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Published on: January 7, 2019
Advanced computational biology methods identify molecular switches for malignancy in an EGF mouse model of liver
Philip Stegmaier1, Nico Voss, Tatiana Meier
1BIOBASE GmbH, Wolfenbuettel, Germany.
Abstract:
The molecular causes by which the epidermal growth factor receptor tyrosine kinase induces malignant transformation are largely unknown. To better understand EGFs' transforming capacity whole genome scans were applied to a transgenic mouse model of liver cancer and subjected to advanced methods of computational analysis to construct de novo gene regulatory networks based on a combination of sequence analysis and entrained graph-topological algorithms. Here we identified transcription factors, processes, key nodes and molecules to connect as yet unknown interacting partners at the level of protein-DNA interaction. Many of those could be confirmed by electromobility band shift assay at recognition sites of gene specific promoters and by western blotting of nuclear proteins. A novel cellular regulatory circuitry could therefore be proposed that connects cell cycle regulated genes with components of the EGF signaling pathway. Promoter analysis of differentially expressed genes suggested the majority of regulated transcription factors to display specificity to either the pre-tumor or the tumor state. Subsequent search for signal transduction key nodes upstream of the identified transcription factors and their targets suggested the insulin-like growth factor pathway to render the tumor cells independent of EGF receptor activity. Notably, expression of IGF2 in addition to many components of this pathway was highly upregulated in tumors. Together, we propose a switch in autocrine signaling to foster tumor growth that was initially triggered by EGF and demonstrate the knowledge gain form promoter analysis combined with upstream key node identification.
Insights
Epidermal growth factor receptor (EGFR) drives liver cancer by altering gene regulation. A shift to insulin-like growth factor (IGF) signaling helps tumors grow independently of EGFR.
Area of Science:
- Oncology
- Molecular Biology
- Bioinformatics
Background:
- The molecular mechanisms by which epidermal growth factor receptor tyrosine kinase (EGFR) induces malignant transformation remain largely unknown.
- Understanding EGFR's role in cancer is crucial for developing targeted therapies.
Purpose of the Study:
- To elucidate the molecular pathways and gene regulatory networks underlying EGFR-induced liver cancer.
- To identify key nodes and interacting partners in EGFR signaling and transformation.
Main Methods:
- Whole genome scans in a transgenic mouse model of liver cancer.
- Computational analysis to construct de novo gene regulatory networks using sequence analysis and graph-topological algorithms.
- Experimental validation using electromobility band shift assays and Western blotting.
Main Results:
- Identified novel transcription factors, processes, and molecules connecting previously unknown protein-DNA interactions.
- Proposed a new cellular regulatory circuitry linking cell cycle genes with EGFR signaling components.
- Discovered that the insulin-like growth factor (IGF) pathway promotes tumor independence from EGFR signaling, with upregulated IGF2 expression in tumors.
Conclusions:
- EGFR initiates liver tumorigenesis through complex gene regulatory alterations.
- A signaling switch from EGFR to IGF pathways enables tumor growth and resistance.
- Integrative analysis of genomic data and signaling pathways provides critical insights into cancer mechanisms.
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