Functional characterization of a BRAF insertion mutant associated with pilocytic astrocytoma
Anja E Eisenhardt1, Heike Olbrich, Michael Röring
1Centre for Biological Systems Analysis (ZBSA), Albert-Ludwigs-University, Freiburg, Germany.
Abstract:
Pilocytic astrocytoma (PA) is emerging as a tumor entity with dysregulated Ras/Raf/MEK/ERK signaling. Common genetic lesions observed in PA, which are linked to aberrant ERK pathway activity, include either NF1 inactivation, KRAS or BRAF gain-of-function mutations. To investigate the mutation spectrum within the proto-oncogene encoding the Ser/Thr-kinase B-Raf in more detail, we analyzed 64 primary tumor samples from children with PA including two patients with neurofibromatosis type 1 (NF1). The well-known BRAF(V600E) mutation was found in 6/64 (9.38%) of our samples. For the first time, we report concomitant presence of a somatic BRAF(V600E) mutation in an NF1 patient indicating that more than one Ras/ERK pathway component can be affected in PA. Furthermore, 2/64 (3.13%) of our samples carried a 3-bp insertion in BRAF resulting in the duplication of threonine 599. This conserved residue is located within the activation segment and, if phosphorylated in a Ras-dependent manner, plays a key role in Raf activation. Here, we demonstrate that this mutant (B-Raf(insT) ) and another B-Raf mutant, which carries two additional threonine residues at this position, display an in vitro kinase activity and cellular MEK/ERK activation potential comparable to those of B-Raf(V600E) . Notably, replacement of threonines by valine residues had similar effects on B-Raf activity, suggesting that the distortion of the peptide backbone by additional amino acids rather than the insertion of additional, potential phosphorylation sites destabilizes the inactive conformation of the kinase domain. We also demonstrate that B-Raf(insT) and B-Raf(V600E) , but not B-Raf(wt) , provoke drastic morphological alterations in human astrocytes.
Insights
Pilocytic astrocytoma (PA) often involves Ras/Raf/MEK/ERK pathway mutations. Researchers found BRAF mutations, including a novel insertion, in pediatric PA, with some cases showing concurrent NF1 and BRAF alterations, impacting astrocyte morphology.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Pilocytic astrocytoma (PA) is characterized by dysregulated Ras/Raf/MEK/ERK signaling.
- Common genetic alterations in PA include NF1 inactivation and KRAS or BRAF gain-of-function mutations.
Purpose of the Study:
- To investigate the mutation spectrum of the BRAF proto-oncogene in pediatric pilocytic astrocytoma.
- To analyze the functional impact of novel BRAF mutations on kinase activity and cellular signaling.
Main Methods:
- Analysis of 64 primary pediatric PA tumor samples, including two with neurofibromatosis type 1 (NF1).
- Identification of BRAF mutations using genetic sequencing.
- In vitro kinase assays and cellular MEK/ERK activation studies.
- Morphological analysis of human astrocytes treated with BRAF mutants.
Main Results:
- The common BRAF(V600E) mutation was identified in 9.38% of samples.
- A novel 3-bp insertion in BRAF (B-Raf(insT)) was found in 3.13% of samples.
- B-Raf(insT) and B-Raf(V600E) exhibited comparable in vitro kinase activity and MEK/ERK activation.
- Both B-Raf(insT) and B-Raf(V600E) induced significant morphological changes in human astrocytes.
- Concomitant somatic BRAF(V600E) mutation and NF1 were observed in one patient.
Conclusions:
- BRAF mutations are prevalent in pediatric pilocytic astrocytoma and contribute to ERK pathway activation.
- Novel BRAF insertions, like B-Raf(insT), can lead to aberrant kinase activity and cellular alterations.
- The study highlights the potential for multiple Ras/ERK pathway components to be affected in PA, even within the same tumor.
- These findings deepen the understanding of the molecular pathogenesis of pilocytic astrocytoma.
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