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Updated: Mar 8, 2026

Oncogene Expression Analysis with Alterations in pH in a Pancreatic Ductal Cell Line
Published on: April 11, 2025
Tolfenamic acid-induced alterations in genes and pathways in pancreatic cancer cells
Umesh T Sankpal1, Steve Goodison2, Michelle Jones-Pauley1
1Texas College of Osteopathic Medicine, University of North Texas Health Science Center, TX, USA.
Abstract:
Non-steroidal anti-inflammatory drugs (NSAIDs) are being tested extensively for their role in the treatment and prevention of several cancers. Typically NSAIDs exhibit anti-tumor activities via modulation of cyclooxygenase (COX)-dependent mechanisms, however, an anti-cancer NSAID tolfenamic acid (TA) is believed to work through COX-independent pathways. Results from our laboratory and others have demonstrated the anti-cancer activity of TA in various cancer models including pancreatic cancer. TA has been shown to modulate certain cellular processes including, apoptosis, reactive oxygen species and signaling. In this study, molecular profiling was performed to precisely understand the mode of action of TA. Three pancreatic cancer cell lines, L3.6pl, MIA PaCa-2, and Panc1 were treated with TA (50 μM for 48 h) and the changes in gene expression was evaluated using the Affymetrix GeneChip Human Gene ST Array platform. Microarray results were further validated using quantitative PCR for seven genes altered by TA treatment in all three cell lines. Functional analysis of differentially expressed genes (2 fold increase or decrease, p < 0.05) using Ingenuity Pathway Analysis software, revealed that TA treatment predominantly affected the genes involved in cell cycle, cell growth and proliferation, and cell death and survival. Promoter analysis of the differentially expressed genes revealed that they are enriched for Sp1 binding sites, suggesting that Sp1 could be a major contributor in mediating the effect of TA. The gene expression studies identified new targets involved in TA's mode of action, while supporting the hypothesis about the association of Sp1 in TA mediated effects in pancreatic cancer.
Insights
Tolfenamic acid, a non-steroidal anti-inflammatory drug, shows anti-cancer effects in pancreatic cancer models. Gene expression analysis suggests it impacts cell cycle and survival pathways, potentially mediated by Sp1.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Non-steroidal anti-inflammatory drugs (NSAIDs) are investigated for cancer treatment and prevention.
- Tolfenamic acid (TA), an NSAID, exhibits anti-tumor activity through COX-independent pathways.
- Previous studies demonstrated TA's anti-cancer effects in pancreatic cancer models, modulating apoptosis, ROS, and signaling.
Purpose of the Study:
- To elucidate the precise mode of action of tolfenamic acid (TA) in pancreatic cancer.
- To identify molecular targets and pathways affected by TA treatment.
- To investigate the potential role of Sp1 in mediating TA's anti-cancer effects.
Main Methods:
- Molecular profiling using Affymetrix GeneChip Human Gene ST Array on three pancreatic cancer cell lines (L3.6pl, MIA PaCa-2, Panc1) treated with TA.
- Validation of gene expression changes using quantitative PCR for seven key genes.
- Functional and promoter analysis of differentially expressed genes using Ingenuity Pathway Analysis software.
Main Results:
- TA treatment significantly altered gene expression in pancreatic cancer cell lines.
- Functional analysis revealed TA predominantly affects genes involved in cell cycle, cell growth, proliferation, and cell death/survival.
- Promoter analysis indicated enrichment of Sp1 binding sites in differentially expressed genes.
Conclusions:
- TA's anti-cancer effects in pancreatic cancer are mediated through modulation of critical cellular processes.
- Sp1 transcription factor is likely a key mediator of TA's effects.
- This study identifies novel targets and supports the role of Sp1 in TA's mechanism of action.
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