ABSTRACT The Neotropical stink bugs Euschistus heros and Diceraeus melacanthus are major pests of soybean and maize in South America, yet current chemical control strategies face widespread resistance, highlighting the urgent need for sustainable alternatives. This study investigates Ficus carica pruning residues as a source of selective botanical insecticides, integrating optimized extraction, phytochemical profiling, bioassays, and molecular modeling. Eight extracts were prepared under varying solvent, temperature, and acidity conditions, and analyzed for total phenolic content (TPC) and the key furanocoumarins psoralen and bergapten. Acidification enhanced overall mass yields, while mild ethanol extraction at room temperature selectively maximized furanocoumarin recovery, yielding psoralen concentrations up to 14.83 mg g−1, which is substantially higher than previously reported in leaves or fruit. Biological evaluation of the optimized ethanolic extract (ERA) revealed strong insecticidal activity, with 86% mortality of E. heros and 40% of D. melacanthus nymphs at 48 h, and a calculated LC50 of 1232 mg L−1 for E. heros. The differential susceptibility between species suggests both metabolic and cuticular factors influence efficacy. Computational docking and phylogenetic analyses suggested a potential mechanistic basis for the observed selectivity: furanocoumarins are predicted to bind hemipteran AChE via a compensatory polar scaffold, whereas binding to Apis mellifera AChE is predicted to be weaker due to lineage‐specific differences in aromatic density within the catalytic gorge, potentially explaining the minimal off‐target susceptibility. The molecular modeling results characterize these compounds as low‐affinity, reversible inhibitors, combining effective pest control with a favorable safety profile for pollinators. The present work demonstrates that valorizing agro‐industrial waste from F. carica can yield potent, selective, and environmentally safer insecticidal agents. The integration of extraction optimization, biological evaluation, and molecular modeling provides a robust framework for developing sustainable botanical insecticides, advancing circular economy principles in pest management and offering promising alternatives to synthetic neurotoxins.
T. A. Almeida, A. R. Páez, Lara T M Costa et al.· Archives of Insect Biochemis...· 0 citations
Abiotic stresses are major constraints on oil crop productivity worldwide, causing significant yield losses and increasingly threatening global edible oil security. These stresses also weaken plant defense capacity, indirectly increasing vulnerability to pests and diseases and challenging the effectiveness of integrated disease management (IDM) systems. Recent advances identify nanoparticles (NPs) as an innovative and signaling regulator tool for enhancing abiotic stress tolerance in oil crops through coordinated physiological and molecular regulation. The present review synthesizes current knowledge on NPs applications in major oil‐bearing crops, with emphasis on drought, salinity, heavy metal toxicity and temperature extremes. A key innovation is the integration of NPs application strategies with crop‐specific physiological traits, molecular responses, and hormonal and redox signaling networks. We highlight new insights showing that NPs act as active regulators of stress adaptation by stabilizing membranes, maintaining redox homeostasis, activating antioxidant defenses, modulating stress‐responsive gene expression, and interacting with phytohormones and nitric oxide (NO) signaling. By adopting a cross‐crop, cross‐stress framework, the present review moves beyond stress‐ or species‐specific analyses and directly links abiotic stress mitigation to improved plant resilience and IDM robustness. Key research gaps, including limited field validation, uncertainties in optimal dosing and delivery, and insufficient understanding of environmental fate and safety, are identified. Overall, the present review positions NPs‐based strategies as promising complementary tools for sustainable oil crop protection and IDM.
G. Muhae-Ud-Din, G. Smagghe, Yan Wang et al.· Physiologia Plantarum : An I...· 0 citations
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