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FGF-9 accelerates epithelial invagination for ectodermal organogenesis in real time bioengineered organ manipulation

BACKGROUND: Epithelial invagination is important for initiation of ectodermal organogenesis. Although many factors regulate ectodermal organogenesis, there is not any report about their functions in real-time study. Electric cell-substrate impedance sensing (ECIS), a non-invasive, real-time surveill...

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Autores principales: Tai, Yun-Yuan, Chen, Rung-Shu, Lin, Yi, Ling, Thai-Yen, Chen, Min-Huey
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BioMed Central 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3515343/
https://www.ncbi.nlm.nih.gov/pubmed/23176204
http://dx.doi.org/10.1186/1478-811X-10-34
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author Tai, Yun-Yuan
Chen, Rung-Shu
Lin, Yi
Ling, Thai-Yen
Chen, Min-Huey
author_facet Tai, Yun-Yuan
Chen, Rung-Shu
Lin, Yi
Ling, Thai-Yen
Chen, Min-Huey
author_sort Tai, Yun-Yuan
collection PubMed
description BACKGROUND: Epithelial invagination is important for initiation of ectodermal organogenesis. Although many factors regulate ectodermal organogenesis, there is not any report about their functions in real-time study. Electric cell-substrate impedance sensing (ECIS), a non-invasive, real-time surveillance system, had been used to detect changes in organ cell layer thickness through quantitative monitoring of the impedance of a cell-to-microelectrode interface over time. It was shown to be a good method for identifying significant real-time changes of cells. The purpose of this study is to establish a combined bioengineered organ-ECIS model for investigating the real time effects of fibroblast growth factor-9 (FGF-9) on epithelial invagination in bioengineered ectodermal organs. We dissected epithelial and mesenchymal cells from stage E14.5 murine molar tooth germs and identified the real-time effects of FGF-9 on epithelial-mesenchymal interactions using this combined bioengineered organ-ECIS model. RESULTS: Measurement of bioengineered ectodermal organ thickness showed that Fibroblast growth factor-9 (FGF-9) accelerates epithelial invagination in reaggregated mesenchymal cell layer within 3 days. Gene expression analysis revealed that FGF-9 stimulates and sustains early Ameloblastin and Amelogenin expression during odontogenesis. CONCLUSIONS: This is the first real-time study to show that, FGF-9 plays an important role in epithelial invagination and initiates ectodermal organogenesis. Based on these findings, we suggest FGF-9 can be applied for further study in ectodermal organ regeneration, and we also proposed that the ‘FGF-BMP balancing system’ is important for manipulating the morphogenesis of ectodermal organs. The combined bioengineered organ-ECIS model is a promising method for ectodermal organ engineering and regeneration research.
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spelling pubmed-35153432012-12-06 FGF-9 accelerates epithelial invagination for ectodermal organogenesis in real time bioengineered organ manipulation Tai, Yun-Yuan Chen, Rung-Shu Lin, Yi Ling, Thai-Yen Chen, Min-Huey Cell Commun Signal Research BACKGROUND: Epithelial invagination is important for initiation of ectodermal organogenesis. Although many factors regulate ectodermal organogenesis, there is not any report about their functions in real-time study. Electric cell-substrate impedance sensing (ECIS), a non-invasive, real-time surveillance system, had been used to detect changes in organ cell layer thickness through quantitative monitoring of the impedance of a cell-to-microelectrode interface over time. It was shown to be a good method for identifying significant real-time changes of cells. The purpose of this study is to establish a combined bioengineered organ-ECIS model for investigating the real time effects of fibroblast growth factor-9 (FGF-9) on epithelial invagination in bioengineered ectodermal organs. We dissected epithelial and mesenchymal cells from stage E14.5 murine molar tooth germs and identified the real-time effects of FGF-9 on epithelial-mesenchymal interactions using this combined bioengineered organ-ECIS model. RESULTS: Measurement of bioengineered ectodermal organ thickness showed that Fibroblast growth factor-9 (FGF-9) accelerates epithelial invagination in reaggregated mesenchymal cell layer within 3 days. Gene expression analysis revealed that FGF-9 stimulates and sustains early Ameloblastin and Amelogenin expression during odontogenesis. CONCLUSIONS: This is the first real-time study to show that, FGF-9 plays an important role in epithelial invagination and initiates ectodermal organogenesis. Based on these findings, we suggest FGF-9 can be applied for further study in ectodermal organ regeneration, and we also proposed that the ‘FGF-BMP balancing system’ is important for manipulating the morphogenesis of ectodermal organs. The combined bioengineered organ-ECIS model is a promising method for ectodermal organ engineering and regeneration research. BioMed Central 2012-11-23 /pmc/articles/PMC3515343/ /pubmed/23176204 http://dx.doi.org/10.1186/1478-811X-10-34 Text en Copyright ©2012 Tai et al.; licensee BioMed Central Ltd. http://creativecommons.org/licenses/by/2.0 This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/2.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research
Tai, Yun-Yuan
Chen, Rung-Shu
Lin, Yi
Ling, Thai-Yen
Chen, Min-Huey
FGF-9 accelerates epithelial invagination for ectodermal organogenesis in real time bioengineered organ manipulation
title FGF-9 accelerates epithelial invagination for ectodermal organogenesis in real time bioengineered organ manipulation
title_full FGF-9 accelerates epithelial invagination for ectodermal organogenesis in real time bioengineered organ manipulation
title_fullStr FGF-9 accelerates epithelial invagination for ectodermal organogenesis in real time bioengineered organ manipulation
title_full_unstemmed FGF-9 accelerates epithelial invagination for ectodermal organogenesis in real time bioengineered organ manipulation
title_short FGF-9 accelerates epithelial invagination for ectodermal organogenesis in real time bioengineered organ manipulation
title_sort fgf-9 accelerates epithelial invagination for ectodermal organogenesis in real time bioengineered organ manipulation
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3515343/
https://www.ncbi.nlm.nih.gov/pubmed/23176204
http://dx.doi.org/10.1186/1478-811X-10-34
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