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Published on: April 17, 2015
Physiological and nutritional mechanisms underlying chloride-induced drought resistance in tomato
Marta Lucas1, Francisco J Moreno-Racero1, Alba Delgado-Vaquero1
1Instituto de Recursos Naturales y Agrobiología de Sevilla (IRNAS), Consejo Superior de Investigaciones Científicas (CSIC), 41012, Seville, Spain.
Abstract:
Chloride (Cl-), long regarded as a micronutrient or salinity-associated ion, is now recognized as a beneficial macronutrient in higher plants. This study evaluated whether Cl- supplied at macronutrient concentrations enhances drought resistance in tomato (Solanum lycopersicum L.) through improved physiological performance and nutrient efficiency. Tomato plants were grown under greenhouse conditions under well-watered (CTR) or water-deficit (WD) regimes, receiving either micronutrient (SP) or macronutrient (CL) Cl- supply. At macronutrient levels, Cl- alleviated drought-induced growth inhibition, maintaining both vegetative and reproductive biomass and promoting adaptive root growth. CL-treated plants exhibited enhanced leaf water status, reduced stomatal conductance (gs) without compromising net photosynthesis rate (AN), and increased intrinsic water use efficiency (WUEᵢ) during WD. Cl- also preserved PSII efficiency, maintained chlorophyll levels, reduced lipid peroxidation (MDA), and enhanced total antioxidant capacity. Nutritionally, Cl- improved nitrogen and cation (K+, Ca2+, and Mg2+) utilization efficiencies under drought conditions. Principal component analysis integrating physiological and nutritional traits under WD revealed that CL plants maintained a coordinated and functionally integrated response associated with improved water status, photosynthetic efficiency, and nutrient use. Overall, these findings indicate that Cl- acts as a true macronutrient enhancing drought resilience in tomato through coordinated effects on osmotic adjustment, nutrient optimization, and oxidative stress mitigation. Incorporating Cl- into fertilization programs may therefore represent a cost-effective and sustainable strategy to improve crop WUE and productivity under water-limited conditions.
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