Aug 2026· Plants· Vol 15, pp. 2457· 0 citations· 76 references
Medicine
TL;DR
KEGG analysis indicated enrichment of photosynthesis, carbon metabolism, amino acid biosynthesis, and ribosome pathways, while defense-related pathways, including MAPK signaling and plant–pathogen interaction, were downregulated, suggesting that tomato prioritized adaptation to salinity over pathogen defense.
Abstract
Soil salinity and bacterial spot of tomato (BST), caused by Xanthomonas perforans, are major abiotic and biotic stresses limiting tomato production, particularly in Florida. While their individual effects are well documented, the impact of soil salinity on BST has not yet been investigated. This greenhouse study evaluated how increasing irrigation water salinity (electrical conductivity [EC] = 0.5, 3, 5, or 7 dS m−1) affected tomato growth, physiology, BST severity, fruit quality, and transcriptomic responses. Salinity reduced plant growth and BST severity but did not directly affect X. perforans populations. Results indicated that reduced plant physiological activity (net CO2 assimilation [A], transpiration [E], and stomatal conductance [gs]) contributes to lower disease levels. Increased salinity led to more solute concentrations, altered sugar metabolism, and improved perceived taste, as supported by taste panel, osmolality, and transcriptomic analyses. They also showed that transcriptional responses to salinity (EC = 7 dS m−1) and X. perforans infection were strongly time-dependent. Salt-treated plants exhibited fewer differentially expressed genes following inoculation, whereas comparisons between EC 7-treated and control plants revealed extensive salinity-induced reprogramming. KEGG analysis indicated enrichment of photosynthesis, carbon metabolism, amino acid biosynthesis, and ribosome pathways, while defense-related pathways, including MAPK signaling and plant–pathogen interaction, were downregulated, suggesting that tomato prioritized adaptation to salinity over pathogen defense.
Abiotic stresses can influence plant growth and productivity by causing physiological, biochemical, molecular, and morphological changes. Salinity and drought are increasing in frequency and intensity because of climate change. Therefore, this study assessed four high-yield tomato cultivars under 150 mM NaCl and 260 mM...
The strongest overall response was obtained at 20 ml L-1, indicating that R. sphaeroides BCK1 can partially alleviate salinity-induced reductions in tomato growth and productivity.
Victor Satrio Christanto, Yovi Avianto, Wisnu Adhi Susila et al.· PLANTROPICA: Journal of Agri...· 0 citations
Environmental stress, particularly salinity, reduces crop yields and poses a threat to food security. While considerable research has focused on enhancing abiotic stress resilience at the leaf surface, the mechanisms of salt tolerance at the root level, especially under varying photoperiods, remain less explored. This...
Ekemini Edet Obok, A. Eneji, H. Fujimaki et al.· Physiologia Plantarum : An I...· 1 citation
Increasing soil salinization and water scarcity threaten crop productivity in arid and semi-arid regions. The present study evaluated the physiological and biochemical responses of pumpkin seed (
Cucurbita pepo
L.) to different salinity and deficit irrigation treatments under greenhouse conditions. Plants were su...
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Tomato production is increasingly threatened by the growing occurrence and severity of combined drought and high-temperature stress. Although the individual effects of high temperature and drought stress on tomato growth, physiology, and productivity have been widely investigated, their combined occurrence exerts more...
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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...
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