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Updated: Jul 5, 2026

Oncogenic Gene Fusion Detection Using Anchored Multiplex Polymerase Chain Reaction Followed by Next Generation Sequencing
Published on: July 5, 2019
Synergistic response to oncogenic mutations defines gene class critical to cancer phenotype
Helene R McMurray1, Erik R Sampson, George Compitello
1Department of Biomedical Genetics, University of Rochester Medical Center, 601 Elmwood Avenue, Rochester, New York 14642, USA.
Abstract:
Understanding the molecular underpinnings of cancer is of critical importance to the development of targeted intervention strategies. Identification of such targets, however, is notoriously difficult and unpredictable. Malignant cell transformation requires the cooperation of a few oncogenic mutations that cause substantial reorganization of many cell features and induce complex changes in gene expression patterns. Genes critical to this multifaceted cellular phenotype have therefore only been identified after signalling pathway analysis or on an ad hoc basis. Our observations that cell transformation by cooperating oncogenic lesions depends on synergistic modulation of downstream signalling circuitry suggest that malignant transformation is a highly cooperative process, involving synergy at multiple levels of regulation, including gene expression. Here we show that a large proportion of genes controlled synergistically by loss-of-function p53 and Ras activation are critical to the malignant state of murine and human colon cells. Notably, 14 out of 24 'cooperation response genes' were found to contribute to tumour formation in gene perturbation experiments. In contrast, only 1 in 14 perturbations of the genes responding in a non-synergistic manner had a similar effect. Synergistic control of gene expression by oncogenic mutations thus emerges as an underlying key to malignancy, and provides an attractive rationale for identifying intervention targets in gene networks downstream of oncogenic gain- and loss-of-function mutations.
Insights
Synergistic gene expression control by cooperating oncogenic mutations is key to malignancy. Targeting these
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Cancer development involves complex genetic mutations and altered gene expression.
- Identifying critical cancer-driving genes is challenging.
- Malignant transformation requires cooperation between oncogenic mutations.
Purpose of the Study:
- To investigate the role of synergistic gene expression modulation in cancer.
- To identify critical genes involved in malignant transformation driven by cooperating oncogenic mutations.
- To explore synergistic gene control as a target for cancer interventions.
Main Methods:
- Analysis of gene expression patterns in murine and human colon cells with p53 loss-of-function and Ras activation.
- Gene perturbation experiments to assess the contribution of 'cooperation response genes' to tumor formation.
- Comparison of synergistic versus non-synergistic gene responses in cancer development.
Main Results:
- A significant proportion of genes synergistically controlled by p53 and Ras mutations are crucial for malignant colon cells.
- 14 out of 24 'cooperation response genes' contributed to tumor formation upon perturbation.
- Genes responding synergistically are more critical for malignancy than those responding non-synergistically.
Conclusions:
- Synergistic gene expression control by oncogenic mutations is a fundamental mechanism underlying malignancy.
- Identifying genes under synergistic control offers a promising strategy for discovering novel cancer intervention targets.
- This study highlights the importance of cooperative gene regulation in cancer etiology.
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