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Atmospheric Pressure Plasma Activation of Hydroxyapatite to Improve Fluoride Incorporation and Modulate Bacterial Biofilm

Despite the technological progress of the last decade, dental caries is still the most frequent oral health threat in children and adults alike. Such a condition has multiple triggers and is caused mainly by enamel degradation under the acidic attack of microbial cells, which compose the biofilm of...

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Autores principales: Zarif, Maria Elena, Yehia, Sașa Alexandra, Biță, Bogdan, Sătulu, Veronica, Vizireanu, Sorin, Dinescu, Gheorghe, Holban, Alina Maria, Marinescu, Florica, Andronescu, Ecaterina, Grumezescu, Alexandru Mihai, Bîrcă, Alexandra Cătălina, Farcașiu, Alexandru Titus
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8658314/
https://www.ncbi.nlm.nih.gov/pubmed/34884908
http://dx.doi.org/10.3390/ijms222313103
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author Zarif, Maria Elena
Yehia, Sașa Alexandra
Biță, Bogdan
Sătulu, Veronica
Vizireanu, Sorin
Dinescu, Gheorghe
Holban, Alina Maria
Marinescu, Florica
Andronescu, Ecaterina
Grumezescu, Alexandru Mihai
Bîrcă, Alexandra Cătălina
Farcașiu, Alexandru Titus
author_facet Zarif, Maria Elena
Yehia, Sașa Alexandra
Biță, Bogdan
Sătulu, Veronica
Vizireanu, Sorin
Dinescu, Gheorghe
Holban, Alina Maria
Marinescu, Florica
Andronescu, Ecaterina
Grumezescu, Alexandru Mihai
Bîrcă, Alexandra Cătălina
Farcașiu, Alexandru Titus
author_sort Zarif, Maria Elena
collection PubMed
description Despite the technological progress of the last decade, dental caries is still the most frequent oral health threat in children and adults alike. Such a condition has multiple triggers and is caused mainly by enamel degradation under the acidic attack of microbial cells, which compose the biofilm of the dental plaque. The biofilm of the dental plaque is a multispecific microbial consortium that periodically develops on mammalian teeth. It can be partially removed through mechanical forces by individual brushing or in specialized oral care facilities. Inhibition of microbial attachment and biofilm formation, as well as methods to strengthen dental enamel to microbial attack, represent the key factors in caries prevention. The purpose of this study was to elaborate a cold plasma-based method in order to modulate microbial attachment and biofilm formation and to improve the retention of fluoride (F(−)) in an enamel-like hydroxyapatite (HAP) model sample. Our results showed improved F retention in the HAP model, which correlated with an increased antimicrobial and antibiofilm effect. The obtained cold plasma with a dual effect exhibited through biofilm modulation and enamel strengthening through fluoridation is intended for dental application, such as preventing and treating dental caries and enamel deterioration.
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spelling pubmed-86583142021-12-10 Atmospheric Pressure Plasma Activation of Hydroxyapatite to Improve Fluoride Incorporation and Modulate Bacterial Biofilm Zarif, Maria Elena Yehia, Sașa Alexandra Biță, Bogdan Sătulu, Veronica Vizireanu, Sorin Dinescu, Gheorghe Holban, Alina Maria Marinescu, Florica Andronescu, Ecaterina Grumezescu, Alexandru Mihai Bîrcă, Alexandra Cătălina Farcașiu, Alexandru Titus Int J Mol Sci Article Despite the technological progress of the last decade, dental caries is still the most frequent oral health threat in children and adults alike. Such a condition has multiple triggers and is caused mainly by enamel degradation under the acidic attack of microbial cells, which compose the biofilm of the dental plaque. The biofilm of the dental plaque is a multispecific microbial consortium that periodically develops on mammalian teeth. It can be partially removed through mechanical forces by individual brushing or in specialized oral care facilities. Inhibition of microbial attachment and biofilm formation, as well as methods to strengthen dental enamel to microbial attack, represent the key factors in caries prevention. The purpose of this study was to elaborate a cold plasma-based method in order to modulate microbial attachment and biofilm formation and to improve the retention of fluoride (F(−)) in an enamel-like hydroxyapatite (HAP) model sample. Our results showed improved F retention in the HAP model, which correlated with an increased antimicrobial and antibiofilm effect. The obtained cold plasma with a dual effect exhibited through biofilm modulation and enamel strengthening through fluoridation is intended for dental application, such as preventing and treating dental caries and enamel deterioration. MDPI 2021-12-03 /pmc/articles/PMC8658314/ /pubmed/34884908 http://dx.doi.org/10.3390/ijms222313103 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
Zarif, Maria Elena
Yehia, Sașa Alexandra
Biță, Bogdan
Sătulu, Veronica
Vizireanu, Sorin
Dinescu, Gheorghe
Holban, Alina Maria
Marinescu, Florica
Andronescu, Ecaterina
Grumezescu, Alexandru Mihai
Bîrcă, Alexandra Cătălina
Farcașiu, Alexandru Titus
Atmospheric Pressure Plasma Activation of Hydroxyapatite to Improve Fluoride Incorporation and Modulate Bacterial Biofilm
title Atmospheric Pressure Plasma Activation of Hydroxyapatite to Improve Fluoride Incorporation and Modulate Bacterial Biofilm
title_full Atmospheric Pressure Plasma Activation of Hydroxyapatite to Improve Fluoride Incorporation and Modulate Bacterial Biofilm
title_fullStr Atmospheric Pressure Plasma Activation of Hydroxyapatite to Improve Fluoride Incorporation and Modulate Bacterial Biofilm
title_full_unstemmed Atmospheric Pressure Plasma Activation of Hydroxyapatite to Improve Fluoride Incorporation and Modulate Bacterial Biofilm
title_short Atmospheric Pressure Plasma Activation of Hydroxyapatite to Improve Fluoride Incorporation and Modulate Bacterial Biofilm
title_sort atmospheric pressure plasma activation of hydroxyapatite to improve fluoride incorporation and modulate bacterial biofilm
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8658314/
https://www.ncbi.nlm.nih.gov/pubmed/34884908
http://dx.doi.org/10.3390/ijms222313103
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