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Tracking micro- and nanoplastics in Aedes albopictus: From ingestion to metabolic disruption

The Science of The Total Environment 2025 1 citation ? Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count. Score: 53 ? 0–100 AI score estimating relevance to the microplastics field. Papers below 30 are filtered from public browse.
Marcella Bonanomi, Sara Soldano, Sara Soldano, Marcella Bonanomi, Tecla Aramini, Tecla Aramini, Daniela Gaglio, Andrea Moyano, Marcella Bonanomi, Anna Garbelli, Anna Garbelli, Daniela Gaglio, Anna Cleta Croce, Maduka L Weththimuni, Maduka L Weththimuni, Patrizia Vaghi, Patrizia Vaghi, Arianna Puggioli, Ludvik M. Gomulski, Daniela Gaglio, Francesca Scolari

Summary

Researchers tracked the fate of polystyrene micro- and nanoplastics in the Asian tiger mosquito Aedes albopictus from larval ingestion through adult development. They found that ingested particles crossed the gut barrier, persisted in tissues, and were retained through metamorphosis, while causing reduced body weight and significant metabolic disruptions. The study suggests that plastic pollution may affect mosquito biology through endocrine disruption and altered energy metabolism pathways.

Polymers
Models

Urban aquatic environments are increasingly contaminated with micro- and nanoplastics (MNLPs), posing risks to biodiversity and human health. These environments are ideal breeding sites for larvae of the Asian tiger mosquito Aedes albopictus, a key arbovirus vector. While plastic pollution is a global concern, physiological and metabolic consequences of MNPL-exposure in mosquitoes remain poorly understood. Combining epifluorescence and confocal imaging, mosquito life-history parameter assessment, and high-throughput metabolomic profiling, we investigated the effects of polystyrene MNPLs on Ae. albopictus. We demonstrated that ingested MNPLs cross the larval gut barrier, persist in various tissues, and are retained through development. Exposure did not significantly affect pre-imaginal survival or development time, but reduced larval body weight and caused profound metabolic alterations. Metabolomic analyses revealed downregulation of central carbon metabolism, particularly glycolysis and pentose phosphate pathway, alongside amino acid alterations linked to stress responses. Notably, MNPL-exposure also affected juvenile hormone biosynthesis, suggesting endocrine disruption. This trend was observed in both NP- and MP-exposed larvae, with a greater number of differentially regulated metabolites following MP-treatment. Interestingly, TCA cycle dysregulation was more pronounced in NP-exposed larvae, whereas perturbations in glutathione metabolism, amino sugar metabolism and nitrogen excretion were associated with MP-exposure. These findings highlight the metabolic and physiological consequences of MNPL-exposure, with potential implications for mosquito ecology, vector capacity, and environmental dissemination of plastic contaminants. Given the role of Ae. albopictus in disease transmission and its adaptation to urban habitats, further research is needed to explore the long-term ecological and epidemiological consequences of plastic pollution on mosquito populations.

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