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.

Nature
|January 12, 2018
PubMed

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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