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p27(Kip1), a double-edged sword in Shh-mediated medulloblastoma: Tumor accelerator and suppressor
Bobby Bhatia1, Arfa Malik, Africa Fernandez-L
1Department of Cancer Biology and Genetics, Memorial Sloan-Kettering Cancer Center, New York, NY, USA.
Abstract:
Medulloblastoma, a brain tumor arising in the cerebellum, is the most common solid childhood malignancy. the current standard of care for medulloblastoma leaves survivors with life-long side effects. Gaining insight into mechanisms regulating transformation of medulloblastoma cells-of-origin may lead to development of better treatments for these tumors. Cerebellar granule neuron precursors (CGNps) are proposed cells-of-origin for certain classes of medulloblastoma, specifically those marked by aberrant Sonic hedgehog (Shh) signaling pathway activation. CGNps require signaling by Shh for proliferation during brain development. In mitogen-stimulated cells, nuclear localized cyclin dependent kinase (cdk) inhibitor p27 (Kip1) functions as a checkpoint control at the G1- to S-phase transition by inhibiting cdk2. Recent studies have suggested cytoplasmically localized p27(Kip1) acquires oncogenic functions. Here, we show that p27(Kip1) is cytoplasmically localized in CGNps and mouse Shh-mediated medulloblastomas. transgenic mice bearing an activating mutation in the Shh pathway and lacking one or both p27(Kip1) alleles have accelerated tumor incidence compared to mice bearing both p27(Kip1) alleles. Interestingly, mice heterozygous for p27(Kip1) have decreased survival latency compared to p27(Kip1)-null animals. our data indicate that this may reflect the requirement for at least one copy of p27(Kip1) for recruiting cyclin D/cdk4/6 to promote cell cycle progression yet insufficient expression in the heterozygous or null state to inhibit cyclin E/cdk2. Finally, we find that mis-localized p27(Kip1) may play a positive role in motility in medulloblastoma cells. Together, our data indicate that the dosage of p27(Kip1) plays a role in cell cycle progression and tumor suppression in Shh-mediated medulloblastoma expansion.
Insights
The dosage of p27(Kip1) influences cell cycle progression and tumor suppression in Sonic hedgehog (Shh)-mediated medulloblastomas. Mis-localized p27(Kip1) may promote medulloblastoma cell motility.
Area of Science:
- Oncology
- Molecular Biology
- Developmental Neuroscience
Background:
- Medulloblastoma is the most common pediatric brain tumor, with current treatments causing long-term side effects.
- Cerebellar granule neuron precursors (CGNps) are implicated as cells-of-origin for Shh-activated medulloblastomas.
- Cytoplasmic localization of p27(Kip1) may confer oncogenic functions, contrasting its nuclear role in cell cycle arrest.
Purpose of the Study:
- To investigate the role of p27(Kip1) dosage and localization in Shh-mediated medulloblastoma.
- To determine how p27(Kip1) affects cell cycle progression and tumor development in this context.
Main Methods:
- Analysis of p27(Kip1) localization in CGNps and mouse medulloblastomas.
- Utilizing transgenic mouse models with Shh pathway mutations and varying p27(Kip1) alleles.
- Assessing tumor incidence, survival latency, and cell motility in these models.
Main Results:
- Cytoplasmic p27(Kip1) was observed in CGNps and Shh-mediated medulloblastomas.
- Mice lacking p27(Kip1) alleles showed accelerated tumor incidence.
- Heterozygous p27(Kip1) mice exhibited decreased survival latency compared to null mice, suggesting a complex role in cell cycle regulation.
- Mis-localized p27(Kip1) correlated with increased medulloblastoma cell motility.
Conclusions:
- The dosage of p27(Kip1) is critical for tumor suppression in Shh-mediated medulloblastomas.
- Altered p27(Kip1) levels impact cell cycle progression by modulating cyclin/cdk complexes.
- Mis-localized p27(Kip1) may contribute to medulloblastoma aggressiveness through enhanced cell motility.
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