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Updated: Feb 25, 2026

Induction and Analysis of Epithelial to Mesenchymal Transition
Published on: August 27, 2013
Unraveling a tumor type-specific regulatory core underlying E2F1-mediated epithelial-mesenchymal transition to
Faiz M Khan1, Stephan Marquardt2, Shailendra K Gupta1,3
1Department of Systems Biology and Bioinformatics, University of Rostock, 18051, Rostock, Germany.
Abstract:
Cancer is a disease of subverted regulatory pathways. In this paper, we reconstruct the regulatory network around E2F, a family of transcription factors whose deregulation has been associated to cancer progression, chemoresistance, invasiveness, and metastasis. We integrate gene expression profiles of cancer cell lines from two E2F1-driven highly aggressive bladder and breast tumors, and use network analysis methods to identify the tumor type-specific core of the network. By combining logic-based network modeling, in vitro experimentation, and gene expression profiles from patient cohorts displaying tumor aggressiveness, we identify and experimentally validate distinctive, tumor type-specific signatures of receptor proteins associated to epithelial-mesenchymal transition in bladder and breast cancer. Our integrative network-based methodology, exemplified in the case of E2F1-induced aggressive tumors, has the potential to support the design of cohort- as well as tumor type-specific treatments and ultimately, to fight metastasis and therapy resistance.Deregulation of E2F family transcription factors is associated with cancer progression and metastasis. Here, the authors construct a map of the regulatory network around the E2F family, and using gene expression profiles, identify tumour type-specific regulatory cores and receptor expression signatures associated with epithelial-mesenchymal transition in bladder and breast cancer.
Insights
Researchers mapped the E2F regulatory network in aggressive bladder and breast cancers. They identified unique molecular signatures linked to cancer spread and resistance, paving the way for targeted therapies.
Area of Science:
- Oncology
- Systems Biology
- Molecular Biology
Background:
- Deregulation of E2F transcription factors is implicated in cancer progression, chemoresistance, invasiveness, and metastasis.
- E2F family transcription factors play a critical role in cell cycle regulation and are frequently dysregulated in various cancers.
Purpose of the Study:
- To reconstruct the regulatory network around E2F in aggressive bladder and breast tumors.
- To identify tumor type-specific regulatory cores and receptor protein signatures associated with epithelial-mesenchymal transition.
- To validate these signatures experimentally and explore their therapeutic potential.
Main Methods:
- Integration of gene expression profiles from cancer cell lines and patient cohorts.
- Network analysis to identify core regulatory components.
- Logic-based network modeling.
- In vitro experimentation for validation.
Main Results:
- Identification of distinct, tumor type-specific regulatory network cores for bladder and breast cancer.
- Discovery of unique receptor protein signatures associated with epithelial-mesenchymal transition in these cancers.
- Experimental validation of identified signatures.
Conclusions:
- The developed integrative network-based methodology can identify tumor-specific regulatory mechanisms.
- This approach has the potential to guide the development of targeted therapies for aggressive cancers.
- Findings contribute to understanding and combating metastasis and therapy resistance.
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