Impact of application of zinc oxide nanoparticles on callus induction, plant regeneration, element content and antioxidant enzyme activity in tomato (Solanum lycopersicum Mill.) under salt stress

The properties of nanomaterials and their potential applications have been given considerable attention by researchers in various fields, especially agricultural biotechnology. However, not much has been done to evaluate the role or effect of zinc oxide nanoparticles (ZnO-NP) in regulating...

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Main Authors: Alharby Hesham F., Metwali Ehab M.R., Fuller Michael P., Aldhebiani Amal Y.
Format: Article
Language:English
Published: University of Belgrade, University of Novi Sad 2016-01-01
Series:Archives of Biological Sciences
Subjects:
Online Access:http://www.doiserbia.nb.rs/img/doi/0354-4664/2016/0354-46641600017A.pdf
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spelling doaj-23889bd3e3bb4adb8a7915fadd898d8a2020-11-24T23:35:44ZengUniversity of Belgrade, University of Novi SadArchives of Biological Sciences0354-46641821-43392016-01-0168472373510.2298/ABS151105017A0354-46641600017AImpact of application of zinc oxide nanoparticles on callus induction, plant regeneration, element content and antioxidant enzyme activity in tomato (Solanum lycopersicum Mill.) under salt stressAlharby Hesham F.0Metwali Ehab M.R.1Fuller Michael P.2Aldhebiani Amal Y.3King Abdulaziz University, Faculty of Science, Department of Biological Sciences, Jeddah, Saudi ArabiaUniversity of Jeddah, Faculty of Science, Biological Science Department, Jeddah, Saudi Arabia + Suez Canal University, Faculty of Agriculture, Botany Department, Ismailia, EgyptSchool of Biological Sciences, Faculty of Science and Engineering, Plymouth University, Plymouth, PL AA, UKKing Abdulaziz University, Faculty of Science, Department of Biological Sciences, Jeddah, Saudi ArabiaThe properties of nanomaterials and their potential applications have been given considerable attention by researchers in various fields, especially agricultural biotechnology. However, not much has been done to evaluate the role or effect of zinc oxide nanoparticles (ZnO-NP) in regulating physiological and biochemical processes in response to salt-induced stress. For this purpose, some callus growth traits, plant regeneration rate, mineral element (sodium, potassium, phosphorous and nitrogen) contents and changes in the activity of superoxide dismutase (SOD) and glutathione peroxidase (GPX) in tissues of five tomato cultivars were investigated in a callus culture exposed to elevated concentrations of salt (3.0 and 6.0 g L-1NaCl), and in the presence of zinc oxide nanoparticles (15 and 30 mg L-1). The relative callus growth rate was inhibited by 3.0 g L-1 NaCl; this was increased dramatically at 6.0 g L-1. Increasing exposure to NaCl was associated with a significantly higher sodium content and SOD and GPX activities. Zinc oxide nanoparticles mitigated the effects of NaCl, and in this application of lower concentrations (15 mg L-1) was more effective than a higher concentration (30 mg L-1). This finding indicates that zinc oxide nanoparticles should be investigated further as a potential anti-stress agent in crop production. Different tomato cultivars showed different degrees of tolerance to salinity in the presence of ZnO-NP. The cultivars Edkawy, followed by Sandpoint, were less affected by salt stress than the cultivar Anna Aasa.http://www.doiserbia.nb.rs/img/doi/0354-4664/2016/0354-46641600017A.pdfNano biotechnologyin vitro cultureproteinsalinitysuperoxide dismutaseglutathione peroxidase
collection DOAJ
language English
format Article
sources DOAJ
author Alharby Hesham F.
Metwali Ehab M.R.
Fuller Michael P.
Aldhebiani Amal Y.
spellingShingle Alharby Hesham F.
Metwali Ehab M.R.
Fuller Michael P.
Aldhebiani Amal Y.
Impact of application of zinc oxide nanoparticles on callus induction, plant regeneration, element content and antioxidant enzyme activity in tomato (Solanum lycopersicum Mill.) under salt stress
Archives of Biological Sciences
Nano biotechnology
in vitro culture
protein
salinity
superoxide dismutase
glutathione peroxidase
author_facet Alharby Hesham F.
Metwali Ehab M.R.
Fuller Michael P.
Aldhebiani Amal Y.
author_sort Alharby Hesham F.
title Impact of application of zinc oxide nanoparticles on callus induction, plant regeneration, element content and antioxidant enzyme activity in tomato (Solanum lycopersicum Mill.) under salt stress
title_short Impact of application of zinc oxide nanoparticles on callus induction, plant regeneration, element content and antioxidant enzyme activity in tomato (Solanum lycopersicum Mill.) under salt stress
title_full Impact of application of zinc oxide nanoparticles on callus induction, plant regeneration, element content and antioxidant enzyme activity in tomato (Solanum lycopersicum Mill.) under salt stress
title_fullStr Impact of application of zinc oxide nanoparticles on callus induction, plant regeneration, element content and antioxidant enzyme activity in tomato (Solanum lycopersicum Mill.) under salt stress
title_full_unstemmed Impact of application of zinc oxide nanoparticles on callus induction, plant regeneration, element content and antioxidant enzyme activity in tomato (Solanum lycopersicum Mill.) under salt stress
title_sort impact of application of zinc oxide nanoparticles on callus induction, plant regeneration, element content and antioxidant enzyme activity in tomato (solanum lycopersicum mill.) under salt stress
publisher University of Belgrade, University of Novi Sad
series Archives of Biological Sciences
issn 0354-4664
1821-4339
publishDate 2016-01-01
description The properties of nanomaterials and their potential applications have been given considerable attention by researchers in various fields, especially agricultural biotechnology. However, not much has been done to evaluate the role or effect of zinc oxide nanoparticles (ZnO-NP) in regulating physiological and biochemical processes in response to salt-induced stress. For this purpose, some callus growth traits, plant regeneration rate, mineral element (sodium, potassium, phosphorous and nitrogen) contents and changes in the activity of superoxide dismutase (SOD) and glutathione peroxidase (GPX) in tissues of five tomato cultivars were investigated in a callus culture exposed to elevated concentrations of salt (3.0 and 6.0 g L-1NaCl), and in the presence of zinc oxide nanoparticles (15 and 30 mg L-1). The relative callus growth rate was inhibited by 3.0 g L-1 NaCl; this was increased dramatically at 6.0 g L-1. Increasing exposure to NaCl was associated with a significantly higher sodium content and SOD and GPX activities. Zinc oxide nanoparticles mitigated the effects of NaCl, and in this application of lower concentrations (15 mg L-1) was more effective than a higher concentration (30 mg L-1). This finding indicates that zinc oxide nanoparticles should be investigated further as a potential anti-stress agent in crop production. Different tomato cultivars showed different degrees of tolerance to salinity in the presence of ZnO-NP. The cultivars Edkawy, followed by Sandpoint, were less affected by salt stress than the cultivar Anna Aasa.
topic Nano biotechnology
in vitro culture
protein
salinity
superoxide dismutase
glutathione peroxidase
url http://www.doiserbia.nb.rs/img/doi/0354-4664/2016/0354-46641600017A.pdf
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