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No Change in Bicarbonate Transport but Tight-Junction Formation Is Delayed by Fluoride in a Novel Ameloblast Model

We have recently developed a novel in vitro model using HAT-7 rat ameloblast cells to functionally study epithelial ion transport during amelogenesis. Our present aims were to identify key transporters of bicarbonate in HAT-7 cells and also to examine the effects of fluoride exposure on vectorial bi...

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Autores principales: Rácz, Róbert, Földes, Anna, Bori, Erzsébet, Zsembery, Ákos, Harada, Hidemitsu, Steward, Martin C., DenBesten, Pamela, Bronckers, Antonius L. J. J., Gerber, Gábor, Varga, Gábor
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5770627/
https://www.ncbi.nlm.nih.gov/pubmed/29375389
http://dx.doi.org/10.3389/fphys.2017.00940
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author Rácz, Róbert
Földes, Anna
Bori, Erzsébet
Zsembery, Ákos
Harada, Hidemitsu
Steward, Martin C.
DenBesten, Pamela
Bronckers, Antonius L. J. J.
Gerber, Gábor
Varga, Gábor
author_facet Rácz, Róbert
Földes, Anna
Bori, Erzsébet
Zsembery, Ákos
Harada, Hidemitsu
Steward, Martin C.
DenBesten, Pamela
Bronckers, Antonius L. J. J.
Gerber, Gábor
Varga, Gábor
author_sort Rácz, Róbert
collection PubMed
description We have recently developed a novel in vitro model using HAT-7 rat ameloblast cells to functionally study epithelial ion transport during amelogenesis. Our present aims were to identify key transporters of bicarbonate in HAT-7 cells and also to examine the effects of fluoride exposure on vectorial bicarbonate transport, cell viability, and the development of transepithelial resistance. To obtain monolayers, the HAT-7 cells were cultured on Transwell permeable filters. We monitored transepithelial resistance (TER) as an indicator of tight junction formation and polarization. We evaluated intracellular pH changes by microfluorometry using the fluorescent indicator BCECF. Activities of ion transporters were tested by withdrawal of various ions from the bathing medium, by using transporter specific inhibitors, and by activation of transporters with forskolin and ATP. Cell survival was estimated by alamarBlue assay. Changes in gene expression were monitored by qPCR. We identified the activity of several ion transporters, NBCe1, NHE1, NKCC1, and AE2, which are involved in intracellular pH regulation and vectorial bicarbonate and chloride transport. Bicarbonate secretion by HAT-7 cells was not affected by acute fluoride exposure over a wide range of concentrations. However, tight-junction formation was inhibited by 1 mM fluoride, a concentration which did not substantially reduce cell viability, suggesting an effect of fluoride on paracellular permeability and tight-junction formation. Cell viability was only reduced by prolonged exposure to fluoride concentrations greater than 1 mM. In conclusion, cultured HAT-7 cells are functionally polarized and are able to transport bicarbonate ions from the basolateral to the apical fluid spaces. Exposure to 1 mM fluoride has little effect on bicarbonate secretion or cell viability but delays tight-junction formation, suggesting a novel mechanism that may contribute to dental fluorosis.
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spelling pubmed-57706272018-01-26 No Change in Bicarbonate Transport but Tight-Junction Formation Is Delayed by Fluoride in a Novel Ameloblast Model Rácz, Róbert Földes, Anna Bori, Erzsébet Zsembery, Ákos Harada, Hidemitsu Steward, Martin C. DenBesten, Pamela Bronckers, Antonius L. J. J. Gerber, Gábor Varga, Gábor Front Physiol Physiology We have recently developed a novel in vitro model using HAT-7 rat ameloblast cells to functionally study epithelial ion transport during amelogenesis. Our present aims were to identify key transporters of bicarbonate in HAT-7 cells and also to examine the effects of fluoride exposure on vectorial bicarbonate transport, cell viability, and the development of transepithelial resistance. To obtain monolayers, the HAT-7 cells were cultured on Transwell permeable filters. We monitored transepithelial resistance (TER) as an indicator of tight junction formation and polarization. We evaluated intracellular pH changes by microfluorometry using the fluorescent indicator BCECF. Activities of ion transporters were tested by withdrawal of various ions from the bathing medium, by using transporter specific inhibitors, and by activation of transporters with forskolin and ATP. Cell survival was estimated by alamarBlue assay. Changes in gene expression were monitored by qPCR. We identified the activity of several ion transporters, NBCe1, NHE1, NKCC1, and AE2, which are involved in intracellular pH regulation and vectorial bicarbonate and chloride transport. Bicarbonate secretion by HAT-7 cells was not affected by acute fluoride exposure over a wide range of concentrations. However, tight-junction formation was inhibited by 1 mM fluoride, a concentration which did not substantially reduce cell viability, suggesting an effect of fluoride on paracellular permeability and tight-junction formation. Cell viability was only reduced by prolonged exposure to fluoride concentrations greater than 1 mM. In conclusion, cultured HAT-7 cells are functionally polarized and are able to transport bicarbonate ions from the basolateral to the apical fluid spaces. Exposure to 1 mM fluoride has little effect on bicarbonate secretion or cell viability but delays tight-junction formation, suggesting a novel mechanism that may contribute to dental fluorosis. Frontiers Media S.A. 2017-12-06 /pmc/articles/PMC5770627/ /pubmed/29375389 http://dx.doi.org/10.3389/fphys.2017.00940 Text en Copyright © 2017 Rácz, Földes, Bori, Zsembery, Harada, Steward, DenBesten, Bronckers, Gerber and Varga. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) or licensor are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Physiology
Rácz, Róbert
Földes, Anna
Bori, Erzsébet
Zsembery, Ákos
Harada, Hidemitsu
Steward, Martin C.
DenBesten, Pamela
Bronckers, Antonius L. J. J.
Gerber, Gábor
Varga, Gábor
No Change in Bicarbonate Transport but Tight-Junction Formation Is Delayed by Fluoride in a Novel Ameloblast Model
title No Change in Bicarbonate Transport but Tight-Junction Formation Is Delayed by Fluoride in a Novel Ameloblast Model
title_full No Change in Bicarbonate Transport but Tight-Junction Formation Is Delayed by Fluoride in a Novel Ameloblast Model
title_fullStr No Change in Bicarbonate Transport but Tight-Junction Formation Is Delayed by Fluoride in a Novel Ameloblast Model
title_full_unstemmed No Change in Bicarbonate Transport but Tight-Junction Formation Is Delayed by Fluoride in a Novel Ameloblast Model
title_short No Change in Bicarbonate Transport but Tight-Junction Formation Is Delayed by Fluoride in a Novel Ameloblast Model
title_sort no change in bicarbonate transport but tight-junction formation is delayed by fluoride in a novel ameloblast model
topic Physiology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5770627/
https://www.ncbi.nlm.nih.gov/pubmed/29375389
http://dx.doi.org/10.3389/fphys.2017.00940
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