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Updated: Feb 15, 2026

DNA Vector-based RNA Interference to Study Gene Function in Cancer
Published on: June 4, 2012
A metabolic function of FGFR3-TACC3 gene fusions in cancer
Véronique Frattini1, Stefano M Pagnotta1,2, Tala1
1Institute for Cancer Genetics, Columbia University Medical Center, New York, New York 10032, USA.
Abstract:
Chromosomal translocations that generate in-frame oncogenic gene fusions are notable examples of the success of targeted cancer therapies. We have previously described gene fusions of FGFR3-TACC3 (F3-T3) in 3% of human glioblastoma cases. Subsequent studies have reported similar frequencies of F3-T3 in many other cancers, indicating that F3-T3 is a commonly occuring fusion across all tumour types. F3-T3 fusions are potent oncogenes that confer sensitivity to FGFR inhibitors, but the downstream oncogenic signalling pathways remain unknown. Here we show that human tumours with F3-T3 fusions cluster within transcriptional subgroups that are characterized by the activation of mitochondrial functions. F3-T3 activates oxidative phosphorylation and mitochondrial biogenesis and induces sensitivity to inhibitors of oxidative metabolism. Phosphorylation of the phosphopeptide PIN4 is an intermediate step in the signalling pathway of the activation of mitochondrial metabolism. The F3-T3-PIN4 axis triggers the biogenesis of peroxisomes and the synthesis of new proteins. The anabolic response converges on the PGC1α coactivator through the production of intracellular reactive oxygen species, which enables mitochondrial respiration and tumour growth. These data illustrate the oncogenic circuit engaged by F3-T3 and show that F3-T3-positive tumours rely on mitochondrial respiration, highlighting this pathway as a therapeutic opportunity for the treatment of tumours with F3-T3 fusions. We also provide insights into the genetic alterations that initiate the chain of metabolic responses that drive mitochondrial metabolism in cancer.
Insights
FGFR3-TACC3 (F3-T3) gene fusions drive cancer by activating mitochondrial respiration. Targeting this metabolic pathway offers a new therapeutic strategy for F3-T3-positive tumors.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Metabolism
Background:
- Chromosomal translocations creating oncogenic gene fusions are key targets in cancer therapy.
- FGFR3-TACC3 (F3-T3) fusions are oncogenic drivers found in various cancers, including glioblastoma.
- The downstream signaling pathways of F3-T3 fusions remain largely unknown.
Purpose of the Study:
- To elucidate the oncogenic signaling pathways activated by F3-T3 fusions.
- To investigate the role of mitochondrial function in F3-T3 driven tumorigenesis.
- To identify potential therapeutic vulnerabilities in F3-T3 positive cancers.
Main Methods:
- Transcriptional profiling of human tumors with F3-T3 fusions.
- Analysis of mitochondrial function and oxidative metabolism.
- Investigation of the F3-T3-PIN4 signaling axis and its downstream effects.
Main Results:
- F3-T3 fusions are associated with transcriptional subgroups characterized by activated mitochondrial functions.
- F3-T3 activates oxidative phosphorylation and mitochondrial biogenesis, conferring sensitivity to metabolic inhibitors.
- The F3-T3-PIN4 axis promotes peroxisome biogenesis and protein synthesis, converging on PGC1α via reactive oxygen species.
Conclusions:
- F3-T3 positive tumors exhibit a strong reliance on mitochondrial respiration for growth.
- The F3-T3-mediated activation of mitochondrial metabolism represents a significant therapeutic opportunity.
- Understanding the metabolic circuitry of F3-T3 fusions provides insights into cancer development and treatment.
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