Sulfur nanoparticles mediated improvement of salt tolerance in wheat relates to decreasing oxidative stress and regulating metabolic activity

被引:0
作者
Khalil M. Saad-Allah
Gehad A. Ragab
机构
[1] Tanta University,Botany Department, Faculty of Science
来源
Physiology and Molecular Biology of Plants | 2020年 / 26卷
关键词
Salinity; Wheat; Sulfur nanoparticles; Nitrogen metabolism; Antioxidants; Ionic relations;
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学科分类号
摘要
Salinity is a critical issue impairing the growth and productivity of most crop species through the mediated ionic and osmotic imbalances. As a way forward, the current study was tailored to elucidate the capacity of sulfur nanoparticles (SNPs) to amend salinity consequences on growth and physio-biochemical attributes of wheat. In a controlled experiment, wheat seeds were primed for 12 h with either 100 μM SNPs or deionized water then sown in plastic pots containing 5 kg clay-sand mixture (2:1 w/w). A week later, pots received NaCl (100 or 200 mM) as a sole treatment or in combination with SNPs and after three weeks the data of morph-bio-physiological traits were recorded. Salinity decreased growth rate, pigmentation, protein, amino acids, cysteine, ascorbate, flavonoids and phenolics content in wheat leaves. Plants pre-treated with 100 μM SNPs showed improved growth rate, pigmentation, nitrogen metabolism as well as non-enzymatic antioxidant contents as compared with salinized treatments. Neither salt nor SNP treatments affected photosynthetic performance rate (Fv/fm), however both treatments induced glutathione content. SNP treatment retrieved the undue excessive activities of catalase (CAT), peroxidase (POD), ascorbate peroxidase (APX), superoxide dismutase (SOD) and polyphenol oxidase (PPO) besides the increased level of proline caused by salt stress. Likewise, 100 μM SNPs rebalanced the declined nitrogen, phosphorus and potassium contents and decreased sodium uptake caused by salinity. On the whole, priming with 100 μM SNPs improved photosynthetic pigments, nitrogen metabolism, antioxidant status and ionic relations contributing to the enhancement of growth attributes in wheat under salinity.
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页码:2209 / 2223
页数:14
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  • [31] Fatima T(2014)Salinity induced oxidative stress and antioxidant system in salt-tolerant and salt-sensitive cultivars of rice ( Trop J Pharm Res 13 1783-1789
  • [32] Mishra I(1983) L.) Plant Soil 70 303-307
  • [33] Verma M(2005)Plant phenolics: recent advances on their biosynthesis, genetics, and ecophysiology Indian J Plant Physiol 10 73-75
  • [34] Mishra J(1978)Effect of salt stress on antioxidative enzymes and lipid peroxidation in leaves and roots of salt-tolerant and salt-sensitive maize genotypes Planta 139 9-17
  • [35] Mishra V(2016)Influence of salinity stress on photosynthesis and antioxidative systems in two cotton varieties Saudi J Biol Sci 23 39-47
  • [36] Asghar T(1968)High-temperature stress alleviation by selenium nanoparticle treatment in grain sorghum Arch Biochem Biophys 125 189-198
  • [37] Iqbal M(2011)Salt resistance of tomato species grown in sand culture Front Agric China 5 1-14
  • [38] Jamil Y(2018)Ameliorative effects of TiO Chem Int 4 60-66
  • [39] Zia-ul-Haq NJ(2017) nanoparticles and sodium nitroprusside on seed germination and seedling growth of wheat under PEG-stimulated drought stress Front Plant Sci 8 1768-90
  • [40] Shahid M(2012)A spectrophotometric method for the direct determination of cysteine in the presence of other naturally occurring amino acids Environ Exp Bot 78 84-107