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Updated: Feb 10, 2026

Translational Orthotopic Models of Glioblastoma Multiforme
Published on: February 17, 2023
An orthotopic glioblastoma animal model suitable for high-throughput screenings
Linda Pudelko1, Steven Edwards2, Mirela Balan3
1Science for Life Laboratory, Division of Translational Medicine and Chemical Biology, Department of Medical Biochemistry and Biophysics, Karolinska Institutet, Stockholm, Sweden.
Background:
Glioblastoma (GBM) is an aggressive form of brain cancer with poor prognosis. Although murine animal models have given valuable insights into the GBM disease biology, they cannot be used in high-throughput screens to identify and profile novel therapies. The only vertebrate model suitable for large-scale screens, the zebrafish, has proven to faithfully recapitulate biology and pathology of human malignancies, and clinically relevant orthotopic zebrafish models have been developed. However, currently available GBM orthotopic zebrafish models do not support high-throughput drug discovery screens.
Methods:
We transplanted both GBM cell lines as well as patient-derived material into zebrafish blastulas. We followed the behavior of the transplants with time-lapse microscopy and real-time in vivo light-sheet microscopy.
Results:
We found that GBM material transplanted into zebrafish blastomeres robustly migrated into the developing nervous system, establishing an orthotopic intracranial tumor already 24 hours after transplantation. Detailed analysis revealed that our model faithfully recapitulates the human disease.
Conclusion:
We have developed a robust, fast, and automatable transplantation assay to establish orthotopic GBM tumors in zebrafish. In contrast to currently available orthotopic zebrafish models, our approach does not require technically challenging intracranial transplantation of single embryos. Our improved zebrafish model enables transplantation of thousands of embryos per hour, thus providing an orthotopic vertebrate GBM model for direct application in drug discovery screens.
Insights
Researchers developed a new zebrafish model for glioblastoma (GBM) drug discovery. This rapid, automatable assay allows high-throughput screening of potential GBM therapies in a vertebrate model.
Area of Science:
- Neuro-oncology
- Comparative oncology
- Zebrafish disease models
Background:
- Glioblastoma (GBM) is an aggressive brain cancer with limited treatment options.
- Murine models are insufficient for high-throughput drug screening.
- Zebrafish models recapitulate human cancer biology but existing GBM models are not suitable for large-scale screens.
Purpose of the Study:
- To develop a high-throughput, automatable zebrafish model for glioblastoma drug discovery.
- To create a vertebrate model that overcomes limitations of current GBM zebrafish models.
Main Methods:
- Transplantation of GBM cell lines and patient-derived material into zebrafish blastulas.
- Time-lapse microscopy and real-time in vivo light-sheet microscopy to track tumor development.
- Development of a rapid, automatable transplantation assay.
Main Results:
- GBM material robustly formed orthotopic intracranial tumors in zebrafish within 24 hours post-transplantation.
- The established zebrafish model accurately recapitulates key features of human GBM.
- The new assay allows for the transplantation of thousands of embryos per hour.
Conclusions:
- A robust, fast, and automatable assay for establishing orthotopic GBM tumors in zebrafish has been developed.
- This improved model bypasses technically challenging intracranial transplantation methods.
- The zebrafish model is suitable for direct application in high-throughput drug discovery screens for glioblastoma.
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