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Published on: August 25, 2023
ODC1 is a critical determinant of MYCN oncogenesis and a therapeutic target in neuroblastoma
Michael D Hogarty1, Murray D Norris, Kimberly Davis
1Division of Oncology, The Children's Hospital of Philadelphia, Department of Pediatrics, University of Pennsylvania School of Medicine, Philadelphia, Pennsylvania 19104-4318, USA. hogartym@email.chop.edu
Abstract:
Neuroblastoma is a frequently lethal childhood tumor in which MYC gene deregulation, commonly as MYCN amplification, portends poor outcome. Identifying the requisite biopathways downstream of MYC may provide therapeutic opportunities. We used transcriptome analyses to show that MYCN-amplified neuroblastomas have coordinately deregulated myriad polyamine enzymes (including ODC1, SRM, SMS, AMD1, OAZ2, and SMOX) to enhance polyamine biosynthesis. High-risk tumors without MYCN amplification also overexpress ODC1, the rate-limiting enzyme in polyamine biosynthesis, when compared with lower-risk tumors, suggesting that this pathway may be pivotal. Indeed, elevated ODC1 (independent of MYCN amplification) was associated with reduced survival in a large independent neuroblastoma cohort. As polyamines are essential for cell survival and linked to cancer progression, we studied polyamine antagonism to test for metabolic dependence on this pathway in neuroblastoma. The Odc inhibitor alpha-difluoromethylornithine (DFMO) inhibited neuroblast proliferation in vitro and suppressed oncogenesis in vivo. DFMO treatment of neuroblastoma-prone genetically engineered mice (TH-MYCN) extended tumor latency and survival in homozygous mice and prevented oncogenesis in hemizygous mice. In the latter, transient Odc ablation permanently prevented tumor onset consistent with a time-limited window for embryonal tumor initiation. Importantly, we show that DFMO augments antitumor efficacy of conventional cytotoxics in vivo. This work implicates polyamine biosynthesis as an arbiter of MYCN oncogenesis and shows initial efficacy for polyamine depletion strategies in neuroblastoma, a strategy that may have utility for this and other MYC-driven embryonal tumors.
Insights
Polyamines are crucial for neuroblastoma growth driven by the MYC gene. Inhibiting polyamine synthesis with DFMO shows promise in treating this childhood cancer and may enhance existing therapies.
Area of Science:
- Pediatric Oncology
- Cancer Metabolism
- Molecular Biology
Background:
- Neuroblastoma is a deadly childhood cancer often linked to MYCN gene amplification.
- MYC deregulation drives tumor progression, necessitating identification of downstream therapeutic targets.
- Polyamines are essential for cell growth and are implicated in cancer progression.
Purpose of the Study:
- To investigate the role of polyamine biosynthesis in MYCN-driven neuroblastoma.
- To evaluate the therapeutic potential of inhibiting polyamine synthesis in neuroblastoma.
Main Methods:
- Transcriptome analysis to identify deregulated polyamine enzymes in neuroblastoma.
- In vitro and in vivo studies using the Odc inhibitor alpha-difluoromethylornithine (DFMO).
- Assessment of DFMO efficacy in neuroblastoma-prone genetically engineered mouse models.
- Evaluation of DFMO in combination with conventional cytotoxic therapies.
Main Results:
- MYCN-amplified neuroblastomas exhibit coordinated deregulation of polyamine biosynthesis enzymes.
- Elevated Ornithine Decarboxylase 1 (ODC1) expression correlates with poor survival, independent of MYCN amplification.
- DFMO inhibits neuroblast proliferation, suppresses oncogenesis in vivo, and extends survival in mouse models.
- Transient Odc ablation prevents tumor initiation, suggesting a critical window for embryonal tumor development.
- DFMO enhances the antitumor efficacy of conventional cytotoxics.
Conclusions:
- Polyamine biosynthesis is a key pathway in MYCN-driven neuroblastogenesis.
- Polyamines depletion strategies, such as using DFMO, show significant therapeutic potential for neuroblastoma.
- This approach may be beneficial for MYC-driven embryonal tumors.
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