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Effects of Bio-Aging on Mechanical Properties and Microbial Behavior of Different Resin Composites

Under challenging oral environments, the overall performance of resin composites is affected by bio-aging. This study investigated the effects of saliva biofilm-induced bio-aging on the mechanical properties and microbial behavior of composites with different filler types. Microhybrid, nanohybrid, n...

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Autores principales: Shou, Yuke, Deng, Lanzhi, Huang, Xiaoyu, Peng, Xinyu, Zhou, Xinxuan, Wang, Zheng, Huang, Yannan, Yang, Bina, Wang, Haohao, Zhang, Min, Cheng, Lei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10377581/
https://www.ncbi.nlm.nih.gov/pubmed/37509161
http://dx.doi.org/10.3390/biom13071125
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author Shou, Yuke
Deng, Lanzhi
Huang, Xiaoyu
Peng, Xinyu
Zhou, Xinxuan
Wang, Zheng
Huang, Yannan
Yang, Bina
Wang, Haohao
Zhang, Min
Cheng, Lei
author_facet Shou, Yuke
Deng, Lanzhi
Huang, Xiaoyu
Peng, Xinyu
Zhou, Xinxuan
Wang, Zheng
Huang, Yannan
Yang, Bina
Wang, Haohao
Zhang, Min
Cheng, Lei
author_sort Shou, Yuke
collection PubMed
description Under challenging oral environments, the overall performance of resin composites is affected by bio-aging. This study investigated the effects of saliva biofilm-induced bio-aging on the mechanical properties and microbial behavior of composites with different filler types. Microhybrid, nanohybrid, nano-filled and nano-filled flowable composites were bio-aged with saliva biofilm for 30 days. Surface morphology, roughness, mechanical and aesthetic properties were determined. A 48 h saliva biofilm model was used to evaluate the microbial behavior of different composites in vitro. Biofilm metabolic activity, lactic acid production and live/dead bacterial staining were tested. Six volunteers were selected to wear intra-oral appliances with composite slabs for 24 h and biofilms were collected and analyzed using 16S rRNA sequencing to assess the biofilm formation over those materials in situ. Although there were increasing trends, surface roughness, water resorption and material solubility had no significant changes for all groups after bio-aging (p > 0.05). There were no significant changes in elastic modulus for all groups after aging (p > 0.05). However, a decrease in flexural strength in all groups was observed (p < 0.05), except for the nanoflow composite group (p > 0.05). The Vickers hardness remained stable in all groups after aging (p > 0.05), except for the nano-filled group (p < 0.05). The nanoflow composite showed distinct color changes compared to the micro-hybrid group after aging (p < 0.05). Biofilm metabolic activity and lactic acid production in vitro increased slightly after bio-aging in all groups, but with no statistical significance (p > 0.05). The Shannon index diversity of biofilms in situ decreased after aging (p < 0.05), while no significant difference was shown in species composition at the genus level in all groups (p > 0.05). Resin composites with different sized fillers displayed a relatively stable mechanical performance and uncompromised microbial behavior both in vitro and in situ after 30 days of bio-aging. Based on the results, composites with different filler types can be selected flexibly according to clinical needs. However, a longer time for bio-aging is still needed to confirm the mechanical properties and microbial behaviors of composites in the long run.
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spelling pubmed-103775812023-07-29 Effects of Bio-Aging on Mechanical Properties and Microbial Behavior of Different Resin Composites Shou, Yuke Deng, Lanzhi Huang, Xiaoyu Peng, Xinyu Zhou, Xinxuan Wang, Zheng Huang, Yannan Yang, Bina Wang, Haohao Zhang, Min Cheng, Lei Biomolecules Article Under challenging oral environments, the overall performance of resin composites is affected by bio-aging. This study investigated the effects of saliva biofilm-induced bio-aging on the mechanical properties and microbial behavior of composites with different filler types. Microhybrid, nanohybrid, nano-filled and nano-filled flowable composites were bio-aged with saliva biofilm for 30 days. Surface morphology, roughness, mechanical and aesthetic properties were determined. A 48 h saliva biofilm model was used to evaluate the microbial behavior of different composites in vitro. Biofilm metabolic activity, lactic acid production and live/dead bacterial staining were tested. Six volunteers were selected to wear intra-oral appliances with composite slabs for 24 h and biofilms were collected and analyzed using 16S rRNA sequencing to assess the biofilm formation over those materials in situ. Although there were increasing trends, surface roughness, water resorption and material solubility had no significant changes for all groups after bio-aging (p > 0.05). There were no significant changes in elastic modulus for all groups after aging (p > 0.05). However, a decrease in flexural strength in all groups was observed (p < 0.05), except for the nanoflow composite group (p > 0.05). The Vickers hardness remained stable in all groups after aging (p > 0.05), except for the nano-filled group (p < 0.05). The nanoflow composite showed distinct color changes compared to the micro-hybrid group after aging (p < 0.05). Biofilm metabolic activity and lactic acid production in vitro increased slightly after bio-aging in all groups, but with no statistical significance (p > 0.05). The Shannon index diversity of biofilms in situ decreased after aging (p < 0.05), while no significant difference was shown in species composition at the genus level in all groups (p > 0.05). Resin composites with different sized fillers displayed a relatively stable mechanical performance and uncompromised microbial behavior both in vitro and in situ after 30 days of bio-aging. Based on the results, composites with different filler types can be selected flexibly according to clinical needs. However, a longer time for bio-aging is still needed to confirm the mechanical properties and microbial behaviors of composites in the long run. MDPI 2023-07-14 /pmc/articles/PMC10377581/ /pubmed/37509161 http://dx.doi.org/10.3390/biom13071125 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
Shou, Yuke
Deng, Lanzhi
Huang, Xiaoyu
Peng, Xinyu
Zhou, Xinxuan
Wang, Zheng
Huang, Yannan
Yang, Bina
Wang, Haohao
Zhang, Min
Cheng, Lei
Effects of Bio-Aging on Mechanical Properties and Microbial Behavior of Different Resin Composites
title Effects of Bio-Aging on Mechanical Properties and Microbial Behavior of Different Resin Composites
title_full Effects of Bio-Aging on Mechanical Properties and Microbial Behavior of Different Resin Composites
title_fullStr Effects of Bio-Aging on Mechanical Properties and Microbial Behavior of Different Resin Composites
title_full_unstemmed Effects of Bio-Aging on Mechanical Properties and Microbial Behavior of Different Resin Composites
title_short Effects of Bio-Aging on Mechanical Properties and Microbial Behavior of Different Resin Composites
title_sort effects of bio-aging on mechanical properties and microbial behavior of different resin composites
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10377581/
https://www.ncbi.nlm.nih.gov/pubmed/37509161
http://dx.doi.org/10.3390/biom13071125
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