Mechanical and Functional Properties of a Novel Apatite-Ionomer Cement for Prevention and Remineralization of Dental Caries.

Materials (Basel)

Department of Pediatric Dentistry, School of Dentistry, Osaka Dental University, 8-1, Kuzuhahanazono-cho, Hirakata-shi, Osaka 573-1121, Japan.

Published: December 2019

AI Article Synopsis

  • Prevention is crucial in pediatric dentistry, and pit and fissure sealants help control early dental lesions before they turn into cavities.
  • Research indicates that glass-ionomer cement (GIC) sealants may outperform resin-based options due to their fluoride release and strong adhesion, although GIC has lower strength and is prone to fracture.
  • The study introduces an apatite-ionomer cement (AIC) that blends hydroxyapatite with GIC to enhance its strength and functional properties, making it a promising material for preventing tooth decay and aiding remineralization.

Article Abstract

Especially in pediatric dentistry, prevention by the control of initial lesions prior to cavitation is very important, and application of a pit and fissure sealant is essential to achieve this. Numerous reports have suggested that resin-based sealants are inferior to sealants based on glass-ionomer cement (GIC), because of GIC's many advantages, such as fluoride ion release properties and its good adhesion to tooth structures. However, the use of GIC is impeded due to its low flexural strength and fracture toughness. In this paper, we developed and characterized an apatite-ionomer cement (AIC) that incorporates hydroxyapatite (HAp) into the GIC; this development was aimed at not only reinforcing the flexural and compressive strength but also improving some functional properties for the creation of the material suitable for sealant. We examined the influence of differences in the compounding conditions of GIC powder, liquid, and HAp on flexural and compressive strengths, fracture toughness, fluoride ion release property, shear bond strength to bovine enamel, surface pH of setting cements, and acid buffer capability. These methods were aimed at elucidating the reaction mechanism of porous spherical-shaped HAp (HApS) in AIC. The following observations were deduced. (1) HAp can improve the mechanical strengths of AIC by strengthening the cement matrix. (2) The functional properties of AIC, such as acid buffer capability, improved by increasing the releasing amounts of various ions including fluoride ions. The novel AIC developed in this study is a clinically effective dental material for prevention and remineralization of tooth and initial carious lesion.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC6926968PMC
http://dx.doi.org/10.3390/ma12233998DOI Listing

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