Bacterial viability and physical properties of antibacterially modified experimental dental resin composites.

PURPOSE:To investigate the antibacterial effect and the effect on the material properties of a novel delivery system with Irgasan as active agent and methacrylated polymerizable Irgasan when added to experimental dental resin composites. MATERIALS AND METHODS:A delivery system based on novel polymer...

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Main Authors: Stefan Rüttermann, Taina Trellenkamp, Nora Bergmann, Thomas Beikler, Helmut Ritter, Ralf Janda
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2013-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC3815119?pdf=render
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spelling doaj-0482413451f7453f993422aa4f8eef2a2020-11-24T21:11:03ZengPublic Library of Science (PLoS)PLoS ONE1932-62032013-01-01811e7911910.1371/journal.pone.0079119Bacterial viability and physical properties of antibacterially modified experimental dental resin composites.Stefan RüttermannTaina TrellenkampNora BergmannThomas BeiklerHelmut RitterRalf JandaPURPOSE:To investigate the antibacterial effect and the effect on the material properties of a novel delivery system with Irgasan as active agent and methacrylated polymerizable Irgasan when added to experimental dental resin composites. MATERIALS AND METHODS:A delivery system based on novel polymeric hollow beads, loaded with Irgasan and methacrylated polymerizable Irgasan as active agents were used to manufacture three commonly formulated experimental resin composites. The non-modified resin was used as standard (ST). Material A contained the delivery system providing 4 % (m/m) Irgasan, material B contained 4 % (m/m) methacrylated Irgasan and material C 8 % (m/m) methacrylated Irgasan. Flexural strength (FS), flexural modulus (FM), water sorption (WS), solubility (SL), surface roughness Ra, polymerization shrinkage, contact angle Θ, total surface free energy γS and its apolar γS (LW), polar γS (AB), Lewis acid γS (+)and base γS (-) term as well as bacterial viability were determined. Significance was p < 0.05. RESULTS:The materials A to C were not unacceptably influenced by the modifications and achieved the minimum values for FS, WS and SL as requested by EN ISO 4049 and did not differ from ST what was also found for Ra. Only A had lower FM than ST. Θ of A and C was higher and γS (AB) of A and B was lower than of ST. Materials A to C had higher γS (+) than ST. The antibacterial effect of materials A to C was significantly increased when compared with ST meaning that significantly less vital cells were found. CONCLUSION:Dental resin composites with small quantities of a novel antibacterially doped delivery system or with an antibacterial monomer provided acceptable physical properties and good antibacterial effectiveness. The sorption material being part of the delivery system can be used as a vehicle for any other active agent.http://europepmc.org/articles/PMC3815119?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Stefan Rüttermann
Taina Trellenkamp
Nora Bergmann
Thomas Beikler
Helmut Ritter
Ralf Janda
spellingShingle Stefan Rüttermann
Taina Trellenkamp
Nora Bergmann
Thomas Beikler
Helmut Ritter
Ralf Janda
Bacterial viability and physical properties of antibacterially modified experimental dental resin composites.
PLoS ONE
author_facet Stefan Rüttermann
Taina Trellenkamp
Nora Bergmann
Thomas Beikler
Helmut Ritter
Ralf Janda
author_sort Stefan Rüttermann
title Bacterial viability and physical properties of antibacterially modified experimental dental resin composites.
title_short Bacterial viability and physical properties of antibacterially modified experimental dental resin composites.
title_full Bacterial viability and physical properties of antibacterially modified experimental dental resin composites.
title_fullStr Bacterial viability and physical properties of antibacterially modified experimental dental resin composites.
title_full_unstemmed Bacterial viability and physical properties of antibacterially modified experimental dental resin composites.
title_sort bacterial viability and physical properties of antibacterially modified experimental dental resin composites.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2013-01-01
description PURPOSE:To investigate the antibacterial effect and the effect on the material properties of a novel delivery system with Irgasan as active agent and methacrylated polymerizable Irgasan when added to experimental dental resin composites. MATERIALS AND METHODS:A delivery system based on novel polymeric hollow beads, loaded with Irgasan and methacrylated polymerizable Irgasan as active agents were used to manufacture three commonly formulated experimental resin composites. The non-modified resin was used as standard (ST). Material A contained the delivery system providing 4 % (m/m) Irgasan, material B contained 4 % (m/m) methacrylated Irgasan and material C 8 % (m/m) methacrylated Irgasan. Flexural strength (FS), flexural modulus (FM), water sorption (WS), solubility (SL), surface roughness Ra, polymerization shrinkage, contact angle Θ, total surface free energy γS and its apolar γS (LW), polar γS (AB), Lewis acid γS (+)and base γS (-) term as well as bacterial viability were determined. Significance was p < 0.05. RESULTS:The materials A to C were not unacceptably influenced by the modifications and achieved the minimum values for FS, WS and SL as requested by EN ISO 4049 and did not differ from ST what was also found for Ra. Only A had lower FM than ST. Θ of A and C was higher and γS (AB) of A and B was lower than of ST. Materials A to C had higher γS (+) than ST. The antibacterial effect of materials A to C was significantly increased when compared with ST meaning that significantly less vital cells were found. CONCLUSION:Dental resin composites with small quantities of a novel antibacterially doped delivery system or with an antibacterial monomer provided acceptable physical properties and good antibacterial effectiveness. The sorption material being part of the delivery system can be used as a vehicle for any other active agent.
url http://europepmc.org/articles/PMC3815119?pdf=render
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