ArticleBMC plant biology2025
Silicon-induced mitigation of salt stress in GF677 and GN15 rootstocks: insights into physiological, biochemical, and molecular mechanisms.
Article in BMC plant biology, 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 9 papers.
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Who cites it
9 citing papers in PubMed.
- Integrative co-application of citric acid and halotolerant/halophilic citrate-utilizing PGPR enhances leaf ionic homeostasis, productivity, and quality of Vitis vinifera L. in saline-calcareous soils.BMC plant biology · 2026Article
- Mitochondrial ORF188 confers salt stress tolerance in rapeseed via an ATP-dependent enhancement of antioxidant capacity.Plant cell reports · 2026Article
- Modulation of arsenic uptake and detoxification in maize (Zea mays L.) by plant-based iron oxide nanoparticles.Biodegradation · 2026Article
- Harnessing Silicon and Nanosilicon Formulations withInternational journal of molecular sciences · 2026Review
- Silicon nanoparticles ameliorate salt stress in cluster bean by improving antioxidant defense and ion homeostasis.Scientific reports · 2026Article
- Nano-iron modulates salt stress responses in Lycium barbarum via enhanced nutrient uptake, antioxidant defense, and phenolic metabolism.BMC plant biology · 2026Article
- Emerging roles of silicon in plant signaling networks and microbiome dynamics under salt stress.Frontiers in plant science · 2026Review
- Seed priming with silicon quantum dots promotes maize seedling establishment in coastal saline soil.Frontiers in plant science · 2026Article
- Mechanism for efficient nitrogen utilization by peach rootstock GF677 (Frontiers in plant science · 2025Article
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Authors and funding
5 authors.
Funding
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Abstract
Salinity is a common environmental stress that disrupts physiological and biochemical processes in plants, inhibiting growth. Silicon is a key element that enhances plant tolerance to such abiotic stresses. This study examined the effects of silicon supplementation on physiological, biochemical, and molecular responses of GF677 and GN15 rootstocks under NaCl-induced salinity stress. The experiment was conducted in a greenhouse using a factorial design with two rootstocks, three NaCl concentrations (0, 50, and 100 mM), and three silicon levels (0, 1, and 2 mM) in a randomized complete block design with three replicates. Salinity significantly reduced growth parameters, including shoot and root fresh and dry weights, RWC, and photosynthetic activity, with GN15 being more sensitive to salt stress than GF677. Silicon supplementation, especially at 2 mM, alleviated NaCl-induced damage, enhancing biomass retention and RWC under moderate and high NaCl levels. Additionally, silicon reduced electrolyte leakage, lipid peroxidation, and hydrogen peroxide accumulation, suggesting a protective role against oxidative stress. Biochemical analyses showed that silicon increased the accumulation of osmolytes such as proline, soluble sugars, glycine betaine, and total soluble protein, particularly in GF677. Silicon also boosted antioxidant enzyme activities, mitigating oxidative damage. In terms of mineral nutrition, silicon reduced Na
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