Related Experiment Video
Updated: Jun 17, 2026

Detecting Somatic Genetic Alterations in Tumor Specimens by Exon Capture and Massively Parallel Sequencing
Published on: October 18, 2013
Identification of networks of co-occurring, tumor-related DNA copy number changes using a genome-wide scoring
Christiaan Klijn1, Jan Bot, David J Adams
1Division of Molecular Biology, The Netherlands Cancer Institute, Amsterdam, The Netherlands.
Abstract:
Tumorigenesis is a multi-step process in which normal cells transform into malignant tumors following the accumulation of genetic mutations that enable them to evade the growth control checkpoints that would normally suppress their growth or result in apoptosis. It is therefore important to identify those combinations of mutations that collaborate in cancer development and progression. DNA copy number alterations (CNAs) are one of the ways in which cancer genes are deregulated in tumor cells. We hypothesized that synergistic interactions between cancer genes might be identified by looking for regions of co-occurring gain and/or loss. To this end we developed a scoring framework to separate truly co-occurring aberrations from passenger mutations and dominant single signals present in the data. The resulting regions of high co-occurrence can be investigated for between-region functional interactions. Analysis of high-resolution DNA copy number data from a panel of 95 hematological tumor cell lines correctly identified co-occurring recombinations at the T-cell receptor and immunoglobulin loci in T- and B-cell malignancies, respectively, showing that we can recover truly co-occurring genomic alterations. In addition, our analysis revealed networks of co-occurring genomic losses and gains that are enriched for cancer genes. These networks are also highly enriched for functional relationships between genes. We further examine sub-networks of these networks, core networks, which contain many known cancer genes. The core network for co-occurring DNA losses we find seems to be independent of the canonical cancer genes within the network. Our findings suggest that large-scale, low-intensity copy number alterations may be an important feature of cancer development or maintenance by affecting gene dosage of a large interconnected network of functionally related genes.
Insights
Identifying collaborative genetic mutations is key to understanding cancer. This study reveals networks of co-occurring DNA copy number alterations that highlight synergistic gene interactions driving tumor development and progression.
Area of Science:
- Genomics
- Cancer Biology
- Bioinformatics
Background:
- Tumorigenesis involves accumulating genetic mutations that disrupt normal cell growth and survival.
- DNA copy number alterations (CNAs) are common in cancer and can deregulate cancer genes.
- Identifying synergistic interactions between mutated genes is crucial for understanding cancer development.
Purpose of the Study:
- To develop a method for identifying co-occurring DNA copy number alterations (CNAs) that indicate synergistic gene interactions in cancer.
- To analyze high-resolution CNA data from hematological tumors to find networks of cooperating cancer genes.
- To investigate the functional relationships within these networks and identify core subnetworks.
Main Methods:
- Developed a scoring framework to distinguish true co-occurring CNAs from passenger mutations and single signals.
- Analyzed high-resolution CNA data from 95 hematological tumor cell lines.
- Identified regions of high co-occurrence and investigated their functional relationships and network structures.
Main Results:
- Successfully identified known co-occurring recombinations at immune receptor loci in T- and B-cell malignancies.
- Discovered networks of co-occurring genomic losses and gains significantly enriched for cancer genes and functional relationships.
- Identified core subnetworks within these networks, with the core network for DNA losses appearing independent of canonical cancer genes.
Conclusions:
- The developed scoring framework effectively identifies synergistic genomic alterations in cancer.
- Co-occurring CNAs form interconnected networks that are functionally related and enriched for cancer genes.
- Large-scale, low-intensity CNAs may play a significant role in cancer development and maintenance by impacting gene dosage within these networks.

