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S-Nitroso-Proteome in Poplar Leaves in Response to Acute Ozone Stress

Protein S-nitrosylation, the covalent binding of nitric oxide (NO) to protein cysteine residues, is one of the main mechanisms of NO signaling in plant and animal cells. Using a combination of the biotin switch assay and label-free LC-MS/MS analysis, we revealed the S-nitroso-proteome of the woody m...

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Autores principales: Vanzo, Elisa, Ghirardo, Andrea, Merl-Pham, Juliane, Lindermayr, Christian, Heller, Werner, Hauck, Stefanie M., Durner, Jörg, Schnitzler, Jörg-Peter
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4156402/
https://www.ncbi.nlm.nih.gov/pubmed/25192423
http://dx.doi.org/10.1371/journal.pone.0106886
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author Vanzo, Elisa
Ghirardo, Andrea
Merl-Pham, Juliane
Lindermayr, Christian
Heller, Werner
Hauck, Stefanie M.
Durner, Jörg
Schnitzler, Jörg-Peter
author_facet Vanzo, Elisa
Ghirardo, Andrea
Merl-Pham, Juliane
Lindermayr, Christian
Heller, Werner
Hauck, Stefanie M.
Durner, Jörg
Schnitzler, Jörg-Peter
author_sort Vanzo, Elisa
collection PubMed
description Protein S-nitrosylation, the covalent binding of nitric oxide (NO) to protein cysteine residues, is one of the main mechanisms of NO signaling in plant and animal cells. Using a combination of the biotin switch assay and label-free LC-MS/MS analysis, we revealed the S-nitroso-proteome of the woody model plant Populus x canescens. Under normal conditions, constitutively S-nitrosylated proteins in poplar leaves and calli comprise all aspects of primary and secondary metabolism. Acute ozone fumigation was applied to elicit ROS-mediated changes of the S-nitroso-proteome. This treatment changed the total nitrite and nitrosothiol contents of poplar leaves and affected the homeostasis of 32 S-nitrosylated proteins. Multivariate data analysis revealed that ozone exposure negatively affected the S-nitrosylation status of leaf proteins: 23 proteins were de-nitrosylated and 9 proteins had increased S-nitrosylation content compared to the control. Phenylalanine ammonia-lyase 2 (log2[ozone/control] = −3.6) and caffeic acid O-methyltransferase (−3.4), key enzymes catalyzing important steps in the phenylpropanoid and subsequent lignin biosynthetic pathways, respectively, were de-nitrosylated upon ozone stress. Measuring the in vivo and in vitro phenylalanine ammonia-lyase activity indicated that the increase of the phenylalanine ammonia-lyase activity in response to acute ozone is partly regulated by de-nitrosylation, which might favor a higher metabolic flux through the phenylpropanoid pathway within minutes after ozone exposure.
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spelling pubmed-41564022014-09-09 S-Nitroso-Proteome in Poplar Leaves in Response to Acute Ozone Stress Vanzo, Elisa Ghirardo, Andrea Merl-Pham, Juliane Lindermayr, Christian Heller, Werner Hauck, Stefanie M. Durner, Jörg Schnitzler, Jörg-Peter PLoS One Research Article Protein S-nitrosylation, the covalent binding of nitric oxide (NO) to protein cysteine residues, is one of the main mechanisms of NO signaling in plant and animal cells. Using a combination of the biotin switch assay and label-free LC-MS/MS analysis, we revealed the S-nitroso-proteome of the woody model plant Populus x canescens. Under normal conditions, constitutively S-nitrosylated proteins in poplar leaves and calli comprise all aspects of primary and secondary metabolism. Acute ozone fumigation was applied to elicit ROS-mediated changes of the S-nitroso-proteome. This treatment changed the total nitrite and nitrosothiol contents of poplar leaves and affected the homeostasis of 32 S-nitrosylated proteins. Multivariate data analysis revealed that ozone exposure negatively affected the S-nitrosylation status of leaf proteins: 23 proteins were de-nitrosylated and 9 proteins had increased S-nitrosylation content compared to the control. Phenylalanine ammonia-lyase 2 (log2[ozone/control] = −3.6) and caffeic acid O-methyltransferase (−3.4), key enzymes catalyzing important steps in the phenylpropanoid and subsequent lignin biosynthetic pathways, respectively, were de-nitrosylated upon ozone stress. Measuring the in vivo and in vitro phenylalanine ammonia-lyase activity indicated that the increase of the phenylalanine ammonia-lyase activity in response to acute ozone is partly regulated by de-nitrosylation, which might favor a higher metabolic flux through the phenylpropanoid pathway within minutes after ozone exposure. Public Library of Science 2014-09-05 /pmc/articles/PMC4156402/ /pubmed/25192423 http://dx.doi.org/10.1371/journal.pone.0106886 Text en © 2014 Vanzo 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
Vanzo, Elisa
Ghirardo, Andrea
Merl-Pham, Juliane
Lindermayr, Christian
Heller, Werner
Hauck, Stefanie M.
Durner, Jörg
Schnitzler, Jörg-Peter
S-Nitroso-Proteome in Poplar Leaves in Response to Acute Ozone Stress
title S-Nitroso-Proteome in Poplar Leaves in Response to Acute Ozone Stress
title_full S-Nitroso-Proteome in Poplar Leaves in Response to Acute Ozone Stress
title_fullStr S-Nitroso-Proteome in Poplar Leaves in Response to Acute Ozone Stress
title_full_unstemmed S-Nitroso-Proteome in Poplar Leaves in Response to Acute Ozone Stress
title_short S-Nitroso-Proteome in Poplar Leaves in Response to Acute Ozone Stress
title_sort s-nitroso-proteome in poplar leaves in response to acute ozone stress
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4156402/
https://www.ncbi.nlm.nih.gov/pubmed/25192423
http://dx.doi.org/10.1371/journal.pone.0106886
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