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Soybean Plant Metabolism under Water Deficit and Xenobiotic and Antioxidant Agent Application

The aim was to evaluate the interactive effects on biochemistry and physiology of soybean plants exposed to simultaneous xenobiotic and water deficit stresses, and the possible attenuation of plant damage by an antioxidant agent. Soybean plants were submitted to eight different soil water potentials...

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Autores principales: Schneider, Julia Renata, Müller, Mariele, Klein, Vilson Antonio, Rossato-Grando, Luciana Grazziotin, Barcelos, Rômulo Pillon, Dalmago, Genei Antonio, Chavarria, Geraldo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7565094/
https://www.ncbi.nlm.nih.gov/pubmed/32899122
http://dx.doi.org/10.3390/biology9090266
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author Schneider, Julia Renata
Müller, Mariele
Klein, Vilson Antonio
Rossato-Grando, Luciana Grazziotin
Barcelos, Rômulo Pillon
Dalmago, Genei Antonio
Chavarria, Geraldo
author_facet Schneider, Julia Renata
Müller, Mariele
Klein, Vilson Antonio
Rossato-Grando, Luciana Grazziotin
Barcelos, Rômulo Pillon
Dalmago, Genei Antonio
Chavarria, Geraldo
author_sort Schneider, Julia Renata
collection PubMed
description The aim was to evaluate the interactive effects on biochemistry and physiology of soybean plants exposed to simultaneous xenobiotic and water deficit stresses, and the possible attenuation of plant damage by an antioxidant agent. Soybean plants were submitted to eight different soil water potentials, in two experiments (first experiment: −0.96, −0.38, −0.07, −0.02 MPa, and second experiment: −3.09, −1.38, −0.69, −0.14 MPa), xenobiotic, and antioxidant agent applications. Was observed a reduction in water status, gas exchange, photosynthetic pigments, photosystem II quantum yield, and increased leaf temperature in plants under low water availability. Water deficit also induced oxidative stress by the increased production of reactive oxygen species, cellular and molecular damage, and induction of the antioxidant defense metabolism, reduction of gas exchange, water status, and photosynthetic efficiency. The xenobiotic application also caused changes, with deleterious effects more pronounced in low soil water availability, mainly the reactive oxygen species production, consequently the antioxidant activity, and the oxidative damages. This indicates different responses to the combination of stresses. Antioxidant enzyme activity was reduced by the application of the antioxidant agent. Principal Component Analysis showed a relation with the antioxidant agent and reactive oxygen species, which is probably due to signaling function, and with defense antioxidant system, mainly glutathione, represented by thiols.
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spelling pubmed-75650942020-10-26 Soybean Plant Metabolism under Water Deficit and Xenobiotic and Antioxidant Agent Application Schneider, Julia Renata Müller, Mariele Klein, Vilson Antonio Rossato-Grando, Luciana Grazziotin Barcelos, Rômulo Pillon Dalmago, Genei Antonio Chavarria, Geraldo Biology (Basel) Article The aim was to evaluate the interactive effects on biochemistry and physiology of soybean plants exposed to simultaneous xenobiotic and water deficit stresses, and the possible attenuation of plant damage by an antioxidant agent. Soybean plants were submitted to eight different soil water potentials, in two experiments (first experiment: −0.96, −0.38, −0.07, −0.02 MPa, and second experiment: −3.09, −1.38, −0.69, −0.14 MPa), xenobiotic, and antioxidant agent applications. Was observed a reduction in water status, gas exchange, photosynthetic pigments, photosystem II quantum yield, and increased leaf temperature in plants under low water availability. Water deficit also induced oxidative stress by the increased production of reactive oxygen species, cellular and molecular damage, and induction of the antioxidant defense metabolism, reduction of gas exchange, water status, and photosynthetic efficiency. The xenobiotic application also caused changes, with deleterious effects more pronounced in low soil water availability, mainly the reactive oxygen species production, consequently the antioxidant activity, and the oxidative damages. This indicates different responses to the combination of stresses. Antioxidant enzyme activity was reduced by the application of the antioxidant agent. Principal Component Analysis showed a relation with the antioxidant agent and reactive oxygen species, which is probably due to signaling function, and with defense antioxidant system, mainly glutathione, represented by thiols. MDPI 2020-09-03 /pmc/articles/PMC7565094/ /pubmed/32899122 http://dx.doi.org/10.3390/biology9090266 Text en © 2020 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Schneider, Julia Renata
Müller, Mariele
Klein, Vilson Antonio
Rossato-Grando, Luciana Grazziotin
Barcelos, Rômulo Pillon
Dalmago, Genei Antonio
Chavarria, Geraldo
Soybean Plant Metabolism under Water Deficit and Xenobiotic and Antioxidant Agent Application
title Soybean Plant Metabolism under Water Deficit and Xenobiotic and Antioxidant Agent Application
title_full Soybean Plant Metabolism under Water Deficit and Xenobiotic and Antioxidant Agent Application
title_fullStr Soybean Plant Metabolism under Water Deficit and Xenobiotic and Antioxidant Agent Application
title_full_unstemmed Soybean Plant Metabolism under Water Deficit and Xenobiotic and Antioxidant Agent Application
title_short Soybean Plant Metabolism under Water Deficit and Xenobiotic and Antioxidant Agent Application
title_sort soybean plant metabolism under water deficit and xenobiotic and antioxidant agent application
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7565094/
https://www.ncbi.nlm.nih.gov/pubmed/32899122
http://dx.doi.org/10.3390/biology9090266
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