Literature DB >> 20348033

Expression of Fgf signalling pathway related genes during palatal rugae development in the mouse.

Thantrira Porntaveetus1, Shelly Oommen, Paul T Sharpe, Atsushi Ohazama.   

Abstract

Fgf signalling plays critical roles in the development of many ectodermal organs. Palatal rugae are ectodermal corrugated structures of the hard palate and in common with other ectodermal appendages, their development is initiated as epithelial thickenings that form placodes as the underlying mesenchymal cells condense. The placode regions then bulge towards to oral cavity to form an overall corrugated appearance. We carried out comparative in situ hybridization analysis of 18 Fgf ligands (Fgf1-Fgf10, Fgf15-Fgf18, Fgf20-Fgf23), four Fgf receptors (Fgfr1-Fgfr4) and four other Fgf signalling related molecules (Spry1, Spry2, Spry4 and Etv5) during murine palatal rugae development. Fgfr1 and Etv5 showed restricted expression in the interplacode epithelium whereas Fgf18 expression was localized to mesenchyme underneath the interplacode epithelium. The expression of Fgf9 was restricted to epithelial ruga placodes whereas Spry4 expression was observed in mesenchyme underneath the placodes. The localized expression of Fgf2, Fgf8, Fgf16, Fgfr4 and Spry1 were found in bulge mesenchyme. Fgf3, Fgf6, Fgfr2 and Spry2 showed expression in the entire epithelium whereas Fgf10 was expressed throughout the mesenchyme. Fgf signalling thus shows dynamic temporo-spatial expression in murine palatal rugae development. Copyright 2010 Elsevier B.V. All rights reserved.

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Year:  2010        PMID: 20348033     DOI: 10.1016/j.gep.2010.03.004

Source DB:  PubMed          Journal:  Gene Expr Patterns        ISSN: 1567-133X            Impact factor:   1.224


  9 in total

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3.  Epigenetic regulation of Sox4 during palate development.

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Journal:  Epigenomics       Date:  2013-04       Impact factor: 4.778

4.  Periodic stripe formation by a Turing mechanism operating at growth zones in the mammalian palate.

Authors:  Andrew D Economou; Atsushi Ohazama; Thantrira Porntaveetus; Paul T Sharpe; Shigeru Kondo; M Albert Basson; Amel Gritli-Linde; Martyn T Cobourne; Jeremy B A Green
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5.  Lrp4/Wise regulates palatal rugae development through Turing-type reaction-diffusion mechanisms.

Authors:  Maiko Kawasaki; Katsushige Kawasaki; Fumiya Meguro; Akane Yamada; Ryuichi Ishikawa; Thantrira Porntaveetus; James Blackburn; Yoko Otsuka-Tanaka; Naoaki Saito; Masato S Ota; Paul T Sharpe; John A Kessler; Joachim Herz; Martyn T Cobourne; Takeyasu Maeda; Atsushi Ohazama
Journal:  PLoS One       Date:  2018-09-20       Impact factor: 3.240

6.  DNA hypermethylation of Fgf16 and Tbx22 associated with cleft palate during palatal fusion.

Authors:  Xuan Shu; Zejun Dong; Liuhanghang Cheng; Shenyou Shu
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Review 7.  Cleft Palate in Apert Syndrome.

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Journal:  J Dev Biol       Date:  2022-08-11

8.  Systematic analysis of copy number variants of a large cohort of orofacial cleft patients identifies candidate genes for orofacial clefts.

Authors:  Federica Conte; Martin Oti; Jill Dixon; Carine E L Carels; Michele Rubini; Huiqing Zhou
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9.  Perturbation analysis of a multi-morphogen Turing reaction-diffusion stripe patterning system reveals key regulatory interactions.

Authors:  Andrew D Economou; Nicholas A M Monk; Jeremy B A Green
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  9 in total

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