Article detail · 2024
The use of biostimulants as a key to sustainable hydroponic lettuce farming under saline water stress
- Year
- 2024
- Type
- article
Data source split
- YÖKSİS YÖKSİS article record
- YÖKSİS venue BMC Plant Biology
- Catalog match (ISSN) BMC Plant Biology
- OpenAlex OpenAlex enrichment (abstract, citations, topics)
Abstract
OpenAlex · English
Abstract Backround The utilization of high-quality water in agriculture is increasingly constrained by climate change, affecting availability, quality, and distribution due to altered precipitation patterns, increased evaporation, extreme weather events, and rising salinity levels. Salinity significantly challenges salt-sensitive vegetables like lettuce, particularly in a greenhouse. Hydroponics water quality ensures nutrient solution stability, enhances nutrient uptake, prevents contamination, regulates pH and electrical conductivity, and maintains system components. This study aimed to mitigate salt-induced damage in lettuce grown via the floating culture method under 50 mM NaCl salinity by applying biostimulants. Results We examined lettuce’s physiological, biochemical, and agronomical responses to salt stress after applying biostimulants such as amino acids, arbuscular mycorrhizal fungi, plant growth-promoting rhizobacteria (PGPR), fulvic acid, and chitosan. The experiment was conducted in a greenhouse with a randomized complete block design, and each treatment was replicated four times. Biostimulant applications alleviated salt’s detrimental effects on plant weight, height, leaf number, and leaf area. Yield increases under 50 mM NaCl were 75%, 51%, 31%, 34%, and 33% using vermicompost, PGPR, fulvic acid, amino acid, and chitosan, respectively. Biostimulants improved stomatal conductance (58–189%), chlorophyll content (4–10%), nutrient uptake (15–109%), and water status (9–107%). They also reduced MDA content by 26–42%. PGPR (1.0 ml L ‒1 ), vermicompost (2 ml L ‒1 ), and fulvic acid (40 mg L ‒1 ) were particularly effective, enhancing growth, yield, phenol, and mineral content while reducing nitrate levels under saline conditions. Conclusions Biostimulants activated antioxidative defense systems, offering a sustainable, cost-effective solution for mitigating salt stress in hydroponic lettuce cultivation.
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Citations
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66 citations
OpenAlex cited_by_count (cache / database)
13 publications in the local catalog that cite this work (OpenAlex reference match; not the full global list).
- Biostimulants Enhance the Nutritional Quality of Soilless Greenhouse Tomatoes 2024
- Fulvic Acid, Amino Acids, and Vermicompost Enhanced Yield and Improved Nutrient Profile of Soilless Iceberg Lettuce 2025
- Enhancing tomato drought resilience with organic amendments and local landraces 2025
- Enhancing tomato drought resilience with organic amendments and local landraces 2025
- Enhancing tomato drought resilience with organic amendments and local landraces. 2025
- Enhancing tomato drought resilience with organic amendments and local landraces 2025
- Enhancing tomato drought resilience with organic amendments and local landraces 2025
- Improved salt stress resilience, growth, and quality of soilless basil through biostimulant application 2025
- Enhanced Salt Stress Tolerance in Maize Using Biostimulant and Biosurfactant Applications 2026
- Roles of Biostimulants in Alleviating Salt Stress in Plants 2026