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Targeting the TP53/MDM2 axis enhances radiation sensitivity in atypical teratoid rhabdoid tumors
Irina Alimova1, Dong Wang1, Etienne Danis1
1Department of Pediatrics, University of Colorado Anschutz Medical Campus, Aurora, CO 80045, USA.
Abstract:
Atypical teratoid rhabdoid tumor (ATRT) is a highly aggressive pediatric brain tumor. Despite radiation, aggressive chemotherapy and autologous stem cell rescue, children usually have a poor survival time. In the present study, the role of TP53/MDM2 interaction in ATRT was investigated. A functional genomic screen identified the TP53/MDM2 axis as a therapeutic target in the central nervous system (CNS) ATRT. Gene expression analysis revealed that all ATRT sub‑groups expressed high levels of MDM2, which is a negative regulator of TP53. Using cell viability, colony formation and methylcellulose assays it was found that genetic MDM2 inhibition with short hairpin RNA or chemical MDM2 inhibition with small molecule inhibitors, Nutlin3 and idasanutlin (RG7388) decreased the growth of ATRT cell lines. Furthermore, idasanutlin significantly decreased the growth of intracranial orthotopic ATRT brain tumors, as evaluated using T2 MRI, and prolonged survival time relative to control animals. MRI of intracranial tumors showed that diffusion coefficient, an effective marker for successful treatment, significantly increased with idasanutlin treatment showing tumor necrosis/apoptosis. Immunohistochemistry revealed an increased number of caspase‑3‑positive cells in the idasanutlin treatment group, confirming the induction of apoptosis in vivo. Using flow cytometry and western blot analysis we show that inhibition of MDM2 enhanced radiation sensitivity in vitro by potentiating DNA damage via the induction of the TP53/Bax/Puma proapoptotic axis. Furthermore, DNA damage was associated with increased mitochondrial reactive oxygen species accumulation. The present study demonstrated that MDM2 expression level was increased in ATRT patient samples and MDM2 inhibition suppressed ATRT cell growth in vitro, and leads to apoptosis in vivo. MDM2 inhibition potentiates DNA damage and sensitizes ATRT cells to radiation. These findings highlight the TP53/MDM2 axis as a rational therapeutic target in CNS ATRT.
Insights
Targeting the TP53/MDM2 axis offers a new therapeutic strategy for aggressive pediatric brain tumors. Inhibiting MDM2 suppressed atypical teratoid rhabdoid tumor growth and enhanced radiation sensitivity.
Area of Science:
- Oncology
- Neuro-oncology
- Molecular Biology
Background:
- Atypical teratoid rhabdoid tumor (ATRT) is a highly aggressive pediatric brain tumor with poor prognosis.
- Current treatments including radiation and chemotherapy offer limited efficacy.
Purpose of the Study:
- To investigate the TP53/MDM2 interaction as a potential therapeutic target in central nervous system (CNS) ATRT.
- To evaluate the efficacy of MDM2 inhibition in ATRT models.
Main Methods:
- Functional genomic screening to identify therapeutic targets.
- Gene expression analysis of MDM2 in ATRT subgroups.
- In vitro assays (viability, colony formation, methylcellulose) to assess MDM2 inhibition.
- In vivo studies using orthotopic ATRT xenografts in mice with MRI monitoring.
- Immunohistochemistry, flow cytometry, and western blot analysis to evaluate apoptosis and DNA damage.
Main Results:
- All ATRT subgroups showed high MDM2 expression, a negative regulator of TP53.
- Genetic and chemical MDM2 inhibition reduced ATRT cell line growth.
- Idasanutlin treatment significantly reduced intracranial ATRT tumor growth and prolonged survival in vivo.
- MDM2 inhibition enhanced radiation sensitivity by potentiating DNA damage and inducing apoptosis via the TP53/Bax/Puma axis.
- Increased caspase-3 and mitochondrial ROS were observed post-treatment.
Conclusions:
- MDM2 inhibition is a promising therapeutic strategy for CNS ATRT.
- Targeting the TP53/MDM2 axis can suppress tumor growth and enhance treatment efficacy.
- MDM2 inhibition sensitizes ATRT cells to radiation, offering a novel approach for this aggressive pediatric cancer.
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