Cargando…

Reconfigurable Dual Peptide Tethered Polymer System Offers a Synergistic Solution for Next Generation Dental Adhesives

Resin-based composite materials have been widely used in restorative dental materials due to their aesthetic, mechanical, and physical properties. However, they still encounter clinical shortcomings mainly due to recurrent decay that develops at the composite-tooth interface. The low-viscosity adhes...

Descripción completa

Detalles Bibliográficos
Autores principales: Yuca, Esra, Xie, Sheng-Xue, Song, Linyong, Boone, Kyle, Kamathewatta, Nilan, Woolfolk, Sarah K., Elrod, Philip, Spencer, Paulette, Tamerler, Candan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8235192/
https://www.ncbi.nlm.nih.gov/pubmed/34207218
http://dx.doi.org/10.3390/ijms22126552
_version_ 1783714259137462272
author Yuca, Esra
Xie, Sheng-Xue
Song, Linyong
Boone, Kyle
Kamathewatta, Nilan
Woolfolk, Sarah K.
Elrod, Philip
Spencer, Paulette
Tamerler, Candan
author_facet Yuca, Esra
Xie, Sheng-Xue
Song, Linyong
Boone, Kyle
Kamathewatta, Nilan
Woolfolk, Sarah K.
Elrod, Philip
Spencer, Paulette
Tamerler, Candan
author_sort Yuca, Esra
collection PubMed
description Resin-based composite materials have been widely used in restorative dental materials due to their aesthetic, mechanical, and physical properties. However, they still encounter clinical shortcomings mainly due to recurrent decay that develops at the composite-tooth interface. The low-viscosity adhesive that bonds the composite to the tooth is intended to seal this interface, but the adhesive seal is inherently defective and readily damaged by acids, enzymes, and oral fluids. Bacteria infiltrate the resulting gaps at the composite-tooth interface and bacterial by-products demineralize the tooth and erode the adhesive. These activities lead to wider and deeper gaps that provide an ideal environment for bacteria to proliferate. This complex degradation process mediated by several biological and environmental factors damages the tooth, destroys the adhesive seal, and ultimately, leads to failure of the composite restoration. This paper describes a co-tethered dual peptide-polymer system to address composite-tooth interface vulnerability. The adhesive system incorporates an antimicrobial peptide to inhibit bacterial attack and a hydroxyapatite-binding peptide to promote remineralization of damaged tooth structure. A designer spacer sequence was incorporated into each peptide sequence to not only provide a conjugation site for methacrylate (MA) monomer but also to retain active peptide conformations and enhance the display of the peptides in the material. The resulting MA-antimicrobial peptides and MA-remineralization peptides were copolymerized into dental adhesives formulations. The results on the adhesive system composed of co-tethered peptides demonstrated both strong metabolic inhibition of S. mutans and localized calcium phosphate remineralization. Overall, the result offers a reconfigurable and tunable peptide-polymer hybrid system as next-generation adhesives to address composite-tooth interface vulnerability.
format Online
Article
Text
id pubmed-8235192
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-82351922021-06-27 Reconfigurable Dual Peptide Tethered Polymer System Offers a Synergistic Solution for Next Generation Dental Adhesives Yuca, Esra Xie, Sheng-Xue Song, Linyong Boone, Kyle Kamathewatta, Nilan Woolfolk, Sarah K. Elrod, Philip Spencer, Paulette Tamerler, Candan Int J Mol Sci Article Resin-based composite materials have been widely used in restorative dental materials due to their aesthetic, mechanical, and physical properties. However, they still encounter clinical shortcomings mainly due to recurrent decay that develops at the composite-tooth interface. The low-viscosity adhesive that bonds the composite to the tooth is intended to seal this interface, but the adhesive seal is inherently defective and readily damaged by acids, enzymes, and oral fluids. Bacteria infiltrate the resulting gaps at the composite-tooth interface and bacterial by-products demineralize the tooth and erode the adhesive. These activities lead to wider and deeper gaps that provide an ideal environment for bacteria to proliferate. This complex degradation process mediated by several biological and environmental factors damages the tooth, destroys the adhesive seal, and ultimately, leads to failure of the composite restoration. This paper describes a co-tethered dual peptide-polymer system to address composite-tooth interface vulnerability. The adhesive system incorporates an antimicrobial peptide to inhibit bacterial attack and a hydroxyapatite-binding peptide to promote remineralization of damaged tooth structure. A designer spacer sequence was incorporated into each peptide sequence to not only provide a conjugation site for methacrylate (MA) monomer but also to retain active peptide conformations and enhance the display of the peptides in the material. The resulting MA-antimicrobial peptides and MA-remineralization peptides were copolymerized into dental adhesives formulations. The results on the adhesive system composed of co-tethered peptides demonstrated both strong metabolic inhibition of S. mutans and localized calcium phosphate remineralization. Overall, the result offers a reconfigurable and tunable peptide-polymer hybrid system as next-generation adhesives to address composite-tooth interface vulnerability. MDPI 2021-06-18 /pmc/articles/PMC8235192/ /pubmed/34207218 http://dx.doi.org/10.3390/ijms22126552 Text en © 2021 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
Yuca, Esra
Xie, Sheng-Xue
Song, Linyong
Boone, Kyle
Kamathewatta, Nilan
Woolfolk, Sarah K.
Elrod, Philip
Spencer, Paulette
Tamerler, Candan
Reconfigurable Dual Peptide Tethered Polymer System Offers a Synergistic Solution for Next Generation Dental Adhesives
title Reconfigurable Dual Peptide Tethered Polymer System Offers a Synergistic Solution for Next Generation Dental Adhesives
title_full Reconfigurable Dual Peptide Tethered Polymer System Offers a Synergistic Solution for Next Generation Dental Adhesives
title_fullStr Reconfigurable Dual Peptide Tethered Polymer System Offers a Synergistic Solution for Next Generation Dental Adhesives
title_full_unstemmed Reconfigurable Dual Peptide Tethered Polymer System Offers a Synergistic Solution for Next Generation Dental Adhesives
title_short Reconfigurable Dual Peptide Tethered Polymer System Offers a Synergistic Solution for Next Generation Dental Adhesives
title_sort reconfigurable dual peptide tethered polymer system offers a synergistic solution for next generation dental adhesives
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8235192/
https://www.ncbi.nlm.nih.gov/pubmed/34207218
http://dx.doi.org/10.3390/ijms22126552
work_keys_str_mv AT yucaesra reconfigurabledualpeptidetetheredpolymersystemoffersasynergisticsolutionfornextgenerationdentaladhesives
AT xieshengxue reconfigurabledualpeptidetetheredpolymersystemoffersasynergisticsolutionfornextgenerationdentaladhesives
AT songlinyong reconfigurabledualpeptidetetheredpolymersystemoffersasynergisticsolutionfornextgenerationdentaladhesives
AT boonekyle reconfigurabledualpeptidetetheredpolymersystemoffersasynergisticsolutionfornextgenerationdentaladhesives
AT kamathewattanilan reconfigurabledualpeptidetetheredpolymersystemoffersasynergisticsolutionfornextgenerationdentaladhesives
AT woolfolksarahk reconfigurabledualpeptidetetheredpolymersystemoffersasynergisticsolutionfornextgenerationdentaladhesives
AT elrodphilip reconfigurabledualpeptidetetheredpolymersystemoffersasynergisticsolutionfornextgenerationdentaladhesives
AT spencerpaulette reconfigurabledualpeptidetetheredpolymersystemoffersasynergisticsolutionfornextgenerationdentaladhesives
AT tamerlercandan reconfigurabledualpeptidetetheredpolymersystemoffersasynergisticsolutionfornextgenerationdentaladhesives