<p>Walnut (<i>Juglans regia</i> L.) is an important oilseed crop, and salt stress threatens the growth of walnut tree. In this study, NO<sub>3</sub><sup>−</sup> or NH<sub>4</sub><sup>+</sup> was applied at three concentrations (4, 32, and 100&#xa0;mM) to investigate the effect of NO<sub>3</sub><sup>−</sup>-N and NH<sub>4</sub><sup>+</sup>-N on walnut seedlings under 100&#xa0;mM NaCl stress. Results showed that moderate (32&#xa0;mM) NO<sub>3</sub><sup>−</sup>-N application alleviated the effect of salt stress. Moreover, plants treated with 32&#xa0;mM NO<sub>3</sub><sup>−</sup>-N showed no significant morphological difference from those subjected to the nonstress treatment. The treatment of 32&#xa0;mM NO<sub>3</sub><sup>−</sup>-N application enhanced plant growth, increased antioxidant enzyme activities (superoxide dismutase and catalase), and restricted Na⁺ and Cl⁻ uptake and transport. Additionally, it might induce beneficial shifts in the rhizosphere microbiome. Low-concentration (4&#xa0;mM) NO<sub>3</sub>⁻ or NH<sub>4</sub>⁺ treatment individually induced the minor alleviation of salt stress. By contrast, 100&#xa0;mM NO<sub>3</sub>⁻ and all tested concentrations of NH₄⁺ further inhibited biomass and root growth, thereby exacerbating salt injury. Notably, 100&#xa0;mM NH₄⁺ caused severe defoliation and seedling mortality. Furthermore, in contrast to its NO<sub>3</sub><sup>−</sup> counterpart, 32&#xa0;mM NH<sub>4</sub>⁺ shifted the root microbiome and impaired microbial diversity, likely contributing to increased salt sensitivity. This study demonstrates that moderate NO<sub>3</sub>⁻ application can effectively mitigate salt stress during walnut growth, offering a potential strategy for fertilizing walnut plantations under saline conditions.</p> Graphical Abstract <p></p>

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Moderate NO3-N instead of NH4+-N alleviates the effect of salt stress on walnut growth

  • Gaoya Su,
  • Sen Lu,
  • Yongchao Bai,
  • Dong Pei,
  • Yan Wang,
  • Hao Deng

摘要

Walnut (Juglans regia L.) is an important oilseed crop, and salt stress threatens the growth of walnut tree. In this study, NO3 or NH4+ was applied at three concentrations (4, 32, and 100 mM) to investigate the effect of NO3-N and NH4+-N on walnut seedlings under 100 mM NaCl stress. Results showed that moderate (32 mM) NO3-N application alleviated the effect of salt stress. Moreover, plants treated with 32 mM NO3-N showed no significant morphological difference from those subjected to the nonstress treatment. The treatment of 32 mM NO3-N application enhanced plant growth, increased antioxidant enzyme activities (superoxide dismutase and catalase), and restricted Na⁺ and Cl⁻ uptake and transport. Additionally, it might induce beneficial shifts in the rhizosphere microbiome. Low-concentration (4 mM) NO3⁻ or NH4⁺ treatment individually induced the minor alleviation of salt stress. By contrast, 100 mM NO3⁻ and all tested concentrations of NH₄⁺ further inhibited biomass and root growth, thereby exacerbating salt injury. Notably, 100 mM NH₄⁺ caused severe defoliation and seedling mortality. Furthermore, in contrast to its NO3 counterpart, 32 mM NH4⁺ shifted the root microbiome and impaired microbial diversity, likely contributing to increased salt sensitivity. This study demonstrates that moderate NO3⁻ application can effectively mitigate salt stress during walnut growth, offering a potential strategy for fertilizing walnut plantations under saline conditions.

Graphical Abstract