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Silicon fertilization counteracts salinity-induced damages associated with changes in physio-biochemical modulations in spinach

Plant growth and productivity are limited by the severe impact of salt stress on the fundamental physiological processes. Silicon (Si) supplementation is one of the promising techniques to improve the resilience of plants under salt stress. This study deals with the response of exogenous Si applicat...

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Autores principales: Naz, Riffat, Zaman, Qamar uz, Nazir, Saba, Komal, Nayab, Chen, Yinglong, Ashraf, Kamran, Al-Huqail, Asma A., Alfagham, Alanoud, Siddiqui, Manzer H., Ali, Hayssam M., Khan, Faheema, Sultan, Khawar, Khosa, Quratulain
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9182609/
https://www.ncbi.nlm.nih.gov/pubmed/35679266
http://dx.doi.org/10.1371/journal.pone.0267939
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author Naz, Riffat
Zaman, Qamar uz
Nazir, Saba
Komal, Nayab
Chen, Yinglong
Ashraf, Kamran
Al-Huqail, Asma A.
Alfagham, Alanoud
Siddiqui, Manzer H.
Ali, Hayssam M.
Khan, Faheema
Sultan, Khawar
Khosa, Quratulain
author_facet Naz, Riffat
Zaman, Qamar uz
Nazir, Saba
Komal, Nayab
Chen, Yinglong
Ashraf, Kamran
Al-Huqail, Asma A.
Alfagham, Alanoud
Siddiqui, Manzer H.
Ali, Hayssam M.
Khan, Faheema
Sultan, Khawar
Khosa, Quratulain
author_sort Naz, Riffat
collection PubMed
description Plant growth and productivity are limited by the severe impact of salt stress on the fundamental physiological processes. Silicon (Si) supplementation is one of the promising techniques to improve the resilience of plants under salt stress. This study deals with the response of exogenous Si applications (0, 2, 4, and 6 mM) on growth, gaseous exchange, ion homeostasis and antioxidant enzyme activities in spinach grown under saline conditions (150 mM NaCl). Salinity stress markedly reduced the growth, physiological, biochemical, water availability, photosynthesis, enzymatic antioxidants, and ionic status in spinach leaves. Salt stress significantly enhanced leaf Na(+) contents in spinach plants. Supplementary foliar application of Si (4 mM) alleviated salt toxicity, by modulating the physiological and photosynthetic attributes and decreasing electrolyte leakage, and activities of SOD, POD and CAT. Moreover, Si-induced mitigation of salt stress was due to the depreciation in Na(+)/K(+) ratio, Na(+) ion uptake at the surface of spinach roots, and translocation in plant tissues, thereby reducing the Na(+) ion accumulation. Foliar applied Si (4 mM) ameliorates ionic toxicity by decreasing Na(+) uptake. Overall, the results illustrate that foliar applied Si induced resistance against salinity stress in spinach by regulating the physiology, antioxidant metabolism, and ionic homeostasis. We advocate that exogenous Si supplementation is a practical approach that will allow spinach plants to recover from salt toxicity.
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spelling pubmed-91826092022-06-10 Silicon fertilization counteracts salinity-induced damages associated with changes in physio-biochemical modulations in spinach Naz, Riffat Zaman, Qamar uz Nazir, Saba Komal, Nayab Chen, Yinglong Ashraf, Kamran Al-Huqail, Asma A. Alfagham, Alanoud Siddiqui, Manzer H. Ali, Hayssam M. Khan, Faheema Sultan, Khawar Khosa, Quratulain PLoS One Research Article Plant growth and productivity are limited by the severe impact of salt stress on the fundamental physiological processes. Silicon (Si) supplementation is one of the promising techniques to improve the resilience of plants under salt stress. This study deals with the response of exogenous Si applications (0, 2, 4, and 6 mM) on growth, gaseous exchange, ion homeostasis and antioxidant enzyme activities in spinach grown under saline conditions (150 mM NaCl). Salinity stress markedly reduced the growth, physiological, biochemical, water availability, photosynthesis, enzymatic antioxidants, and ionic status in spinach leaves. Salt stress significantly enhanced leaf Na(+) contents in spinach plants. Supplementary foliar application of Si (4 mM) alleviated salt toxicity, by modulating the physiological and photosynthetic attributes and decreasing electrolyte leakage, and activities of SOD, POD and CAT. Moreover, Si-induced mitigation of salt stress was due to the depreciation in Na(+)/K(+) ratio, Na(+) ion uptake at the surface of spinach roots, and translocation in plant tissues, thereby reducing the Na(+) ion accumulation. Foliar applied Si (4 mM) ameliorates ionic toxicity by decreasing Na(+) uptake. Overall, the results illustrate that foliar applied Si induced resistance against salinity stress in spinach by regulating the physiology, antioxidant metabolism, and ionic homeostasis. We advocate that exogenous Si supplementation is a practical approach that will allow spinach plants to recover from salt toxicity. Public Library of Science 2022-06-09 /pmc/articles/PMC9182609/ /pubmed/35679266 http://dx.doi.org/10.1371/journal.pone.0267939 Text en © 2022 Naz et al https://creativecommons.org/licenses/by/4.0/This is an open access article distributed under the terms of the Creative Commons Attribution License (https://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
Naz, Riffat
Zaman, Qamar uz
Nazir, Saba
Komal, Nayab
Chen, Yinglong
Ashraf, Kamran
Al-Huqail, Asma A.
Alfagham, Alanoud
Siddiqui, Manzer H.
Ali, Hayssam M.
Khan, Faheema
Sultan, Khawar
Khosa, Quratulain
Silicon fertilization counteracts salinity-induced damages associated with changes in physio-biochemical modulations in spinach
title Silicon fertilization counteracts salinity-induced damages associated with changes in physio-biochemical modulations in spinach
title_full Silicon fertilization counteracts salinity-induced damages associated with changes in physio-biochemical modulations in spinach
title_fullStr Silicon fertilization counteracts salinity-induced damages associated with changes in physio-biochemical modulations in spinach
title_full_unstemmed Silicon fertilization counteracts salinity-induced damages associated with changes in physio-biochemical modulations in spinach
title_short Silicon fertilization counteracts salinity-induced damages associated with changes in physio-biochemical modulations in spinach
title_sort silicon fertilization counteracts salinity-induced damages associated with changes in physio-biochemical modulations in spinach
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9182609/
https://www.ncbi.nlm.nih.gov/pubmed/35679266
http://dx.doi.org/10.1371/journal.pone.0267939
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