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Improving Yield Components and Desirable Eating Quality of Two Wheat Genotypes Using Si and NanoSi Particles under Heat Stress

Global climate change is a significant challenge that will significantly lower crop yield and staple grain quality. The present investigation was conducted to assess the effects of the foliar application of either Si (1.5 mM) or Si nanoparticles (1.66 mM) on the yield and grain quality attributes of...

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Autores principales: Helal, Nesma M., Khattab, Hemmat I., Emam, Manal M., Niedbała, Gniewko, Wojciechowski, Tomasz, Hammami, Inès, Alabdallah, Nadiyah M., Darwish, Doaa Bahaa Eldin, El-Mogy, Mohamed M., Hassan, Heba M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9316522/
https://www.ncbi.nlm.nih.gov/pubmed/35890453
http://dx.doi.org/10.3390/plants11141819
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author Helal, Nesma M.
Khattab, Hemmat I.
Emam, Manal M.
Niedbała, Gniewko
Wojciechowski, Tomasz
Hammami, Inès
Alabdallah, Nadiyah M.
Darwish, Doaa Bahaa Eldin
El-Mogy, Mohamed M.
Hassan, Heba M.
author_facet Helal, Nesma M.
Khattab, Hemmat I.
Emam, Manal M.
Niedbała, Gniewko
Wojciechowski, Tomasz
Hammami, Inès
Alabdallah, Nadiyah M.
Darwish, Doaa Bahaa Eldin
El-Mogy, Mohamed M.
Hassan, Heba M.
author_sort Helal, Nesma M.
collection PubMed
description Global climate change is a significant challenge that will significantly lower crop yield and staple grain quality. The present investigation was conducted to assess the effects of the foliar application of either Si (1.5 mM) or Si nanoparticles (1.66 mM) on the yield and grain quality attributes of two wheat genotypes (Triticum aestivum L.), cv. Shandweel 1 and cv. Gemmeiza 9, planted at normal sowing date and late sowing date (heat stress). Si and Si nanoparticles markedly mitigated the observed decline in yield and reduced the heat stress intensity index value at late sowing dates, and improved yield quality via the decreased level of protein, particularly glutenin, as well as the lowered activity of α-amylase in wheat grains, which is considered a step in improving grain quality. Moreover, Si and nanoSi significantly increased the oil absorption capacity (OAC) of the flour of stressed wheat grains. In addition, both silicon and nanosilicon provoked an increase in cellulose, pectin, total phenols, flavonoid, oxalic acid, total antioxidant power, starch and soluble protein contents, as well as Ca and K levels, in heat-stressed wheat straw, concomitant with a decrease in lignin and phytic acid contents. In conclusion, the pronounced positive effects associated with improving yield quantity and quality were observed in stressed Si-treated wheat compared with Si nanoparticle-treated ones, particularly in cv. Gemmeiza 9.
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spelling pubmed-93165222022-07-27 Improving Yield Components and Desirable Eating Quality of Two Wheat Genotypes Using Si and NanoSi Particles under Heat Stress Helal, Nesma M. Khattab, Hemmat I. Emam, Manal M. Niedbała, Gniewko Wojciechowski, Tomasz Hammami, Inès Alabdallah, Nadiyah M. Darwish, Doaa Bahaa Eldin El-Mogy, Mohamed M. Hassan, Heba M. Plants (Basel) Article Global climate change is a significant challenge that will significantly lower crop yield and staple grain quality. The present investigation was conducted to assess the effects of the foliar application of either Si (1.5 mM) or Si nanoparticles (1.66 mM) on the yield and grain quality attributes of two wheat genotypes (Triticum aestivum L.), cv. Shandweel 1 and cv. Gemmeiza 9, planted at normal sowing date and late sowing date (heat stress). Si and Si nanoparticles markedly mitigated the observed decline in yield and reduced the heat stress intensity index value at late sowing dates, and improved yield quality via the decreased level of protein, particularly glutenin, as well as the lowered activity of α-amylase in wheat grains, which is considered a step in improving grain quality. Moreover, Si and nanoSi significantly increased the oil absorption capacity (OAC) of the flour of stressed wheat grains. In addition, both silicon and nanosilicon provoked an increase in cellulose, pectin, total phenols, flavonoid, oxalic acid, total antioxidant power, starch and soluble protein contents, as well as Ca and K levels, in heat-stressed wheat straw, concomitant with a decrease in lignin and phytic acid contents. In conclusion, the pronounced positive effects associated with improving yield quantity and quality were observed in stressed Si-treated wheat compared with Si nanoparticle-treated ones, particularly in cv. Gemmeiza 9. MDPI 2022-07-11 /pmc/articles/PMC9316522/ /pubmed/35890453 http://dx.doi.org/10.3390/plants11141819 Text en © 2022 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
Helal, Nesma M.
Khattab, Hemmat I.
Emam, Manal M.
Niedbała, Gniewko
Wojciechowski, Tomasz
Hammami, Inès
Alabdallah, Nadiyah M.
Darwish, Doaa Bahaa Eldin
El-Mogy, Mohamed M.
Hassan, Heba M.
Improving Yield Components and Desirable Eating Quality of Two Wheat Genotypes Using Si and NanoSi Particles under Heat Stress
title Improving Yield Components and Desirable Eating Quality of Two Wheat Genotypes Using Si and NanoSi Particles under Heat Stress
title_full Improving Yield Components and Desirable Eating Quality of Two Wheat Genotypes Using Si and NanoSi Particles under Heat Stress
title_fullStr Improving Yield Components and Desirable Eating Quality of Two Wheat Genotypes Using Si and NanoSi Particles under Heat Stress
title_full_unstemmed Improving Yield Components and Desirable Eating Quality of Two Wheat Genotypes Using Si and NanoSi Particles under Heat Stress
title_short Improving Yield Components and Desirable Eating Quality of Two Wheat Genotypes Using Si and NanoSi Particles under Heat Stress
title_sort improving yield components and desirable eating quality of two wheat genotypes using si and nanosi particles under heat stress
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9316522/
https://www.ncbi.nlm.nih.gov/pubmed/35890453
http://dx.doi.org/10.3390/plants11141819
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