Cargando…

Reducing Cytoplasmic Polyamine Oxidase Activity in Arabidopsis Increases Salt and Drought Tolerance by Reducing Reactive Oxygen Species Production and Increasing Defense Gene Expression

The link between polyamine oxidases (PAOs), which function in polyamine catabolism, and stress responses remains elusive. Here, we address this issue using Arabidopsis pao mutants in which the expression of the five PAO genes is knocked-out or knocked-down. As the five single pao mutants and wild ty...

Descripción completa

Detalles Bibliográficos
Autores principales: Sagor, G. H. M., Zhang, Siyuan, Kojima, Seiji, Simm, Stefan, Berberich, Thomas, Kusano, Tomonobu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4770033/
https://www.ncbi.nlm.nih.gov/pubmed/26973665
http://dx.doi.org/10.3389/fpls.2016.00214
_version_ 1782418182946947072
author Sagor, G. H. M.
Zhang, Siyuan
Kojima, Seiji
Simm, Stefan
Berberich, Thomas
Kusano, Tomonobu
author_facet Sagor, G. H. M.
Zhang, Siyuan
Kojima, Seiji
Simm, Stefan
Berberich, Thomas
Kusano, Tomonobu
author_sort Sagor, G. H. M.
collection PubMed
description The link between polyamine oxidases (PAOs), which function in polyamine catabolism, and stress responses remains elusive. Here, we address this issue using Arabidopsis pao mutants in which the expression of the five PAO genes is knocked-out or knocked-down. As the five single pao mutants and wild type (WT) showed similar response to salt stress, we tried to generate the mutants that have either the cytoplasmic PAO pathway (pao1 pao5) or the peroxisomal PAO pathway (pao2 pao3 pao4) silenced. However, the latter triple mutant was not obtained. Thus, in this study, we used two double mutants, pao1 pao5 and pao2 pao4. Of interest, pao1 pao5 mutant was NaCl- and drought-tolerant, whereas pao2 pao4 showed similar sensitivity to those stresses as WT. To reveal the underlying mechanism of salt tolerance, further analyses were performed. Na uptake of the mutant (pao1 pao5) decreased to 75% of WT. PAO activity of the mutant was reduced to 62% of WT. The content of reactive oxygen species (ROS) such as hydrogen peroxide, a reaction product of PAO action, and superoxide anion in the mutant became 81 and 72% of the levels in WT upon salt treatment. The mutant contained 2.8-fold higher thermospermine compared to WT. Moreover, the mutant induced the genes of salt overly sensitive-, abscisic acid (ABA)-dependent- and ABA-independent- pathways more strongly than WT upon salt treatment. The results suggest that the Arabidopsis plant silencing cytoplasmic PAOs shows salinity tolerance by reducing ROS production and strongly inducing subsets of stress-responsive genes under stress conditions.
format Online
Article
Text
id pubmed-4770033
institution National Center for Biotechnology Information
language English
publishDate 2016
publisher Frontiers Media S.A.
record_format MEDLINE/PubMed
spelling pubmed-47700332016-03-11 Reducing Cytoplasmic Polyamine Oxidase Activity in Arabidopsis Increases Salt and Drought Tolerance by Reducing Reactive Oxygen Species Production and Increasing Defense Gene Expression Sagor, G. H. M. Zhang, Siyuan Kojima, Seiji Simm, Stefan Berberich, Thomas Kusano, Tomonobu Front Plant Sci Plant Science The link between polyamine oxidases (PAOs), which function in polyamine catabolism, and stress responses remains elusive. Here, we address this issue using Arabidopsis pao mutants in which the expression of the five PAO genes is knocked-out or knocked-down. As the five single pao mutants and wild type (WT) showed similar response to salt stress, we tried to generate the mutants that have either the cytoplasmic PAO pathway (pao1 pao5) or the peroxisomal PAO pathway (pao2 pao3 pao4) silenced. However, the latter triple mutant was not obtained. Thus, in this study, we used two double mutants, pao1 pao5 and pao2 pao4. Of interest, pao1 pao5 mutant was NaCl- and drought-tolerant, whereas pao2 pao4 showed similar sensitivity to those stresses as WT. To reveal the underlying mechanism of salt tolerance, further analyses were performed. Na uptake of the mutant (pao1 pao5) decreased to 75% of WT. PAO activity of the mutant was reduced to 62% of WT. The content of reactive oxygen species (ROS) such as hydrogen peroxide, a reaction product of PAO action, and superoxide anion in the mutant became 81 and 72% of the levels in WT upon salt treatment. The mutant contained 2.8-fold higher thermospermine compared to WT. Moreover, the mutant induced the genes of salt overly sensitive-, abscisic acid (ABA)-dependent- and ABA-independent- pathways more strongly than WT upon salt treatment. The results suggest that the Arabidopsis plant silencing cytoplasmic PAOs shows salinity tolerance by reducing ROS production and strongly inducing subsets of stress-responsive genes under stress conditions. Frontiers Media S.A. 2016-02-29 /pmc/articles/PMC4770033/ /pubmed/26973665 http://dx.doi.org/10.3389/fpls.2016.00214 Text en Copyright © 2016 Sagor, Zhang, Kojima, Simm, Berberich and Kusano. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) or licensor are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Plant Science
Sagor, G. H. M.
Zhang, Siyuan
Kojima, Seiji
Simm, Stefan
Berberich, Thomas
Kusano, Tomonobu
Reducing Cytoplasmic Polyamine Oxidase Activity in Arabidopsis Increases Salt and Drought Tolerance by Reducing Reactive Oxygen Species Production and Increasing Defense Gene Expression
title Reducing Cytoplasmic Polyamine Oxidase Activity in Arabidopsis Increases Salt and Drought Tolerance by Reducing Reactive Oxygen Species Production and Increasing Defense Gene Expression
title_full Reducing Cytoplasmic Polyamine Oxidase Activity in Arabidopsis Increases Salt and Drought Tolerance by Reducing Reactive Oxygen Species Production and Increasing Defense Gene Expression
title_fullStr Reducing Cytoplasmic Polyamine Oxidase Activity in Arabidopsis Increases Salt and Drought Tolerance by Reducing Reactive Oxygen Species Production and Increasing Defense Gene Expression
title_full_unstemmed Reducing Cytoplasmic Polyamine Oxidase Activity in Arabidopsis Increases Salt and Drought Tolerance by Reducing Reactive Oxygen Species Production and Increasing Defense Gene Expression
title_short Reducing Cytoplasmic Polyamine Oxidase Activity in Arabidopsis Increases Salt and Drought Tolerance by Reducing Reactive Oxygen Species Production and Increasing Defense Gene Expression
title_sort reducing cytoplasmic polyamine oxidase activity in arabidopsis increases salt and drought tolerance by reducing reactive oxygen species production and increasing defense gene expression
topic Plant Science
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4770033/
https://www.ncbi.nlm.nih.gov/pubmed/26973665
http://dx.doi.org/10.3389/fpls.2016.00214
work_keys_str_mv AT sagorghm reducingcytoplasmicpolyamineoxidaseactivityinarabidopsisincreasessaltanddroughttolerancebyreducingreactiveoxygenspeciesproductionandincreasingdefensegeneexpression
AT zhangsiyuan reducingcytoplasmicpolyamineoxidaseactivityinarabidopsisincreasessaltanddroughttolerancebyreducingreactiveoxygenspeciesproductionandincreasingdefensegeneexpression
AT kojimaseiji reducingcytoplasmicpolyamineoxidaseactivityinarabidopsisincreasessaltanddroughttolerancebyreducingreactiveoxygenspeciesproductionandincreasingdefensegeneexpression
AT simmstefan reducingcytoplasmicpolyamineoxidaseactivityinarabidopsisincreasessaltanddroughttolerancebyreducingreactiveoxygenspeciesproductionandincreasingdefensegeneexpression
AT berberichthomas reducingcytoplasmicpolyamineoxidaseactivityinarabidopsisincreasessaltanddroughttolerancebyreducingreactiveoxygenspeciesproductionandincreasingdefensegeneexpression
AT kusanotomonobu reducingcytoplasmicpolyamineoxidaseactivityinarabidopsisincreasessaltanddroughttolerancebyreducingreactiveoxygenspeciesproductionandincreasingdefensegeneexpression