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Published on: May 17, 2024
High-dose DFMO alters protein translation in neuroblastoma
Andrea T Franson1, Kangning Liu2, Rohan Vemu2
1Division of Pediatric Hematology-Oncology, Department of Pediatrics, University of Michigan, Ann Arbor, MI, USA.
Abstract:
DFMO has been studied as a cancer therapeutic at doses ranging from 500 to 9,000 mg/m2/day. Lower doses are favored for cancer prevention studies while higher doses, often with chemotherapy, are studied in refractory cancers. DFMO inhibits the rate-limiting enzyme in polyamine synthesis, ornithine decarboxylase (ODC), an oncogene transcriptionally regulated by MYC. MYC genes are the principal oncogenic drivers of neuroblastoma, and ODC1 is co-amplified in a subset with dismal outcome, so DFMO is a rational therapeutic candidate. Low-dose DFMO has now been FDA-approved for high-risk patients though the mechanisms for its anti-tumor activity, and the exposures required to elicit them, remain obscure. We sought to define biomarkers of activity across exposures achieved in the clinic with low through high-dose DFMO. Polyamines support protein translation by providing spermidine, which is essential to hypusinate (and activate) the elongation factor, eIF5A. Selective binding of polyamines with tRNA and rRNA provide eIF5A-independent mechanisms of translation support. We show that low-dose DFMO does not extend survival in mouse models in vivo nor alter translation biomarkers in vitro. High-dose DFMO consistently extends survival in neuroblastoma models, and, in a subset of neuroblastoma cell lines, inhibits eIF5A hypusination and global translation at achievable concentrations. However, the concentration required to engage these changes across many cell lines exceeded that achievable even with high-dose DFMO. No correlation was seen among MYCN and/or ODC1 copy number and sensitivity to DFMO. Combining high-dose DFMO with additional agents to further deplete tumor polyamines may be necessary to fully engage polyamine-depletion effects on tumors, and more granular measures of translation, including codon-resolution ribosome profiling, may be required to define these effects.
Insights
High-dose difluoromethylornithine (DFMO) shows promise in extending survival for neuroblastoma mouse models by impacting protein translation. Low-dose DFMO did not demonstrate significant effects, suggesting higher doses or combination therapies may be needed for efficacy.
Area of Science:
- Biochemistry
- Oncology
- Pharmacology
Background:
- DFMO inhibits ornithine decarboxylase (ODC), crucial for polyamine synthesis.
- MYC genes drive neuroblastoma, and ODC1 is co-amplified in some cases, making DFMO a potential therapeutic.
- The precise mechanisms and effective doses of DFMO for anti-tumor activity remain unclear.
Purpose of the Study:
- To identify biomarkers of DFMO activity across a range of clinical doses.
- To investigate the impact of DFMO on protein translation and survival in neuroblastoma models.
- To determine the required DFMO exposures for engaging anti-tumor effects.
Main Methods:
- Assessed DFMO efficacy in mouse models and translation biomarkers in vitro.
- Investigated eIF5A hypusination and global translation inhibition.
- Correlated MYCN and ODC1 copy number with DFMO sensitivity.
Main Results:
- Low-dose DFMO did not improve survival in vivo or alter translation biomarkers in vitro.
- High-dose DFMO extended survival in neuroblastoma models and inhibited eIF5A hypusination/translation in a subset of cell lines.
- Required concentrations for significant effects often exceeded achievable levels, and no correlation was found between MYCN/ODC1 copy number and DFMO sensitivity.
Conclusions:
- High-dose DFMO shows therapeutic potential in neuroblastoma, impacting protein translation.
- Achieving maximal polyamine-depletion effects may require combining DFMO with other agents.
- Further research using advanced techniques like codon-resolution ribosome profiling is needed to fully elucidate DFMO's effects on translation.

