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Updated: Aug 13, 2026

Intracranial Orthotopic Allografting of Medulloblastoma Cells in Immunocompromised Mice
Published on: October 3, 2010
Linking DNA damage to medulloblastoma tumorigenesis in patched heterozygous knockout mice
S Pazzaglia1, M Tanori, M Mancuso
1Biotechnology Unit, ENEA CR-Casaccia, Rome, Italy. pazzaglia@casccia.enea.it
Abstract:
Hemizygous Ptc1 mice have many features of Gorlin syndrome, including predisposition to medulloblastoma development. Ionizing radiation synergize with Ptc1 mutation to induce medulloblastoma only in neonatally exposed mice. To explore the mechanisms underlying age-dependent susceptibility, we irradiated Ptc(neo67/+) mice at postnatal day 1 (P1) or 10 (P10). We observed a dramatic difference in medulloblastoma incidence, which ranged from 81% in the cerebellum irradiated at P1 to 3% in the cerebellum irradiated at P10. A striking difference was also detected in the frequency of cerebellar preneoplastic lesions (100 versus 14%). Our data also show significantly lower induction of apoptosis in the cerebellum of medulloblastoma-susceptible (P1) compared to -resistant (P10) mice, strongly suggesting that medulloblastoma formation in Ptc1 mutants may be associated with resistance to radiation-induced cell killing. Furthermore, in marked contrast with P10 mice, cerebellum at P1 displays substantially increased activation of the cell survival-promoting Akt/Pkb protein, and markedly decreased p53 levels in response to radiation-induced genotoxic stress. Overall, these results show that developing cerebellar granule neuron precursors' (CGNPs) radiosensitivity to radiation-induced cell death increases with progressing development and inversely correlates with their ability to neoplastically transform.
Insights
Ionizing radiation induces medulloblastoma in Ptc1 mice, but susceptibility depends on age. Neonatal mice show high tumor incidence due to increased cell survival pathways, unlike older mice.
Area of Science:
- Oncology
- Developmental Biology
- Radiation Biology
Background:
- Gorlin syndrome is associated with medulloblastoma predisposition.
- Ptc1 mutation in mice models Gorlin syndrome features.
- Ionizing radiation (IR) combined with Ptc1 mutation induces medulloblastoma.
Purpose of the Study:
- Investigate age-dependent susceptibility to IR-induced medulloblastoma in Ptc1 mutant mice.
- Elucidate the molecular mechanisms underlying differential radiosensitivity and tumor development.
Main Methods:
- Irradiation of Ptc(neo67/+) mice at postnatal day 1 (P1) or postnatal day 10 (P10).
- Assessment of medulloblastoma incidence and preneoplastic lesions.
- Analysis of apoptosis, Akt/Pkb activation, and p53 levels post-irradiation.
Main Results:
- P1 mice showed 81% medulloblastoma incidence vs. 3% in P10 mice.
- P1 mice had 100% preneoplastic lesions vs. 14% in P10 mice.
- P1 mice exhibited lower apoptosis, higher Akt/Pkb activation, and lower p53 levels compared to P10 mice.
Conclusions:
- Medulloblastoma formation in Ptc1 mutants is linked to resistance to radiation-induced cell death.
- Developing cerebellar granule neuron precursors' (CGNPs) radiosensitivity increases with age.
- Age-dependent radiosensitivity inversely correlates with neoplastic transformation potential.
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