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Transcriptomic and CRISPR/Cas9 technologies reveal FOXA2 as a tumor suppressor gene in pancreatic cancer
Christina Vorvis1, Maria Hatziapostolou2, Swapna Mahurkar-Joshi1
1Center for Systems Biomedicine, Division of Digestive Diseases, David Geffen School of Medicine, University of California, Los Angeles, California;
Abstract:
Pancreatic ductal adenocarcinoma (PDAC) is an aggressive cancer with low survival rates and limited therapeutic options. Thus elucidation of signaling pathways involved in PDAC pathogenesis is essential for identifying novel potential therapeutic gene targets. Here, we used a systems approach to elucidate those pathways by integrating gene and microRNA profiling analyses together with CRISPR/Cas9 technology to identify novel transcription factors involved in PDAC pathogenesis. FOXA2 transcription factor was found to be significantly downregulated in PDAC relative to control pancreatic tissues. Functional experiments revealed that FOXA2 has a tumor suppressor function through inhibition of pancreatic cancer cell growth, migration, invasion, and colony formation. In situ hybridization analysis revealed miR-199a to be significantly upregulated in pancreatic cancer. Bioinformatics and luciferase analyses showed that miR-199a negatively but directly regulates FOXA2 expression through binding in its 3'-untranslated region (UTR). Evaluation of the functional importance of miR-199a on pancreatic cancer revealed that miR-199a acts as an inhibitor of FOXA2 expression, inducing an increase in pancreatic cancer cell proliferation, migration, and invasion. Additionally, gene ontology and network analyses in PANC-1 cells treated with a small interfering RNA (siRNA) against FOXA2 revealed an enrichment for cell invasion mechanisms through PLAUR and ERK activation. FOXA2 deletion (FOXA2Δ) by using two CRISPR/Cas9 vectors in PANC-1 cells induced tumor growth in vivo resulting in upregulation of PLAUR and ERK pathways in FOXA2Δ xenograft tumors. We have identified FOXA2 as a novel tumor suppressor in pancreatic cancer and it is regulated directly by miR-199a, thereby enhancing our understanding of how microRNAs interplay with the transcription factors to affect pancreatic oncogenesis.
Insights
We identified FOXA2 as a tumor suppressor in pancreatic cancer. MicroRNA-199a directly downregulates FOXA2, promoting cancer cell growth and invasion, offering new therapeutic targets.
Area of Science:
- Oncology
- Molecular Biology
- Gene Regulation
Background:
- Pancreatic ductal adenocarcinoma (PDAC) is an aggressive cancer with poor prognosis.
- Identifying novel therapeutic targets is crucial for PDAC treatment.
- Understanding the interplay between microRNAs and transcription factors in PDAC is essential.
Purpose of the Study:
- To elucidate signaling pathways in PDAC pathogenesis using a systems approach.
- To identify novel transcription factors involved in PDAC.
- To investigate the regulatory relationship between miR-199a and FOXA2 in pancreatic cancer.
Main Methods:
- Integrated gene and microRNA profiling.
- CRISPR/Cas9 technology for gene editing.
- Functional assays including cell growth, migration, invasion, and in vivo xenografts.
- Bioinformatics and luciferase reporter assays.
Main Results:
- FOXA2 transcription factor is downregulated in PDAC and acts as a tumor suppressor.
- miR-199a is upregulated in PDAC and directly targets FOXA2, inhibiting its expression.
- miR-199a promotes pancreatic cancer cell proliferation, migration, and invasion.
- FOXA2 downregulation activates PLAUR and ERK pathways, contributing to invasion and tumor growth.
Conclusions:
- FOXA2 is a novel tumor suppressor in pancreatic cancer.
- miR-199a directly represses FOXA2, driving oncogenesis.
- The miR-199a/FOXA2 axis represents a potential therapeutic strategy for PDAC.
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