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A Chemo-Genomic Approach Identifies Diverse Epigenetic Therapeutic Vulnerabilities in MYCN-Amplified Neuroblastoma
Aleksandar Krstic1, Anja Konietzny1,2, Melinda Halasz1
1Systems Biology Ireland and Precision Oncology Ireland, School of Medicine, University College Dublin, Dublin, Ireland.
Abstract:
Although a rare disease, neuroblastoma accounts for the highest proportion of childhood cancer deaths. There is a lack of recurrent somatic mutations in neuroblastoma embryonal tumours, suggesting a possible role for epigenetic alterations in driving this cancer. While an increasing number of reports suggest an association of MYCN with epigenetic machinery, the mechanisms of these interactions are poorly understood in the neuroblastoma setting. Utilising chemo-genomic approaches we revealed global MYCN-epigenetic interactions and identified numerous epigenetic proteins as MYCN targets. The epigenetic regulators HDAC2, CBX8 and CBP (CREBBP) were all MYCN target genes and also putative MYCN interactors. MYCN-related epigenetic genes included SMARCs, HDACs, SMYDs, BRDs and CREBBP. Expression levels of the majority of MYCN-related epigenetic genes showed predictive ability for neuroblastoma patient outcome. Furthermore, a compound library screen targeting epigenetic proteins revealed broad susceptibility of neuroblastoma cells to all classes of epigenetic regulators, belonging to families of bromodomains, HDACs, HATs, histone methyltransferases, DNA methyltransferases and lysin demethylases. Ninety-six percent of the compounds reduced MYCN-amplified neuroblastoma cell viability. We show that the C646 (CBP-bromodomain targeting compound) exhibits switch-like temporal and dose response behaviour and is effective at reducing neuroblastoma viability. Responsiveness correlates with MYCN expression, with MYCN-amplified cells being more susceptible to C646 treatment. Thus, exploiting the broad vulnerability of neuroblastoma cells to epigenetic targeting compounds represents an exciting strategy in neuroblastoma treatment, particularly for high-risk MYCN-amplified tumours.
Insights
Neuroblastoma, a leading cause of childhood cancer death, shows vulnerability to epigenetic drugs. Targeting epigenetic regulators, like MYCN-associated proteins, offers a promising new treatment strategy for high-risk neuroblastoma.
Area of Science:
- Oncology
- Epigenetics
- Molecular Biology
Background:
- Neuroblastoma is a rare but deadly childhood cancer, often lacking recurrent mutations, suggesting epigenetic drivers.
- The interaction between MYCN oncogene and epigenetic machinery in neuroblastoma is poorly understood.
- Identifying MYCN's role in epigenetic regulation is crucial for understanding neuroblastoma development.
Purpose of the Study:
- To investigate global MYCN-epigenetic interactions in neuroblastoma.
- To identify epigenetic regulators targeted by MYCN.
- To evaluate the therapeutic potential of epigenetic drugs in neuroblastoma.
Main Methods:
- Chemo-genomic approaches were used to map MYCN-epigenetic interactions.
- A compound library screen assessed neuroblastoma cell response to epigenetic regulators.
- MYCN-amplified neuroblastoma cell lines were treated with specific epigenetic inhibitors.
Main Results:
- Global MYCN-epigenetic interactions were revealed, identifying epigenetic proteins as MYCN targets.
- HDAC2, CBX8, and CBP (CREBBP) were confirmed as MYCN targets and interactors.
- Neuroblastoma cells showed broad susceptibility to various epigenetic regulators, with 96% of compounds reducing viability in MYCN-amplified cells.
- The CBP-targeting compound C646 effectively reduced neuroblastoma cell viability, particularly in MYCN-amplified cells.
Conclusions:
- MYCN directly influences epigenetic machinery in neuroblastoma.
- Epigenetic regulators, including HDACs and bromodomain proteins, are viable therapeutic targets.
- Targeting epigenetic vulnerabilities, especially in MYCN-amplified neuroblastoma, presents a promising treatment strategy.
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