Photoaged Nanopolystyrene Affects Neurotransmission to Induce Transgenerational Neurotoxicity in Caenorhabditis elegans

跨代表观遗传学 秀丽隐杆线虫 神经毒性 青鳉属 神经传递 神经科学 生物 细胞生物学 化学 遗传学 受体 毒性 基因 表观遗传学 有机化学
作者
Haibo Chen,Yulun Gu,Shihui Tan,Xiaoxia Chen,Yongqi Jiang,Hongzhi Guo,Jinyu Chen,Chen Wang,Chao Chen,Hui Li,Yunjiang Yu
出处
期刊:Environmental Science & Technology [American Chemical Society]
卷期号:58 (20): 8665-8674 被引量:26
标识
DOI:10.1021/acs.est.4c02755
摘要

Nanopolystyrene (NPS), a frequently employed nanoplastic, is an emerging environmental contaminant known to cause neurotoxicity in various organisms. However, the potential for transgenerational neurotoxic effects, especially from photoaged NPS (P-NPS), remains underexplored. This study investigated the aging of virgin NPS (V-NPS) under a xenon lamp to simulate natural sunlight exposure, which altered the physicochemical characteristics of the NPS. The parental generation (P0) of Caenorhabditis elegans was exposed to environmental concentrations (0.1–100 μg/L) of V-NPS and P-NPS, with subsequent offspring (F1–F4 generations) cultured under NPS-free conditions. Exposure to 100 μg/L P-NPS resulted in more pronounced deterioration in locomotion behavior in the P0 generation compared to V-NPS; this deterioration persisted into the F1–F2 generations but returned to normal in the F3–F4 generations. Additionally, maternal exposure to P-NPS damaged dopaminergic, glutamatergic, and serotonergic neurons in subsequent generations. Correspondingly, there was a significant decrease in the levels of dopamine, glutamate, and serotonin, associated with reduced expression of neurotransmission-related genes dat-1, eat-4, and tph-1 in the P0 and F1–F2 generations. Further analysis showed that the effects of P-NPS on locomotion behavior were absent in subsequent generations of eat-4(ad572), tph-1(mg280), and dat-1(ok157) mutants, highlighting the pivotal roles of these genes in mediating P-NPS-induced transgenerational neurotoxicity. These findings emphasize the crucial role of neurotransmission in the transgenerational effects of P-NPS on locomotion behavior, providing new insights into the environmental risks associated with exposure to photoaged nanoplastics.
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