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Updated: Jun 17, 2026

Time-lapse Imaging of Primary Preneoplastic Mammary Epithelial Cells Derived from Genetically Engineered Mouse Models of Breast Cancer
Published on: February 8, 2013
Dissecting the dynamics of dysregulation of cellular processes in mouse mammary gland tumor
Wieslawa I Mentzen1, Matteo Floris, Alberto de la Fuente
1CRS4 Bioinformatica, Parco Scientifico e Technologico POLARIS, 09010 Pula (CA), Italy.
Background:
Elucidating the sequence of molecular events underlying breast cancer formation is of enormous value for understanding this disease and for design of an effective treatment. Gene expression measurements have enabled the study of transcriptome-wide changes involved in tumorigenesis. This usually occurs through identification of differentially expressed genes or pathways.
Results:
We propose a novel approach that is able to delineate new cancer-related cellular processes and the nature of their involvement in tumorigenesis. First, we define modules as densely interconnected and functionally enriched areas of a Protein Interaction Network. Second, 'differential expression' and 'differential co-expression' analyses are applied to the genes in these network modules, allowing for identification of processes that are up- or down-regulated, as well as processes disrupted (low co-expression) or invoked (high co-expression) in different tumor stages. Finally, we propose a strategy to identify regulatory miRNAs potentially responsible for the observed changes in module activities. We demonstrate the potential of this analysis on expression data from a mouse model of mammary gland tumor, monitored over three stages of tumorigenesis. Network modules enriched in adhesion and metabolic processes were found to be inactivated in tumor cells through the combination of dysregulation and down-regulation, whereas the activation of the integrin complex and immune system response modules is achieved through increased co-regulation and up-regulation. Additionally, we confirmed a known miRNA involved in mammary gland tumorigenesis, and present several new candidates for this function.
Conclusions:
Understanding complex diseases requires studying them by integrative approaches that combine data sources and different analysis methods. The integration of methods and data sources proposed here yields a sensitive tool, able to pinpoint new processes with a role in cancer, dissect modulation of their activity and detect the varying assignments of genes to functional modules over the course of a disease.
Insights
This study introduces a new method to analyze breast cancer's molecular changes using protein interaction networks and gene expression. The approach identifies disrupted and activated cellular processes, revealing potential new therapeutic targets and microRNAs (miRNAs) involved in tumorigenesis.
Area of Science:
- Molecular biology
- Bioinformatics
- Cancer research
Background:
- Understanding breast cancer progression requires detailed knowledge of molecular events.
- Gene expression studies are crucial for identifying transcriptome-wide changes during tumorigenesis.
- Current methods often focus on identifying differentially expressed genes or pathways.
Purpose of the Study:
- To develop a novel approach for delineating new cancer-related cellular processes and their roles in tumorigenesis.
- To identify regulatory microRNAs (miRNAs) potentially responsible for observed changes in cellular processes.
- To analyze gene expression data from a mouse model of mammary gland tumor across three stages of tumorigenesis.
Main Methods:
- Defining network modules as densely interconnected and functionally enriched areas within a Protein Interaction Network.
- Applying differential expression and differential co-expression analyses to genes within network modules.
- Developing a strategy to identify regulatory miRNAs associated with module activity changes.
Main Results:
- Identification of inactivated adhesion and metabolic processes in tumor cells due to dysregulation and down-regulation.
- Observation of activated integrin complex and immune system response modules through increased co-regulation and up-regulation.
- Confirmation of a known miRNA and identification of novel candidate miRNAs involved in mammary gland tumorigenesis.
Conclusions:
- Integrative approaches combining diverse data sources and analysis methods are essential for understanding complex diseases like cancer.
- The proposed method provides a sensitive tool to pinpoint novel cancer-related processes and dissect their modulation during disease progression.
- This approach facilitates the detection of dynamic changes in gene assignments to functional modules throughout the course of cancer development.
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