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Zinc oxide nanoparticles mediated substantial physiological and molecular changes in tomato

There has long been debate about how nanoproducts meet agricultural requirements. This study aimed to investigate tomato responses to the long-time foliar application of zinc oxide nanoparticles (ZnO-NP; 0 and 3 mgl(-1)) or bulk type (BZnO). Both ZnO-NP and BZnO treatments, especially the nanoform,...

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Autores principales: Pejam, Fatemeh, Ardebili, Zahra Oraghi, Ladan-Moghadam, Alireza, Danaee, Elham
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7984648/
https://www.ncbi.nlm.nih.gov/pubmed/33750969
http://dx.doi.org/10.1371/journal.pone.0248778
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author Pejam, Fatemeh
Ardebili, Zahra Oraghi
Ladan-Moghadam, Alireza
Danaee, Elham
author_facet Pejam, Fatemeh
Ardebili, Zahra Oraghi
Ladan-Moghadam, Alireza
Danaee, Elham
author_sort Pejam, Fatemeh
collection PubMed
description There has long been debate about how nanoproducts meet agricultural requirements. This study aimed to investigate tomato responses to the long-time foliar application of zinc oxide nanoparticles (ZnO-NP; 0 and 3 mgl(-1)) or bulk type (BZnO). Both ZnO-NP and BZnO treatments, especially the nanoform, were significantly capable of improving growth, biomass, and yield. The ZnO-NP treatment upregulated the expression of the R2R3MYB transcription factor by 2.6 folds. The BZnO and ZnO-NP treatments transcriptionally up-regulated WRKY1 gene by 2.5 and 6.4 folds, respectively. The bHLH gene was also upregulated in response to BZnO (2.3-fold) or ZnO-NP (4.7-fold). Moreover, the ZnO-NP application made a contribution to upregulation in the EREB gene whereas the bulk compound did not make a significant change. Upregulation in the HsfA1a gene also resulted from the ZnO-NP (2.8-fold) or BZnO (1.6-fold) supplementation. The MKK2 and CAT genes displayed a similar upregulation trend in response to the supplements by an average of 3-folds. While the application of ZnO-NP slightly down-regulated the histone deacetylases (HDA3) gene by 1.9-fold, indicating epigenetic modification. The supplements, especially the nano-product, enhanced concentrations of K, Fe, and Zn in both leaves and fruits. The concentrations of Chla, Chlb, and carotenoids were increased in response to the BZnO or ZnO-NP treatments. Likewise, BZnO or ZnO-NP mediated an increase in activity of nitrate reductase and proline content in leaves. These treatments increased soluble phenols and phenylalanine ammonia-lyase activity. With a similar trend, the BZnO or ZnO-NP application improved the activities of catalase and peroxidase enzymes. The reinforcement in metaxylem and secondary tissues resulted from the applied supplements. This study provides comprehensive comparative evidence on how ZnO-NPs may remodel the chromatin ultrastructure and transcription program, and confer stress tolerance in crops. This study also underlines the necessity of providing integrated transcriptome and proteome data in future studies.
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spelling pubmed-79846482021-04-01 Zinc oxide nanoparticles mediated substantial physiological and molecular changes in tomato Pejam, Fatemeh Ardebili, Zahra Oraghi Ladan-Moghadam, Alireza Danaee, Elham PLoS One Research Article There has long been debate about how nanoproducts meet agricultural requirements. This study aimed to investigate tomato responses to the long-time foliar application of zinc oxide nanoparticles (ZnO-NP; 0 and 3 mgl(-1)) or bulk type (BZnO). Both ZnO-NP and BZnO treatments, especially the nanoform, were significantly capable of improving growth, biomass, and yield. The ZnO-NP treatment upregulated the expression of the R2R3MYB transcription factor by 2.6 folds. The BZnO and ZnO-NP treatments transcriptionally up-regulated WRKY1 gene by 2.5 and 6.4 folds, respectively. The bHLH gene was also upregulated in response to BZnO (2.3-fold) or ZnO-NP (4.7-fold). Moreover, the ZnO-NP application made a contribution to upregulation in the EREB gene whereas the bulk compound did not make a significant change. Upregulation in the HsfA1a gene also resulted from the ZnO-NP (2.8-fold) or BZnO (1.6-fold) supplementation. The MKK2 and CAT genes displayed a similar upregulation trend in response to the supplements by an average of 3-folds. While the application of ZnO-NP slightly down-regulated the histone deacetylases (HDA3) gene by 1.9-fold, indicating epigenetic modification. The supplements, especially the nano-product, enhanced concentrations of K, Fe, and Zn in both leaves and fruits. The concentrations of Chla, Chlb, and carotenoids were increased in response to the BZnO or ZnO-NP treatments. Likewise, BZnO or ZnO-NP mediated an increase in activity of nitrate reductase and proline content in leaves. These treatments increased soluble phenols and phenylalanine ammonia-lyase activity. With a similar trend, the BZnO or ZnO-NP application improved the activities of catalase and peroxidase enzymes. The reinforcement in metaxylem and secondary tissues resulted from the applied supplements. This study provides comprehensive comparative evidence on how ZnO-NPs may remodel the chromatin ultrastructure and transcription program, and confer stress tolerance in crops. This study also underlines the necessity of providing integrated transcriptome and proteome data in future studies. Public Library of Science 2021-03-22 /pmc/articles/PMC7984648/ /pubmed/33750969 http://dx.doi.org/10.1371/journal.pone.0248778 Text en © 2021 Pejam 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 (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Pejam, Fatemeh
Ardebili, Zahra Oraghi
Ladan-Moghadam, Alireza
Danaee, Elham
Zinc oxide nanoparticles mediated substantial physiological and molecular changes in tomato
title Zinc oxide nanoparticles mediated substantial physiological and molecular changes in tomato
title_full Zinc oxide nanoparticles mediated substantial physiological and molecular changes in tomato
title_fullStr Zinc oxide nanoparticles mediated substantial physiological and molecular changes in tomato
title_full_unstemmed Zinc oxide nanoparticles mediated substantial physiological and molecular changes in tomato
title_short Zinc oxide nanoparticles mediated substantial physiological and molecular changes in tomato
title_sort zinc oxide nanoparticles mediated substantial physiological and molecular changes in tomato
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7984648/
https://www.ncbi.nlm.nih.gov/pubmed/33750969
http://dx.doi.org/10.1371/journal.pone.0248778
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