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Evolution of the Role of RA and FGF Signals in the Control of Somitogenesis in Chordates

During vertebrate development, the paraxial mesoderm becomes segmented, forming somites that will give rise to dermis, axial skeleton and skeletal muscles. Although recently challenged, the "clock and wavefront" model for somitogenesis explains how interactions between several cell-cell co...

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Autores principales: Bertrand, Stéphanie, Aldea, Daniel, Oulion, Silvan, Subirana, Lucie, de Lera, Angel R., Somorjai, Ildiko, Escriva, Hector
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4570818/
https://www.ncbi.nlm.nih.gov/pubmed/26371756
http://dx.doi.org/10.1371/journal.pone.0136587
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author Bertrand, Stéphanie
Aldea, Daniel
Oulion, Silvan
Subirana, Lucie
de Lera, Angel R.
Somorjai, Ildiko
Escriva, Hector
author_facet Bertrand, Stéphanie
Aldea, Daniel
Oulion, Silvan
Subirana, Lucie
de Lera, Angel R.
Somorjai, Ildiko
Escriva, Hector
author_sort Bertrand, Stéphanie
collection PubMed
description During vertebrate development, the paraxial mesoderm becomes segmented, forming somites that will give rise to dermis, axial skeleton and skeletal muscles. Although recently challenged, the "clock and wavefront" model for somitogenesis explains how interactions between several cell-cell communication pathways, including the FGF, RA, Wnt and Notch signals, control the formation of these bilateral symmetric blocks. In the cephalochordate amphioxus, which belongs to the chordate phylum together with tunicates and vertebrates, the dorsal paraxial mesendoderm also periodically forms somites, although this process is asymmetric and extends along the whole body. It has been previously shown that the formation of the most anterior somites in amphioxus is dependent upon FGF signalling. However, the signals controlling somitogenesis during posterior elongation in amphioxus are still unknown. Here we show that, contrary to vertebrates, RA and FGF signals act independently during posterior elongation and that they are not mandatory for posterior somites to form. Moreover, we show that RA is not able to buffer the left/right asymmetry machinery that is controlled through the asymmetric expression of Nodal pathway actors. Our results give new insights into the evolution of the somitogenesis process in chordates. They suggest that RA and FGF pathways have acquired specific functions in the control of somitogenesis in vertebrates. We propose that the "clock and wavefront" system was selected specifically in vertebrates in parallel to the development of more complex somite-derived structures but that it was not required for somitogenesis in the ancestor of chordates.
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spelling pubmed-45708182015-09-18 Evolution of the Role of RA and FGF Signals in the Control of Somitogenesis in Chordates Bertrand, Stéphanie Aldea, Daniel Oulion, Silvan Subirana, Lucie de Lera, Angel R. Somorjai, Ildiko Escriva, Hector PLoS One Research Article During vertebrate development, the paraxial mesoderm becomes segmented, forming somites that will give rise to dermis, axial skeleton and skeletal muscles. Although recently challenged, the "clock and wavefront" model for somitogenesis explains how interactions between several cell-cell communication pathways, including the FGF, RA, Wnt and Notch signals, control the formation of these bilateral symmetric blocks. In the cephalochordate amphioxus, which belongs to the chordate phylum together with tunicates and vertebrates, the dorsal paraxial mesendoderm also periodically forms somites, although this process is asymmetric and extends along the whole body. It has been previously shown that the formation of the most anterior somites in amphioxus is dependent upon FGF signalling. However, the signals controlling somitogenesis during posterior elongation in amphioxus are still unknown. Here we show that, contrary to vertebrates, RA and FGF signals act independently during posterior elongation and that they are not mandatory for posterior somites to form. Moreover, we show that RA is not able to buffer the left/right asymmetry machinery that is controlled through the asymmetric expression of Nodal pathway actors. Our results give new insights into the evolution of the somitogenesis process in chordates. They suggest that RA and FGF pathways have acquired specific functions in the control of somitogenesis in vertebrates. We propose that the "clock and wavefront" system was selected specifically in vertebrates in parallel to the development of more complex somite-derived structures but that it was not required for somitogenesis in the ancestor of chordates. Public Library of Science 2015-09-15 /pmc/articles/PMC4570818/ /pubmed/26371756 http://dx.doi.org/10.1371/journal.pone.0136587 Text en © 2015 Bertrand 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
Bertrand, Stéphanie
Aldea, Daniel
Oulion, Silvan
Subirana, Lucie
de Lera, Angel R.
Somorjai, Ildiko
Escriva, Hector
Evolution of the Role of RA and FGF Signals in the Control of Somitogenesis in Chordates
title Evolution of the Role of RA and FGF Signals in the Control of Somitogenesis in Chordates
title_full Evolution of the Role of RA and FGF Signals in the Control of Somitogenesis in Chordates
title_fullStr Evolution of the Role of RA and FGF Signals in the Control of Somitogenesis in Chordates
title_full_unstemmed Evolution of the Role of RA and FGF Signals in the Control of Somitogenesis in Chordates
title_short Evolution of the Role of RA and FGF Signals in the Control of Somitogenesis in Chordates
title_sort evolution of the role of ra and fgf signals in the control of somitogenesis in chordates
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4570818/
https://www.ncbi.nlm.nih.gov/pubmed/26371756
http://dx.doi.org/10.1371/journal.pone.0136587
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