (EDX), contact angle (CA), Photoluminescence analysis and immersion tests were performed to assess structural and long-term corrosion properties of the new coating. Biocompatibility and antibacterial potential of the new coating were evaluated using U2OS cell culture and the gram-positive Staphylococcus aureus (S. aureus, strain B 918). PEO provided the formation of a porous oxide layer with relatively high roughness. It was shown that Ca(OH)(2) was a crucial compound for oxidation and surface modification of Mg implants, treated with the PEO method. The addition of Ca(2+) ions resulted in more intense oxidation of the Mg surface and growth of the oxide layer with a higher active surface area. Cell culture experiments demonstrated appropriate cell adhesion to all investigated coatings with a significantly better proliferation rate for the samples treated in Ca(OH)(2)-containing electrolyte. In contrast, NaOH-based electrolyte provided more relevant antibacterial effects but did not support cell proliferation. In conclusion, it should be noted that PEO of Mg alloy in silicate baths containing Ca(OH)(2) provided the formation of stable biocompatible oxide coatings that could be used in the development of commercial degradable implants.
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spelling pubmed-80386742021-04-12 Bioactivity Performance of Pure Mg after Plasma Electrolytic Oxidation in Silicate-Based Solutions Husak, Yevheniia Michalska, Joanna Oleshko, Oleksandr Korniienko, Viktoriia Grundsteins, Karlis Dryhval, Bohdan Altundal, Sahin Mishchenko, Oleg Viter, Roman Pogorielov, Maksym Simka, Wojciech Molecules Article The biodegradable metals, including magnesium (Mg), are a convenient alternative to permanent metals but fast uncontrolled corrosion limited wide clinical application. Formation of a barrier coating on Mg alloys could be a successful strategy for the production of a stable external layer that prevents fast corrosion. Our research was aimed to develop an Mg stable oxide coating using plasma electrolytic oxidation (PEO) in silicate-based solutions. 99.9% pure Mg alloy was anodized in electrolytes contained mixtures of sodium silicate and sodium fluoride, calcium hydroxide and sodium hydroxide. Scanning electron microscopy (SEM), energy-dispersive X-ray spectroscopy (EDX), contact angle (CA), Photoluminescence analysis and immersion tests were performed to assess structural and long-term corrosion properties of the new coating. Biocompatibility and antibacterial potential of the new coating were evaluated using U2OS cell culture and the gram-positive Staphylococcus aureus (S. aureus, strain B 918). PEO provided the formation of a porous oxide layer with relatively high roughness. It was shown that Ca(OH)(2) was a crucial compound for oxidation and surface modification of Mg implants, treated with the PEO method. The addition of Ca(2+) ions resulted in more intense oxidation of the Mg surface and growth of the oxide layer with a higher active surface area. Cell culture experiments demonstrated appropriate cell adhesion to all investigated coatings with a significantly better proliferation rate for the samples treated in Ca(OH)(2)-containing electrolyte. In contrast, NaOH-based electrolyte provided more relevant antibacterial effects but did not support cell proliferation. In conclusion, it should be noted that PEO of Mg alloy in silicate baths containing Ca(OH)(2) provided the formation of stable biocompatible oxide coatings that could be used in the development of commercial degradable implants. MDPI 2021-04-06 /pmc/articles/PMC8038674/ /pubmed/33917454 http://dx.doi.org/10.3390/molecules26072094 Text en © 2021 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
Husak, Yevheniia
Michalska, Joanna
Oleshko, Oleksandr
Korniienko, Viktoriia
Grundsteins, Karlis
Dryhval, Bohdan
Altundal, Sahin
Mishchenko, Oleg
Viter, Roman
Pogorielov, Maksym
Simka, Wojciech
Bioactivity Performance of Pure Mg after Plasma Electrolytic Oxidation in Silicate-Based Solutions
title Bioactivity Performance of Pure Mg after Plasma Electrolytic Oxidation in Silicate-Based Solutions
title_full Bioactivity Performance of Pure Mg after Plasma Electrolytic Oxidation in Silicate-Based Solutions
title_fullStr Bioactivity Performance of Pure Mg after Plasma Electrolytic Oxidation in Silicate-Based Solutions
title_full_unstemmed Bioactivity Performance of Pure Mg after Plasma Electrolytic Oxidation in Silicate-Based Solutions
title_short Bioactivity Performance of Pure Mg after Plasma Electrolytic Oxidation in Silicate-Based Solutions
title_sort bioactivity performance of pure mg after plasma electrolytic oxidation in silicate-based solutions
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8038674/
https://www.ncbi.nlm.nih.gov/pubmed/33917454
http://dx.doi.org/10.3390/molecules26072094
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