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Profiling Sensitivity to Targeted Therapies in EGFR-Mutant NSCLC Patient-Derived Organoids
Published on: November 22, 2021
Acute PM2.5 Exposure in Distinct NSCLC Cell Lines Reveals Strong Oxidative Stress and Therapy Resistance Signatures
Aussara Panya1, Saruda Thongyim2, Pachara Sattayawat1
1Department of Biology, Faculty of Science, Chiang Mai University, Chiang Mai 50200, Thailand.
Abstract:
Acute PM2.5 exposure has been implicated in lung cancer progression, yet its impact on genetically distinct NSCLC cells remains underexplored. This study investigates how mutation-specific transcriptional responses influence susceptibility to PM2.5-induced oncogenic alterations, focusing on A549 and NCI-H1975 cells. This provides preliminary insight into the transcriptomic effects of acute PM2.5 exposure in NSCLC cells with distinct oncogenic mutations (A549 and NCI-H1975), serving as a guide for understanding mutation-specific responses to environmental stress. Cells were exposed to PM2.5 (200 µg/mL, 24 h), followed by RNA sequencing and analysis. Gene ontology and pathway enrichment analyses were conducted to identify key molecular alterations associated with tumour progression. NCI-H1975 cells exhibited a stronger transcriptional response, with a higher fold change in differentially expressed genes (DEGs), indicating greater PM2.5 susceptibility. Upregulated genes were linked to oxidative stress, carcinogen activation, metabolic reprogramming, and therapy resistance, reinforcing tumour survival under PM2.5 stress. Conversely, the downregulation of tumour suppressor genes suggests immune suppression and potential immunotherapy resistance. This study reveals that acute PM2.5 exposure induces mutation-specific transcriptomic alterations in NSCLC, with EGFR-mutant cells exhibiting heightened oxidative stress, metabolic shifts, and immune evasion. The upregulation of key genes highlights the profound molecular impact of short-term exposure, paving the way for future studies on pollution-driven oncogenic mechanisms and resistance pathways.
Insights
Acute exposure to fine particulate matter (PM2.5) triggers mutation-specific gene expression changes in non-small cell lung cancer (NSCLC) cells. EGFR-mutant cells show increased susceptibility, oxidative stress, and immune evasion.
Area of Science:
- Environmental Health
- Molecular Oncology
- Genomics
Background:
- Fine particulate matter (PM2.5) exposure is linked to lung cancer progression.
- The impact of PM2.5 on genetically distinct non-small cell lung cancer (NSCLC) cells is not well understood.
Purpose of the Study:
- To investigate mutation-specific transcriptional responses to PM2.5 in NSCLC cells.
- To understand how genetic mutations influence susceptibility to PM2.5-induced oncogenic alterations.
Main Methods:
- Exposure of A549 and NCI-H1975 NSCLC cells to PM2.5 (200 µg/mL, 24 h).
- RNA sequencing and subsequent gene ontology and pathway enrichment analyses.
Main Results:
- NCI-H1975 cells (EGFR-mutant) showed a stronger transcriptional response to PM2.5 than A549 cells.
- Upregulated genes in NCI-H1975 cells were associated with oxidative stress, carcinogen activation, metabolic reprogramming, and therapy resistance.
- Downregulated tumor suppressor genes suggested immune suppression and potential immunotherapy resistance.
Conclusions:
- Acute PM2.5 exposure induces mutation-specific transcriptomic alterations in NSCLC.
- EGFR-mutant NSCLC cells exhibit heightened susceptibility to PM2.5, characterized by increased oxidative stress, metabolic shifts, and immune evasion.
- These findings highlight the molecular impact of short-term PM2.5 exposure and inform future research on pollution-driven oncogenesis and resistance.
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