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Intracranial Orthotopic Allografting of Medulloblastoma Cells in Immunocompromised Mice
Published on: October 3, 2010
MYC overexpression and SMARCA4 loss cooperate to drive medulloblastoma formation in mice
Carolin Göbel1,2, Shweta Godbole3, Melanie Schoof1,2
1Department of Pediatric Hematology and Oncology, University Medical Center Hamburg-Eppendorf, Martinistrasse 52, Hamburg, 20251, Germany.
Abstract:
Group 3 medulloblastoma is one of the most aggressive types of childhood brain tumors. Roughly 30% of cases carry genetic alterations in MYC, SMARCA4, or both genes combined. While overexpression of MYC has previously been shown to drive medulloblastoma formation in mice, the functional significance of SMARCA4 mutations and their suitability as a therapeutic target remain largely unclear. To address this issue, we combined overexpression of MYC with a loss of SMARCA4 in granule cell precursors. Both alterations did not increase proliferation of granule cell precursors in vitro. However, combined MYC overexpression and SMARCA4 loss successfully induced tumor formation in vivo after orthotopic transplantation in recipient mice. Resulting tumors displayed anaplastic histology and exclusively consisted of SMARCA4-negative cells although a mixture of recombined and non-recombined cells was injected. These observations provide first evidence for a tumor-promoting role of a SMARCA4 deficiency in the development of medulloblastoma. In comparing the transcriptome of tumors to the cells of origin and an established Sonic Hedgehog medulloblastoma model, we gathered first hints on deregulated gene expression that could be specifically involved in SMARCA4/MYC driven tumorigenesis. Finally, an integration of RNA sequencing and DNA methylation data of murine tumors with human samples revealed a high resemblance to human Group 3 medulloblastoma on the molecular level. Altogether, the development of SMARCA4-deficient medulloblastomas in mice paves the way to deciphering the role of frequently occurring SMARCA4 alterations in Group 3 medulloblastoma with the perspective to explore targeted therapeutic options.
Insights
Group 3 medulloblastoma, an aggressive childhood brain tumor, can involve MYC and SMARCA4 genes. Loss of SMARCA4, combined with MYC overexpression, successfully induced aggressive tumors in mice, suggesting SMARCA4 deficiency promotes medulloblastoma.
Area of Science:
- Neuro-oncology
- Pediatric oncology
- Cancer genetics
Background:
- Group 3 medulloblastoma is a highly aggressive pediatric brain tumor.
- Genetic alterations in MYC and SMARCA4 are found in approximately 30% of these tumors.
- The role of SMARCA4 mutations in medulloblastoma development and therapeutic potential is largely unknown.
Purpose of the Study:
- To investigate the functional significance of SMARCA4 loss in conjunction with MYC overexpression in medulloblastoma development.
- To establish a preclinical model for studying SMARCA4/MYC-driven medulloblastoma.
- To identify molecular pathways involved in SMARCA4-deficient medulloblastoma.
Main Methods:
- Combined MYC overexpression and SMARCA4 loss in mouse granule cell precursors.
- Orthotopic transplantation of genetically engineered cells into recipient mice.
- Tumor histology, gene expression profiling (RNA sequencing), and DNA methylation analysis.
- Integration of murine data with human Group 3 medulloblastoma samples.
Main Results:
- Combined MYC overexpression and SMARCA4 loss induced aggressive, anaplastic medulloblastomas in vivo.
- Tumors exclusively consisted of SMARCA4-negative cells, indicating a strong selective advantage.
- Transcriptomic analysis revealed potential gene expression changes specific to SMARCA4/MYC-driven tumorigenesis.
- Murine tumors closely resembled human Group 3 medulloblastomas on a molecular level.
Conclusions:
- SMARCA4 deficiency plays a tumor-promoting role in Group 3 medulloblastoma development.
- The developed mouse model is valuable for studying SMARCA4/MYC-driven medulloblastoma.
- Findings provide a basis for exploring targeted therapeutic strategies for SMARCA4-altered medulloblastomas.
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