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Updated: Jan 21, 2026

Tractable In Vivo Reprogramming of Tumor Cells to Type 1 Conventional Dendritic Cell-like Cells
Published on: August 1, 2025
Murine neuroblastoma cell lines developed by conditional reprogramming preserve heterogeneous phenotypes observed in
Ewa Krawczyk1, Sung-Hyeok Hong2, Susana Galli2
1Center for Cell Reprogramming, Georgetown University Medical Center, Washington DC, USA. Ewa.Krawczyk@georgetown.edu.
Abstract:
Neuroblastoma (NB) is a pediatric tumor of the peripheral nervous system. Treatment of the disease represents an unsolved clinical problem, as survival of patients with aggressive form of NB remains below 50%. Despite recent identification of numerous potential therapeutic targets, clinical trials validating them are challenging due to the rarity of the disease and its high patient-to-patient heterogeneity. Hence, there is a need for the accurate preclinical models that would allow testing novel therapeutic approaches and prioritizing the clinical studies, preferentially in personalized way. Here, we propose using conditional reprogramming (CR) technology for rapid development of primary NB cell cultures that could become a new model for such tests. This newly established method allowed for indefinite propagation of normal and tumor cells of epithelial origin in an undifferentiated state by their culture in the presence of Rho-associated kinase (ROCK) inhibitor, Y-27632, and irradiated mouse feeder cells. Using a modification of this approach, we isolated cell lines from tumors arising in the TH-MYCN murine transgenic model of NB (CR-NB). The cells were positive for neuronal markers, including Phox2B and peripherin and consisted of two distinct populations: mesenchymal and adrenergic expressing corresponding markers of their specific lineage. This heterogeneity of the CR-NB cells mimicked the different tumor cell phenotypes in TH-MYCN tumor tissues. The CR-NB cells preserved anchorage-independent growth capability and were successfully passaged, frozen and biobanked. Further studies are required to determine the utility of this method for isolation of human NB cultures, which can become a novel model for basic, translational, and clinical research, including individualized drug testing.
Insights
Conditional reprogramming (CR) technology rapidly develops neuroblastoma (NB) cell cultures. These new preclinical models mimic NB heterogeneity for personalized drug testing and improved patient survival.
Area of Science:
- Pediatric oncology
- Cancer biology
- Cell culture technology
Background:
- Neuroblastoma (NB) is a pediatric peripheral nervous system tumor with <50% survival for aggressive forms.
- Clinical trials for NB are hindered by disease rarity and patient heterogeneity.
- Accurate preclinical models are crucial for testing novel therapeutics and personalized treatment strategies.
Purpose of the Study:
- To establish a novel method for rapid development of primary neuroblastoma cell cultures using conditional reprogramming (CR) technology.
- To create a preclinical model that accurately reflects the heterogeneity of NB tumors.
- To facilitate personalized drug testing and advance neuroblastoma research.
Main Methods:
- Utilized conditional reprogramming (CR) technology involving Rho-associated kinase (ROCK) inhibitor (Y-27632) and irradiated mouse feeder cells.
- Adapted CR for isolating neuroblastoma cell lines (CR-NB) from the TH-MYCN murine transgenic model.
- Characterized CR-NB cells for neuronal markers (Phox2B, peripherin) and distinct mesenchymal/adrenergic populations.
Main Results:
- Successfully established CR-NB cell lines from TH-MYCN mouse model tumors.
- CR-NB cells exhibited neuronal markers and two distinct mesenchymal and adrenergic populations, mirroring tumor heterogeneity.
- CR-NB cells maintained anchorage-independent growth and were suitable for cryopreservation and biobanking.
Conclusions:
- Conditional reprogramming (CR) offers a rapid method for generating diverse neuroblastoma cell cultures.
- CR-NB models effectively recapitulate tumor heterogeneity, enabling preclinical drug screening.
- Further research is needed to validate CR for human neuroblastoma cultures for translational and clinical applications.
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