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Arabidopsis thaliana WRKY25 Transcription Factor Mediates Oxidative Stress Tolerance and Regulates Senescence in a Redox-Dependent Manner

Senescence is the last developmental step in plant life and is accompanied by a massive change in gene expression implying a strong participation of transcriptional regulators. In the past decade, the WRKY53 transcription factor was disclosed to be a central node of a complex regulatory network of l...

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Autores principales: Doll, Jasmin, Muth, Maren, Riester, Lena, Nebel, Sabrina, Bresson, Justine, Lee, Hsin-Chieh, Zentgraf, Ulrike
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6989604/
https://www.ncbi.nlm.nih.gov/pubmed/32038695
http://dx.doi.org/10.3389/fpls.2019.01734
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author Doll, Jasmin
Muth, Maren
Riester, Lena
Nebel, Sabrina
Bresson, Justine
Lee, Hsin-Chieh
Zentgraf, Ulrike
author_facet Doll, Jasmin
Muth, Maren
Riester, Lena
Nebel, Sabrina
Bresson, Justine
Lee, Hsin-Chieh
Zentgraf, Ulrike
author_sort Doll, Jasmin
collection PubMed
description Senescence is the last developmental step in plant life and is accompanied by a massive change in gene expression implying a strong participation of transcriptional regulators. In the past decade, the WRKY53 transcription factor was disclosed to be a central node of a complex regulatory network of leaf senescence and to underlie a tight multi-layer control of expression, activity and protein stability. Here, we identify WRKY25 as a redox-sensitive up-stream regulatory factor of WRKY53 expression. Under non-oxidizing conditions, WRKY25 binds to a specific W-box in the WRKY53 promoter and acts as a positive regulator of WRKY53 expression in a transient expression system using Arabidopsis protoplasts, whereas oxidizing conditions dampened the action of WRKY25. However, overexpression of WRKY25 did not accelerate senescence but increased lifespan of Arabidopsis plants, whereas the knock-out of the gene resulted in the opposite phenotype, indicating a more complex regulatory function of WRKY25 within the WRKY subnetwork of senescence regulation. In addition, overexpression of WRKY25 mediated higher tolerance to oxidative stress and the intracellular H(2)O(2) level is lower in WRKY25 overexpressing plants and higher in wrky25 mutants compared to wildtype plants suggesting that WRKY25 is also involved in controlling intracellular redox conditions. Consistently, WRKY25 overexpressers had higher and wrky mutants lower H(2)O(2) scavenging capacity. Like already shown for WRKY53, MEKK1 positively influenced the activation potential of WRKY25 on the WRKY53 promoter. Taken together, WRKY53, WRKY25, MEKK1 and H(2)O(2) interplay with each other in a complex network. As H(2)O(2) signaling molecule participates in many stress responses, WRKK25 acts most likely as integrators of environmental signals into senescence regulation.
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spelling pubmed-69896042020-02-07 Arabidopsis thaliana WRKY25 Transcription Factor Mediates Oxidative Stress Tolerance and Regulates Senescence in a Redox-Dependent Manner Doll, Jasmin Muth, Maren Riester, Lena Nebel, Sabrina Bresson, Justine Lee, Hsin-Chieh Zentgraf, Ulrike Front Plant Sci Plant Science Senescence is the last developmental step in plant life and is accompanied by a massive change in gene expression implying a strong participation of transcriptional regulators. In the past decade, the WRKY53 transcription factor was disclosed to be a central node of a complex regulatory network of leaf senescence and to underlie a tight multi-layer control of expression, activity and protein stability. Here, we identify WRKY25 as a redox-sensitive up-stream regulatory factor of WRKY53 expression. Under non-oxidizing conditions, WRKY25 binds to a specific W-box in the WRKY53 promoter and acts as a positive regulator of WRKY53 expression in a transient expression system using Arabidopsis protoplasts, whereas oxidizing conditions dampened the action of WRKY25. However, overexpression of WRKY25 did not accelerate senescence but increased lifespan of Arabidopsis plants, whereas the knock-out of the gene resulted in the opposite phenotype, indicating a more complex regulatory function of WRKY25 within the WRKY subnetwork of senescence regulation. In addition, overexpression of WRKY25 mediated higher tolerance to oxidative stress and the intracellular H(2)O(2) level is lower in WRKY25 overexpressing plants and higher in wrky25 mutants compared to wildtype plants suggesting that WRKY25 is also involved in controlling intracellular redox conditions. Consistently, WRKY25 overexpressers had higher and wrky mutants lower H(2)O(2) scavenging capacity. Like already shown for WRKY53, MEKK1 positively influenced the activation potential of WRKY25 on the WRKY53 promoter. Taken together, WRKY53, WRKY25, MEKK1 and H(2)O(2) interplay with each other in a complex network. As H(2)O(2) signaling molecule participates in many stress responses, WRKK25 acts most likely as integrators of environmental signals into senescence regulation. Frontiers Media S.A. 2020-01-23 /pmc/articles/PMC6989604/ /pubmed/32038695 http://dx.doi.org/10.3389/fpls.2019.01734 Text en Copyright © 2020 Doll, Muth, Riester, Nebel, Bresson, Lee and Zentgraf 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) and the copyright owner(s) 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
Doll, Jasmin
Muth, Maren
Riester, Lena
Nebel, Sabrina
Bresson, Justine
Lee, Hsin-Chieh
Zentgraf, Ulrike
Arabidopsis thaliana WRKY25 Transcription Factor Mediates Oxidative Stress Tolerance and Regulates Senescence in a Redox-Dependent Manner
title Arabidopsis thaliana WRKY25 Transcription Factor Mediates Oxidative Stress Tolerance and Regulates Senescence in a Redox-Dependent Manner
title_full Arabidopsis thaliana WRKY25 Transcription Factor Mediates Oxidative Stress Tolerance and Regulates Senescence in a Redox-Dependent Manner
title_fullStr Arabidopsis thaliana WRKY25 Transcription Factor Mediates Oxidative Stress Tolerance and Regulates Senescence in a Redox-Dependent Manner
title_full_unstemmed Arabidopsis thaliana WRKY25 Transcription Factor Mediates Oxidative Stress Tolerance and Regulates Senescence in a Redox-Dependent Manner
title_short Arabidopsis thaliana WRKY25 Transcription Factor Mediates Oxidative Stress Tolerance and Regulates Senescence in a Redox-Dependent Manner
title_sort arabidopsis thaliana wrky25 transcription factor mediates oxidative stress tolerance and regulates senescence in a redox-dependent manner
topic Plant Science
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6989604/
https://www.ncbi.nlm.nih.gov/pubmed/32038695
http://dx.doi.org/10.3389/fpls.2019.01734
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