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Updated: May 12, 2026

Discovery of Driver Genes in Colorectal HT29-derived Cancer Stem-Like Tumorspheres
Published on: July 22, 2020
Systematic tracking of dysregulated modules identifies novel genes in cancer
Sriganesh Srihari1, Mark A Ragan
1Institute for Molecular Bioscience, The University of Queensland, Brisbane, QLD 4072, Australia.
Motivation:
Deciphering the modus operandi of dysregulated cellular mechanisms in cancer is critical to implicate novel cancer genes and develop effective anti-cancer therapies. Fundamental to this is meticulous tracking of the behavior of core modules, including complexes and pathways across specific conditions in cancer.
Results:
Here, we performed a straightforward yet systematic identification and comparison of modules across pancreatic normal and cancer tissue conditions by integrating PPI, gene-expression and mutation data. Our analysis revealed interesting change-patterns in gene composition and expression correlation particularly affecting modules responsible for genome stability. Although in most cases these changes indicated impairment of essential functions (e.g., of DNA damage repair), in several other cases we noticed strengthening of modules possibly abetting cancer. Some of these compensatory modules showed switches in transcription regulation and recruitment of tumor inducers (e.g., SOX2 through overexpression). In-depth analysis revealed novel genes in pancreatic cancer, which showed susceptibility to copy-number alterations (e.g., for USP15 in 17 of 67 cases), supported by literature evidence for their involvement in other tumors (e.g., USP15 in glioblastoma). Two of the identified genes, YWHAE and DISC1, further supported the nexus between neural genes and pancreatic carcinogenesis. Extension of this assessment to BRCA1 and BRCA2 breast tumors showed specific differences even across the two sub-types and revealed novel genes involved therein (e.g., TRIM5 and NCOA6).
Availability:
Our software CONTOURv1 is available at: http://bioinformatics.org.au/tools-data/.
Insights
Researchers identified novel genes in pancreatic cancer by analyzing gene expression and mutation data. Some gene modules were impaired, while others strengthened, potentially aiding cancer progression and revealing new therapeutic targets.
Area of Science:
- Genomics
- Cancer Biology
- Bioinformatics
Background:
- Understanding cancer's cellular mechanisms is key for new therapies.
- Tracking core biological modules in cancer is essential.
Purpose of the Study:
- To systematically identify and compare molecular modules in normal and cancerous pancreatic tissues.
- To uncover novel genes and pathways involved in pancreatic cancer development.
Main Methods:
- Integrated protein-protein interaction (PPI), gene expression, and mutation data.
- Analyzed module composition and expression correlations in normal vs. cancer tissues.
- Extended analysis to BRCA1/BRCA2 breast tumors.
Main Results:
- Identified significant changes in modules related to genome stability, including DNA damage repair impairment.
- Discovered strengthened compensatory modules potentially promoting cancer, with altered transcription regulation and tumor inducer recruitment (e.g., SOX2).
- Uncovered novel pancreatic cancer genes (e.g., USP15, YWHAE, DISC1) and identified differences in BRCA1/BRCA2 tumors (e.g., TRIM5, NCOA6).
Conclusions:
- The study reveals complex alterations in cellular modules during pancreatic carcinogenesis.
- Identified novel candidate genes and pathways for pancreatic cancer, offering potential therapeutic targets.
- Highlights the utility of integrated data analysis for cancer gene discovery.
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