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April 3, 2026Genome Medicine3 citationsOpen Access

Spatial multi-omics characterization of neuroblastoma reveals ferroptosis-associated metabolic features in high-risk tumors

CTCui TuCTC. C. Terence TanJMJ. Monkman

Key Points

  • This research aims to understand the spatial organization and metabolic pathways in high-risk neuroblastoma and their implications for therapy.
  • Performed spatial transcriptomics profiling with GeoMx DSP Whole Transcriptome Atlas.
  • Conducted spatial proteomics using the Akoya PhenoCycler-Fusion on pediatric neuroblastoma samples.
  • Analyzed metabolic pathways associated with ferroptosis and GPX4 expression.
  • Conducted in vitro experiments to assess the impact of GPX4 inhibition on tumor cell viability.
  • High-risk neuroblastoma regions exhibited upregulation of pathways related to ferroptosis.
  • Inhibition of GPX4 increased lipid peroxidation and reduced tumor cell viability.
  • Distinct spatial niches correlated with poor survival were identified, including stroma-secluded immune cells.

Abstract

Neuroblastoma is a tumor of the sympathetic nervous system and is the most common extracranial solid malignancy in children. It displays striking clinical heterogeneity, ranging from spontaneous regression to a more aggressive, treatment resistant disease. While previous studies have highlighted the importance of the tumor microenvironment (TME) in shaping disease behavior, how spatial organization and metabolic pathways contribute to high-risk neuroblastoma remains poorly understood. Here, we performed spatial transcriptomics profiling using the GeoMx Digital Spatial Profiler (DSP) Whole Transcriptome Atlas (WTA) and a spatial proteomics profile using the Akoya PhenoCycler-Fusion on a cohort of human pediatric neuroblastoma samples to characterize tumor and TME regions. By using the GeoMx WTA panel, high-risk neuroblastoma tumor regions were found to exhibit upregulation of metabolic pathways associated with ferroptosis, including fatty acid metabolism and reactive oxygen species (ROS) signaling. However, these tumors also showed increased glutathione metabolism pathway and elevated GPX4 expression, consistent with a potential compensatory response that may limit ferroptosis-associated cell death. Further in vitro experiments showed that inhibition of GPX4 increased lipid peroxidation and reduced tumor cell viability, consistent with ferroptosis-related processes. Interestingly, spatial proteomic analysis revealed distinct spatial niches in high-risk neuroblastoma, including stroma-secluded immune cells and macrophage enriched areas, both of which were correlated with poor patient survival. Our integrative spatial multi-omics analysis suggests that high-risk neuroblastoma tumors display ferroptosis-associated metabolic features, with GPX4 inhibition inducing neuroblastoma tumor cell death. We also identify macrophage-tumor interactions that may be linked to ferroptosis sensitivity. Collectively, our study highlights ferroptosis-associated pathways as potential therapeutic avenues in neuroblastoma patients.

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Cite This Study

Tu et al. (2026) studied this question.

synapsesocial.com/papers/69cf5e2e5a333a821460c5a0https://doi.org/10.1186/s13073-026-01622-0
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