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Bioadhesion on Textured Interfaces in the Human Oral Cavity—An In Situ Study

Extensive biofilm formation on materials used in restorative dentistry is a common reason for their failure and the development of oral diseases like peri-implantitis or secondary caries. Therefore, novel materials and strategies that result in reduced biofouling capacities are urgently sought. Prev...

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Autores principales: Helbig, Ralf, Hannig, Matthias, Basche, Sabine, Ortgies, Janis, Killge, Sebastian, Hannig, Christian, Sterzenbach, Torsten
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8835155/
https://www.ncbi.nlm.nih.gov/pubmed/35163081
http://dx.doi.org/10.3390/ijms23031157
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author Helbig, Ralf
Hannig, Matthias
Basche, Sabine
Ortgies, Janis
Killge, Sebastian
Hannig, Christian
Sterzenbach, Torsten
author_facet Helbig, Ralf
Hannig, Matthias
Basche, Sabine
Ortgies, Janis
Killge, Sebastian
Hannig, Christian
Sterzenbach, Torsten
author_sort Helbig, Ralf
collection PubMed
description Extensive biofilm formation on materials used in restorative dentistry is a common reason for their failure and the development of oral diseases like peri-implantitis or secondary caries. Therefore, novel materials and strategies that result in reduced biofouling capacities are urgently sought. Previous research suggests that surface structures in the range of bacterial cell sizes seem to be a promising approach to modulate bacterial adhesion and biofilm formation. Here we investigated bioadhesion within the oral cavity on a low surface energy material (perfluorpolyether) with different texture types (line-, hole-, pillar-like), feature sizes in a range from 0.7–4.5 µm and graded distances (0.7–130.5 µm). As a model system, the materials were fixed on splints and exposed to the oral cavity. We analyzed the enzymatic activity of amylase and lysozyme, pellicle formation, and bacterial colonization after 8 h intraoral exposure. In opposite to in vitro experiments, these in situ experiments revealed no clear signs of altered bacterial surface colonization regarding structure dimensions and texture types compared to unstructured substrates or natural enamel. In part, there seemed to be a decreasing trend of adherent cells with increasing periodicities and structure sizes, but this pattern was weak and irregular. Pellicle formation took place on all substrates in an unaltered manner. However, pellicle formation was most pronounced within recessed areas thereby partially masking the three-dimensional character of the surfaces. As the natural pellicle layer is obviously the most dominant prerequisite for bacterial adhesion, colonization in the oral environment cannot be easily controlled by structural means.
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spelling pubmed-88351552022-02-12 Bioadhesion on Textured Interfaces in the Human Oral Cavity—An In Situ Study Helbig, Ralf Hannig, Matthias Basche, Sabine Ortgies, Janis Killge, Sebastian Hannig, Christian Sterzenbach, Torsten Int J Mol Sci Article Extensive biofilm formation on materials used in restorative dentistry is a common reason for their failure and the development of oral diseases like peri-implantitis or secondary caries. Therefore, novel materials and strategies that result in reduced biofouling capacities are urgently sought. Previous research suggests that surface structures in the range of bacterial cell sizes seem to be a promising approach to modulate bacterial adhesion and biofilm formation. Here we investigated bioadhesion within the oral cavity on a low surface energy material (perfluorpolyether) with different texture types (line-, hole-, pillar-like), feature sizes in a range from 0.7–4.5 µm and graded distances (0.7–130.5 µm). As a model system, the materials were fixed on splints and exposed to the oral cavity. We analyzed the enzymatic activity of amylase and lysozyme, pellicle formation, and bacterial colonization after 8 h intraoral exposure. In opposite to in vitro experiments, these in situ experiments revealed no clear signs of altered bacterial surface colonization regarding structure dimensions and texture types compared to unstructured substrates or natural enamel. In part, there seemed to be a decreasing trend of adherent cells with increasing periodicities and structure sizes, but this pattern was weak and irregular. Pellicle formation took place on all substrates in an unaltered manner. However, pellicle formation was most pronounced within recessed areas thereby partially masking the three-dimensional character of the surfaces. As the natural pellicle layer is obviously the most dominant prerequisite for bacterial adhesion, colonization in the oral environment cannot be easily controlled by structural means. MDPI 2022-01-21 /pmc/articles/PMC8835155/ /pubmed/35163081 http://dx.doi.org/10.3390/ijms23031157 Text en © 2022 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
Helbig, Ralf
Hannig, Matthias
Basche, Sabine
Ortgies, Janis
Killge, Sebastian
Hannig, Christian
Sterzenbach, Torsten
Bioadhesion on Textured Interfaces in the Human Oral Cavity—An In Situ Study
title Bioadhesion on Textured Interfaces in the Human Oral Cavity—An In Situ Study
title_full Bioadhesion on Textured Interfaces in the Human Oral Cavity—An In Situ Study
title_fullStr Bioadhesion on Textured Interfaces in the Human Oral Cavity—An In Situ Study
title_full_unstemmed Bioadhesion on Textured Interfaces in the Human Oral Cavity—An In Situ Study
title_short Bioadhesion on Textured Interfaces in the Human Oral Cavity—An In Situ Study
title_sort bioadhesion on textured interfaces in the human oral cavity—an in situ study
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8835155/
https://www.ncbi.nlm.nih.gov/pubmed/35163081
http://dx.doi.org/10.3390/ijms23031157
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