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MYCN-Driven Metabolic Networks Are a Critical Dependency of High-Risk Neuroblastomas
Michelle G Pitts1, Lindsay T Bryant1, Michael D Buoncristiani1
1Department of Surgery, University of Kentucky, Lexington, KY 40536, USA.
Abstract:
Neuroblastoma is a devastating pediatric solid tumor that, despite significant recent advances, still accounts for nearly 15% of all childhood cancer deaths. Patients are risk stratified based on a number of features, including amplification of the MYCN oncogene, yet targeting MYCN itself has been unsuccessful to date. The complex interplay between this oncogene and its many metabolic targets has proven challenging and is only beginning to be understood in the context of pediatric tumors. It is increasingly recognized, however, that MYCN-driven metabolic rewiring and concomitant increases in biosynthetic precursors has the potential to drive many aspects of tumor development. Furthermore, emerging research suggests that improving overall therapeutic outcomes for neuroblastoma patients may well require individual metabolic profiling, allowing personalized simultaneous targeting of multiple metabolic nodes. In this review, we outline clinically relevant research involving MYCN-driven metabolic derangements, including increased glucose uptake, polyamine synthesis, glycosylation, and others, and attempt to summarize the influence of MYCN on important metabolic genes and druggable protein targets. We spotlight emerging research in glycosylation and its modulation as an often overlooked but increasingly promising therapeutic area. It is our hope that this document will provide utility for both clinicians and scientists seeking to understand how the MYCN oncogene and metabolism are critically intertwined.
Insights
MYCN oncogene drives neuroblastoma by altering cell metabolism. Targeting these metabolic changes, especially glycosylation, offers new therapeutic strategies for this pediatric cancer.
Area of Science:
- Pediatric Oncology
- Cancer Metabolism
- Molecular Biology
Background:
- Neuroblastoma is a leading cause of childhood cancer death.
- The MYCN oncogene is a key driver, but direct targeting has failed.
- MYCN's role in metabolic reprogramming is crucial for tumor development.
Purpose of the Study:
- To review MYCN-driven metabolic alterations in neuroblastoma.
- To summarize MYCN's influence on metabolic genes and drug targets.
- To highlight glycosylation as a promising therapeutic avenue.
Main Methods:
- Literature review of clinically relevant research.
- Analysis of MYCN's impact on metabolic pathways.
- Summary of emerging therapeutic strategies targeting metabolism.
Main Results:
- MYCN amplifies glucose uptake, polyamine synthesis, and glycosylation.
- Significant metabolic rewiring supports tumor growth.
- Glycosylation modulation shows therapeutic potential.
Conclusions:
- MYCN critically influences neuroblastoma metabolism.
- Personalized metabolic profiling and multi-target strategies are needed.
- Targeting MYCN-induced metabolic pathways, particularly glycosylation, is a promising therapeutic direction.
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