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Targeting MYC-driven replication stress in medulloblastoma with AZD1775 and gemcitabine
Daniel C Moreira1,2, Sujatha Venkataraman1,3, Apurva Subramanian1
1Department of Pediatrics, University of Colorado Anschutz Medical Campus, Aurora, CO, USA.
Purpose:
MYC-driven medulloblastomas are highly aggressive childhood tumors with dismal outcomes and a lack of new treatment paradigms. We identified that targeting replication stress through WEE1 inhibition to suppress the S-phase replication checkpoint, combined with the attenuation of nucleotide synthesis with gemcitabine, is an effective strategy to induce apoptosis in MYC-driven medulloblastoma that could be rapidly translated into early phase clinical trials in children. Attenuation of replication stress is a key component of MYC-driven oncogenesis. Previous studies revealed a vulnerability in MYC medulloblastoma through WEE1 inhibition. Here, we focused on elucidating combinations of agents to synergize with WEE1 inhibition and drive replication stress toward cell death.
Methods:
We first analyzed WEE1 expression in patient tissues by immunohistochemistry. Next, we used high-throughput drug screens to identify agents that would synergize with WEE1 inhibition. Synergy was confirmed by in vitro live cell imaging, ex vivo slice culture models, and in vivo studies using orthotopic and flank xenograft models.
Results:
WEE1 expression was significantly higher in Group 3 and 4 medulloblastoma patients. The WEE1 inhibitor AZD1775 synergized with inhibitors of nucleotide synthesis, including gemcitabine. AZD1775 with gemcitabine suppressed proliferation and induced apoptosis. Ex vivo modeling demonstrated efficacy in Group 3 medulloblastoma patients, and in vivo modeling confirmed that combining AZD1775 and gemcitabine effectively suppressed tumor growth.
Conclusion:
Our results identified a potent new synergistic treatment combination for MYC-driven medulloblastoma that warrants exploration in early phase clinical trials.
Insights
A new combination therapy targeting replication stress, WEE1 inhibition with gemcitabine, effectively kills MYC-driven medulloblastoma cells. This promising strategy for aggressive childhood brain tumors could advance to early clinical trials.
Area of Science:
- Oncology
- Molecular Biology
- Pediatric Cancer Research
Background:
- MYC-driven medulloblastomas are aggressive pediatric brain tumors with poor prognoses.
- Current treatment paradigms for these tumors are limited.
- Replication stress is a critical factor in MYC-driven oncogenesis.
Purpose of the Study:
- To identify synergistic drug combinations targeting replication stress in MYC-driven medulloblastoma.
- To investigate the efficacy of WEE1 inhibition combined with nucleotide synthesis attenuation.
- To explore a novel therapeutic strategy for aggressive childhood medulloblastomas.
Main Methods:
- Analyzed WEE1 expression in patient tissues via immunohistochemistry.
- Utilized high-throughput drug screening to find synergistic agents with WEE1 inhibition.
- Confirmed synergy using in vitro live cell imaging, ex vivo slice cultures, and in vivo xenograft models.
Main Results:
- WEE1 expression was elevated in Group 3 and 4 medulloblastoma patients.
- The WEE1 inhibitor AZD1775 synergized with gemcitabine, an inhibitor of nucleotide synthesis.
- Combined AZD1775 and gemcitabine suppressed tumor proliferation and induced apoptosis in preclinical models.
Conclusions:
- A potent synergistic treatment combination of WEE1 inhibition and gemcitabine was identified for MYC-driven medulloblastoma.
- This novel combination demonstrates significant potential for treating aggressive pediatric brain tumors.
- The findings warrant further investigation in early-phase clinical trials for children.
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