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An Abscisic Acid-Independent Oxylipin Pathway Controls Stomatal Closure and Immune Defense in Arabidopsis

Plant stomata function in innate immunity against bacterial invasion and abscisic acid (ABA) has been suggested to regulate this process. Using genetic, biochemical, and pharmacological approaches, we demonstrate that (i) the Arabidopsis thaliana nine-specific-lipoxygenase encoding gene, LOX1, which...

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Autores principales: Montillet, Jean-Luc, Leonhardt, Nathalie, Mondy, Samuel, Tranchimand, Sylvain, Rumeau, Dominique, Boudsocq, Marie, Garcia, Ana Victoria, Douki, Thierry, Bigeard, Jean, Laurière, Christiane, Chevalier, Anne, Castresana, Carmen, Hirt, Heribert
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3602010/
https://www.ncbi.nlm.nih.gov/pubmed/23526882
http://dx.doi.org/10.1371/journal.pbio.1001513
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author Montillet, Jean-Luc
Leonhardt, Nathalie
Mondy, Samuel
Tranchimand, Sylvain
Rumeau, Dominique
Boudsocq, Marie
Garcia, Ana Victoria
Douki, Thierry
Bigeard, Jean
Laurière, Christiane
Chevalier, Anne
Castresana, Carmen
Hirt, Heribert
author_facet Montillet, Jean-Luc
Leonhardt, Nathalie
Mondy, Samuel
Tranchimand, Sylvain
Rumeau, Dominique
Boudsocq, Marie
Garcia, Ana Victoria
Douki, Thierry
Bigeard, Jean
Laurière, Christiane
Chevalier, Anne
Castresana, Carmen
Hirt, Heribert
author_sort Montillet, Jean-Luc
collection PubMed
description Plant stomata function in innate immunity against bacterial invasion and abscisic acid (ABA) has been suggested to regulate this process. Using genetic, biochemical, and pharmacological approaches, we demonstrate that (i) the Arabidopsis thaliana nine-specific-lipoxygenase encoding gene, LOX1, which is expressed in guard cells, is required to trigger stomatal closure in response to both bacteria and the pathogen-associated molecular pattern flagellin peptide flg22; (ii) LOX1 participates in stomatal defense; (iii) polyunsaturated fatty acids, the LOX substrates, trigger stomatal closure; (iv) the LOX products, fatty acid hydroperoxides, or reactive electrophile oxylipins induce stomatal closure; and (v) the flg22-mediated stomatal closure is conveyed by both LOX1 and the mitogen-activated protein kinases MPK3 and MPK6 and involves salicylic acid whereas the ABA-induced process depends on the protein kinases OST1, MPK9, or MPK12. Finally, we show that the oxylipin and the ABA pathways converge at the level of the anion channel SLAC1 to regulate stomatal closure. Collectively, our results demonstrate that early biotic signaling in guard cells is an ABA-independent process revealing a novel function of LOX1-dependent stomatal pathway in plant immunity.
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spelling pubmed-36020102013-03-22 An Abscisic Acid-Independent Oxylipin Pathway Controls Stomatal Closure and Immune Defense in Arabidopsis Montillet, Jean-Luc Leonhardt, Nathalie Mondy, Samuel Tranchimand, Sylvain Rumeau, Dominique Boudsocq, Marie Garcia, Ana Victoria Douki, Thierry Bigeard, Jean Laurière, Christiane Chevalier, Anne Castresana, Carmen Hirt, Heribert PLoS Biol Research Article Plant stomata function in innate immunity against bacterial invasion and abscisic acid (ABA) has been suggested to regulate this process. Using genetic, biochemical, and pharmacological approaches, we demonstrate that (i) the Arabidopsis thaliana nine-specific-lipoxygenase encoding gene, LOX1, which is expressed in guard cells, is required to trigger stomatal closure in response to both bacteria and the pathogen-associated molecular pattern flagellin peptide flg22; (ii) LOX1 participates in stomatal defense; (iii) polyunsaturated fatty acids, the LOX substrates, trigger stomatal closure; (iv) the LOX products, fatty acid hydroperoxides, or reactive electrophile oxylipins induce stomatal closure; and (v) the flg22-mediated stomatal closure is conveyed by both LOX1 and the mitogen-activated protein kinases MPK3 and MPK6 and involves salicylic acid whereas the ABA-induced process depends on the protein kinases OST1, MPK9, or MPK12. Finally, we show that the oxylipin and the ABA pathways converge at the level of the anion channel SLAC1 to regulate stomatal closure. Collectively, our results demonstrate that early biotic signaling in guard cells is an ABA-independent process revealing a novel function of LOX1-dependent stomatal pathway in plant immunity. Public Library of Science 2013-03-19 /pmc/articles/PMC3602010/ /pubmed/23526882 http://dx.doi.org/10.1371/journal.pbio.1001513 Text en © 2013 Montillet 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, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Montillet, Jean-Luc
Leonhardt, Nathalie
Mondy, Samuel
Tranchimand, Sylvain
Rumeau, Dominique
Boudsocq, Marie
Garcia, Ana Victoria
Douki, Thierry
Bigeard, Jean
Laurière, Christiane
Chevalier, Anne
Castresana, Carmen
Hirt, Heribert
An Abscisic Acid-Independent Oxylipin Pathway Controls Stomatal Closure and Immune Defense in Arabidopsis
title An Abscisic Acid-Independent Oxylipin Pathway Controls Stomatal Closure and Immune Defense in Arabidopsis
title_full An Abscisic Acid-Independent Oxylipin Pathway Controls Stomatal Closure and Immune Defense in Arabidopsis
title_fullStr An Abscisic Acid-Independent Oxylipin Pathway Controls Stomatal Closure and Immune Defense in Arabidopsis
title_full_unstemmed An Abscisic Acid-Independent Oxylipin Pathway Controls Stomatal Closure and Immune Defense in Arabidopsis
title_short An Abscisic Acid-Independent Oxylipin Pathway Controls Stomatal Closure and Immune Defense in Arabidopsis
title_sort abscisic acid-independent oxylipin pathway controls stomatal closure and immune defense in arabidopsis
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3602010/
https://www.ncbi.nlm.nih.gov/pubmed/23526882
http://dx.doi.org/10.1371/journal.pbio.1001513
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