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Transcriptome analysis of pancreatic cancer reveals a tumor suppressor function for HNF1A
Jason W Hoskins1, Jinping Jia1, Marta Flandez2
1Laboratory of Translational Genomics, Division of Cancer Epidemiology and Genetics, National Cancer Institute, National Institutes of Health, Bethesda, MD 20892, USA, Epithelial Carcinogenesis Group, CNIO-Spanish National Cancer Research Centre, E-28029 Madrid, Spain, Lymphoid Malignancies Branch, Center for Cancer Research, National Cancer Institute and Bioinformatics and Molecular Analysis Section, Division of Computational Bioscience, Center for Information Technology, National Institutes of Health, Bethesda, MD 20892, USA, Department of Laboratory Medicine and Pathology and Division of Epidemiology, Department of Health Sciences Research, Mayo Clinic, Rochester, MN 55905, USA and Departament de Ciències Experimentals i de la Salut, Universitat Pompeu Fabra, 08003 Barcelona, Spain.
Abstract:
Pancreatic ductal adenocarcinoma (PDAC) is driven by the accumulation of somatic mutations, epigenetic modifications and changes in the micro-environment. New approaches to investigating disruptions of gene expression networks promise to uncover key regulators and pathways in carcinogenesis. We performed messenger RNA-sequencing in pancreatic normal (n = 10) and tumor (n = 8) derived tissue samples, as well as in pancreatic cancer cell lines (n = 9), to determine differential gene expression (DE) patterns. Sub-network enrichment analyses identified HNF1A as the regulator of the most significantly and consistently dysregulated expression sub-network in pancreatic tumor tissues and cells (median P = 7.56×10(-7), median rank = 1, range = 1-25). To explore the effects of HNF1A expression in pancreatic tumor-derived cells, we generated stable HNF1A-inducible clones in two pancreatic cancer cell lines (PANC-1 and MIA PaCa-2) and observed growth inhibition (5.3-fold, P = 4.5×10(-5) for MIA PaCa-2 clones; 7.2-fold, P = 2.2×10(-5) for PANC-1 clones), and a G0/G1 cell cycle arrest and apoptosis upon induction. These effects correlated with HNF1A-induced down-regulation of 51 of 84 cell cycle genes (e.g. E2F1, CDK2, CDK4, MCM2/3/4/5, SKP2 and CCND1), decreased expression of anti-apoptotic genes (e.g. BIRC2/5/6 and AKT) and increased expression of pro-apoptotic genes (e.g. CASP4/9/10 and APAF1). In light of the established role of HNF1A in the regulation of pancreatic development and homeostasis, our data suggest that it also functions as an important tumor suppressor in the pancreas.
Insights
Hepatocyte Nuclear Factor 1-Alpha (HNF1A) acts as a tumor suppressor in pancreatic cancer. Its dysregulation drives pancreatic ductal adenocarcinoma (PDAC) progression, and restoring HNF1A inhibits cancer cell growth and promotes apoptosis.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Pancreatic ductal adenocarcinoma (PDAC) arises from accumulated genetic and epigenetic alterations.
- Investigating gene expression networks is crucial for identifying cancer drivers.
- Hepatocyte Nuclear Factor 1-Alpha (HNF1A) is implicated in pancreatic development and homeostasis.
Purpose of the Study:
- To identify key gene expression regulators in PDAC.
- To investigate the role of HNF1A in pancreatic cancer cell lines.
- To explore HNF1A's potential as a tumor suppressor.
Main Methods:
- Messenger RNA sequencing (mRNA-seq) on normal and tumor pancreatic tissues and cell lines.
- Sub-network enrichment analysis to identify dysregulated gene networks.
- Generation of HNF1A-inducible clones in PDAC cell lines (PANC-1, MIA PaCa-2) for functional studies.
Main Results:
- HNF1A was identified as a key regulator of significantly dysregulated gene networks in PDAC.
- HNF1A induction in PDAC cells caused significant growth inhibition and G0/G1 cell cycle arrest.
- HNF1A modulated expression of cell cycle, anti-apoptotic, and pro-apoptotic genes, inducing apoptosis.
Conclusions:
- HNF1A functions as a tumor suppressor in pancreatic cancer.
- HNF1A dysregulation contributes to PDAC pathogenesis.
- Targeting HNF1A pathways may offer therapeutic strategies for PDAC.
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