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Updated: Feb 9, 2026

An R-Based Landscape Validation of a Competing Risk Model
Published on: September 16, 2022
The genetic landscape of ganglioglioma
Melike Pekmezci1, Javier E Villanueva-Meyer2, Benjamin Goode1
1Department of Pathology, University of California, San Francisco, CA, USA.
Abstract:
Ganglioglioma is the most common epilepsy-associated neoplasm that accounts for approximately 2% of all primary brain tumors. While a subset of gangliogliomas are known to harbor the activating p.V600E mutation in the BRAF oncogene, the genetic alterations responsible for the remainder are largely unknown, as is the spectrum of any additional cooperating gene mutations or copy number alterations. We performed targeted next-generation sequencing that provides comprehensive assessment of mutations, gene fusions, and copy number alterations on a cohort of 40 gangliogliomas. Thirty-six harbored mutations predicted to activate the MAP kinase signaling pathway, including 18 with BRAF p.V600E mutation, 5 with variant BRAF mutation (including 4 cases with novel in-frame insertions at p.R506 in the β3-αC loop of the kinase domain), 4 with BRAF fusion, 2 with KRAS mutation, 1 with RAF1 fusion, 1 with biallelic NF1 mutation, and 5 with FGFR1/2 alterations. Three gangliogliomas with BRAF p.V600E mutation had concurrent CDKN2A homozygous deletion and one additionally harbored a subclonal mutation in PTEN. Otherwise, no additional pathogenic mutations, fusions, amplifications, or deletions were identified in any of the other tumors. Amongst the 4 gangliogliomas without canonical MAP kinase pathway alterations identified, one epilepsy-associated tumor in the temporal lobe of a young child was found to harbor a novel ABL2-GAB2 gene fusion. The underlying genetic alterations did not show significant association with patient age or disease progression/recurrence in this cohort. Together, this study highlights that ganglioglioma is characterized by genetic alterations that activate the MAP kinase pathway, with only a small subset of cases that harbor additional pathogenic alterations such as CDKN2A deletion.
Insights
Gangliogliomas, common brain tumors linked to epilepsy, primarily activate the MAP kinase pathway through genetic alterations. Researchers identified BRAF mutations or fusions in most cases, with few additional genetic changes.
Area of Science:
- Neuro-oncology
- Cancer Genomics
- Molecular Biology
Background:
- Ganglioglioma is the most frequent brain tumor associated with epilepsy, representing about 2% of all primary brain tumors.
- While the BRAF p.V600E mutation is known in some cases, the genetic landscape of other gangliogliomas remains largely uncharacterized.
- Understanding these genetic alterations is crucial for diagnosing and potentially treating this neoplasm.
Purpose of the Study:
- To comprehensively analyze the spectrum of genetic alterations in a cohort of gangliogliomas.
- To identify novel gene fusions, mutations, and copy number alterations.
- To correlate genetic findings with clinical features like patient age and disease recurrence.
Main Methods:
- Targeted next-generation sequencing was employed for comprehensive genetic profiling.
- Analysis included mutations, gene fusions, and copy number alterations.
- A cohort of 40 ganglioglioma samples was studied.
Main Results:
- Thirty-six out of 40 gangliogliomas (90%) showed genetic alterations activating the MAP kinase pathway.
- Common alterations included BRAF p.V600E mutations (18 cases), variant BRAF mutations/fusions (9 cases), KRAS mutations (2 cases), RAF1 fusion (1 case), NF1 mutation (1 case), and FGFR1/2 alterations (5 cases).
- A novel ABL2-GAB2 gene fusion was identified in one case lacking canonical MAP kinase pathway alterations. CDKN2A homozygous deletion was found in three BRAF-mutated cases.
Conclusions:
- Gangliogliomas are predominantly driven by genetic alterations that activate the MAP kinase signaling pathway.
- BRAF alterations are the most common drivers, but other pathway members like KRAS, RAF1, NF1, and FGFR1/2 are also implicated.
- Additional alterations, such as CDKN2A deletion, occur infrequently and do not appear to correlate with clinical outcomes in this cohort.
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