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Novel Remineralizing and Antibiofilm Low-Shrinkage-Stress Nanocomposites to Inhibit Salivary Biofilms and Protect Tooth Structures

Recurrent caries remain a persistent concern, often linked to microleakage and a lack of bioactivity in contemporary dental composites. Our study aims to address this issue by developing a low-shrinkage-stress nanocomposite with antibiofilm and remineralization capabilities, thus countering the prog...

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Autores principales: Alhussein, Abdullah, Alsahafi, Rashed, Alfaifi, Areej, Alenizy, Mohammad, Ba-Armah, Ibrahim, Schneider, Abraham, Jabra-Rizk, Mary-Ann, Masri, Radi, Garcia Fay, Guadalupe, Oates, Thomas W., Sun, Jirun, Weir, Michael D., Xu, Hockin H. K.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10608551/
https://www.ncbi.nlm.nih.gov/pubmed/37895752
http://dx.doi.org/10.3390/ma16206770
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author Alhussein, Abdullah
Alsahafi, Rashed
Alfaifi, Areej
Alenizy, Mohammad
Ba-Armah, Ibrahim
Schneider, Abraham
Jabra-Rizk, Mary-Ann
Masri, Radi
Garcia Fay, Guadalupe
Oates, Thomas W.
Sun, Jirun
Weir, Michael D.
Xu, Hockin H. K.
author_facet Alhussein, Abdullah
Alsahafi, Rashed
Alfaifi, Areej
Alenizy, Mohammad
Ba-Armah, Ibrahim
Schneider, Abraham
Jabra-Rizk, Mary-Ann
Masri, Radi
Garcia Fay, Guadalupe
Oates, Thomas W.
Sun, Jirun
Weir, Michael D.
Xu, Hockin H. K.
author_sort Alhussein, Abdullah
collection PubMed
description Recurrent caries remain a persistent concern, often linked to microleakage and a lack of bioactivity in contemporary dental composites. Our study aims to address this issue by developing a low-shrinkage-stress nanocomposite with antibiofilm and remineralization capabilities, thus countering the progression of recurrent caries. In the present study, we formulated low-shrinkage-stress nanocomposites by combining triethylene glycol divinylbenzyl ether and urethane dimethacrylate, incorporating dimethylaminododecyl methacrylate (DMADDM), along with nanoparticles of calcium fluoride (nCaF(2)) and nanoparticles of amorphous calcium phosphate (NACP). The biofilm viability, biofilm metabolic activity, lactic acid production, and ion release were evaluated. The novel formulations containing 3% DMADDM exhibited a potent antibiofilm activity, exhibiting a 4-log reduction in the human salivary biofilm CFUs compared to controls (p < 0.001). Additionally, significant reductions were observed in biofilm biomass and lactic acid (p < 0.05). By integrating both 10% NACP and 10% nCaF(2) into one formulation, efficient ion release was achieved, yielding concentrations of 3.02 ± 0.21 mmol/L for Ca, 0.5 ± 0.05 mmol/L for P, and 0.37 ± 0.01 mmol/L for F ions. The innovative mixture of DMADDM, NACP, and nCaF(2) displayed strong antibiofilm effects on salivary biofilm while concomitantly releasing a significant amount of remineralizing ions. This nanocomposite is a promising dental material with antibiofilm and remineralization capacities, with the potential to reduce polymerization-related microleakage and recurrent caries.
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spelling pubmed-106085512023-10-28 Novel Remineralizing and Antibiofilm Low-Shrinkage-Stress Nanocomposites to Inhibit Salivary Biofilms and Protect Tooth Structures Alhussein, Abdullah Alsahafi, Rashed Alfaifi, Areej Alenizy, Mohammad Ba-Armah, Ibrahim Schneider, Abraham Jabra-Rizk, Mary-Ann Masri, Radi Garcia Fay, Guadalupe Oates, Thomas W. Sun, Jirun Weir, Michael D. Xu, Hockin H. K. Materials (Basel) Article Recurrent caries remain a persistent concern, often linked to microleakage and a lack of bioactivity in contemporary dental composites. Our study aims to address this issue by developing a low-shrinkage-stress nanocomposite with antibiofilm and remineralization capabilities, thus countering the progression of recurrent caries. In the present study, we formulated low-shrinkage-stress nanocomposites by combining triethylene glycol divinylbenzyl ether and urethane dimethacrylate, incorporating dimethylaminododecyl methacrylate (DMADDM), along with nanoparticles of calcium fluoride (nCaF(2)) and nanoparticles of amorphous calcium phosphate (NACP). The biofilm viability, biofilm metabolic activity, lactic acid production, and ion release were evaluated. The novel formulations containing 3% DMADDM exhibited a potent antibiofilm activity, exhibiting a 4-log reduction in the human salivary biofilm CFUs compared to controls (p < 0.001). Additionally, significant reductions were observed in biofilm biomass and lactic acid (p < 0.05). By integrating both 10% NACP and 10% nCaF(2) into one formulation, efficient ion release was achieved, yielding concentrations of 3.02 ± 0.21 mmol/L for Ca, 0.5 ± 0.05 mmol/L for P, and 0.37 ± 0.01 mmol/L for F ions. The innovative mixture of DMADDM, NACP, and nCaF(2) displayed strong antibiofilm effects on salivary biofilm while concomitantly releasing a significant amount of remineralizing ions. This nanocomposite is a promising dental material with antibiofilm and remineralization capacities, with the potential to reduce polymerization-related microleakage and recurrent caries. MDPI 2023-10-19 /pmc/articles/PMC10608551/ /pubmed/37895752 http://dx.doi.org/10.3390/ma16206770 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
Alhussein, Abdullah
Alsahafi, Rashed
Alfaifi, Areej
Alenizy, Mohammad
Ba-Armah, Ibrahim
Schneider, Abraham
Jabra-Rizk, Mary-Ann
Masri, Radi
Garcia Fay, Guadalupe
Oates, Thomas W.
Sun, Jirun
Weir, Michael D.
Xu, Hockin H. K.
Novel Remineralizing and Antibiofilm Low-Shrinkage-Stress Nanocomposites to Inhibit Salivary Biofilms and Protect Tooth Structures
title Novel Remineralizing and Antibiofilm Low-Shrinkage-Stress Nanocomposites to Inhibit Salivary Biofilms and Protect Tooth Structures
title_full Novel Remineralizing and Antibiofilm Low-Shrinkage-Stress Nanocomposites to Inhibit Salivary Biofilms and Protect Tooth Structures
title_fullStr Novel Remineralizing and Antibiofilm Low-Shrinkage-Stress Nanocomposites to Inhibit Salivary Biofilms and Protect Tooth Structures
title_full_unstemmed Novel Remineralizing and Antibiofilm Low-Shrinkage-Stress Nanocomposites to Inhibit Salivary Biofilms and Protect Tooth Structures
title_short Novel Remineralizing and Antibiofilm Low-Shrinkage-Stress Nanocomposites to Inhibit Salivary Biofilms and Protect Tooth Structures
title_sort novel remineralizing and antibiofilm low-shrinkage-stress nanocomposites to inhibit salivary biofilms and protect tooth structures
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10608551/
https://www.ncbi.nlm.nih.gov/pubmed/37895752
http://dx.doi.org/10.3390/ma16206770
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