An activated mutant BRAF kinase domain is sufficient to induce pilocytic astrocytoma in mice
Jan Gronych1, Andrey Korshunov, Josephine Bageritz
1Division Molecular Genetics (B060), German Cancer Research Center, Heidelberg, Germany.
Insights
Pilocytic astrocytoma (PA), a common childhood brain tumor, can now be modeled in vivo. Activating BRAF kinase domain in mice successfully induced PA, offering a new target for molecular therapies.
Area of Science:
- Pediatric oncology
- Neuro-oncology
- Cancer genetics
Background:
- Pilocytic astrocytoma (PA) is the most common pediatric brain tumor.
- Current adjuvant therapies for incompletely resected PA are moderately effective.
- A lack of adequate in vivo models hinders therapeutic development for PA.
Purpose of the Study:
- To develop a novel in vivo model for pilocytic astrocytoma.
- To investigate the role of BRAF activation in PA pathogenesis.
- To identify potential therapeutic targets for PA.
Main Methods:
- In vivo retroviral somatic gene transfer into mouse neural progenitor cells.
- Ectopic expression of activated BRAF kinase domain.
- In vitro analysis of astrocyte proliferation and drug sensitivity.
Main Results:
- Ectopic expression of activated BRAF kinase domain was sufficient to induce PA in mice.
- Overexpression of activated BRAF increased primary mouse astrocyte proliferation.
- Sorafenib, a kinase inhibitor, inhibited BRAF-induced astrocyte proliferation.
Conclusions:
- The study established a new in vivo mouse model for pilocytic astrocytoma.
- Activated BRAF kinase domain is sufficient for PA induction.
- BRAF activation represents a promising therapeutic target for PA treatment.
Abstract:
Pilocytic astrocytoma (PA) is the most common type of primary brain tumor in children and the second most frequent cancer in childhood. Children with incompletely resected PA represent a clinically challenging patient cohort for whom conventional adjuvant therapies are only moderately effective. This has produced high clinical demand for testing of new molecularly targeted treatments. However, the development of new therapeutics for PA has been hampered by the lack of an adequate in vivo tumor model. Recent studies have identified activation of MAPK signaling, mainly by oncogenic BRAF activation, as a hallmark genetic event in the pathogenesis of human PA. Using in vivo retroviral somatic gene transfer into mouse neural progenitor cells, we have shown here that ectopic expression of the activated BRAF kinase domain is sufficient to induce PA in mice. Further in vitro analyses demonstrated that overexpression of activated BRAF led to increased proliferation of primary mouse astrocytes that could be inhibited by treatment with the kinase inhibitor sorafenib. Our in vivo model for PA shows that the activated BRAF kinase domain is sufficient to induce PA and highlights its role as a potential therapeutic target.
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