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Updated: Jun 22, 2025

An Orthotopic Bladder Cancer Model for Gene Delivery Studies
Published on: December 1, 2013
Development of Traceable Mouse Models of Advanced and Metastatic Bladder Cancer
Emma Desponds1,2, Konstantina Kioseoglou1,2, Hana Zdimerova1,2
1Department of Oncology, Lausanne University Hospital (CHUV), University of Lausanne, 1015 Lausanne, Switzerland.
Abstract:
Bladder cancer (BC) is the fourth most common cancer in men, with a poor patient prognosis for advanced disease. The poor survival of patients with muscle-invasive bladder cancer (MIBC) and metastatic status emphasizes the urgent need to develop new therapies. Lacking in the field of BC is the availability of relevant advanced BC mouse models, especially metastatic ones, that accurately recapitulate the complexities of human pathology to test and study new therapeutic strategies. Addressing this need, we developed a traceable mouse model of BC that expresses tumor-associated antigens within the context of advanced muscle-invasive BC. This novel system was achieved through the deletion of the tp53 and pten genes, alongside the incorporation of the fusion construct of Firefly luciferase (Luc) and the SIYRYYGL (SIY) T-cell antigen. We validate that the presence of the transgene did not impact on the development of the tumors while allowing us to measure tumor progression by bioluminescence. We show that the transgene did not influence the composition of the immune tumor microenvironment. More importantly, we report that this model was unresponsive to anti-PD-1 treatment, as in the majority of patients with BC. We also develop a new model based on the orthotopic injection of BC clonal cell lines derived from our first model. We demonstrate that this new model invades the muscle layer and has a metastasis development rate of 83%. The advantage of this model is that we can visualize tumor growth and metastasis development in vivo. These mouse models' characteristics, displaying many similarities with the human pathology, provide a valuable tool for tracking tumor progression, metastasis spread in vivo, and treatment resistance, as well as exploring fundamental and translational aspects of BC biology. This work contributes to the improvement in the landscape of mouse models of advanced BC for testing new therapeutic strategies.
Insights
Researchers developed new mouse models for advanced bladder cancer (BC) that mimic human disease, aiding the study of metastasis and treatment resistance in bladder cancer research.
Area of Science:
- Oncology
- Immunology
- Genetics
Background:
- Bladder cancer (BC) presents a poor prognosis, especially in advanced and metastatic stages.
- A critical need exists for advanced, particularly metastatic, BC mouse models to test novel therapies.
- Existing models often fail to accurately recapitulate human BC pathology and treatment responses.
Purpose of the Study:
- To develop and validate novel, traceable mouse models of advanced muscle-invasive bladder cancer (MIBC).
- To create models that accurately reflect human BC complexity, including metastasis and immune microenvironment.
- To establish a platform for testing therapeutic strategies and understanding treatment resistance in BC.
Main Methods:
- Developed a genetically engineered mouse model by deleting tp53 and pten genes, incorporating Firefly luciferase (Luc) and SIY T-cell antigen.
- Validated tumor development, bioluminescence tracking, and immune microenvironment composition.
- Created a second model via orthotopic injection of BC cell lines, assessing muscle invasion and metastasis rates.
Main Results:
- The engineered model allowed bioluminescent tracking of tumor progression without altering tumor development or immune microenvironment.
- The model demonstrated unresponsiveness to anti-PD-1 treatment, mirroring human BC patient responses.
- The orthotopic injection model showed 83% metastasis development and muscle layer invasion, enabling in vivo visualization.
Conclusions:
- The developed traceable mouse models closely mimic human advanced bladder cancer, including metastasis and treatment resistance.
- These models serve as valuable tools for in vivo tracking of tumor progression, metastasis, and therapeutic response evaluation.
- This work enhances the available resources for fundamental and translational research in bladder cancer.

