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Metabolic protein kinase signalling in neuroblastoma
William J Smiles1, Luca Catalano1, Victoria E Stefan1
1Research Program for Receptor Biochemistry and Tumor Metabolism, Department of Pediatrics, University Hospital of the Paracelsus Medical University, Müllner Hauptstraße 48, 5020, Salzburg, Austria.
Background:
Neuroblastoma is a paediatric malignancy of incredibly complex aetiology. Oncogenic protein kinase signalling in neuroblastoma has conventionally focussed on transduction through the well-characterised PI3K/Akt and MAPK pathways, in which the latter has been implicated in treatment resistance. The discovery of the receptor tyrosine kinase ALK as a target of genetic alterations in cases of familial and sporadic neuroblastoma, was a breakthrough in the understanding of the complex genetic heterogeneity of neuroblastoma. However, despite progress in the development of small-molecule inhibitors of ALK, treatment resistance frequently arises and appears to be a feature of the disease. Moreover, since the identification of ALK, several additional protein kinases, including the PIM and Aurora kinases, have emerged not only as drivers of the disease phenotype, but also as promising druggable targets. This is particularly the case for Aurora-A, given its intimate engagement with MYCN, a driver oncogene of aggressive neuroblastoma previously considered 'undruggable.'
Scope Of Review:
Aided by significant advances in structural biology and a broader understanding of the mechanisms of protein kinase function and regulation, we comprehensively outline the role of protein kinase signalling, emphasising ALK, PIM and Aurora in neuroblastoma, their respective metabolic outputs, and broader implications for targeted therapies.
Major Conclusions:
Despite massively divergent regulatory mechanisms, ALK, PIM and Aurora kinases all obtain significant roles in cellular glycolytic and mitochondrial metabolism and neuroblastoma progression, and in several instances are implicated in treatment resistance. While metabolism of neuroblastoma tends to display hallmarks of the glycolytic "Warburg effect," aggressive, in particular MYCN-amplified tumours, retain functional mitochondrial metabolism, allowing for survival and proliferation under nutrient stress. Future strategies employing specific kinase inhibitors as part of the treatment regimen should consider combinatorial attempts at interfering with tumour metabolism, either through metabolic pathway inhibitors, or by dietary means, with a view to abolish metabolic flexibility that endows cancerous cells with a survival advantage.
Insights
Neuroblastoma treatment resistance is linked to ALK, PIM, and Aurora kinases driving tumor metabolism. Targeting these kinases and metabolic pathways offers new therapeutic strategies for aggressive neuroblastoma.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Neuroblastoma, a pediatric cancer, has complex origins, with PI3K/Akt and MAPK pathways traditionally studied.
- Anaplastic Lymphoma Kinase (ALK) alterations are key in neuroblastoma, but resistance to ALK inhibitors is common.
- PIM and Aurora kinases, particularly Aurora-A due to its MYCN interaction, are emerging as crucial drivers and therapeutic targets in aggressive neuroblastoma.
Purpose of the Study:
- To review the role of Anaplastic Lymphoma Kinase (ALK), PIM, and Aurora kinases in neuroblastoma.
- To highlight the metabolic pathways influenced by these kinases.
- To discuss the implications for developing targeted therapies against neuroblastoma.
Main Methods:
- Comprehensive literature review of protein kinase signaling in neuroblastoma.
- Analysis of structural biology and mechanistic data on kinase function and regulation.
- Integration of findings on kinase roles, metabolic outputs, and therapeutic strategies.
Main Results:
- ALK, PIM, and Aurora kinases significantly impact neuroblastoma cell metabolism, including glycolysis and mitochondrial function.
- These kinases are implicated in treatment resistance, particularly in aggressive, MYCN-amplified tumors.
- Aggressive neuroblastomas utilize mitochondrial metabolism for survival under stress, exhibiting metabolic flexibility.
Conclusions:
- Targeting ALK, PIM, and Aurora kinases is crucial for neuroblastoma treatment.
- Combinatorial therapies involving kinase inhibitors and metabolic interventions (pathway inhibitors or dietary changes) may overcome treatment resistance.
- Disrupting metabolic flexibility is a promising strategy to eliminate the survival advantage of neuroblastoma cells.
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