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Updated: Jan 7, 2026

Mapping the Structure-Function Relationships of Disordered Oncogenic Transcription Factors Using Transcriptomic Analysis
Published on: June 27, 2020
C-Terminal Truncation and Fusion Partner Determine Oncogenicity of FGFR3
Julia Yemelyanenko1,2, Jinhyuk Bhin1,2,3,4, Eline van der Burg1,2
1Division of Molecular Pathology, Netherlands Cancer Institute, Amsterdam, the Netherlands.
Abstract:
Genomic alterations affecting components of the fibroblast growth factor (FGF) signaling axis can trigger aberrant pathway activation and tumor development. Genomic truncation of the FGF receptor 2 (FGFR2) exon 18 (E18) disrupts the FGFR2 carboxy (C)-terminal tail, acting as a potent driver alteration across multiple tumor types. In this study, we analyzed human oncogenomic datasets to reveal that E18 truncations are similarly prevalent in FGFR3, an FGFR2 paralog. FGFR3 E18 truncations primarily occur due to rearrangements (RE) that involve transforming acidic coiled-coil-containing protein 3 (TACC3), resulting in FGFR3ΔE18-TACC3 gene fusions. In contrast to E18-truncated FGFR2, functional in vitro and in vivo examination of Fgfr3 variants demonstrated that the truncation of Fgfr3 E18 is insufficient to promote oncogenic activity in cell lines or in the lungs and mammary glands of mice. Only the combination of an Fgfr3 E18 truncation with a RE partner gene that encodes a receptor-dimerizing domain resulted in the development of tumors, which were sensitive to FGFR inhibition. Overall, these findings suggest that patients with cancers that are positive for rearranged FGFR3, resulting in E18 truncation and a fusion to dimerizing partners, should be considered for FGFR-targeted therapies.
Significance:
FGFR3, unlike its paralog FGFR2, requires both a C-terminal truncation and fusion to a partner gene that retains the expression of a dimerizing domain to effectively drive oncogenic signaling and tumorigenesis.
Insights
FGFR3 exon 18 truncations alone do not drive cancer. Rearrangements with receptor-dimerizing partners are required for FGFR3-driven tumors, which respond to FGFR inhibitors.
Area of Science:
- Oncology
- Genetics
- Molecular Biology
Background:
- Fibroblast growth factor (FGF) signaling is crucial in cell development.
- Aberrant FGF signaling, driven by genomic alterations in FGF receptors (FGFRs), can lead to cancer.
- FGFR2 exon 18 (E18) truncations are known oncogenic drivers.
Purpose of the Study:
- To investigate the role of FGFR3 E18 truncations in cancer development.
- To identify the mechanisms driving FGFR3 activation.
- To determine the therapeutic potential of targeting FGFR3 alterations.
Main Methods:
- Analysis of human oncogenomic datasets.
- In vitro and in vivo functional studies of Fgfr3 variants in cell lines and mouse models.
- Assessment of tumor development and response to FGFR inhibition.
Main Results:
- FGFR3 E18 truncations were identified in human cancers, often via rearrangements with TACC3, forming FGFR3ΔE18-TACC3 fusions.
- FGFR3 E18 truncation alone was insufficient for oncogenic activity in vitro and in vivo.
- Tumorigenesis required FGFR3 E18 truncation combined with a fusion partner encoding a receptor-dimerizing domain.
- These tumors demonstrated sensitivity to FGFR inhibition.
Conclusions:
- FGFR3 E18 truncations require specific fusion partners to drive oncogenesis.
- Rearranged FGFR3 with E18 truncation and dimerization domains represents a targetable alteration.
- Patients with such FGFR3 alterations may benefit from FGFR-targeted therapies.
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