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Rapid Kill—Novel Endodontic Sealer and Enterococcus faecalis

With growing concern over bacterial resistance, the identification of new antimicrobial means is paramount. In the oral cavity microorganisms are essential to the development of periradicular diseases and are the major causative factors associated with endodontic treatment failure. As quaternary amm...

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Autores principales: Beyth, Nurit, Kesler Shvero, Dana, Zaltsman, Nathan, Houri-Haddad, Yael, Abramovitz, Itzhak, Davidi, Michael Perez, Weiss, Ervin I.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3819367/
https://www.ncbi.nlm.nih.gov/pubmed/24223159
http://dx.doi.org/10.1371/journal.pone.0078586
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author Beyth, Nurit
Kesler Shvero, Dana
Zaltsman, Nathan
Houri-Haddad, Yael
Abramovitz, Itzhak
Davidi, Michael Perez
Weiss, Ervin I.
author_facet Beyth, Nurit
Kesler Shvero, Dana
Zaltsman, Nathan
Houri-Haddad, Yael
Abramovitz, Itzhak
Davidi, Michael Perez
Weiss, Ervin I.
author_sort Beyth, Nurit
collection PubMed
description With growing concern over bacterial resistance, the identification of new antimicrobial means is paramount. In the oral cavity microorganisms are essential to the development of periradicular diseases and are the major causative factors associated with endodontic treatment failure. As quaternary ammonium compounds have the ability to kill a wide array of bacteria through electrostatic interactions with multiple anionic targets on the bacterial surface, it is likely that they can overcome bacterial resistance. Melding these ideas, we investigated the potency of a novel endodontic sealer in limiting Enterococcus faecalis growth. We used a polyethyleneimine scaffold to synthesize nano-sized particles, optimized for incorporation into an epoxy-based endodontic sealer. The novel endodontic sealer was tested for its antimicrobial efficacy and evaluated for biocompatibility and physical eligibility. Our results show that the novel sealer foundation affixes the nanoparticles, achieving surface bactericidal properties, but at the same time impeding nanoparticle penetration into eukaryotic cells and thereby mitigating a possible toxic effect. Moreover, adequate physical properties are maintained. The nanosized quaternary amine particles interact within minutes with bacteria, triggering cell death across wide pH values. Throughout this study we demonstrate a new antibacterial perspective for endodontic sealers; a novel antibacterial, effective and safe antimicrobial means.
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spelling pubmed-38193672013-11-12 Rapid Kill—Novel Endodontic Sealer and Enterococcus faecalis Beyth, Nurit Kesler Shvero, Dana Zaltsman, Nathan Houri-Haddad, Yael Abramovitz, Itzhak Davidi, Michael Perez Weiss, Ervin I. PLoS One Research Article With growing concern over bacterial resistance, the identification of new antimicrobial means is paramount. In the oral cavity microorganisms are essential to the development of periradicular diseases and are the major causative factors associated with endodontic treatment failure. As quaternary ammonium compounds have the ability to kill a wide array of bacteria through electrostatic interactions with multiple anionic targets on the bacterial surface, it is likely that they can overcome bacterial resistance. Melding these ideas, we investigated the potency of a novel endodontic sealer in limiting Enterococcus faecalis growth. We used a polyethyleneimine scaffold to synthesize nano-sized particles, optimized for incorporation into an epoxy-based endodontic sealer. The novel endodontic sealer was tested for its antimicrobial efficacy and evaluated for biocompatibility and physical eligibility. Our results show that the novel sealer foundation affixes the nanoparticles, achieving surface bactericidal properties, but at the same time impeding nanoparticle penetration into eukaryotic cells and thereby mitigating a possible toxic effect. Moreover, adequate physical properties are maintained. The nanosized quaternary amine particles interact within minutes with bacteria, triggering cell death across wide pH values. Throughout this study we demonstrate a new antibacterial perspective for endodontic sealers; a novel antibacterial, effective and safe antimicrobial means. Public Library of Science 2013-11-06 /pmc/articles/PMC3819367/ /pubmed/24223159 http://dx.doi.org/10.1371/journal.pone.0078586 Text en © 2013 Beyth et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Beyth, Nurit
Kesler Shvero, Dana
Zaltsman, Nathan
Houri-Haddad, Yael
Abramovitz, Itzhak
Davidi, Michael Perez
Weiss, Ervin I.
Rapid Kill—Novel Endodontic Sealer and Enterococcus faecalis
title Rapid Kill—Novel Endodontic Sealer and Enterococcus faecalis
title_full Rapid Kill—Novel Endodontic Sealer and Enterococcus faecalis
title_fullStr Rapid Kill—Novel Endodontic Sealer and Enterococcus faecalis
title_full_unstemmed Rapid Kill—Novel Endodontic Sealer and Enterococcus faecalis
title_short Rapid Kill—Novel Endodontic Sealer and Enterococcus faecalis
title_sort rapid kill—novel endodontic sealer and enterococcus faecalis
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3819367/
https://www.ncbi.nlm.nih.gov/pubmed/24223159
http://dx.doi.org/10.1371/journal.pone.0078586
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