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Updated: May 12, 2026

Zebrafish Model of Neuroblastoma Metastasis
Published on: March 14, 2021
Th-MYCN mice with caspase-8 deficiency develop advanced neuroblastoma with bone marrow metastasis
Tal Teitz1, Madoka Inoue, Marcus B Valentine
1Departments of Tumor Cell Biology, St Jude Children's Research Hospital, Memphis, Tennessee 38105, USA.
Abstract:
Neuroblastoma, the most common extracranial pediatric solid tumor, is responsible for 15% of all childhood cancer deaths. Patients frequently present at diagnosis with metastatic disease, particularly to the bone marrow. Advances in therapy and understanding of the metastatic process have been limited due, in part, to the lack of animal models harboring bone marrow disease. The widely used transgenic model, the Th-MYCN mouse, exhibits limited metastasis to this site. Here, we establish the first genetic immunocompetent mouse model for metastatic neuroblastoma with enhanced secondary tumors in the bone marrow. This model recapitulates 2 frequent alterations in metastatic neuroblastoma, overexpression of MYCN and loss of caspase-8 expression. Mouse caspase-8 gene was deleted in neural crest lineage cells by crossing a Th-Cre transgenic mouse with a caspase-8 conditional knockout mouse. This mouse was then crossed with the neuroblastoma prone Th-MYCN mouse. Although overexpression of MYCN by itself rarely caused bone marrow metastasis, combining MYCN overexpression and caspase-8 deletion significantly enhanced bone marrow metastasis (37% incidence). Microarray expression studies of the primary tumors mRNAs and microRNAs revealed extracellular matrix structural changes, increased expression of genes involved in epithelial to mesenchymal transition, inflammation, and downregulation of miR-7a and miR-29b. These molecular changes have been shown to be associated with tumor progression and activation of the cytokine TGF-β pathway in various tumor models. Cytokine TGF-β can preferentially promote single cell motility and blood-borne metastasis and therefore activation of this pathway may explain the enhanced bone marrow metastasis observed in this animal model.
Insights
We developed a new mouse model for metastatic neuroblastoma that accurately mimics bone marrow disease. This model combines MYCN overexpression and caspase-8 loss, significantly improving bone marrow metastasis research.
Area of Science:
- Oncology
- Genetics
- Molecular Biology
Background:
- Neuroblastoma is a common pediatric cancer with high mortality, often presenting with bone marrow metastasis.
- Current animal models inadequately replicate bone marrow metastasis, hindering therapeutic research.
- Understanding neuroblastoma metastasis is crucial for improving patient outcomes.
Purpose of the Study:
- To establish a novel immunocompetent mouse model for metastatic neuroblastoma with enhanced bone marrow disease.
- To investigate the roles of MYCN overexpression and caspase-8 loss in neuroblastoma bone marrow metastasis.
- To identify molecular changes associated with enhanced metastasis in this new model.
Main Methods:
- Generated a genetic mouse model by crossing Th-Cre, caspase-8 conditional knockout, and Th-MYCN mice.
- Analyzed bone marrow metastasis incidence in the developed mouse model.
- Utilized microarray expression studies to identify molecular alterations in primary tumors.
Main Results:
- The novel mouse model demonstrated significantly enhanced bone marrow metastasis (37% incidence) compared to existing models.
- Combined MYCN overexpression and caspase-8 deletion were critical for increased bone marrow metastasis.
- Identified molecular changes including extracellular matrix alterations, epithelial-mesenchymal transition, inflammation, and altered microRNA expression (miR-7a, miR-29b).
Conclusions:
- The established mouse model effectively recapitulates metastatic neuroblastoma with bone marrow involvement.
- The findings highlight the synergistic role of MYCN and caspase-8 loss in promoting bone marrow metastasis.
- The observed molecular changes suggest activation of the TGF-β pathway, contributing to enhanced metastasis.
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