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Transcription Factor FoxO1 Is Essential for Enamel Biomineralization

The Transforming growth factor β (Tgf-β) pathway, by signaling via the activation of Smad transcription factors, induces the expression of many diverse downstream target genes thereby regulating a vast array of cellular events essential for proper development and homeostasis. In order for a specific...

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Autores principales: Poché, Ross A., Sharma, Ramaswamy, Garcia, Monica D., Wada, Aya M., Nolte, Mark J., Udan, Ryan S., Paik, Ji-Hye, DePinho, Ronald A., Bartlett, John D., Dickinson, Mary E.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3265481/
https://www.ncbi.nlm.nih.gov/pubmed/22291941
http://dx.doi.org/10.1371/journal.pone.0030357
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author Poché, Ross A.
Sharma, Ramaswamy
Garcia, Monica D.
Wada, Aya M.
Nolte, Mark J.
Udan, Ryan S.
Paik, Ji-Hye
DePinho, Ronald A.
Bartlett, John D.
Dickinson, Mary E.
author_facet Poché, Ross A.
Sharma, Ramaswamy
Garcia, Monica D.
Wada, Aya M.
Nolte, Mark J.
Udan, Ryan S.
Paik, Ji-Hye
DePinho, Ronald A.
Bartlett, John D.
Dickinson, Mary E.
author_sort Poché, Ross A.
collection PubMed
description The Transforming growth factor β (Tgf-β) pathway, by signaling via the activation of Smad transcription factors, induces the expression of many diverse downstream target genes thereby regulating a vast array of cellular events essential for proper development and homeostasis. In order for a specific cell type to properly interpret the Tgf-β signal and elicit a specific cellular response, cell-specific transcriptional co-factors often cooperate with the Smads to activate a discrete set of genes in the appropriate temporal and spatial manner. Here, via a conditional knockout approach, we show that mice mutant for Forkhead Box O transcription factor FoxO1 exhibit an enamel hypomaturation defect which phenocopies that of the Smad3 mutant mice. Furthermore, we determined that both the FoxO1 and Smad3 mutant teeth exhibit changes in the expression of similar cohort of genes encoding enamel matrix proteins required for proper enamel development. These data raise the possibility that FoxO1 and Smad3 act in concert to regulate a common repertoire of genes necessary for complete enamel maturation. This study is the first to define an essential role for the FoxO family of transcription factors in tooth development and provides a new molecular entry point which will allow researchers to delineate novel genetic pathways regulating the process of biomineralization which may also have significance for studies of human tooth diseases such as amelogenesis imperfecta.
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spelling pubmed-32654812012-01-30 Transcription Factor FoxO1 Is Essential for Enamel Biomineralization Poché, Ross A. Sharma, Ramaswamy Garcia, Monica D. Wada, Aya M. Nolte, Mark J. Udan, Ryan S. Paik, Ji-Hye DePinho, Ronald A. Bartlett, John D. Dickinson, Mary E. PLoS One Research Article The Transforming growth factor β (Tgf-β) pathway, by signaling via the activation of Smad transcription factors, induces the expression of many diverse downstream target genes thereby regulating a vast array of cellular events essential for proper development and homeostasis. In order for a specific cell type to properly interpret the Tgf-β signal and elicit a specific cellular response, cell-specific transcriptional co-factors often cooperate with the Smads to activate a discrete set of genes in the appropriate temporal and spatial manner. Here, via a conditional knockout approach, we show that mice mutant for Forkhead Box O transcription factor FoxO1 exhibit an enamel hypomaturation defect which phenocopies that of the Smad3 mutant mice. Furthermore, we determined that both the FoxO1 and Smad3 mutant teeth exhibit changes in the expression of similar cohort of genes encoding enamel matrix proteins required for proper enamel development. These data raise the possibility that FoxO1 and Smad3 act in concert to regulate a common repertoire of genes necessary for complete enamel maturation. This study is the first to define an essential role for the FoxO family of transcription factors in tooth development and provides a new molecular entry point which will allow researchers to delineate novel genetic pathways regulating the process of biomineralization which may also have significance for studies of human tooth diseases such as amelogenesis imperfecta. Public Library of Science 2012-01-24 /pmc/articles/PMC3265481/ /pubmed/22291941 http://dx.doi.org/10.1371/journal.pone.0030357 Text en Poché et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Poché, Ross A.
Sharma, Ramaswamy
Garcia, Monica D.
Wada, Aya M.
Nolte, Mark J.
Udan, Ryan S.
Paik, Ji-Hye
DePinho, Ronald A.
Bartlett, John D.
Dickinson, Mary E.
Transcription Factor FoxO1 Is Essential for Enamel Biomineralization
title Transcription Factor FoxO1 Is Essential for Enamel Biomineralization
title_full Transcription Factor FoxO1 Is Essential for Enamel Biomineralization
title_fullStr Transcription Factor FoxO1 Is Essential for Enamel Biomineralization
title_full_unstemmed Transcription Factor FoxO1 Is Essential for Enamel Biomineralization
title_short Transcription Factor FoxO1 Is Essential for Enamel Biomineralization
title_sort transcription factor foxo1 is essential for enamel biomineralization
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3265481/
https://www.ncbi.nlm.nih.gov/pubmed/22291941
http://dx.doi.org/10.1371/journal.pone.0030357
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