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Computational exploration of the activated pathways associated with DNA damage response in breast cancer
Liting Wen1, Wei Li, Marc Sobel
1Department of Chemistry, Temple University, Philadelphia, Pennsylvania 19122, USA.
Abstract:
Molecular signaling events regulate cellular activity. Cancer stimulating signals trigger cellular responses that evade the regulatory control of cell development. To understand the mechanism of signaling regulation in cancer, it is necessary to identify the activated pathways in cancer. We have developed RepairPATH, a computational algorithm that explores the activated signaling pathways in cancer. The RepairPATH integrates RepairNET, an assembled protein interaction network associated with DNA damage response, with the gene expression profiles derived from the microarray data. Based on the observation that cofunctional proteins often exhibit correlated gene expression profiles, it identifies the activated signaling pathways in cancer by systematically searching the RepairNET for proteins with significantly correlated gene expression profiles. Analyzing the gene expression profiles of breast cancer, we found distinct similarities and differences in the activated signaling pathways between the samples from the patients who developed metastases and the samples from the patients who were disease free within 5 years. The cellular pathways associated with the various DNA repair mechanisms and the cell-cycle checkpoint controls are found to be activated in both sample groups. One of the most intriguing findings is that the pathways associated with different cellular processes are functionally coordinated through BRCA1 in the disease-free sample group, whereas such functional coordination is absent in the samples from patients who developed metastases. Our analysis revealed the potential cellular pathways that regulate the signaling events in breast cancer.
Insights
A new computational algorithm, RepairPATH, identifies activated signaling pathways in cancer by analyzing gene expression. Breast cancer analysis revealed BRCA1
Area of Science:
- Oncology
- Bioinformatics
- Molecular Biology
Background:
- Cancer involves dysregulated molecular signaling pathways.
- Identifying activated pathways is crucial for understanding cancer mechanisms.
Purpose of the Study:
- To develop and apply a computational algorithm, RepairPATH, for identifying activated signaling pathways in cancer.
- To analyze breast cancer signaling pathways and their differences between metastatic and disease-free patients.
Main Methods:
- Developed RepairPATH, integrating a DNA damage response protein interaction network (RepairNET) with gene expression data.
- Identified activated pathways by detecting correlated gene expression profiles of co-functional proteins within RepairNET.
- Analyzed gene expression profiles from breast cancer patient samples.
Main Results:
- RepairPATH successfully identified activated signaling pathways in breast cancer.
- DNA repair and cell-cycle checkpoint pathways were activated in both metastatic and disease-free patient groups.
- BRCA1 functionally coordinated cellular pathways in disease-free patients, but this coordination was absent in patients who developed metastases.
Conclusions:
- The study identified potential cellular pathways regulating signaling events in breast cancer.
- BRCA1-mediated pathway coordination may be a key difference between patients who remain disease-free and those who develop metastases.
- RepairPATH is a valuable tool for exploring cancer signaling mechanisms.
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