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Open access Jul 2026

Attribution of PM2.5-Induced Transcriptomic Perturbation to Toxic Components.

Ambient fine particulate matter (PM2.5) is a chemically complex mixture whose health impacts are not fully captured by particle mass. Here, we developed an interpretable chemotranscriptomic framework to attribute PM2.5-induced molecular perturbations to toxicity-relevant components. PM2.5 collected from urban roadside and coastal environments was separated into whole, extractable, and unextractable fractions, characterized by LC/GC × GC-HRMS-based nontarget analysis and inductively coupled plasma mass spectrometry (ICP-MS), and evaluated using cytotoxicity testing and transcriptomic profiling in human bronchial epithelial cells. Urban PM2.5 exhibited greater cytotoxic potency per unit mass than coastal PM2.5, with extractable fractions accounting for most cytotoxic and pathway-level responses. Transcriptomics revealed distinct site-specific modes of action: urban PM2.5 preferentially induced oxidative stress, xenobiotic metabolism, and cell cycle suppression, consistent with acute, nonapoptotic injury, whereas coastal PM2.5 elicited weaker cytotoxicity but stronger interferon-mediated immune and apoptosis-related signaling. Integrating chemical abundance with pathway activity using random forest regression, SHAP interpretation, and mechanistic corroboration reduced 5,033 detected features to 444 pathway-linked candidate drivers. Fewer than 5% of features explained ∼95% of cumulative model contribution. Standard-confirmed contributors included plasticizer-related compounds, aromatic and heteroaromatic combustion products, and copper for urban PM2.5 and secondary/aged organics and nickel for coastal PM2.5. These findings support mechanism-informed prioritization of hazardous PM2.5 components beyond mass-based assessment.

Shihao Wang, Xinyu Li, Yong Han et al. · 0 citations
Open access Jul 2026

DEHP exposure induces cholesterol dysregulation and inflammatory signaling in human colonic epithelial cells: Implications for early colorectal carcinogenesis.

Di(2-ethylhexyl) phthalate (DEHP), a ubiquitous plasticizer and a classified Group 2B carcinogen, is associated with increased colorectal cancer (CRC) incidence, but its causal role and mechanisms are unclear. We investigated DEHP toxicity in human colonic epithelial cells (NCM460) using an integrated multi-omics approach. Phenotypic assays showed that low-dose (200 μM) exposure markedly inhibited cell migration by 32% independent of cytotoxicity within 48 h. Transcriptomics revealed a biphasic stress response: an early disruption of cholesterol metabolism and ABC transporters, followed by activation of pro-oncogenic pathways. Metabolomics confirmed concurrent redox imbalance and lipid/steroid dysregulation. Integrated analysis identified ABCA1, ABCG1, and SREBF1 as central regulatory nodes linking metabolic dysfunction to inflammatory and oncogenic pathways. The downregulation of ABCA1 and ABCG1 was validated at the mRNA level, a finding corroborated by their significant underexpression in clinical CRC tumors (TCGA database). Tumor tissues exhibited a 0.54-fold decrease in ABCA1 and a 0.47-fold decrease in ABCG1 compared to normal controls (p < 0.0001, n = 286). Moreover, ABCA1 knockdown phenocopied the inhibitory effect of DEHP on cell migration. In conclusion, these findings suggest that short-term DEHP exposure may disrupt intestinal epithelial homeostasis through a mechanism involving cholesterol transport impairment (SREBF1/ABCA1/ABCG1 axis), representing an early event in DEHP-associated colorectal pathogenesis.

Xinrui Zhou, Jiayi Diao, Jiamin Lu et al. · 0 citations