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High-throughput Screening for Chemical Modulators of Post-transcriptionally Regulated Genes
Published on: March 3, 2015
Targeting of the MYCN protein with small molecule c-MYC inhibitors
Inga Müller1, Karin Larsson1, Anna Frenzel1
1Department of Microbiology, Tumor and Cell Biology, Karolinska Institutet, Stockholm, Sweden.
Abstract:
Members of the MYC family are the most frequently deregulated oncogenes in human cancer and are often correlated with aggressive disease and/or poorly differentiated tumors. Since patients with MYCN-amplified neuroblastoma have a poor prognosis, targeting MYCN using small molecule inhibitors could represent a promising therapeutic approach. We have previously demonstrated that the small molecule 10058-F4, known to bind to the c-MYC bHLHZip dimerization domain and inhibiting the c-MYC/MAX interaction, also interferes with the MYCN/MAX dimerization in vitro and imparts anti-tumorigenic effects in neuroblastoma tumor models with MYCN overexpression. Our previous work also revealed that MYCN-inhibition leads to mitochondrial dysfunction resulting in accumulation of lipid droplets in neuroblastoma cells. To expand our understanding of how small molecules interfere with MYCN, we have now analyzed the direct binding of 10058-F4, as well as three of its analogs; #474, #764 and 10058-F4(7RH), one metabolite C-m/z 232, and a structurally unrelated c-MYC inhibitor 10074-G5, to the bHLHZip domain of MYCN. We also assessed their ability to induce apoptosis, neurite outgrowth and lipid accumulation in neuroblastoma cells. Interestingly, all c-MYC binding molecules tested also bind MYCN as assayed by surface plasmon resonance. Using a proximity ligation assay, we found reduced interaction between MYCN and MAX after treatment with all molecules except for the 10058-F4 metabolite C-m/z 232 and the non-binder 10058-F4(7RH). Importantly, 10074-G5 and 10058-F4 were the most efficient in inducing neuronal differentiation and lipid accumulation in MYCN-amplified neuroblastoma cells. Together our data demonstrate MYCN-binding properties for a selection of small molecules, and provide functional information that could be of importance for future development of targeted therapies against MYCN-amplified neuroblastoma.
Insights
Small molecules targeting MYCN (MYCN oncogene) can inhibit cancer growth. Several compounds, including 10058-F4 and 10074-G5, bind MYCN and promote neuroblastoma cell differentiation and lipid accumulation.
Area of Science:
- Oncology
- Molecular Biology
- Drug Discovery
Background:
- MYC oncogenes are frequently deregulated in human cancers, correlating with aggressive disease.
- MYCN amplification in neuroblastoma indicates a poor prognosis, making MYCN a therapeutic target.
- Previous studies showed small molecule 10058-F4 inhibits c-MYC/MAX interaction and affects MYCN-overexpressing neuroblastoma.
Purpose of the Study:
- To investigate the direct binding of 10058-F4 and its analogs to the MYCN bHLHZip domain.
- To assess the effects of these molecules on MYCN/MAX interaction, apoptosis, neurite outgrowth, and lipid accumulation in neuroblastoma cells.
- To evaluate the potential of these small molecules as targeted therapies for MYCN-amplified neuroblastoma.
Main Methods:
- Surface plasmon resonance was used to assay direct binding of small molecules to the MYCN bHLHZip domain.
- Proximity ligation assay assessed the interaction between MYCN and MAX after molecule treatment.
- Neuroblastoma cell models were used to evaluate apoptosis, neurite outgrowth, and lipid accumulation.
Main Results:
- All tested c-MYC binding molecules also bound to MYCN.
- Reduced MYCN/MAX interaction was observed with most molecules, except metabolite C-m/z 232 and 10058-F4(7RH).
- 10074-G5 and 10058-F4 were most effective in inducing neuronal differentiation and lipid accumulation in MYCN-amplified neuroblastoma cells.
Conclusions:
- The study demonstrates MYCN-binding properties of several small molecules.
- These molecules interfere with MYCN/MAX dimerization, impacting neuroblastoma cell behavior.
- Findings provide functional insights for developing targeted therapies against MYCN-amplified neuroblastoma.
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