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Updated: Mar 21, 2026

Ortho- and Ectopic Zebrafish Xeno-Engraftment of Ocular Melanoma to Recapitulate Primary Tumor and Experimental Metastasis Development
Published on: September 4, 2021
Embryonic Zebrafish: Different Phenotypes after Injection of Human Uveal Melanoma Cells
Wietske van der Ent1, Claudia Burrello2, Mark J de Lange3
1Institute of Biology, Leiden University, Leiden University Medical Center, Leiden, The Netherlands; Department of Pathology, Leiden University Medical Center, Leiden, The Netherlands.
Abstract:
Although murine xenograft models for human uveal melanoma (UM) are available, they are of limited utility for screening large compound libraries for the discovery of new drugs. We need new preclinical models which can efficiently evaluate drugs that can treat UM metastases. The zebrafish embryonic model is ideal for drug screening purposes because it allows the investigation of potential antitumor properties of drugs within 1 week. The optical transparency of the zebrafish provides unique possibilities for live imaging of fluorescence-labelled cancer cells and their behavior. In addition, the adaptive immune response, which is responsible for the rejection of transplanted material, is not yet present in the early stages of fish development, and systemic immunosuppression is therefore not required to allow growth of tumor cells. We studied the behavior of UM cells following injection into zebrafish embryos and observed different phenotypes. We also analyzed cell migration, proliferation, formation of micrometastasis and interaction with the host microenvironment. Significant differences were noted between cell lines: cells derived from metastases showed more migration and proliferation than cells derived from the primary tumors. The addition of the c-Met inhibitor crizotinib to the water in which the larvae were kept reduced the migration and proliferation of UM cells expressing c-Met. This indicates the applicability of the zebrafish xenografts for testing novel inhibitory compounds and provides a fast and sensitive in vivo vertebrate model for preclinical drug screening to combat UM.
Insights
The zebrafish embryo model offers a rapid, in vivo method for screening drugs against uveal melanoma (UM) by tracking cancer cell behavior. This model effectively evaluates drug efficacy against UM metastases, accelerating new treatment discovery.
Area of Science:
- Oncology
- Zebrafish models
- Drug discovery
Background:
- Murine xenograft models for human uveal melanoma (UM) have limitations for large-scale drug screening.
- Effective preclinical models are needed to evaluate drugs targeting UM metastases.
Purpose of the Study:
- To establish and validate the zebrafish embryonic model for preclinical drug screening against UM.
- To assess the utility of zebrafish xenografts for evaluating anti-UM drug candidates.
Main Methods:
- Human UM cells were injected into zebrafish embryos.
- Cancer cell behavior, including migration, proliferation, and micrometastasis formation, was analyzed.
- The effect of the c-Met inhibitor crizotinib on UM cells was evaluated in vivo.
Main Results:
- Zebrafish embryos allowed for rapid (1-week) in vivo observation of UM cell behavior.
- UM cells from metastases exhibited increased migration and proliferation compared to primary tumor cells.
- Crizotinib treatment reduced migration and proliferation of c-Met-expressing UM cells.
Conclusions:
- The zebrafish embryonic model is a fast, sensitive, and effective vertebrate model for preclinical drug screening for UM.
- This model facilitates the evaluation of novel inhibitory compounds against UM and its metastases.

