Abstract / Summary
Nanoplastics (NPs) are widespread environmental contaminants, yet most toxicity studies rely on short-term, single-dose exposures that poorly reflect daily human exposure. The kidney, particularly the proximal tubule, is a likely site of repeated NP exposure given its role in filtration and reabsorption, but chronic exposure effects are largely unexplored. Here, a long-term in vitro model was developed in which human proximal tubule (HK-2) cells were continuously exposed to 20 nm or 100 nm carboxylated polystyrene NPs (100 µg/mL) over 12 days. Continuous 20 nm NP exposure caused progressive loss of viability whereas 100 nm NPs left viable cell numbers largely unaffected. RNA-sequencing showed 20 nm NPs drove extensive, time-dependent transcriptional dysregulation (1,548 differentially expressed genes at day 6, rising to 4,431 at day 9), far exceeding the minimal alterations in gene expression (35 genes) caused by 100 nm NPs. Cell-cycle analysis and pathway enrichment revealed KRAS pathway activation and S-phase arrest in 20 nm-treated cells, with ANGPTL4 the most upregulated gene. Validation with qRT-PCR confirmed increased ANGPTL4, HMOX1 and FN1 expression, genes implicated in renal fibrosis and chronic kidney disease. These findings show that continuous, size-dependent NP exposure elicits progressive cytotoxic and transcriptional responses in kidney proximal tubule cells and indicate ANGPTL4 as a candidate early biomarker of NP-induced renal stress.