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Biomagnification in Trophic Transfer: Mechanisms of Trans-Trophic Toxicity from Co-Contamination of Aged Nanoplastics and TBP in a Soil–Rye–Armyworm System
Original title: Biomagnificationin Trophic Transfer: Mechanisms ofTrans-Trophic Toxicity from Co-Contamination of Aged NPs and TBP ina Soil–Rye–Armyworm System
Summary
Scientists found that tiny plastic particles in soil can team up with a common flame retardant chemical, making both more likely to be absorbed by crops like rye—and this combo caused more plant damage than either pollutant alone, including lower crop yield and poorer nutrition. Even more concerning: when insects ate the contaminated rye, the flame retardant became more concentrated in their bodies than what was in the plant (a process called biomagnification), hinting that pollutants could build up as they move up the food chain toward the foods we eat. This research is a reminder that plastic pollution in farmland doesn't just add its own risks—it may wor
The co-contamination of nanoplastics and organic pollutants poses a potential threat to agricultural ecosystems and food chain safety. To systematically reveal the individual and combined toxicity of aged carboxylated nanoplastics (NPs-COOH) and the flame retardant tributyl phosphate (TBP), as well as their transmission mechanisms along the food chain, this study established a “rye–armyworm” model. A multiscale investigation was conducted by integrating molecular docking, multiomics, and traditional toxicological methods. Results indicated that NPs-COOH and TBP form complexes via electrostatic and van der Waals interactions, synergistically enhancing their accumulation in rye roots and translocation into the vascular system. Combined exposure exerted synergistic toxicity on rye, manifested as inhibited photosynthesis, exacerbated oxidative stress, and significant deterioration in yield and nutritional quality. Transcriptomic and microbiome analyses further revealed that rye responds to the stress by systemically activating stress-response and detoxification metabolic pathways, accompanied by disruption of beneficial rhizospheric microbial communities. The pollutants were transferred along the food chain, with TBP undergoing biomagnification from rye to armyworm (BMF = 1.57), leading to growth inhibition, midgut structural damage, suppression of key detoxifying enzyme activities, and gut microbiota dysbiosis. This study elucidates the multidimensional ecological risks arising from the “vector effect” and synergistic toxicity of NPs-COOH and TBP in the soil–plant–insect system, providing further insights for a comprehensive assessment of the threats posed by such co-contamination to agricultural product safety and food chain health.