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Targeting metabolic activity in high-risk neuroblastoma through Monocarboxylate Transporter 1 (MCT1) inhibition
Aaminah Khan1,2, Emanuele Valli1,3, Hayley Lam1,2
1Children's Cancer Institute, Lowy Cancer Research Centre, UNSW Sydney, Sydney, NSW, 2052, Australia.
Abstract:
Amplification of the MYCN oncogene occurs in ~25% of primary neuroblastomas and is the single most powerful biological marker of poor prognosis in this disease. MYCN transcriptionally regulates a range of biological processes important for cancer, including cell metabolism. The MYCN-regulated metabolic gene SLC16A1, encoding the lactate transporter monocarboxylate transporter 1 (MCT1), is a potential therapeutic target. Treatment of neuroblastoma cells with the MCT1 inhibitor SR13800 increased intracellular lactate levels, disrupted the nicotinamide adenine dinucleotide (NADH/NAD+) ratio, and decreased intracellular glutathione levels. Metabolite tracing with 13C-glucose and 13C-glutamine following MCT1 inhibitor treatment revealed increased quantities of tricarboxylic acid (TCA) cycle intermediates and increased oxygen consumption rate. MCT1 inhibition was highly synergistic with vincristine and LDHA inhibition under cell culture conditions, but this combination was ineffective against neuroblastoma xenografts. Posttreatment xenograft tumors had increased synthesis of the MCT1 homolog MCT4/SLC16A, a known resistance factor to MCT1 inhibition. We found that MCT4 was negatively regulated by MYCN in luciferase reporter assays and its synthesis in neuroblastoma cells was increased under hypoxic conditions and following hypoxia-inducible factor (HIF1) induction, suggesting that MCT4 may contribute to resistance to MCT1 inhibitor treatment in hypoxic neuroblastoma tumors. Co-treatment of neuroblastoma cells with inhibitors of MCT1 and LDHA, the enzyme responsible for lactate production, resulted in a large increase in intracellular pyruvate and was highly synergistic in decreasing neuroblastoma cell viability. These results highlight the potential of targeting MCT1 in neuroblastoma in conjunction with strategies that involve disruption of pyruvate homeostasis and indicate possible resistance mechanisms.
Insights
Targeting the lactate transporter monocarboxylate transporter 1 (MCT1) in neuroblastoma shows promise, but resistance can occur. Combining MCT1 inhibitors with strategies disrupting pyruvate metabolism may overcome this in MYCN-amplified neuroblastoma.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Metabolism
Background:
- MYCN oncogene amplification in neuroblastoma is a marker of poor prognosis.
- MYCN regulates cancer cell metabolism, including lactate transport via monocarboxylate transporter 1 (MCT1).
- MCT1 is a potential therapeutic target in neuroblastoma.
Purpose of the Study:
- To investigate the therapeutic potential of MCT1 inhibition in neuroblastoma.
- To identify mechanisms of resistance to MCT1 inhibitors.
- To explore combination strategies for enhanced neuroblastoma treatment.
Main Methods:
- Treatment of neuroblastoma cells and xenografts with MCT1 inhibitor SR13800.
- Metabolite tracing using 13C-glucose and 13C-glutamine.
- Luciferase reporter assays to assess MYCN regulation of MCT4.
- Analysis of gene expression and metabolic parameters (NADH/NAD+, glutathione, TCA cycle intermediates, oxygen consumption).
Main Results:
- MCT1 inhibition increased intracellular lactate, altered NADH/NAD+ ratio, and decreased glutathione.
- Metabolite tracing showed increased TCA cycle intermediates and oxygen consumption.
- MCT1 inhibition synergized with vincristine and LDHA inhibition in vitro but not in vivo.
- Neuroblastoma xenografts developed resistance via increased MCT4 expression, regulated by MYCN and hypoxia-inducible factor 1 (HIF1).
- Combined MCT1 and LDHA inhibition synergistically reduced neuroblastoma cell viability by increasing intracellular pyruvate.
Conclusions:
- Targeting MCT1 is a potential strategy for neuroblastoma, particularly in MYCN-amplified cases.
- MCT4 upregulation, driven by MYCN and hypoxia, is a resistance mechanism to MCT1 inhibitors.
- Combination therapy with MCT1 and LDHA inhibitors, targeting pyruvate homeostasis, shows significant therapeutic potential against neuroblastoma.
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