A contribution to the study of plant development evolution based on gene co-expression networks
Phototrophic eukaryotes are among the most successful organisms on Earth due to their unparalleled efficiency at capturing light energy and fixing carbon dioxide to produce organic molecules. A conserved and efficient network of light-dependent regulatory modules could be at the bases of this succes...
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doaj-1acf168297484dba9e3f4330559400d82020-11-24T23:17:08ZengFrontiers Media S.A.Frontiers in Plant Science1664-462X2013-08-01410.3389/fpls.2013.0029154658A contribution to the study of plant development evolution based on gene co-expression networksFrancisco J. Romero-Campero0Eva eLucas-Reina1Fatima E. Said2José M. Romero3Federico eValverde4Universidad de SevillaInstituto de Bioquímica Vegetal y Fotosíntesis. Consejo Superior de Investigaciones CientíficasInstituto de Bioquímica Vegetal y Fotosíntesis. Consejo Superior de Investigaciones CientíficasInstituto de Bioquímica Vegetal y Fotosíntesis. Consejo Superior de Investigaciones CientíficasInstituto de Bioquímica Vegetal y Fotosíntesis. Consejo Superior de Investigaciones CientíficasPhototrophic eukaryotes are among the most successful organisms on Earth due to their unparalleled efficiency at capturing light energy and fixing carbon dioxide to produce organic molecules. A conserved and efficient network of light-dependent regulatory modules could be at the bases of this success. This regulatory system conferred early advantages to phototrophic eukaryotes that allowed for specialization, complex developmental processes and modern plant characteristics. We have studied light-dependent gene regulatory modules from algae to plants employing integrative-omics approaches based on gene co-expression networks. Our study reveals some remarkably conserved ways in which eukaryotic phototrophs deal with day length and light signaling. Here we describe how a family of Arabidopsis transcription factors involved in photoperiod response has evolved from a single algal gene according to the innovation, amplification and divergence theory of gene evolution by duplication. These modifications of the gene co-expression networks from the ancient unicellular green algae Chlamydomonas reinhardtii to the modern brassica Arabidopsis thaliana may hint on the evolution and specialization of plants and other organisms.http://journal.frontiersin.org/Journal/10.3389/fpls.2013.00291/fullArabidopsisChlamydomonasevolutionphotoperiodphyscomitrellagene co-expression networks |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Francisco J. Romero-Campero Eva eLucas-Reina Fatima E. Said José M. Romero Federico eValverde |
spellingShingle |
Francisco J. Romero-Campero Eva eLucas-Reina Fatima E. Said José M. Romero Federico eValverde A contribution to the study of plant development evolution based on gene co-expression networks Frontiers in Plant Science Arabidopsis Chlamydomonas evolution photoperiod physcomitrella gene co-expression networks |
author_facet |
Francisco J. Romero-Campero Eva eLucas-Reina Fatima E. Said José M. Romero Federico eValverde |
author_sort |
Francisco J. Romero-Campero |
title |
A contribution to the study of plant development evolution based on gene co-expression networks |
title_short |
A contribution to the study of plant development evolution based on gene co-expression networks |
title_full |
A contribution to the study of plant development evolution based on gene co-expression networks |
title_fullStr |
A contribution to the study of plant development evolution based on gene co-expression networks |
title_full_unstemmed |
A contribution to the study of plant development evolution based on gene co-expression networks |
title_sort |
contribution to the study of plant development evolution based on gene co-expression networks |
publisher |
Frontiers Media S.A. |
series |
Frontiers in Plant Science |
issn |
1664-462X |
publishDate |
2013-08-01 |
description |
Phototrophic eukaryotes are among the most successful organisms on Earth due to their unparalleled efficiency at capturing light energy and fixing carbon dioxide to produce organic molecules. A conserved and efficient network of light-dependent regulatory modules could be at the bases of this success. This regulatory system conferred early advantages to phototrophic eukaryotes that allowed for specialization, complex developmental processes and modern plant characteristics. We have studied light-dependent gene regulatory modules from algae to plants employing integrative-omics approaches based on gene co-expression networks. Our study reveals some remarkably conserved ways in which eukaryotic phototrophs deal with day length and light signaling. Here we describe how a family of Arabidopsis transcription factors involved in photoperiod response has evolved from a single algal gene according to the innovation, amplification and divergence theory of gene evolution by duplication. These modifications of the gene co-expression networks from the ancient unicellular green algae Chlamydomonas reinhardtii to the modern brassica Arabidopsis thaliana may hint on the evolution and specialization of plants and other organisms. |
topic |
Arabidopsis Chlamydomonas evolution photoperiod physcomitrella gene co-expression networks |
url |
http://journal.frontiersin.org/Journal/10.3389/fpls.2013.00291/full |
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