Enamel fluorosis is a defect in enamel development that occurs after exposure to excess fluoride. Fluorotic enamel is more porous, and contains more proteins than sound enamel. The mechanisms by which fluoride alters enamel formation remain incompletely understood. In this competing renewal, we propose to build on work that we have completed in previous grant cycles, to test a new paradigm that defines fluorosis as resulting from matrix related changes that occur as fluoride is incorporated into the forming enamel mineral. Specifically, we propose that incorporation of fluoride into the developing enamel crystals alters matrix/protein/proteinase interactions, and also can reduce matrix pH secondary to more rapid mineral formation. These pH-related effects alter ameloblast function and modulation, and enamel maturation. Furthermore, we propose that when matrix proteins or mineralizing apatite are not available to bind fluoride ions (ie presecretory stage), fluoride can have a direct effect on gene expression. A thorough understanding of the mechanisms by which fluoride can alter enamel formation will allow us to develop strategies to minimize the negative effects of fluoride while enhancing the use of fluoride for caries prevention We will investigate these potential mechanisms of dental fluorosis through the following three specific aims.
Specific Aim 1 : To determine the role of fluoride incorporation into the growing enamel mineral on apatite/ protein interactions and amelogenin hydrolysis. Mass spectrometry will be used to determine how fluoride-containing apatites alter amelogenin hydrolysis both in vitro and in vivo.
Specific Aim 2 : To determine how fluoride-related changes in enamel matrix pH affects ameloblast modulation and mineral deposition. Mouse models with a reduced capacity to buffer enamel matrix related pH changes will be used to correlate changes in matrix pH to ameloblast modulation and enamel mineralization.
Specific Aim 3 : To determine the effects of fluoride on the expression of genes related to enamel matrix protein deposition and pH regulation. Laser capture micro-dissection will be used to separately collect presecretory, secretory and maturation stage ameloblasts from mice with and without fluoride exposure for either whole transcript comparisons, or qPCR analysis of genes that modulate pH in the developing enamel matrix. These studies will be done with an exceptional team of international investigators, and we anticipate that at the completion of this grant cycle, that we will have a thorough understanding of how fluoride exposure during enamel development results in fluorosis.

Public Health Relevance

Enamel fluorosis is a defect in enamel development seen after exposure to excess of fluoride in early childhood. We have shown that the mechanisms responsible for enamel fluorosis include both fluoride related effects in the developing enamel matrix, and altered gene expression. In this proposal we further explore the mechanisms of fluorosis, by analyzing changes in matrix protein hydrolysis, ameloblast modulation and stage specific gene expression in rodent incisor models for enamel fluorosis.

Agency
National Institute of Health (NIH)
Institute
National Institute of Dental & Craniofacial Research (NIDCR)
Type
Research Project (R01)
Project #
5R01DE013508-13
Application #
8515991
Study Section
Special Emphasis Panel (ZRG1-MOSS-B (02))
Program Officer
Wan, Jason
Project Start
1999-12-01
Project End
2014-08-31
Budget Start
2013-09-01
Budget End
2014-08-31
Support Year
13
Fiscal Year
2013
Total Cost
$469,765
Indirect Cost
$135,855
Name
University of California San Francisco
Department
Dentistry
Type
Schools of Dentistry
DUNS #
094878337
City
San Francisco
State
CA
Country
United States
Zip Code
94143
Varga, G; DenBesten, P; Rácz, R et al. (2018) Importance of bicarbonate transport in pH control during amelogenesis - need for functional studies. Oral Dis 24:879-890
Rácz, Róbert; Földes, Anna; Bori, Erzsébet et al. (2017) No Change in Bicarbonate Transport but Tight-Junction Formation Is Delayed by Fluoride in a Novel Ameloblast Model. Front Physiol 8:940
Le, Michael H; Nakano, Yukiko; Abduweli Uyghurturk, Dawud et al. (2017) Fluoride Alters Klk4 Expression in Maturation Ameloblasts through Androgen and Progesterone Receptor Signaling. Front Physiol 8:925
Bori, E; Guo, J; Rácz, R et al. (2016) Evidence for Bicarbonate Secretion by Ameloblasts in a Novel Cellular Model. J Dent Res 95:588-96
Bronckers, Antonius L J J; Lyaruu, Don M; Guo, Jing et al. (2015) Composition of mineralizing incisor enamel in cystic fibrosis transmembrane conductance regulator-deficient mice. Eur J Oral Sci 123:9-16
Jalali, R; Zandieh-Doulabi, B; DenBesten, P K et al. (2015) Slc26a3/Dra and Slc26a6 in Murine Ameloblasts. J Dent Res 94:1732-9
Bronckers, A L J J; Lyaruu, D; Jalali, R et al. (2015) Ameloblast Modulation and Transport of Cl?, Na?, and K? during Amelogenesis. J Dent Res 94:1740-7
Guo, J; Lyaruu, D M; Takano, Y et al. (2015) Amelogenins as potential buffers during secretory-stage amelogenesis. J Dent Res 94:412-20
Lyaruu, D M; Medina, J F; Sarvide, S et al. (2014) Barrier formation: potential molecular mechanism of enamel fluorosis. J Dent Res 93:96-102
Lyaruu, Donacian M; Schoonderwoerd, Mark; Tio, Dane et al. (2014) Parenteral monofluorophosphate (MFP) is a more potent inducer of enamel fluorotic defects in neonatal hamster molars than sodium fluoride. Odontology 102:147-53

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