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Micro-nanoscale polystyrene co-exposure impacts the uptake and translocation of arsenic and boscalid by lettuce (Lactuca sativa)

NanoImpact 2025 5 citations ? Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count. Score: 63 ? 0–100 AI score estimating relevance to the microplastics field. Papers below 30 are filtered from public browse.
Glen M. DeLoid, Trung Huu Bui, Glen M. DeLoid, Glen M. DeLoid, Glen M. DeLoid, Glen M. DeLoid, Jason C. White, Glen M. DeLoid, Glen M. DeLoid, Glen M. DeLoid, Glen M. DeLoid, Glen M. DeLoid, Glen M. DeLoid, Nubia Zuverza‐Mena, Christian O. Dimkpa, Christian O. Dimkpa, Christian O. Dimkpa, Emilie Kendrick, Emilie Kendrick, Philip Demokritou Nubia Zuverza‐Mena, Glen M. DeLoid, Philip Demokritou Nubia Zuverza‐Mena, Nubia Zuverza‐Mena, Nubia Zuverza‐Mena, Nubia Zuverza‐Mena, Nubia Zuverza‐Mena, Sarah Alotaibi, Trung Huu Bui, Jason C. White, Christian O. Dimkpa, Jason C. White, Jason C. White, Jason C. White, Jason C. White, Jason C. White, Nubia Zuverza‐Mena, Nubia Zuverza‐Mena, Carlos Tamez, Carlos Tamez, Trung Huu Bui, Jason C. White, Jason C. White, Omowunmi A. Sadik, Jason C. White, Carlos Tamez, Jason C. White, Manavi Yadav, Jason C. White, Jason C. White, Nubia Zuverza‐Mena, Philip Demokritou Philip Demokritou Jason C. White, Carlos Tamez, Jason C. White, Trung Huu Bui, Nubia Zuverza‐Mena, Philip Demokritou Jason C. White, Sarah Alotaibi, Omowunmi A. Sadik, Nubia Zuverza‐Mena, Jason C. White, Carlos Tamez, Philip Demokritou Jason C. White, Jason C. White, Philip Demokritou Philip Demokritou Jason C. White, Jason C. White, Carlos Tamez, Christian O. Dimkpa, Christian O. Dimkpa, Carlos Tamez, Carlos Tamez, Philip Demokritou Glen M. DeLoid, Omowunmi A. Sadik, Philip Demokritou Philip Demokritou Jason C. White, Jason C. White, Jason C. White, Jason C. White, Jason C. White, Philip Demokritou Jason C. White, Philip Demokritou Philip Demokritou Philip Demokritou Philip Demokritou Jason C. White, Philip Demokritou Jason C. White, Jason C. White, Jason C. White, Philip Demokritou Jason C. White, Jason C. White, Philip Demokritou Philip Demokritou Philip Demokritou

Summary

Researchers found that nanoscale polystyrene particles dramatically increase arsenic translocation from roots to edible shoots of lettuce — up to threefold — while also entering root cells and migrating to leaves, demonstrating that microplastic co-exposure can substantially amplify the accumulation of other environmental contaminants in food crops.

The influence of micro-nanoplastics (MNPs) on the fate and effects of other pollutants present in the environment is largely unknown. This study evaluated if the root exposure to MNPs (polystyrene, PS; 20 or 1000 nm) had an impact on the accumulation of arsenic and boscalid (As and Bos) in lettuce (Lactuca sativa). Under hydroponic conditions, plants were co-exposed to MNPs at 10 or 50 mg/L, and to 1 mg/L of each environmental pollutant (EP). For soil-like media, plants were exposed to MNPs at 50 and EPs at 10 mg/kg. Phytotoxicity was enhanced by PS under both growth conditions, particularly by nanoscale PS (nPS), although impacts were less in potting mix-grown plants. Nanoscale PS had a greater impact than microscale PS (μPS) on As fate; the As translocation factor from roots to the edible shoots was increased 3-fold in plants exposed to nPS (50 mg/L) and EPs. PS dose and size had a variable impact on Bos uptake and translocation. Fluorescent microscopy analysis of lettuce co-exposed to MNPs and EPs suggests that nPS is entering the roots and translocating to the leaves, while μPS mostly remains in the roots. Pyrolysis-GC/MS showed that in solid media, the presence of EPs significantly increased the translocation of nPS to lettuce shoots from 4.43 ± 0.53 to 46.6 ± 9.7 mg/kg, while the concentration of μPS in the shoots remained the same regardless of the presence of EPs (ranging between 13.2 ± 5.5 to 14.2 ± 4.1 mg/kg). These findings demonstrate that co-exposure of MNPs with other EPs can significantly impact co-contaminant accumulation and toxicity, presenting an unknown risk to humans and other receptors.

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