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February 5, 2026SHILAP Revista de lepidopterología2 citationsOpen Access

Gut microbiota and metabolic disruption induced by food chain-transferred nanoplastics: A mediating role of CYP26A1 in retinoic acid toxicity

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XQXiaochuan QuXNXinrui NanYWYijing Wang

Key Points

  • The study aims to understand how food chain-transferred polystyrene nanoplastics affect gut microbiota and liver function.
  • Utilized a mouse model to assess the effects of food chain-transferred polystyrene nanoplastics.
  • Analyzed changes in gut microbiota composition and metabolic health.
  • Monitored gene expression related to retinoic acid metabolism and hepatotoxicity.
  • Food chain-transferred nanoplastics caused gut microbiota dysbiosis and disrupted metabolic homeostasis.
  • Significant upregulation of the Cyp26a1 gene was observed, indicating interference with retinoic acid metabolism.
  • Findings suggest a link between gut microbial shifts and liver dysfunction, highlighting the gut-liver axis's vulnerability.

Abstract

Polystyrene nanoplastics (PS-NPs) pollution has emerged as critical environmental and public health concerns due to their potential for bioaccumulation and systemic toxicity. While our previous work demonstrated the trophic transfer of micro- and nanoplastics from insect yellow mealworms (Tenebrio molitor) to mammals, the biological consequences remain poorly understood. This study aimed to investigate the impact of food chain-transferred PS-NPs (FCT-NPs) on the gut-liver axis in a mouse model. We demonstrate that FCT-NPs induce gut microbiota dysbiosis, disrupt metabolic homeostasis, and alter hepatic gene expression in mice. Crucially, we identify the upregulation of Cyp26a1 gene underlying FCT-NPs-induced hepatoxicity, which interferes with retinoic acid metabolism and leads to hypervitaminosis A. By elucidating the molecular link between gut microbial shifts and hepatic dysfunction, this study highlights gut-liver axis as a primary target of FCT-NPs and lays the foundational insights into their broader systemic ecological and physiological consequences.

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Cite This Study

Qu et al. (2026) studied this question.

synapsesocial.com/papers/69843360f1d9ada3c1fb0771https://doi.org/10.1016/j.ecoenv.2026.119806
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