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Published on: March 31, 2015
A novel combination therapy targeting ubiquitin-specific protease 5 in MYCN-driven neuroblastoma
Belamy B Cheung1,2, Ane Kleynhans3, Rituparna Mittra3
1Children's Cancer Institute, Lowy Cancer Research Centre, UNSW Sydney, Sydney, NSW, Australia. bcheung@ccia.unsw.edu.au.
Abstract:
Histone deacetylase (HDAC) inhibitors are effective in MYCN-driven cancers, because of a unique need for HDAC recruitment by the MYCN oncogenic signal. However, HDAC inhibitors are much more effective in combination with other anti-cancer agents. To identify novel compounds which act synergistically with HDAC inhibitor, such as suberanoyl hydroxamic acid (SAHA), we performed a cell-based, high-throughput drug screen of 10,560 small molecule compounds from a drug-like diversity library and identified a small molecule compound (SE486-11) which synergistically enhanced the cytotoxic effects of SAHA. Effects of drug combinations on cell viability, proliferation, apoptosis and colony forming were assessed in a panel of neuroblastoma cell lines. Treatment with SAHA and SE486-11 increased MYCN ubiquitination and degradation, and markedly inhibited tumorigenesis in neuroblastoma xenografts, and, MYCN transgenic zebrafish and mice. The combination reduced ubiquitin-specific protease 5 (USP5) levels and increased unanchored polyubiquitin chains. Overexpression of USP5 rescued neuroblastoma cells from the cytopathic effects of the combination and reduced unanchored polyubiquitin, suggesting USP5 is a therapeutic target of the combination. SAHA and SE486-11 directly bound to USP5 and the drug combination exhibited a 100-fold higher binding to USP5 than individual drugs alone in microscale thermophoresis assays. MYCN bound to the USP5 promoter and induced USP5 gene expression suggesting that USP5 and MYCN expression created a forward positive feedback loop in neuroblastoma cells. Thus, USP5 acts as an oncogenic cofactor with MYCN in neuroblastoma and the novel combination of HDAC inhibitor with SE486-11 represents a novel therapeutic approach for the treatment of MYCN-driven neuroblastoma.
Insights
A novel drug combination, including a histone deacetylase (HDAC) inhibitor and SE486-11, effectively targets MYCN-driven neuroblastoma by degrading the MYCN oncogene and inhibiting tumor growth.
Area of Science:
- Oncology
- Molecular Biology
- Drug Discovery
Background:
- Histone deacetylase (HDAC) inhibitors show efficacy in MYCN-driven cancers due to MYCN's reliance on HDAC recruitment.
- HDAC inhibitors are more effective when combined with other anti-cancer agents.
Purpose of the Study:
- To identify novel compounds that synergize with HDAC inhibitors like suberanoyl hydroxamic acid (SAHA).
- To evaluate the therapeutic potential of a combination therapy for MYCN-driven neuroblastoma.
Main Methods:
- High-throughput drug screening of 10,560 small molecules to identify synergistic compounds.
- Assessing drug combination effects on neuroblastoma cell viability, proliferation, apoptosis, and colony formation.
- Investigating the molecular mechanisms involving MYCN, ubiquitin-specific protease 5 (USP5), and polyubiquitin chains.
Main Results:
- SE486-11 was identified as a compound that synergistically enhances SAHA's cytotoxic effects.
- The combination treatment increased MYCN ubiquitination and degradation, inhibiting tumor growth in preclinical models.
- The combination reduced USP5 levels, increased unanchored polyubiquitin chains, and directly bound USP5.
Conclusions:
- USP5 acts as an oncogenic cofactor with MYCN in neuroblastoma.
- The combination of SAHA and SE486-11 represents a novel therapeutic strategy for MYCN-driven neuroblastoma by targeting the MYCN-USP5 feedback loop.
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