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Updated: Jan 19, 2026

Author Spotlight: Integrating BRET-Based Assays and Rare Mutation Analysis to Decipher RAF Kinase Regulation in Live Cells
Published on: March 1, 2024
Identification and characterization of a BRAF fusion oncoprotein with retained autoinhibitory domains
Florian Weinberg1,2, Ricarda Griffin1, Martina Fröhlich3
1Institute of Molecular Medicine and Cell Research, Faculty of Medicine, University of Freiburg, Freiburg, Germany.
Abstract:
Fusion proteins involving the BRAF serine/threonine kinase occur in many cancers. The oncogenic potential of BRAF fusions has been attributed to the loss of critical N-terminal domains that mediate BRAF autoinhibition. We used whole-exome and RNA sequencing in a patient with glioblastoma multiforme to identify a rearrangement between TTYH3, encoding a membrane-resident, calcium-activated chloride channel, and BRAF intron 1, resulting in a TTYH3-BRAF fusion protein that retained all features essential for BRAF autoinhibition. Accordingly, the BRAF moiety of the fusion protein alone, which represents full-length BRAF without the amino acids encoded by exon 1 (BRAFΔE1), did not induce MEK/ERK phosphorylation or transformation. Likewise, neither the TTYH3 moiety of the fusion protein nor full-length TTYH3 provoked ERK pathway activity or transformation. In contrast, TTYH3-BRAF displayed increased MEK phosphorylation potential and transforming activity, which were caused by TTYH3-mediated tethering of near-full-length BRAF to the (endo)membrane system. Consistent with this mechanism, a synthetic approach, in which BRAFΔE1 was tethered to the membrane by fusing it to the cytoplasmic tail of CD8 also induced transformation. Furthermore, we demonstrate that TTYH3-BRAF signals largely independent of a functional RAS binding domain, but requires an intact BRAF dimer interface and activation loop phosphorylation sites. Cells expressing TTYH3-BRAF exhibited increased MEK/ERK signaling, which was blocked by clinically achievable concentrations of sorafenib, trametinib, and the paradox breaker PLX8394. These data provide the first example of a fully autoinhibited BRAF protein whose oncogenic potential is dictated by a distinct fusion partner and not by a structural change in BRAF itself.
Insights
A novel TTYH3-BRAF fusion protein in glioblastoma retains BRAF autoinhibition but gains oncogenic potential through membrane tethering. This finding redefines BRAF fusion oncogenesis, highlighting the fusion partner
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Fusion proteins involving the BRAF serine/threonine kinase are implicated in various cancers.
- The oncogenic activity of BRAF fusions is typically linked to the loss of N-terminal inhibitory domains.
- Understanding novel BRAF fusion mechanisms is crucial for targeted cancer therapies.
Purpose of the Study:
- To identify and characterize a novel BRAF fusion in glioblastoma multiforme.
- To elucidate the mechanism by which the TTYH3-BRAF fusion protein exerts oncogenic potential.
- To investigate the signaling dependencies and therapeutic vulnerabilities of the TTYH3-BRAF fusion.
Main Methods:
- Whole-exome and RNA sequencing were employed to identify genetic rearrangements.
- Functional assays were performed to assess MEK/ERK phosphorylation and cellular transformation.
- In vitro and in vivo models were utilized to study TTYH3-BRAF signaling and drug sensitivity.
Main Results:
- A novel TTYH3-BRAF fusion protein was identified, retaining BRAF autoinhibition.
- The TTYH3 moiety mediated membrane tethering of BRAF, inducing oncogenic transformation.
- TTYH3-BRAF signaling is RAS-independent but requires BRAF dimerization and activation loop phosphorylation.
- The fusion protein's activity was inhibited by clinically relevant BRAF and MEK inhibitors.
Conclusions:
- The TTYH3-BRAF fusion represents a unique oncogenic mechanism driven by the fusion partner, not BRAF structural alteration.
- Membrane tethering is a critical determinant of oncogenic potential in this BRAF fusion.
- Targeting BRAF and MEK pathways offers a therapeutic strategy for cancers harboring this fusion.
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