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Article

Engineered Salivary Peptides Reduce Enamel Demineralization Provoked by Cariogenic S. mutans Biofilm

by
Lina Maria Marin
1,
Yizhi Xiao
2,
Jaime Aparecido Cury
3 and
Walter Luiz Siqueira
1,*
1
College of Dentistry, University of Saskatchewan, Saskatoon, SK S7N 5E4, Canada
2
Schulich School of Dentistry, The University of Western Ontario, London, ON N6A 5C1, Canada
3
Piracicaba Dental School, University of Campinas, Piracicaba 13414-903, SP, Brazil
*
Author to whom correspondence should be addressed.
Microorganisms 2022, 10(4), 742; https://doi.org/10.3390/microorganisms10040742
Submission received: 1 March 2022 / Revised: 23 March 2022 / Accepted: 28 March 2022 / Published: 30 March 2022
(This article belongs to the Special Issue Oral Microorganisms and Biofilms)

Abstract

Engineering of the acquired enamel pellicle using salivary peptides has been shown to be a promising anticaries strategy. However, the mechanisms by which these peptides protect teeth against tooth decay are not fully understood. In this study, we evaluated the effect of the engineered salivary peptides DR9-DR9 and DR9-RR14 on enamel demineralization in two experimental conditions: (1) adsorbed onto the enamel surface forming the AEP, and (2) forming the AEP combined with their use to treat the biofilms 2×/day, using a validated cariogenic Streptococcus mutans in vitro biofilm model. Biofilms were grown for 144 h on enamel slabs and then collected to determine the bacterial viability (CFU/biofilm) and biofilm mass (mg protein/biofilm), and to extract cellular/extracellular proteins, which were characterized by mass spectrometry. The culture medium was changed 2×/day to fresh medium, and pH (indicator of biofilm acidogenicity) and calcium concentration (indicator of demineralization) was determined in used medium. DR9-RR14 peptide significantly reduced enamel demineralization (p < 0.0001) in both experimental conditions. However, this peptide did not have a significant effect on biofilm biomass (p > 0.05) nor did it modulate the expression of cellular and extracellular bacterial proteins involved in biofilm cariogenicity. These findings suggest that DR9-RR14 may control caries development mainly by a physicochemical mechanism.
Keywords: Streptococcus mutans; biofilm; dental caries; demineralization; acquired enamel pellicle; statherin; histatin; proteomics Streptococcus mutans; biofilm; dental caries; demineralization; acquired enamel pellicle; statherin; histatin; proteomics

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MDPI and ACS Style

Marin, L.M.; Xiao, Y.; Cury, J.A.; Siqueira, W.L. Engineered Salivary Peptides Reduce Enamel Demineralization Provoked by Cariogenic S. mutans Biofilm. Microorganisms 2022, 10, 742. https://doi.org/10.3390/microorganisms10040742

AMA Style

Marin LM, Xiao Y, Cury JA, Siqueira WL. Engineered Salivary Peptides Reduce Enamel Demineralization Provoked by Cariogenic S. mutans Biofilm. Microorganisms. 2022; 10(4):742. https://doi.org/10.3390/microorganisms10040742

Chicago/Turabian Style

Marin, Lina Maria, Yizhi Xiao, Jaime Aparecido Cury, and Walter Luiz Siqueira. 2022. "Engineered Salivary Peptides Reduce Enamel Demineralization Provoked by Cariogenic S. mutans Biofilm" Microorganisms 10, no. 4: 742. https://doi.org/10.3390/microorganisms10040742

APA Style

Marin, L. M., Xiao, Y., Cury, J. A., & Siqueira, W. L. (2022). Engineered Salivary Peptides Reduce Enamel Demineralization Provoked by Cariogenic S. mutans Biofilm. Microorganisms, 10(4), 742. https://doi.org/10.3390/microorganisms10040742

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