Cargando…

Effects of S. mutans gene-modification and antibacterial calcium phosphate nanocomposite on secondary caries and marginal enamel hardness

Secondary caries at the restoration-tooth margins is a main reason for dental restoration failures. Gene-modification for Streptococcus mutans (S. mutans) and composites containing dimethylaminohexadecyl methacrylate (DMAHDMA) and nanoparticles of amorphous calcium phosphate (NACP) all have the pote...

Descripción completa

Detalles Bibliográficos
Autores principales: Chen, Hong, Tang, Yunhao, Weir, Michael D., Lei, Lei, Masri, Radi, Lynch, Christopher D., Oates, Thomas W., Zhang, Ke, Hu, Tao, Xu, Hockin H. K.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9076473/
https://www.ncbi.nlm.nih.gov/pubmed/35541571
http://dx.doi.org/10.1039/c9ra09220j
_version_ 1784701930898980864
author Chen, Hong
Tang, Yunhao
Weir, Michael D.
Lei, Lei
Masri, Radi
Lynch, Christopher D.
Oates, Thomas W.
Zhang, Ke
Hu, Tao
Xu, Hockin H. K.
author_facet Chen, Hong
Tang, Yunhao
Weir, Michael D.
Lei, Lei
Masri, Radi
Lynch, Christopher D.
Oates, Thomas W.
Zhang, Ke
Hu, Tao
Xu, Hockin H. K.
author_sort Chen, Hong
collection PubMed
description Secondary caries at the restoration-tooth margins is a main reason for dental restoration failures. Gene-modification for Streptococcus mutans (S. mutans) and composites containing dimethylaminohexadecyl methacrylate (DMAHDMA) and nanoparticles of amorphous calcium phosphate (NACP) all have the potential to suppress bacterial acids and promote remineralization. However, there has been no report of their effects on marginal caries-inhibition and enamel hardness. The objective of this study was to investigate the effects of gene-modification and DMAHDM–NACP composite restoration on enamel demineralization and hardness at the margins under biofilm acids for the first time. Parent S. mutans and rnc gene-deleted S. mutans were tested side by side. The bioactive composite contained 3% DMAHDM and 30% NACP. Mechanical properties and calcium (Ca) and phosphate (P) ion releases were measured. Colony-forming units (CFU), MTT, lactic acid and polysaccharide of biofilms were evaluated. Demineralization of bovine enamel with composite restorations was induced via biofilms, then enamel hardness was measured. The dual strategy of combining rnc-deletion with DMAHDM+30NACP: (1) achieved the strongest biofilm-inhibition, with the greatest reduction in biofilm CFU by 6 logs; (2) decreased biofilm lactic acid and polysaccharide production by more than 80%; (3) achieved enamel hardness that was 140% higher than that of a commercial fluoride-releasing composite under 30 days of biofilm acids. Therefore, the novel dual approach of rnc gene-deletion and DMAHDM+NACP nanocomposite is promising to inhibit secondary caries at the margins and increase the longevity of tooth restorations.
format Online
Article
Text
id pubmed-9076473
institution National Center for Biotechnology Information
language English
publishDate 2019
publisher The Royal Society of Chemistry
record_format MEDLINE/PubMed
spelling pubmed-90764732022-05-09 Effects of S. mutans gene-modification and antibacterial calcium phosphate nanocomposite on secondary caries and marginal enamel hardness Chen, Hong Tang, Yunhao Weir, Michael D. Lei, Lei Masri, Radi Lynch, Christopher D. Oates, Thomas W. Zhang, Ke Hu, Tao Xu, Hockin H. K. RSC Adv Chemistry Secondary caries at the restoration-tooth margins is a main reason for dental restoration failures. Gene-modification for Streptococcus mutans (S. mutans) and composites containing dimethylaminohexadecyl methacrylate (DMAHDMA) and nanoparticles of amorphous calcium phosphate (NACP) all have the potential to suppress bacterial acids and promote remineralization. However, there has been no report of their effects on marginal caries-inhibition and enamel hardness. The objective of this study was to investigate the effects of gene-modification and DMAHDM–NACP composite restoration on enamel demineralization and hardness at the margins under biofilm acids for the first time. Parent S. mutans and rnc gene-deleted S. mutans were tested side by side. The bioactive composite contained 3% DMAHDM and 30% NACP. Mechanical properties and calcium (Ca) and phosphate (P) ion releases were measured. Colony-forming units (CFU), MTT, lactic acid and polysaccharide of biofilms were evaluated. Demineralization of bovine enamel with composite restorations was induced via biofilms, then enamel hardness was measured. The dual strategy of combining rnc-deletion with DMAHDM+30NACP: (1) achieved the strongest biofilm-inhibition, with the greatest reduction in biofilm CFU by 6 logs; (2) decreased biofilm lactic acid and polysaccharide production by more than 80%; (3) achieved enamel hardness that was 140% higher than that of a commercial fluoride-releasing composite under 30 days of biofilm acids. Therefore, the novel dual approach of rnc gene-deletion and DMAHDM+NACP nanocomposite is promising to inhibit secondary caries at the margins and increase the longevity of tooth restorations. The Royal Society of Chemistry 2019-12-17 /pmc/articles/PMC9076473/ /pubmed/35541571 http://dx.doi.org/10.1039/c9ra09220j Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Chen, Hong
Tang, Yunhao
Weir, Michael D.
Lei, Lei
Masri, Radi
Lynch, Christopher D.
Oates, Thomas W.
Zhang, Ke
Hu, Tao
Xu, Hockin H. K.
Effects of S. mutans gene-modification and antibacterial calcium phosphate nanocomposite on secondary caries and marginal enamel hardness
title Effects of S. mutans gene-modification and antibacterial calcium phosphate nanocomposite on secondary caries and marginal enamel hardness
title_full Effects of S. mutans gene-modification and antibacterial calcium phosphate nanocomposite on secondary caries and marginal enamel hardness
title_fullStr Effects of S. mutans gene-modification and antibacterial calcium phosphate nanocomposite on secondary caries and marginal enamel hardness
title_full_unstemmed Effects of S. mutans gene-modification and antibacterial calcium phosphate nanocomposite on secondary caries and marginal enamel hardness
title_short Effects of S. mutans gene-modification and antibacterial calcium phosphate nanocomposite on secondary caries and marginal enamel hardness
title_sort effects of s. mutans gene-modification and antibacterial calcium phosphate nanocomposite on secondary caries and marginal enamel hardness
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9076473/
https://www.ncbi.nlm.nih.gov/pubmed/35541571
http://dx.doi.org/10.1039/c9ra09220j
work_keys_str_mv AT chenhong effectsofsmutansgenemodificationandantibacterialcalciumphosphatenanocompositeonsecondarycariesandmarginalenamelhardness
AT tangyunhao effectsofsmutansgenemodificationandantibacterialcalciumphosphatenanocompositeonsecondarycariesandmarginalenamelhardness
AT weirmichaeld effectsofsmutansgenemodificationandantibacterialcalciumphosphatenanocompositeonsecondarycariesandmarginalenamelhardness
AT leilei effectsofsmutansgenemodificationandantibacterialcalciumphosphatenanocompositeonsecondarycariesandmarginalenamelhardness
AT masriradi effectsofsmutansgenemodificationandantibacterialcalciumphosphatenanocompositeonsecondarycariesandmarginalenamelhardness
AT lynchchristopherd effectsofsmutansgenemodificationandantibacterialcalciumphosphatenanocompositeonsecondarycariesandmarginalenamelhardness
AT oatesthomasw effectsofsmutansgenemodificationandantibacterialcalciumphosphatenanocompositeonsecondarycariesandmarginalenamelhardness
AT zhangke effectsofsmutansgenemodificationandantibacterialcalciumphosphatenanocompositeonsecondarycariesandmarginalenamelhardness
AT hutao effectsofsmutansgenemodificationandantibacterialcalciumphosphatenanocompositeonsecondarycariesandmarginalenamelhardness
AT xuhockinhk effectsofsmutansgenemodificationandantibacterialcalciumphosphatenanocompositeonsecondarycariesandmarginalenamelhardness