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Updated: Oct 23, 2025

Characterize Disease-related Mutants of RAF Family Kinases by Using a Set of Practical and Feasible Methods
Published on: July 17, 2019
Deconvoluting Mechanisms of Acquired Resistance to RAF Inhibitors in BRAFV600E-Mutant Human Glioma
Karisa C Schreck1,2,3, Andrew Morin4,5, Guisheng Zhao6
1Department of Neurology, Sidney Kimmel Comprehensive Cancer Center, Johns Hopkins University, Baltimore, Maryland.
Purpose:
Selective RAF-targeted therapy is effective in some patients with BRAFV600E-mutated glioma, though emergent and adaptive resistance occurs through ill-defined mechanisms.
Experimental Design:
Paired pre-/post- RAF inhibitor (RAFi)-treated glioma samples (N = 15) were obtained and queried for treatment-emergent genomic alterations using DNA and RNA sequencing (RNA-seq). Functional validation of putative resistance mechanisms was performed using established and patient-derived BRAFV600E-mutant glioma cell lines.
Results:
Analysis of 15 tissue sample pairs identified 13 alterations conferring putative resistance were identified among nine paired samples (including mutations involving ERRFI1, BAP1, ANKHD1, and MAP2K1). We performed functional validation of mechanisms of resistance, including loss of NF1, PTEN, or CBL, in BRAFV600E-mutant glioma lines, and demonstrate they are capable of conferring resistance in vitro. Knockdown of CBL resulted in increased EGFR expression and phosphorylation, a possible mechanism for maintaining ERK signaling within the cell. Combination therapy with a MEKi or EGFR inhibitor was able to overcome resistance to BRAFi, in NF1 knockdown and CBL knockdown, respectively. Restoration of wild-type PTEN in B76 cells (PTEN-/-) restored sensitivity to BRAFi. We identified and validated CRAF upregulation as a mechanism of resistance in one resistant sample. RNA-seq analysis identified two emergent expression patterns in resistant samples, consistent with expression patterns of known glioma subtypes.
Conclusions:
Resistance mechanisms to BRAFi in glioma are varied and may predict effective precision combinations of targeted therapy, highlighting the importance of a personalized approach.
Insights
Resistance to BRAF-targeted therapy in BRAFV600E-mutant glioma is complex. Identifying specific genomic alterations and expression patterns can guide personalized combination therapies for improved treatment outcomes.
Area of Science:
- Neuro-oncology
- Molecular Oncology
- Genomics
Background:
- BRAFV600E-mutated glioma is treatable with RAF-targeted therapy.
- Treatment resistance remains a significant clinical challenge with poorly understood mechanisms.
Purpose of the Study:
- To investigate the genomic alterations and molecular mechanisms driving resistance to RAF inhibitors (RAFi) in BRAFV600E-mutant glioma.
- To functionally validate identified resistance mechanisms and explore potential combination therapies.
Main Methods:
- Paired pre- and post-RAFi-treated glioma samples (N=15) were analyzed using DNA and RNA sequencing.
- Putative resistance mechanisms were validated in BRAFV600E-mutant glioma cell lines through genetic manipulation (e.g., knockdown, restoration).
Main Results:
- Thirteen resistance-associated alterations were identified in nine samples, including mutations in ERRFI1, BAP1, ANKHD1, and MAP2K1.
- Loss of NF1, PTEN, or CBL conferred resistance in vitro; CBL knockdown led to increased EGFR signaling.
- Combination therapies (MEKi or EGFR inhibitor) overcame BRAFi resistance in specific models; PTEN restoration re-sensitized cells to BRAFi.
Conclusions:
- Resistance to BRAFi in glioma is mediated by diverse genetic alterations and adaptive signaling pathways.
- Understanding these mechanisms is crucial for developing personalized combination strategies.
- Targeted combination therapies hold promise for overcoming treatment resistance in BRAFV600E-mutant glioma.
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