bioRxiv · 10.1101/2025.03.24.644975
Small Particles, Big Problems: Polystyrene nanoparticles induce DNA damage, oxidative stress, migration, and mitogenic pathways predominantly in non-malignant lung cells
Abstract
Polystyrene micro-and nanoplastics (PS-MNPs) are emerging environmental pollutants with potential implications for human health. In this study, we used two different sizes of PS-MNPs (0.25 {micro}m and 1 {micro}m) on non-small cell lung cancer (A549, H460), small cell lung cancer (DMS53, H372), and normal lung epithelial (BEAS-2B) cells, as well as on human-derived lung organoids, to investigate the cytotoxic effects of PS particles. At lower concentrations (< 30 {micro}g/cm2, equivalent to 50 {micro}g/ml), neither PS-MPs nor PS-NPs did not interfere with cell viability or proliferation. Intracellular kinetic assays revealed that non-malignant (BEAS-2B) lung cells showed the strongest turnover of PS-NPs compared to malignant cells. Since PS-NPs exhibited more pronounced cellular effects, we focused further analyses on their impact. Furthermore, we observed significantly increased migration, prolonged S-phase arrest along with induced DNA damage, and oxidative stress in non-malignant (BEAS-2B) lung cells. Thus, our data suggest that BEAS-2B cells exhibit the highest sensitivity to PS-NPs. We also demonstrate that after PS-NP treatment, these cells displayed decreased base excision repair capacity and increased activation of survival pathways, including AKT and ERK phosphorylation. PS-NP internalization and increase of signal pathways were validated in a more physiological lung organoid setting. Altogether, our findings suggest that PS-NPs do not significantly affect the malignant behavior of cancer cells. However, they could promote tumor-like features in normal lung cells by inducing survival pathways, migration, and alterations in stress response mechanisms. Environmental ImplicationsThis study investigates the effects of polystyrene micro-and nanoplastics (PS-MNPs) at environmentally relevant concentrations. The tested concentrations of PS-MNPs (0, 15, 30, and 60 {micro}g/cm2, equivalent to 0, 25, 50, and 100 {micro}g/ml) are commonly studied in the literature in lung cells. While these findings provide insights into cellular responses, the overall environmental impact of PS-MNPs remains limited at realistic exposure levels. HighlightsO_LIPS-MNPs are internalized into lung cells, with higher uptake in non-malignant cells. C_LIO_LIPS-NPs lead to increased migration, DNA damage, oxidative stress, and disturbed cell cycle progression. C_LIO_LIPS-NPs promote activation of survival pathways in non-malignant cells and lung organoids. C_LIO_LIExposure of PS-NPs may cause potential implications for lung cancer development and progression. C_LI
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Ernhofer, B., Spittler, A., Ferk, F., Misik, M., Zylka, M. M., Glatt, L., Boettiger, K., Solta, A., Kirchhofer, D., Timelthaler, G., Megyesfalvi, Z., Kopatz, V., Kovar, H., Knasmueller, S., Aigner, C., Kenner, L., Dome, B., Schelch, K.. 2025-03-26. Small Particles, Big Problems: Polystyrene nanoparticles induce DNA damage, oxidative stress, migration, and mitogenic pathways predominantly in non-malignant lung cells. https://doi.org/10.1101/2025.03.24.644975
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