ArticleBMC plant biology2025
Synergistic effects of clove fruit extract and nano-silicon to enhance drought resilience and productivity of soybean through improved plant defense 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 6 papers.
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Who cites it
6 citing papers in PubMed.
- Nano-silicon enhances drought tolerance, yield stability, and bio-active compounds in Lallemantia iberica under water deficit conditions.Scientific reports · 2026Article
- Grafting and biodynamic nanosilica-induced physiological and transcriptomic modulation of chilli (Frontiers in plant science · 2026Article
- Natural biostimulant formulations enriched with honey, iodine, and silymarin enhance drought tolerance and yield in faba bean (Vicia Faba L.) through antioxidant and hormonal regulation.BMC plant biology · 2025Article
- Nano-silica improves the emergence of pepper seeds and the growth of seedlings under waterlogging stress by reducing oxidative damage.BMC plant biology · 2025Article
- Biochar-microbe synergy enhances auxin-mediated soil-plant interactions for canola productivity in alkaline calcareous soil.RSC advances · 2025Article
- Agronomic and anatomic performance of some soybean genotypes under optimal and water-deficit conditions.Frontiers in plant science · 2025Article
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Authors and funding
10 authors.
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Abstract
Clove fruit extract (CFE) and nano-silicon particles (Si-NPs) are promising natural and nanotechnological solutions to enhance drought resilience and improve soybean productivity as a crop critically affected by water scarcity. This study specifically focused on how the foliar application of CFE (5%) and/or Si-NPs (1.5 mM), influences plant health and productivity under three irrigation regimes based on crop evapotranspiration (ETc), which were 100% ETc (well-watered), 75% ETc (moderate drought stress), and 50% ETc (high drought stress). The study assessed multiple dimensions including plant development, leaf anatomy, physiological and biochemical responses, antioxidant defense mechanisms, nutrient content, and yield performance. The results revealed that moderate and high drought stress significantly reduced stomatal conductance, transpiration rate, net photosynthetic rate, membrane stability index, photochemical activity, and relative water content. These physiological declines were linked to structural reductions in blade, phloem, spongy, palisade, and xylem thickness, which led to a decrease in leaf area, plant height, chlorophyll content, and nutrient levels, ultimately impairing crop yield. However, the application of CFE and Si-NPs mitigated these adverse effects, with considerable improvements in all measured parameters under drought conditions. These enhancements were associated with increased antioxidant enzyme activities, proline, soluble sugars, total soluble carbohydrates, glutathione, and α-tocopherol. Among the treatments, the combined application of CFE and Si-NPs proved most effective, improving soybean biological yield by 31% under severe drought stress compared to the control. This investigation indicated an environmentally sustainable approach for bolstering soybean resilience and productivity under water-limited conditions.
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