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Oligomerization and Nitration of the Grass Pollen Allergen Phl p 5 by Ozone, Nitrogen Dioxide, and Peroxynitrite: Reaction Products, Kinetics, and Health Effects

The allergenic and inflammatory potential of proteins can be enhanced by chemical modification upon exposure to atmospheric or physiological oxidants. The molecular mechanisms and kinetics of such modifications, however, have not yet been fully resolved. We investigated the oligomerization and nitra...

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Autores principales: Backes, Anna T., Reinmuth-Selzle, Kathrin, Leifke, Anna Lena, Ziegler, Kira, Krevert, Carola S., Tscheuschner, Georg, Lucas, Kurt, Weller, Michael G., Berkemeier, Thomas, Pöschl, Ulrich, Fröhlich-Nowoisky, Janine
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8303544/
https://www.ncbi.nlm.nih.gov/pubmed/34299235
http://dx.doi.org/10.3390/ijms22147616
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author Backes, Anna T.
Reinmuth-Selzle, Kathrin
Leifke, Anna Lena
Ziegler, Kira
Krevert, Carola S.
Tscheuschner, Georg
Lucas, Kurt
Weller, Michael G.
Berkemeier, Thomas
Pöschl, Ulrich
Fröhlich-Nowoisky, Janine
author_facet Backes, Anna T.
Reinmuth-Selzle, Kathrin
Leifke, Anna Lena
Ziegler, Kira
Krevert, Carola S.
Tscheuschner, Georg
Lucas, Kurt
Weller, Michael G.
Berkemeier, Thomas
Pöschl, Ulrich
Fröhlich-Nowoisky, Janine
author_sort Backes, Anna T.
collection PubMed
description The allergenic and inflammatory potential of proteins can be enhanced by chemical modification upon exposure to atmospheric or physiological oxidants. The molecular mechanisms and kinetics of such modifications, however, have not yet been fully resolved. We investigated the oligomerization and nitration of the grass pollen allergen Phl p 5 by ozone (O(3)), nitrogen dioxide (NO(2)), and peroxynitrite (ONOO(–)). Within several hours of exposure to atmospherically relevant concentration levels of O(3) and NO(2), up to 50% of Phl p 5 were converted into protein oligomers, likely by formation of dityrosine cross-links. Assuming that tyrosine residues are the preferential site of nitration, up to 10% of the 12 tyrosine residues per protein monomer were nitrated. For the reaction with peroxynitrite, the largest oligomer mass fractions (up to 50%) were found for equimolar concentrations of peroxynitrite over tyrosine residues. With excess peroxynitrite, the nitration degrees increased up to 40% whereas the oligomer mass fractions decreased to 20%. Our results suggest that protein oligomerization and nitration are competing processes, which is consistent with a two-step mechanism involving a reactive oxygen intermediate (ROI), as observed for other proteins. The modified proteins can promote pro-inflammatory cellular signaling that may contribute to chronic inflammation and allergies in response to air pollution.
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spelling pubmed-83035442021-07-25 Oligomerization and Nitration of the Grass Pollen Allergen Phl p 5 by Ozone, Nitrogen Dioxide, and Peroxynitrite: Reaction Products, Kinetics, and Health Effects Backes, Anna T. Reinmuth-Selzle, Kathrin Leifke, Anna Lena Ziegler, Kira Krevert, Carola S. Tscheuschner, Georg Lucas, Kurt Weller, Michael G. Berkemeier, Thomas Pöschl, Ulrich Fröhlich-Nowoisky, Janine Int J Mol Sci Article The allergenic and inflammatory potential of proteins can be enhanced by chemical modification upon exposure to atmospheric or physiological oxidants. The molecular mechanisms and kinetics of such modifications, however, have not yet been fully resolved. We investigated the oligomerization and nitration of the grass pollen allergen Phl p 5 by ozone (O(3)), nitrogen dioxide (NO(2)), and peroxynitrite (ONOO(–)). Within several hours of exposure to atmospherically relevant concentration levels of O(3) and NO(2), up to 50% of Phl p 5 were converted into protein oligomers, likely by formation of dityrosine cross-links. Assuming that tyrosine residues are the preferential site of nitration, up to 10% of the 12 tyrosine residues per protein monomer were nitrated. For the reaction with peroxynitrite, the largest oligomer mass fractions (up to 50%) were found for equimolar concentrations of peroxynitrite over tyrosine residues. With excess peroxynitrite, the nitration degrees increased up to 40% whereas the oligomer mass fractions decreased to 20%. Our results suggest that protein oligomerization and nitration are competing processes, which is consistent with a two-step mechanism involving a reactive oxygen intermediate (ROI), as observed for other proteins. The modified proteins can promote pro-inflammatory cellular signaling that may contribute to chronic inflammation and allergies in response to air pollution. MDPI 2021-07-16 /pmc/articles/PMC8303544/ /pubmed/34299235 http://dx.doi.org/10.3390/ijms22147616 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Backes, Anna T.
Reinmuth-Selzle, Kathrin
Leifke, Anna Lena
Ziegler, Kira
Krevert, Carola S.
Tscheuschner, Georg
Lucas, Kurt
Weller, Michael G.
Berkemeier, Thomas
Pöschl, Ulrich
Fröhlich-Nowoisky, Janine
Oligomerization and Nitration of the Grass Pollen Allergen Phl p 5 by Ozone, Nitrogen Dioxide, and Peroxynitrite: Reaction Products, Kinetics, and Health Effects
title Oligomerization and Nitration of the Grass Pollen Allergen Phl p 5 by Ozone, Nitrogen Dioxide, and Peroxynitrite: Reaction Products, Kinetics, and Health Effects
title_full Oligomerization and Nitration of the Grass Pollen Allergen Phl p 5 by Ozone, Nitrogen Dioxide, and Peroxynitrite: Reaction Products, Kinetics, and Health Effects
title_fullStr Oligomerization and Nitration of the Grass Pollen Allergen Phl p 5 by Ozone, Nitrogen Dioxide, and Peroxynitrite: Reaction Products, Kinetics, and Health Effects
title_full_unstemmed Oligomerization and Nitration of the Grass Pollen Allergen Phl p 5 by Ozone, Nitrogen Dioxide, and Peroxynitrite: Reaction Products, Kinetics, and Health Effects
title_short Oligomerization and Nitration of the Grass Pollen Allergen Phl p 5 by Ozone, Nitrogen Dioxide, and Peroxynitrite: Reaction Products, Kinetics, and Health Effects
title_sort oligomerization and nitration of the grass pollen allergen phl p 5 by ozone, nitrogen dioxide, and peroxynitrite: reaction products, kinetics, and health effects
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8303544/
https://www.ncbi.nlm.nih.gov/pubmed/34299235
http://dx.doi.org/10.3390/ijms22147616
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