Cargando…

Mulberry based zinc nano-particles mitigate salinity induced toxic effects and improve the grain yield and zinc bio-fortification of wheat by improving antioxidant activities, photosynthetic performance, and accumulation of osmolytes and hormones

Salinity stress (SS) is a challenging abiotic stress that limits crop growth and productivity. Sustainable and cost effective methods are needed to improve crop production and decrease the deleterious impacts of SS. Zinc (Zn) nano-particles (NPs) have emerged as an important approach to regulating p...

Descripción completa

Detalles Bibliográficos
Autores principales: Chattha, Muhammad Umer, Amjad, Tahira, Khan, Imran, Nawaz, Muhammad, Ali, Muqarrab, Chattha, Muhammad Bilal, Ali, Hayssam M., Ghareeb, Rehab Y., Abdelsalam, Nader R., Azmat, Saira, Barbanti, Lorenzo, Hassan, Muhammad Umair
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9551613/
https://www.ncbi.nlm.nih.gov/pubmed/36237512
http://dx.doi.org/10.3389/fpls.2022.920570
_version_ 1784806143373082624
author Chattha, Muhammad Umer
Amjad, Tahira
Khan, Imran
Nawaz, Muhammad
Ali, Muqarrab
Chattha, Muhammad Bilal
Ali, Hayssam M.
Ghareeb, Rehab Y.
Abdelsalam, Nader R.
Azmat, Saira
Barbanti, Lorenzo
Hassan, Muhammad Umair
author_facet Chattha, Muhammad Umer
Amjad, Tahira
Khan, Imran
Nawaz, Muhammad
Ali, Muqarrab
Chattha, Muhammad Bilal
Ali, Hayssam M.
Ghareeb, Rehab Y.
Abdelsalam, Nader R.
Azmat, Saira
Barbanti, Lorenzo
Hassan, Muhammad Umair
author_sort Chattha, Muhammad Umer
collection PubMed
description Salinity stress (SS) is a challenging abiotic stress that limits crop growth and productivity. Sustainable and cost effective methods are needed to improve crop production and decrease the deleterious impacts of SS. Zinc (Zn) nano-particles (NPs) have emerged as an important approach to regulating plant tolerance against SS. However, the mechanisms of SS tolerance mediated by Zn-NPs are not fully explained. Thus, this study was performed to explore the role of Zn-NPs (seed priming and foliar spray) in reducing the deleterious impacts of SS on wheat plants. The study comprised different SS levels: control, 6 and 12 dS m(−1), and different Zn-NPs treatments: control, seed priming (40 ppm), foliar spray (20 ppm), and their combination. Salinity stress markedly reduced plant growth, biomass, and grain yield. This was associated with enhanced electrolyte leakage (EL), malondialdehyde (MDA), hydrogen peroxide (H(2)O(2)), sodium (Na), chloride (Cl) accumulation, reduced photosynthetic pigments, relative water contents (RWC), photosynthetic rate (Pn), transpiration rate (Tr), stomata conductance (Gs), water use efficiency (WUE), free amino acids (FAA), total soluble protein (TSP), indole acetic acid (IAA), gibberellic acid (GA), and nutrients (Ca, Mg, K, N, and P). However, the application of Zn-NPs significantly improved the yield of the wheat crop, which was associated with reduced abscisic acid (ABA), MDA, H(2)O(2) concentration, and EL, owing to improved antioxidant activities, and an increase in RWC, Pn, Tr, WUE, and the accumulation of osmoregulating compounds (proline, soluble sugars, TSP, and FAA) and hormones (GA and IAA). Furthermore, Zn-NPs contrasted the salinity-induced uptake of toxic ions (Na and Cl) and increased the uptake of Ca, K, Mg, N, and P. Additionally, Zn-NPs application substantially increased the wheat grain Zn bio-fortification. Our results support previous findings on the role of Zn-NPs in wheat growth, yield, and grain Zn bio-fortification, demonstrating that beneficial effects are obtained under normal as well as adverse conditions, thanks to improved physiological activity and the accumulation of useful compounds. This sets the premise for general use of Zn-NPs in wheat, to which aim more experimental evidence is intensively being sought. Further studies are needed at the genomic, transcriptomic, proteomic, and metabolomic level to better acknowledge the mechanisms of general physiological enhancement observed with Zn-NPs application.
format Online
Article
Text
id pubmed-9551613
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher Frontiers Media S.A.
record_format MEDLINE/PubMed
spelling pubmed-95516132022-10-12 Mulberry based zinc nano-particles mitigate salinity induced toxic effects and improve the grain yield and zinc bio-fortification of wheat by improving antioxidant activities, photosynthetic performance, and accumulation of osmolytes and hormones Chattha, Muhammad Umer Amjad, Tahira Khan, Imran Nawaz, Muhammad Ali, Muqarrab Chattha, Muhammad Bilal Ali, Hayssam M. Ghareeb, Rehab Y. Abdelsalam, Nader R. Azmat, Saira Barbanti, Lorenzo Hassan, Muhammad Umair Front Plant Sci Plant Science Salinity stress (SS) is a challenging abiotic stress that limits crop growth and productivity. Sustainable and cost effective methods are needed to improve crop production and decrease the deleterious impacts of SS. Zinc (Zn) nano-particles (NPs) have emerged as an important approach to regulating plant tolerance against SS. However, the mechanisms of SS tolerance mediated by Zn-NPs are not fully explained. Thus, this study was performed to explore the role of Zn-NPs (seed priming and foliar spray) in reducing the deleterious impacts of SS on wheat plants. The study comprised different SS levels: control, 6 and 12 dS m(−1), and different Zn-NPs treatments: control, seed priming (40 ppm), foliar spray (20 ppm), and their combination. Salinity stress markedly reduced plant growth, biomass, and grain yield. This was associated with enhanced electrolyte leakage (EL), malondialdehyde (MDA), hydrogen peroxide (H(2)O(2)), sodium (Na), chloride (Cl) accumulation, reduced photosynthetic pigments, relative water contents (RWC), photosynthetic rate (Pn), transpiration rate (Tr), stomata conductance (Gs), water use efficiency (WUE), free amino acids (FAA), total soluble protein (TSP), indole acetic acid (IAA), gibberellic acid (GA), and nutrients (Ca, Mg, K, N, and P). However, the application of Zn-NPs significantly improved the yield of the wheat crop, which was associated with reduced abscisic acid (ABA), MDA, H(2)O(2) concentration, and EL, owing to improved antioxidant activities, and an increase in RWC, Pn, Tr, WUE, and the accumulation of osmoregulating compounds (proline, soluble sugars, TSP, and FAA) and hormones (GA and IAA). Furthermore, Zn-NPs contrasted the salinity-induced uptake of toxic ions (Na and Cl) and increased the uptake of Ca, K, Mg, N, and P. Additionally, Zn-NPs application substantially increased the wheat grain Zn bio-fortification. Our results support previous findings on the role of Zn-NPs in wheat growth, yield, and grain Zn bio-fortification, demonstrating that beneficial effects are obtained under normal as well as adverse conditions, thanks to improved physiological activity and the accumulation of useful compounds. This sets the premise for general use of Zn-NPs in wheat, to which aim more experimental evidence is intensively being sought. Further studies are needed at the genomic, transcriptomic, proteomic, and metabolomic level to better acknowledge the mechanisms of general physiological enhancement observed with Zn-NPs application. Frontiers Media S.A. 2022-09-27 /pmc/articles/PMC9551613/ /pubmed/36237512 http://dx.doi.org/10.3389/fpls.2022.920570 Text en Copyright © 2022 Chattha, Amjad, Khan, Nawaz, Ali, Chattha, Ali, Ghareeb, Abdelsalam, Azmat, Barbanti and Hassan. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Plant Science
Chattha, Muhammad Umer
Amjad, Tahira
Khan, Imran
Nawaz, Muhammad
Ali, Muqarrab
Chattha, Muhammad Bilal
Ali, Hayssam M.
Ghareeb, Rehab Y.
Abdelsalam, Nader R.
Azmat, Saira
Barbanti, Lorenzo
Hassan, Muhammad Umair
Mulberry based zinc nano-particles mitigate salinity induced toxic effects and improve the grain yield and zinc bio-fortification of wheat by improving antioxidant activities, photosynthetic performance, and accumulation of osmolytes and hormones
title Mulberry based zinc nano-particles mitigate salinity induced toxic effects and improve the grain yield and zinc bio-fortification of wheat by improving antioxidant activities, photosynthetic performance, and accumulation of osmolytes and hormones
title_full Mulberry based zinc nano-particles mitigate salinity induced toxic effects and improve the grain yield and zinc bio-fortification of wheat by improving antioxidant activities, photosynthetic performance, and accumulation of osmolytes and hormones
title_fullStr Mulberry based zinc nano-particles mitigate salinity induced toxic effects and improve the grain yield and zinc bio-fortification of wheat by improving antioxidant activities, photosynthetic performance, and accumulation of osmolytes and hormones
title_full_unstemmed Mulberry based zinc nano-particles mitigate salinity induced toxic effects and improve the grain yield and zinc bio-fortification of wheat by improving antioxidant activities, photosynthetic performance, and accumulation of osmolytes and hormones
title_short Mulberry based zinc nano-particles mitigate salinity induced toxic effects and improve the grain yield and zinc bio-fortification of wheat by improving antioxidant activities, photosynthetic performance, and accumulation of osmolytes and hormones
title_sort mulberry based zinc nano-particles mitigate salinity induced toxic effects and improve the grain yield and zinc bio-fortification of wheat by improving antioxidant activities, photosynthetic performance, and accumulation of osmolytes and hormones
topic Plant Science
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9551613/
https://www.ncbi.nlm.nih.gov/pubmed/36237512
http://dx.doi.org/10.3389/fpls.2022.920570
work_keys_str_mv AT chatthamuhammadumer mulberrybasedzincnanoparticlesmitigatesalinityinducedtoxiceffectsandimprovethegrainyieldandzincbiofortificationofwheatbyimprovingantioxidantactivitiesphotosyntheticperformanceandaccumulationofosmolytesandhormones
AT amjadtahira mulberrybasedzincnanoparticlesmitigatesalinityinducedtoxiceffectsandimprovethegrainyieldandzincbiofortificationofwheatbyimprovingantioxidantactivitiesphotosyntheticperformanceandaccumulationofosmolytesandhormones
AT khanimran mulberrybasedzincnanoparticlesmitigatesalinityinducedtoxiceffectsandimprovethegrainyieldandzincbiofortificationofwheatbyimprovingantioxidantactivitiesphotosyntheticperformanceandaccumulationofosmolytesandhormones
AT nawazmuhammad mulberrybasedzincnanoparticlesmitigatesalinityinducedtoxiceffectsandimprovethegrainyieldandzincbiofortificationofwheatbyimprovingantioxidantactivitiesphotosyntheticperformanceandaccumulationofosmolytesandhormones
AT alimuqarrab mulberrybasedzincnanoparticlesmitigatesalinityinducedtoxiceffectsandimprovethegrainyieldandzincbiofortificationofwheatbyimprovingantioxidantactivitiesphotosyntheticperformanceandaccumulationofosmolytesandhormones
AT chatthamuhammadbilal mulberrybasedzincnanoparticlesmitigatesalinityinducedtoxiceffectsandimprovethegrainyieldandzincbiofortificationofwheatbyimprovingantioxidantactivitiesphotosyntheticperformanceandaccumulationofosmolytesandhormones
AT alihayssamm mulberrybasedzincnanoparticlesmitigatesalinityinducedtoxiceffectsandimprovethegrainyieldandzincbiofortificationofwheatbyimprovingantioxidantactivitiesphotosyntheticperformanceandaccumulationofosmolytesandhormones
AT ghareebrehaby mulberrybasedzincnanoparticlesmitigatesalinityinducedtoxiceffectsandimprovethegrainyieldandzincbiofortificationofwheatbyimprovingantioxidantactivitiesphotosyntheticperformanceandaccumulationofosmolytesandhormones
AT abdelsalamnaderr mulberrybasedzincnanoparticlesmitigatesalinityinducedtoxiceffectsandimprovethegrainyieldandzincbiofortificationofwheatbyimprovingantioxidantactivitiesphotosyntheticperformanceandaccumulationofosmolytesandhormones
AT azmatsaira mulberrybasedzincnanoparticlesmitigatesalinityinducedtoxiceffectsandimprovethegrainyieldandzincbiofortificationofwheatbyimprovingantioxidantactivitiesphotosyntheticperformanceandaccumulationofosmolytesandhormones
AT barbantilorenzo mulberrybasedzincnanoparticlesmitigatesalinityinducedtoxiceffectsandimprovethegrainyieldandzincbiofortificationofwheatbyimprovingantioxidantactivitiesphotosyntheticperformanceandaccumulationofosmolytesandhormones
AT hassanmuhammadumair mulberrybasedzincnanoparticlesmitigatesalinityinducedtoxiceffectsandimprovethegrainyieldandzincbiofortificationofwheatbyimprovingantioxidantactivitiesphotosyntheticperformanceandaccumulationofosmolytesandhormones