Environmental contamination by pesticides and salts is a growing agricultural issue, especially in arid and semi-arid regions. Difenoconazole (DIF), a commonly used fungicide, and sodium chloride (NaCl), a widespread salinity stressor, often coexist in soil and water, yet their combined effects on non-target crops such as tomato (Solanum lycopersicum) are not well understood. This study assessed the individual and combined impacts of DIF (0.5 L ha-1) and NaCl (150 mM) on tomato seedlings by evaluating morpho-physiological, oxidative, and biochemical responses. Results showed significant reductions in shoot and root lengths under DIF (22.7%, 15.8%), NaCl (31.1%, 35.6%), and combined exposure (19.4%, 29.9%) compared to the control. Chlorophyll a and b levels decreased, with chlorophyll b reduced by 84% under co-exposure, indicating synergistic pigment degradation. Carotenoids increased (up to 96.7% under NaCl), suggesting a compensatory antioxidant mechanism. Oxidative stress markers malondialdehyde (MDA) and hydrogen peroxide (H2O2) increased under all treatments but showed antagonistic trends under combined exposure. Detoxification enzymes peroxidase (POD) and glutathione S-transferase (GST) were highly activated under co-exposure, while antioxidant enzymes catalase (CAT) and ascorbate peroxidase (APX) showed partial recovery. Proline accumulation peaked under DIF (389%) but decreased under combined stress (61%), indicating an antagonistic interaction. Flavonoid content (FLV) and phenylalanine ammonia-lyase (PAL) activity increased significantly under co-exposure, reflecting stimulated secondary metabolism. Overall, DIF and NaCl co-exposure triggered complex phytotoxic responses, primarily synergistic, impairing plant growth and metabolism. These findings underscore the need for integrated risk assessments of agrochemical and salinity co-stress, crucial for sustainable agriculture and environmental protection in vulnerable regions.
Nabil Touzout, M. Bouchibane, S. Lekmine et al.· Functional Plant Biology· 0 citations
Mediterranean agriculture is increasingly constrained by climate change–driven stresses, including rising temperatures, intensified drought, and soil organic matter depletion, all of which threaten crop health and yield stability. Carbon farming has emerged as a strategy to integrate climate mitigation with agricultural resilience, and biochar represents a distinctive tool within this framework due to its capacity for long-term carbon sequestration and soil modification. This review synthesizes peer-reviewed studies published between 1999 and 2025 to assess the role of biochar in Mediterranean agroecosystems, with a specific focus on crop health outcomes. Across Mediterranean systems, biochar consistently increases soil organic carbon stocks through the addition of recalcitrant carbon forms and generally reduces nitrous oxide emissions while carbon dioxide emissions remain neutral. However, methane emissions may increase under warm and moist conditions, highlighting the importance of comprehensive greenhouse gas accounting. Biochar improves crop performance primarily when it alleviates limiting soil constraints, particularly in degraded or coarse-textured soils, under water-limited or saline conditions, and in perennial cropping systems. Long-term benefits are most evident in tree crops and vineyards, and legumes often show positive responses linked to enhanced nutrient availability and rhizosphere functioning. In contrast, cereal and leafy vegetable crops exhibit more variable responses, including neutral or negative effects under non-limiting conditions. Overall, biochar is most effective when applied selectively at moderate rates (approximately 10–30 Mg ha⁻1) and integrated with complementary climate-smart practices. Future research should prioritize long-term, crop-centered assessments and methane mitigation strategies to support context-specific biochar deployment in Mediterranean agriculture.
D. Borgatti, E. Radicetti, R. Mancinelli et al.· Crop Health· 0 citations
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