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January 14, 2026Plants4 citationsOpen Access

Differential Regulation of Gene Expression, Ion Homeostasis, and Antioxidant Defense Confers Salinity Tolerance During Seed Germination in Wheat

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ASAhmed B. SallamNHNouran M. HassebMKMohamed A. Karam

Key Points

  • The aim is to investigate the physiological and molecular mechanisms that confer salinity tolerance during wheat seed germination.
  • Evaluated contrasting wheat genotypes for salinity tolerance under 175 mM NaCl and 0 mM NaCl conditions.
  • Quantified Na+, K+, and P homeostasis and activities of antioxidant enzymes.
  • Assessed expression profiles of salinity-responsive ion transporter genes TaAVP1 and NHX1.
  • Tolerant genotypes had higher Na+ and K+ concentrations and elevated antioxidant enzyme activities compared to susceptible genotypes.
  • Differential expression of TaAVP1 and NHX1 was observed, with Javelin 48 and Kandahar upregulated during salinity stress.
  • Kule showed the highest Na+ accumulation and significant increases in ascorbate peroxidase and glutathione reductase activities under salinity stress.

Abstract

Salinity represents a major constraint on plant development and crop productivity in wheat, which represents one of the most critical sources of dietary calories worldwide. Its detrimental effects are particularly pronounced during the early stages of growth, including seed germination and seedling establishment. Salinity tolerance is a multifaceted trait governed by several interrelated mechanisms, notably ion homeostasis, osmotic adjustment, activation of enzymatic antioxidant systems, and transcriptional regulation of ion transporter genes. In the present study, contrasting wheat genotypes exhibiting differential salinity tolerance were selected from a panel of 172 accessions evaluated under salinity stress (175 mM NaCl) and control conditions (0 mM NaCl). The objectives of the current study are to confirm the underlying physiological and molecular mechanisms conferring salinity tolerance. Key physiological and molecular parameters including Na+, K+, and P homeostasis; activities of major antioxidant enzymes; and expression profiles of the salinity-responsive ion transporter genes TaAVP1 and NHX1 were quantified in six tolerant genotypes and one susceptible genotype. The tolerant genotypes exhibited higher concentrations of Na+ and K+ and elevated activities of all antioxidant enzymes, compared with the susceptible genotype. Furthermore, the tolerant genotypes showed differential expression of TaAVP1 and NHX1: both genes were upregulated in Javelin 48 and Kandahar, whereas they were downregulated in genotype 1018d. Notably, genotype Kule demonstrated the highest Na+ accumulation, accompanied by markedly elevated activities of all major antioxidant enzymes, with ascorbate peroxidase and glutathione reductase increasing by 9.20-fold and 2.32-fold, respectively, under salinity stress. Based on these findings, the tolerant genotypes can be categorized into two functional groups: Javelin 48, Ghati, and 1018d (characterized by high K+ and salinity tolerance) are better suited to soils affected by low Na+ salinity, whereas Kandahar, Kule, and 1049 (characterized by high Na+ and sodicity tolerance) are more adapted to soils with elevated Na+ levels. In conclusion, the tolerant genotypes exhibited distinct, coordinated mechanisms to mitigate salinity stress, underscoring the complexity and plasticity of adaptive responses in wheat.

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Cite This Study

Sallam et al. (2026) studied this question.

synapsesocial.com/papers/6966f2fb13bf7a6f02c00603https://doi.org/10.3390/plants15020230
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