CRAF gene fusions in pediatric low-grade gliomas define a distinct drug response based on dimerization profiles
P Jain1,2,3, T M Fierst3,4, H J Han1,3
1Department of Neurosurgery, University of Pennsylvania, Philadelphia, PA, USA.
Abstract:
Pediatric low-grade gliomas (PLGGs) are commonly associated with BRAF gene fusions that aberrantly activate the mitogen-activated protein kinase (MAPK) signaling pathway. This has led to PLGG clinical trials utilizing RAF- and MAPK pathway-targeted therapeutics. Whole-genome profiling of PLGGs has also identified rare gene fusions involving another RAF isoform, CRAF/RAF1, in PLGGs and cancers occuring in adults. Whereas BRAF fusions primarily dysregulate MAPK signaling, the CRAF fusions QKI-RAF1 and SRGAP3-RAF1 aberrantly activate both the MAPK and phosphoinositide-3 kinase/mammalian target of rapamycin (PI3K/mTOR) signaling pathways. Although ATP-competitive, first-generation RAF inhibitors (vemurafenib/PLX4720, RAFi) cause paradoxical activation of the MAPK pathway in BRAF-fusion tumors, inhibition can be achieved with 'paradox breaker' RAFi, such as PLX8394. Here we report that, unlike BRAF fusions, CRAF fusions are unresponsive to both generations of RAFi, vemurafenib and PLX8394, highlighting a distinct responsiveness of CRAF fusions to clinically relevant RAFi. Whereas PLX8394 decreased BRAF-fusion dimerization, CRAF-fusion dimerization is unaffected primarily because of robust protein-protein interactions mediated by the N-terminal non-kinase fusion partner, such as QKI. The pan-RAF dimer inhibitor, LY3009120, could suppress CRAF-fusion oncogenicity by inhibiting dimer-mediated signaling. In addition, as CRAF fusions activate both the MAPK and PI3K/mTOR signaling pathways, we identify combinatorial inhibition of the MAPK/mTOR pathway as a potential therapeutic strategy for CRAF-fusion-driven tumors. Overall, we define a mechanistic distinction between PLGG-associated BRAF- and CRAF/RAF1 fusions in response to RAFi, highlighting the importance of molecularly classifying PLGG patients for targeted therapy. Furthermore, our study uncovers an important contribution of the non-kinase fusion partner to oncogenesis and potential therapeutic strategies against PLGG-associated CRAF fusions and possibly pan-cancer CRAF fusions.
Insights
Pediatric low-grade gliomas with CRAF fusions are resistant to RAF inhibitors, unlike BRAF fusions. Targeting both MAPK and PI3K/mTOR pathways offers a new therapeutic strategy for these rare pediatric brain tumors.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Pediatric low-grade gliomas (PLGGs) often harbor BRAF gene fusions activating the MAPK pathway, leading to targeted therapy trials.
- Rare CRAF/RAF1 fusions in PLGGs and adult cancers activate both MAPK and PI3K/mTOR pathways.
- First-generation RAF inhibitors can paradoxically activate MAPK in BRAF-fusion tumors, necessitating 'paradox breaker' inhibitors.
Purpose of the Study:
- To investigate the distinct responsiveness of CRAF fusions compared to BRAF fusions to RAF inhibitors (RAFi).
- To elucidate the mechanisms underlying CRAF fusion oncogenicity and identify potential therapeutic strategies.
Main Methods:
- Whole-genome profiling to identify gene fusions.
- Treatment of cell lines with RAF inhibitors (vemurafenib, PLX8394, LY3009120).
- Analysis of signaling pathway activation (MAPK, PI3K/mTOR) and protein dimerization.
Main Results:
- CRAF fusions are unresponsive to both generations of RAFi (vemurafenib, PLX8394), unlike BRAF fusions.
- CRAF-fusion dimerization is unaffected by PLX8394 due to non-kinase partner interactions.
- The pan-RAF dimer inhibitor LY3009120 suppressed CRAF-fusion oncogenicity.
- Combinatorial inhibition of MAPK and PI3K/mTOR pathways showed potential for CRAF-fusion-driven tumors.
Conclusions:
- Mechanistic distinctions exist between BRAF and CRAF fusions in response to RAFi, emphasizing molecular classification for PLGG therapy.
- Non-kinase fusion partners play a crucial role in oncogenesis.
- Targeting CRAF fusions may involve pan-RAF dimer inhibitors or combinatorial pathway inhibition.
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