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Updated: Jun 17, 2026

Methods for Evaluating the Role of c-Fos and Dusp1 in Oncogene Dependence
Published on: January 7, 2019
Only a subset of Met-activated pathways are required to sustain oncogene addiction
Andrea Bertotti1, Mike F Burbridge, Stefania Gastaldi
1Division of Molecular Oncology, Institute for Cancer Research and Treatment (IRCC), University of Torino Medical School, 10060 Candiolo (Torino), Italy.
Abstract:
Tumor onset and progression require the accumulation of many genetic and epigenetic lesions. In some cases, however, cancer cells rely on only one of these lesions to maintain their malignant properties, and this dependence results in tumor regression upon oncogene inactivation ("oncogene addiction"). Determining which nodes of the many networks operative in the transformed phenotype specifically mediate this response to oncogene neutralization is crucial to identifying the vulnerabilities of cancer. Using the Met receptor as the major model system, we combined multiplex phosphoproteomics, genome-wide expression profiling, and functional assays in various cancer cells addicted to oncogenic receptor tyrosine kinases. We found that Met blockade affected a limited subset of Met downstream signals: Little or no effect was observed for several pathways downstream of Met; instead, only a restricted and pathway-specific signature of transducers and transcriptional effectors downstream of Ras or phosphoinositide 3-kinase (PI3K) was inactivated. An analogous signature was also generated by inhibition of epidermal growth factor receptor in a different cellular context, suggesting a stereotyped response that likely is independent of receptor type or tissue origin. Biologically, Met inhibition led to cell-cycle arrest. Inhibition of Ras-dependent signals and PI3K-dependent signals also resulted in cell-cycle arrest, whereas cells in which Met was inhibited proliferated when Ras or PI3K signaling was active. These findings uncover "dominant" and "recessive" nodes among the numerous oncogenic networks regulated by receptor tyrosine kinases and active in cancer, with the Ras and PI3K pathways as determinants of therapeutic response.
Insights
Cancer cells addicted to oncogenes show vulnerabilities. Targeting specific Ras or phosphoinositide 3-kinase (PI3K) pathways, rather than all downstream signals, effectively halts tumor cell growth.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Genetics
Background:
- Tumorigenesis involves accumulating genetic and epigenetic alterations.
- Oncogene addiction describes cancer cell dependence on a single lesion for malignancy.
- Identifying critical nodes in oncogenic networks is key to cancer vulnerability discovery.
Purpose of the Study:
- To determine which specific downstream signaling nodes mediate tumor regression upon oncogene inactivation.
- To investigate the role of Met receptor tyrosine kinase signaling in oncogene addiction.
- To identify conserved signaling pathways responsible for cancer cell dependence on oncogenic drivers.
Main Methods:
- Utilized multiplex phosphoproteomics and genome-wide expression profiling.
- Employed functional assays in cancer cell lines addicted to oncogenic receptor tyrosine kinases.
- Investigated Met receptor blockade and epidermal growth factor receptor inhibition.
Main Results:
- Met blockade inactivated a restricted signature of Ras and phosphoinositide 3-kinase (PI3K) pathway effectors, not all downstream signals.
- Inhibition of Ras or PI3K signaling induced cell-cycle arrest, mimicking Met inhibition.
- A stereotyped response signature was observed across different receptor tyrosine kinases and cellular contexts.
Conclusions:
- Identified dominant and recessive nodes within oncogenic receptor tyrosine kinase networks.
- Ras and PI3K pathways are critical determinants of therapeutic response in oncogene-addicted cancers.
- Targeting specific Ras/PI3K nodes offers a precise strategy for cancer therapy.
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