Evolutionary conservation of plant gibberellin signalling pathway components

<p>Abstract</p> <p>Background:</p> <p>Gibberellins (GA) are plant hormones that can regulate germination, elongation growth, and sex determination. They ubiquitously occur in seed plants. The discovery of gibberellin receptors, together with advances in understanding th...

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Main Authors: Reski Ralf, Wiedemann Gertrud, Fierro Ana C, Vandenbussche Filip, Van Der Straeten Dominique
Format: Article
Language:English
Published: BMC 2007-11-01
Series:BMC Plant Biology
Online Access:http://www.biomedcentral.com/1471-2229/7/65
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spelling doaj-d7312de5fcb94da5b59a25bee47a62b62020-11-24T21:33:12ZengBMCBMC Plant Biology1471-22292007-11-01716510.1186/1471-2229-7-65Evolutionary conservation of plant gibberellin signalling pathway componentsReski RalfWiedemann GertrudFierro Ana CVandenbussche FilipVan Der Straeten Dominique<p>Abstract</p> <p>Background:</p> <p>Gibberellins (GA) are plant hormones that can regulate germination, elongation growth, and sex determination. They ubiquitously occur in seed plants. The discovery of gibberellin receptors, together with advances in understanding the function of key components of GA signalling in Arabidopsis and rice, reveal a fairly short GA signal transduction route. The pathway essentially consists of GID1 gibberellin receptors that interact with F-box proteins, which in turn regulate degradation of downstream DELLA proteins, suppressors of GA-controlled responses.</p> <p>Results:</p> <p><it>Arabidopsis </it>sequences of the gibberellin signalling compounds were used to screen databases from a variety of plants, including protists, for homologues, providing indications for the degree of conservation of the pathway. The pathway as such appears completely absent in protists, the moss <it>Physcomitrella patens </it>shares only a limited homology with the Arabidopsis proteins, thus lacking essential characteristics of the classical GA signalling pathway, while the lycophyte <it>Selaginella moellendorffii </it>contains a possible ortholog for each component. The occurrence of classical GA responses can as yet not be linked with the presence of homologues of the signalling pathway. Alignments and display in neighbour joining trees of the GA signalling components confirm the close relationship of gymnosperms, monocotyledonous and dicotyledonous plants, as suggested from previous studies.</p> <p>Conclusion:</p> <p>Homologues of the GA-signalling pathway were mainly found in vascular plants. The GA signalling system may have its evolutionary molecular onset in <it>Physcomitrella patens</it>, where GAs at higher concentrations affect gravitropism and elongation growth.</p> http://www.biomedcentral.com/1471-2229/7/65
collection DOAJ
language English
format Article
sources DOAJ
author Reski Ralf
Wiedemann Gertrud
Fierro Ana C
Vandenbussche Filip
Van Der Straeten Dominique
spellingShingle Reski Ralf
Wiedemann Gertrud
Fierro Ana C
Vandenbussche Filip
Van Der Straeten Dominique
Evolutionary conservation of plant gibberellin signalling pathway components
BMC Plant Biology
author_facet Reski Ralf
Wiedemann Gertrud
Fierro Ana C
Vandenbussche Filip
Van Der Straeten Dominique
author_sort Reski Ralf
title Evolutionary conservation of plant gibberellin signalling pathway components
title_short Evolutionary conservation of plant gibberellin signalling pathway components
title_full Evolutionary conservation of plant gibberellin signalling pathway components
title_fullStr Evolutionary conservation of plant gibberellin signalling pathway components
title_full_unstemmed Evolutionary conservation of plant gibberellin signalling pathway components
title_sort evolutionary conservation of plant gibberellin signalling pathway components
publisher BMC
series BMC Plant Biology
issn 1471-2229
publishDate 2007-11-01
description <p>Abstract</p> <p>Background:</p> <p>Gibberellins (GA) are plant hormones that can regulate germination, elongation growth, and sex determination. They ubiquitously occur in seed plants. The discovery of gibberellin receptors, together with advances in understanding the function of key components of GA signalling in Arabidopsis and rice, reveal a fairly short GA signal transduction route. The pathway essentially consists of GID1 gibberellin receptors that interact with F-box proteins, which in turn regulate degradation of downstream DELLA proteins, suppressors of GA-controlled responses.</p> <p>Results:</p> <p><it>Arabidopsis </it>sequences of the gibberellin signalling compounds were used to screen databases from a variety of plants, including protists, for homologues, providing indications for the degree of conservation of the pathway. The pathway as such appears completely absent in protists, the moss <it>Physcomitrella patens </it>shares only a limited homology with the Arabidopsis proteins, thus lacking essential characteristics of the classical GA signalling pathway, while the lycophyte <it>Selaginella moellendorffii </it>contains a possible ortholog for each component. The occurrence of classical GA responses can as yet not be linked with the presence of homologues of the signalling pathway. Alignments and display in neighbour joining trees of the GA signalling components confirm the close relationship of gymnosperms, monocotyledonous and dicotyledonous plants, as suggested from previous studies.</p> <p>Conclusion:</p> <p>Homologues of the GA-signalling pathway were mainly found in vascular plants. The GA signalling system may have its evolutionary molecular onset in <it>Physcomitrella patens</it>, where GAs at higher concentrations affect gravitropism and elongation growth.</p>
url http://www.biomedcentral.com/1471-2229/7/65
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