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Development and Maintenance of a Preclinical Patient Derived Tumor Xenograft Model for the Investigation of Novel Anti-Cancer Therapies
Published on: September 30, 2016
Development of succinate dehydrogenase subunit B-deficient tumor models for preclinical immunotherapy testing
Katerina Hadrava Vanova1, Ondrej Uher1, Michal Kraus2
1Section on Medical Neuroendocrinology, Eunice Kennedy Shriver National Institute of Child Health and Human Development, National Institutes of Health, 20814, Bethesda, MD, USA.
Abstract:
Immunotherapy has advanced the treatment landscape for many challenging cancers by harnessing the immune system to eliminate tumor cells. However, its efficacy in rare tumors such as pheochromocytoma and paraganglioma (PCC/PGL), particularly those with succinate dehydrogenase B (SDHB) mutations, remains underexplored. These tumors often exhibit complex tumor microenvironments and immune evasion mechanisms, and their low incidence hinders clinical trials development. Together, these challenges underscore the need for robust preclinical models that closely mirror human disease and support therapeutic discovery. In this study, we developed and characterized murine models of SDHB-deficient tumors using CRISPR-mediated gene editing in pheochromocytoma (MPC and MTT) and renal carcinoma (RenCa) cell lines. These models recapitulate key metabolic and immunological features of human SDHB-mutated tumors, which exhibit loss of SDHB protein expression, providing a relevant platform for evaluating immunotherapeutic strategies. We subsequently tested intratumoral immunotherapy with Mannan-BAM, TLR ligands, and an Anti-CD40 antibody (MBTA), a combination designed to overcome tumor-induced immune suppression. Our results indicate that SDHB-deficient PCC tumors exhibit increased antigen presentation and strong immune activation, leading to rejection or delayed progression in immunocompetent mice. In contrast, Sdhb knock-out RenCa tumors consistently formed, allowing therapeutic testing. MBTA therapy effectively eradicated these tumors, prevented metastasis, and induced long-term immune memory. These findings highlight the value of genetically engineered, tissue-specific murine models in predicting immunotherapy outcomes in rare cancers. Moreover, they support the therapeutic potential of MBTA for treating SDHB-deficient renal cell carcinoma and provide a rationale for further translational studies.
Insights
Developing preclinical models for rare cancers like pheochromocytoma (PCC/PGL) is crucial for immunotherapy research. This study shows a novel combination therapy (MBTA) effectively treats SDHB-deficient renal cell carcinoma in mice.
Area of Science:
- Oncology
- Immunology
- Genetics
Background:
- Immunotherapy shows promise for many cancers, but its efficacy in rare tumors like pheochromocytoma/paraganglioma (PCC/PGL), especially those with succinate dehydrogenase B (SDHB) mutations, is understudied.
- Rare tumor incidence and complex tumor microenvironments hinder clinical trials, necessitating advanced preclinical models for therapeutic discovery.
Purpose of the Study:
- To develop and characterize genetically engineered murine models of SDHB-deficient PCC/PGL and renal cell carcinoma (RenCa).
- To evaluate the efficacy of a novel intratumoral immunotherapy combination (Mannan-BAM, TLR ligands, Anti-CD40 antibody - MBTA) in these models.
Main Methods:
- CRISPR-mediated gene editing was used to create SDHB-deficient pheochromocytoma (MPC, MTT) and renal carcinoma (RenCa) cell lines.
- Developed murine models recapitulating metabolic and immunological features of human SDHB-mutated tumors.
- Tested intratumoral MBTA immunotherapy in immunocompetent mice bearing these tumors.
Main Results:
- SDHB-deficient PCC tumors showed increased antigen presentation and immune activation, leading to tumor rejection or delayed progression.
- SDHB-deficient RenCa tumors consistently formed, allowing for therapeutic evaluation.
- MBTA therapy eradicated RenCa tumors, prevented metastasis, and induced long-term immune memory.
Conclusions:
- Genetically engineered, tissue-specific murine models are valuable for predicting immunotherapy outcomes in rare cancers.
- MBTA therapy demonstrates significant therapeutic potential for SDHB-deficient renal cell carcinoma.
- The study provides a strong rationale for further translational studies of MBTA in rare tumor immunotherapy.

