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Plant sciences, sustainable farming systems and food quality
RESEARCH ARTICLE

Resistance to NaCl salinity is positively correlated with iron and zinc uptake potential of wheat genotypes

Ghulam Abbas https://orcid.org/0000-0003-1074-7530 A * , Sadia Rehman A , Muhmmad Saqib B , Muhammad Amjad A , Behzad Murtaza A , Manzer H. Siddiqui C and Yinglong Chen https://orcid.org/0000-0003-0798-8683 D
+ Author Affiliations
- Author Affiliations

A Department of Environmental Sciences, COMSATS University Islamabad, Vehari Campus, Vehari 61100, Pakistan.

B Institute of Soil and Environmental Sciences, University of Agriculture, Faisalabad 38000, Pakistan.

C Department of Botany and Microbiology, College of Science, King Saud University, Riyadh 2455, Saudi Arabia.

D The UWA Institute of Agriculture, UWA School of Agriculture and Environment, The University of Western Australia, Perth, WA 6001, Australia.


Handling Editor: Shahid Hussain

Crop & Pasture Science 73(5) 546-555 https://doi.org/10.1071/CP21478
Submitted: 29 June 2021  Accepted: 4 November 2021   Published: 21 March 2022

© 2022 The Author(s) (or their employer(s)). Published by CSIRO Publishing

Abstract

Context: Soil salinity is a serious environmental issue that is drastically reducing crop productivity via limiting the uptake of important micronutrients including iron (Fe) and zinc (Zn).

Aims: To identify the wheat genotypes with better Fe and Zn uptake potential under saline conditions.

Methods: The seedlings of eight wheat genotypes (SARC-1, SARC-2, SARC-3, SARC-4, SARC-5, SARC-6, SARC-7 and SARC-8) were exposed to salinity (100 mM NaCl), deficiency of Fe and Zn (one-fourth of the control) and their combination of salinity and deficiency of Fe and Zn, created usingHoagland’s nutrient solution for 28 days.

Key Results: It was noticed that root and shoot growth of all the genotypes decreased due to salinity and nutrient (Fe and Zn) deficiency, and even higher in their combined treatment. The concentration of Na increased while K decreased under both salinity alone and it's combination with nutrient deficiency. The concentrations and uptake of Fe and Zn greatly decreased in the combinedapplication of salinity and nutrient deficiency followed by nutrient deficiency and saline treatments. Multivariate analysis showed that Na uptake was the major reason for the limited growth and nutrient uptake by wheat genotypes.

Conclusions: SARC-5 was the most sensitive genotype against salinity and nutrient deficiency. In contrast, SARC-1 was the most tolerant genotype against salinity, whichaccumulated the highest contents of both Fe and Zn. Among the eight genotypes used in the present study, SARC-1 is the most suitable genotype for cultivation on Zn and Fe deficient saline soils.

Implications: The obtained results would be very helpful for ensuring food security and quality in salt affected areas.

Keywords: Fe, genotypic variation, Na, multivariate analysis, nutrient deficiency, salt stress, salt-tolerant wheat genotypes, Zn.


References

Abbas G, Saqib M, Rafique Q, Rahman MA, Akhtar J, Haq MAA, Nasim M (2013) Effect of salinity on grain yield and grain quality of wheat (Triticum aestivum L.). Pakistan Journal of Agricultural Sciences 50, 185–189.

Abbas G, Saqib M, Akhtar J, Murtaza G, Shahid M (2015a) Effect of salinity on rhizosphere acidification and antioxidant activity of two acacia species. Canadian Journal of Forest Research 45, 124–129.
Effect of salinity on rhizosphere acidification and antioxidant activity of two acacia species.Crossref | GoogleScholarGoogle Scholar |

Abbas G, Saqib M, Akhtar J, Haq MAA (2015b) Interactive effects of salinity and iron deficiency on different rice genotypes. Journal of Plant Nutrition and Soil Science 178, 306–311.
Interactive effects of salinity and iron deficiency on different rice genotypes.Crossref | GoogleScholarGoogle Scholar |

Abbas G, Saqib M, Akhtar J, Murtaza G (2017) Physiological and biochemical characterization of Acacia stenophylla and Acacia albida exposed to salinity under hydroponic conditions. Canadian Journal of Forest Research 47, 1293–1301.
Physiological and biochemical characterization of Acacia stenophylla and Acacia albida exposed to salinity under hydroponic conditions.Crossref | GoogleScholarGoogle Scholar |

Abbas G, Chen Y, Khan FY, Feng Y, Palta JA, Siddique KHM (2018) Salinity and low phosphorus differentially affect shoot and root traits in two wheat cultivars with contrasting tolerance to salt. Agronomy 8, 155–170.
Salinity and low phosphorus differentially affect shoot and root traits in two wheat cultivars with contrasting tolerance to salt.Crossref | GoogleScholarGoogle Scholar |

Abbas G, Amjad M, Saqib M, Murtaza B, Asif Naeem M, Shabbir A, Murtaza G (2021) Soil sodicity is more detrimental than salinity for quinoa (Chenopodium quinoa Willd.): a multivariate comparison of physiological, biochemical and nutritional quality attributes. Journal of Agronomy and Crop Science 207, 59–73.
Soil sodicity is more detrimental than salinity for quinoa (Chenopodium quinoa Willd.): a multivariate comparison of physiological, biochemical and nutritional quality attributes.Crossref | GoogleScholarGoogle Scholar |

Amjad M, Akhtar SS, Yang A, Akhtar J, Jacobsen S-E (2015) Antioxidative response of quinoa exposed to iso-osmotic, ionic and non-ionic salt stress. Journal of Agronomy and Crop Science 201, 452–460.
Antioxidative response of quinoa exposed to iso-osmotic, ionic and non-ionic salt stress.Crossref | GoogleScholarGoogle Scholar |

Ashraf MA, Akbar A, Parveen A, Rasheed R, Hussain I, Iqbal M (2018) Phenological application of selenium differentially improves growth, oxidative defense and ion homeostasis in maize under salinity stress. Plant Physiology and Biochemistry 123, 268–280.
Phenological application of selenium differentially improves growth, oxidative defense and ion homeostasis in maize under salinity stress.Crossref | GoogleScholarGoogle Scholar | 29275208PubMed |

Babaei K, Seyed Sharifi RS, Pirzad A, Khalilzadeh R (2017) Effects of bio fertilizer and nano Zn-Fe oxide on physiological traits, antioxidant enzymes activity and yield of wheat (Triticum aestivum L.) under salinity stress. Journal of Plant Interactions 12, 381–389.
Effects of bio fertilizer and nano Zn-Fe oxide on physiological traits, antioxidant enzymes activity and yield of wheat (Triticum aestivum L.) under salinity stress.Crossref | GoogleScholarGoogle Scholar |

Deivanai S, Xavier R, Vinod V, Timalata K, Lim OF (2011) Role of exogenous proline in ameliorating salt stress at early stage in two rice cultivars. Journal of Stress Physiology and Biochemistry 7, 157–174.

Fan M-S, Zhao F-J, Fairweather-Tait SJ, Poulton PR, Dunham SJ, McGrath SP (2008) Evidence of decreasing mineral density in wheat grain over the last 160 years. Journal of Trace Elements in Medicine and Biology 22, 315–324.
Evidence of decreasing mineral density in wheat grain over the last 160 years.Crossref | GoogleScholarGoogle Scholar | 19013359PubMed |

FAO (2018) Food database 2014. (Food and Agricultural Organization) Available at http://www.fao.org/faostat/en/#compare

Fathi A, Zahedi M, Torabian S, Khoshgoftar A (2017) Response of wheat genotypes to foliar spray of ZnO and Fe2O3 nanoparticles under salt stress. Journal of Plant Nutrition 40, 1376–1385.
Response of wheat genotypes to foliar spray of ZnO and Fe2O3 nanoparticles under salt stress.Crossref | GoogleScholarGoogle Scholar |

Genc Y, McDonald GK, Tester M (2007) Reassessment of tissue Na+ concentration as a criterion for salinity tolerance in bread wheat. Plant Cell & Environment 30, 1486–1498.
Reassessment of tissue Na+ concentration as a criterion for salinity tolerance in bread wheat.Crossref | GoogleScholarGoogle Scholar |

Grillet L, Schmidt W (2019) Iron acquisition strategies in land plants: not so different after all. New Phytologist 224, 11–18.
Iron acquisition strategies in land plants: not so different after all.Crossref | GoogleScholarGoogle Scholar |

Hasanuzzaman M, Hossain MA, Fujita M (2011) Nitric oxide modulates antioxidant defense and the methylglyoxal detoxification system and reduces salinity-induced damage of wheat seedlings. Plant Biotechnology Reports 5, 353–365.
Nitric oxide modulates antioxidant defense and the methylglyoxal detoxification system and reduces salinity-induced damage of wheat seedlings.Crossref | GoogleScholarGoogle Scholar |

Hussain S, Maqsood MA, Rengel Z, Khan MK (2012) Mineral bioavailability in grains of Pakistani bread wheat declines from old to current cultivars. Euphytica 186, 153–163.
Mineral bioavailability in grains of Pakistani bread wheat declines from old to current cultivars.Crossref | GoogleScholarGoogle Scholar |

Hussain S, Shah MAA, Khan AM, Ahmad F, Hussain M (2020) Potassium enhanced grain zinc accumulation in wheat grown on a calcareous saline-sodic soil. Pakistan Journal of Botany 52, 69–74.
Potassium enhanced grain zinc accumulation in wheat grown on a calcareous saline-sodic soil.Crossref | GoogleScholarGoogle Scholar |

Iqbal MN, Rasheed R, Ashraf MY, Ashraf MA, Hussain I (2018) Exogenously applied zinc and copper mitigate salinity effect in maize (Zea mays L.) by improving key physiological and biochemical attributes. Environmental Science and Pollution Research 25, 23883–23896.
Exogenously applied zinc and copper mitigate salinity effect in maize (Zea mays L.) by improving key physiological and biochemical attributes.Crossref | GoogleScholarGoogle Scholar | 29881963PubMed |

Jeong J, Connolly EL (2009) Iron uptake mechanisms in plants: functions of the FRO family of ferric reductases. Plant Science 176, 709–714.
Iron uptake mechanisms in plants: functions of the FRO family of ferric reductases.Crossref | GoogleScholarGoogle Scholar |

Kader AA, Mohamedin AAM, Ahmad MKA (2006) Growth and yield of Sunflower as affected by different salt affected soils. International Journal of Agriculture and Biology 8, 583–587.

Kumar V, Shriram V, Nikam TD, Jawali N, Shitole MG (2008) Sodium chloride-induced changes in mineral nutrients and proline accumulation in Indica rice cultivars differing in salt tolerance. Journal of Plant Nutrition 31, 1999–2017.
Sodium chloride-induced changes in mineral nutrients and proline accumulation in Indica rice cultivars differing in salt tolerance.Crossref | GoogleScholarGoogle Scholar |

Marschner H (1995) ‘Mineral nutrition in higher plants.’ pp. 477–542. (Academic Press Publishing: London, UK)

Munns R, Tester M (2008) Mechanisms of salinity tolerance. Annual Review of Plant Biology 59, 651–681.
Mechanisms of salinity tolerance.Crossref | GoogleScholarGoogle Scholar | 18444910PubMed |

Schmöckel SM, Tester M (2017) Evaluating physiological responses of plants to salinity stress. Annals of Botany 119, 1–11.
Evaluating physiological responses of plants to salinity stress.Crossref | GoogleScholarGoogle Scholar | 27707746PubMed |

Parvez S, Abbas G, Shahid M, Amjad M, Hussain M, Asad SA, Imran M, Naeem MA (2020) Effect of salinity on physiological, biochemical and photostabilizing attributes of two genotypes of quinoa (Chenopodium quinoa Willd.) exposed to arsenic stress. Ecotoxicology and Environmental Safety 187, 109814–109825.
Effect of salinity on physiological, biochemical and photostabilizing attributes of two genotypes of quinoa (Chenopodium quinoa Willd.) exposed to arsenic stress.Crossref | GoogleScholarGoogle Scholar | 31648076PubMed |

Qadir M, Quillérou E, Nangia V, Murtaza G, Singh M, Thomas RJ, Drechsel P, Noble AD (2014) Economics of salt-induced land degradation and restoration. Natural Resources Forum 38, 282–295.
Economics of salt-induced land degradation and restoration.Crossref | GoogleScholarGoogle Scholar |

Rabhi M, Barhoumi Z, Ksouri R, Abdelly C, Gharsalli M (2007) Interactive effects of salinity and iron deficiency in Medicago ciliaris. Comptes Rendus Biologies 330, 779–788.
Interactive effects of salinity and iron deficiency in Medicago ciliaris.Crossref | GoogleScholarGoogle Scholar | 17923371PubMed |

Saqib M, Akhtar J, Abbas G, Nasim M (2013) Salinity and drought interaction in wheat (Triticum aestivum L.) is affected by the genotype and plant growth stage. Acta Physiologiae Plantarum 35, 2761–2768.
Salinity and drought interaction in wheat (Triticum aestivum L.) is affected by the genotype and plant growth stage.Crossref | GoogleScholarGoogle Scholar |

Saqib M, Abbas G, Akhtar J (2020) Root-mediated acidification and resistance to low calcium improve wheat (Triticum aestivum) performance in saline-sodic conditions. Plant Physiology and Biochemistry 156, 201–208.
Root-mediated acidification and resistance to low calcium improve wheat (Triticum aestivum) performance in saline-sodic conditions.Crossref | GoogleScholarGoogle Scholar | 32977176PubMed |

Schubert S, Neubert A, Schierholt A, Sümer A, Zörb C (2009) Development of salt-resistant maize hybrids: the combination of physiological strategies using conventional breeding methods. Plant Science 177, 196–202.
Development of salt-resistant maize hybrids: the combination of physiological strategies using conventional breeding methods.Crossref | GoogleScholarGoogle Scholar |

Shaverdi AM, Omidi H, Tabatabaei S (2018) Morpho-physiological response of stevia (Stevia rebaudiana bertoni) to salinity under hydroponic culture condition (a case study in Iran). Applied Ecology and Environmental Research 16, 17–28.
Morpho-physiological response of stevia (Stevia rebaudiana bertoni) to salinity under hydroponic culture condition (a case study in Iran).Crossref | GoogleScholarGoogle Scholar |

Steel RGD, Torrie JH, Dickey D (1997) ‘Principles and procedure of statistics: a biometrical approach.’ 3rd edn. pp. 352–358. (McGraw Hill Book Co. Inc.: New York, NY, USA)

Takahashi M, Nakanishi H, Kawasaki S, Nishizawa NK, Mori S (2001) Enhanced tolerance of rice to low iron availability in alkaline soils using barley nicotianamine aminotransferase genes. Nature Biotechnology 19, 466–469.
Enhanced tolerance of rice to low iron availability in alkaline soils using barley nicotianamine aminotransferase genes.Crossref | GoogleScholarGoogle Scholar | 11329018PubMed |

Weisany W, Sohrabi Y, Heidari G, Siosemardeh A, Ghassemi-Golezani K (2012) Changes in antioxidant enzymes activity and plant performance by salinity stress and zinc application in soybean (Glycine max L.). Plant Omics Journal 5, 60–67.

Yousfi S, Wissal M, Mahmoudi H, Abdelly C, Gharsalli M (2007) Effect of salt on physiological responses of barley to iron deficiency. Plant Physiology and Biochemistry 45, 309–314.
Effect of salt on physiological responses of barley to iron deficiency.Crossref | GoogleScholarGoogle Scholar | 17467285PubMed |

Yousfi S, Houmani H, Zribi F, Abdelly C, Gharsalli M (2012) Physiological responses of wild and cultivated barley to the interactive effect of salinity and iron deficiency. International Scholarly Research Notices 2012, 121983
Physiological responses of wild and cultivated barley to the interactive effect of salinity and iron deficiency.Crossref | GoogleScholarGoogle Scholar |

Zhao D, Li X, Zhao L, Li L, Zhang Y, Zhang Z, Liu L, Xu H, Zhao W, Wu T, Siddique KHM (2020) Comparison of zinc and iron uptake among diverse wheat germplasm at two phosphorus levels. Cereal Research Communications 48, 441–448.
Comparison of zinc and iron uptake among diverse wheat germplasm at two phosphorus levels.Crossref | GoogleScholarGoogle Scholar |

Zhao DY, Gao S, Zhang XL, Zhang ZW, Zheng HQ, Rong K, Zhao WF, Khan SA (2021) Impact of saline stress on the uptake of various macro and micronutrients and their associations with plant biomass and root traits in wheat. Plant, Soil and Environment 67, 61–70.
Impact of saline stress on the uptake of various macro and micronutrients and their associations with plant biomass and root traits in wheat.Crossref | GoogleScholarGoogle Scholar |