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Open access Aug 2026

Therapeutic NAMPT inhibition reveals a targetable metabolic vulnerability in neuroblastoma

Neuroblastoma (NB) remains a major cause of pediatric cancer mortality for which new therapeutic strategies are needed. Exploitation of reprogrammed metabolic pathways offers an opportunity for cell-type specific anticancer therapeutics. To identify pediatric solid tumors with an enhanced susceptibility to targeting the nicotinamide adenine dinucleotide (NAD + ) salvage pathway, we performed an unbiased high-throughput screen of over 200 cancer cell line models using inhibitors of nicotinamide phosphoribosyltransferase (NAMPT), the rate limiting enzyme in the NAD + salvage pathway. Our analysis identified NB as one of the most sensitive solid tumor types, prompting further investigation of NAMPT inhibition as a potential therapeutic strategy in this disease. Using two early phase clinical NAMPT inhibitors (OT-82 and KPT-9274), we validated screen results using assays of proliferation and survival in a panel of molecularly diverse NB cell lines. Effects on proliferation, survival, NAD + abundance, adenosine triphosphate (ATP) levels, and energy-related metabolites were quantified, and downstream consequences of NAD + -consuming enzymatic pathways were examined. Tolerability, antitumor activity and pharmacodynamic effects of OT-82 were evaluated in three orthotopic NB mouse models. In the drug screen, NB models ranked among the most sensitive pediatric solid tumor cells lines to NAMPT inhibition. OT-82 and KPT-9274 potently suppressed proliferation and viability across multiple molecularly diverse NB models in an on-target manner. Mechanistically, NAMPT inhibition resulted in rapid depletion of NAD + and ATP, disruption of energy metabolism, accumulation of DNA damage, and induction of irreversible non-apoptotic cellular death. In vivo, OT-82 was well tolerated and produced marked antitumor activity, including tumor regressions in orthotopic NB models, including several with regional liver metastases. Pharmacodynamic analysis confirmed intratumoral NAD + depletion during treatment, demonstrating on-target pathway inhibition in vivo. These findings identify NB as a highly NAMPT inhibitor-sensitive pediatric solid tumor and establish NAMPT-dependent NAD + biosynthesis as a targetable metabolic vulnerability in this disease. By integrating an unbiased discovery screen with mechanistic and orthotopic in vivo validation using clinically relevant inhibitors, this study provides a strong translational rationale for clinical investigation of NAMPT inhibitors in NB.

Sophia Varriano, Amy Yu, Abantika Chakraborty et al. · 0 citations
Open access Aug 2026

Integrated multi-omic analysis of pediatric metastatic osteosarcoma reveals endothelial cell plasticity and lineage infidelity

While recent research has increasingly focused on the role of fibroblasts and macrophages in osteosarcoma, the tumor vasculature remains poorly understood, particularly in metastatic disease. To address this gap, we performed single-nuclei multi-ome (RNA+ATAC) sequencing on 24 human metastatic osteosarcoma specimens. We found that endothelial cells adopt a hybrid endothelial-mesenchymal state resembling endothelial-to-mesenchymal transition (EndMT) and that a subset of diploid endothelial cells expresses osteoblastic transcriptional profiles and gene regulatory networks (GRN). Joint copy-number analysis further identified osteosarcoma cells with endothelial transcriptional programs and GRNs, consistent with vascular mimicry. In vitro assays and syngeneic lineage-tracing experiments validated that tumor educated endothelial cells acquire osteoblast-like features. Together, these findings reveal substantial plasticity among endothelial and osteosarcoma cells in human and murine metastatic osteosarcoma, provide new insight into the how the metastatic microenvironment shapes the tumor vasculature, and challenge current models of osteosarcoma biology.

Julian Burks, Ying Wu, K. Bhuvaneshwar et al. · 0 citations