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.

Oncotarget
|January 19, 2017
PubMed

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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