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The Molecular Mechanism of Ethylene-Mediated Root Hair Development Induced by Phosphate Starvation

Enhanced root hair production, which increases the root surface area for nutrient uptake, is a typical adaptive response of plants to phosphate (Pi) starvation. Although previous studies have shown that ethylene plays an important role in root hair development induced by Pi starvation, the underlyin...

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Autores principales: Song, Li, Yu, Haopeng, Dong, Jinsong, Che, Ximing, Jiao, Yuling, Liu, Dong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4948871/
https://www.ncbi.nlm.nih.gov/pubmed/27427911
http://dx.doi.org/10.1371/journal.pgen.1006194
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author Song, Li
Yu, Haopeng
Dong, Jinsong
Che, Ximing
Jiao, Yuling
Liu, Dong
author_facet Song, Li
Yu, Haopeng
Dong, Jinsong
Che, Ximing
Jiao, Yuling
Liu, Dong
author_sort Song, Li
collection PubMed
description Enhanced root hair production, which increases the root surface area for nutrient uptake, is a typical adaptive response of plants to phosphate (Pi) starvation. Although previous studies have shown that ethylene plays an important role in root hair development induced by Pi starvation, the underlying molecular mechanism is not understood. In this work, we characterized an Arabidopsis mutant, hps5, that displays constitutive ethylene responses and increased sensitivity to Pi starvation due to a mutation in the ethylene receptor ERS1. hps5 accumulates high levels of EIN3 protein, a key transcription factor involved in the ethylene signaling pathway, under both Pi sufficiency and deficiency. Pi starvation also increases the accumulation of EIN3 protein. Combined molecular, genetic, and genomic analyses identified a group of genes that affect root hair development by regulating cell wall modifications. The expression of these genes is induced by Pi starvation and is enhanced in the EIN3-overexpressing line. In contrast, the induction of these genes by Pi starvation is suppressed in ein3 and ein3eil1 mutants. EIN3 protein can directly bind to the promoter of these genes, some of which are also the immediate targets of RSL4, a key transcription factor that regulates root hair development. Based on these results, we propose that under normal growth conditions, the level of ethylene is low in root cells; a group of key transcription factors, including RSL4 and its homologs, trigger the transcription of their target genes to promote root hair development; Pi starvation increases the levels of the protein EIN3, which directly binds to the promoters of the genes targeted by RSL4 and its homologs and further increase their transcription, resulting in the enhanced production of root hairs. This model not only explains how ethylene mediates root hair responses to Pi starvation, but may provide a general mechanism for how ethylene regulates root hair development under both stress and non-stress conditions.
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spelling pubmed-49488712016-08-01 The Molecular Mechanism of Ethylene-Mediated Root Hair Development Induced by Phosphate Starvation Song, Li Yu, Haopeng Dong, Jinsong Che, Ximing Jiao, Yuling Liu, Dong PLoS Genet Research Article Enhanced root hair production, which increases the root surface area for nutrient uptake, is a typical adaptive response of plants to phosphate (Pi) starvation. Although previous studies have shown that ethylene plays an important role in root hair development induced by Pi starvation, the underlying molecular mechanism is not understood. In this work, we characterized an Arabidopsis mutant, hps5, that displays constitutive ethylene responses and increased sensitivity to Pi starvation due to a mutation in the ethylene receptor ERS1. hps5 accumulates high levels of EIN3 protein, a key transcription factor involved in the ethylene signaling pathway, under both Pi sufficiency and deficiency. Pi starvation also increases the accumulation of EIN3 protein. Combined molecular, genetic, and genomic analyses identified a group of genes that affect root hair development by regulating cell wall modifications. The expression of these genes is induced by Pi starvation and is enhanced in the EIN3-overexpressing line. In contrast, the induction of these genes by Pi starvation is suppressed in ein3 and ein3eil1 mutants. EIN3 protein can directly bind to the promoter of these genes, some of which are also the immediate targets of RSL4, a key transcription factor that regulates root hair development. Based on these results, we propose that under normal growth conditions, the level of ethylene is low in root cells; a group of key transcription factors, including RSL4 and its homologs, trigger the transcription of their target genes to promote root hair development; Pi starvation increases the levels of the protein EIN3, which directly binds to the promoters of the genes targeted by RSL4 and its homologs and further increase their transcription, resulting in the enhanced production of root hairs. This model not only explains how ethylene mediates root hair responses to Pi starvation, but may provide a general mechanism for how ethylene regulates root hair development under both stress and non-stress conditions. Public Library of Science 2016-07-18 /pmc/articles/PMC4948871/ /pubmed/27427911 http://dx.doi.org/10.1371/journal.pgen.1006194 Text en © 2016 Song 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 (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Song, Li
Yu, Haopeng
Dong, Jinsong
Che, Ximing
Jiao, Yuling
Liu, Dong
The Molecular Mechanism of Ethylene-Mediated Root Hair Development Induced by Phosphate Starvation
title The Molecular Mechanism of Ethylene-Mediated Root Hair Development Induced by Phosphate Starvation
title_full The Molecular Mechanism of Ethylene-Mediated Root Hair Development Induced by Phosphate Starvation
title_fullStr The Molecular Mechanism of Ethylene-Mediated Root Hair Development Induced by Phosphate Starvation
title_full_unstemmed The Molecular Mechanism of Ethylene-Mediated Root Hair Development Induced by Phosphate Starvation
title_short The Molecular Mechanism of Ethylene-Mediated Root Hair Development Induced by Phosphate Starvation
title_sort molecular mechanism of ethylene-mediated root hair development induced by phosphate starvation
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4948871/
https://www.ncbi.nlm.nih.gov/pubmed/27427911
http://dx.doi.org/10.1371/journal.pgen.1006194
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