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Updated: Jun 14, 2026

An Orthotopic Mouse Model of Anaplastic Thyroid Carcinoma
Published on: April 17, 2013
Morphologic and molecular characterization of ATRT xenografts adapted for orthotopic therapeutic testing
Rintaro Hashizume1, Nalin Gupta, Mitchel S Berger
1Brain Tumor Research Center, Department of Neurological Surgery, University ofCalifornia, San Diego, CA, USA.
Abstract:
Atypical teratoid rhabdoid tumor (ATRT) is a malignant tumor of the central nervous system that most commonly arises in young children. The aggressive growth and propensity for early dissemination throughout the neuraxis confers a dismal prognosis. Large clinical trials that could test new therapeutic agents are difficult to conduct due to the low incidence of this cancer. For this reason, high throughput preclinical testing with suitable animal models for ATRT would serve a critical need for identifying the most efficacious treatments. In response to this need, we have adapted ATRT cell lines for bioluminescence imaging (BLI) of intracranial (orthotopic) xenografts established in athymic mice. Our results indicate that following supratentorial or infratentorial injection in athymic mice, ATRT cells produce rapidly growing tumors, often with intraventricular spread or neuraxis dissemination. When established as orthotopic xenografts, the tumors predominantly display cells with a rhabdoid-like cellular morphology that show a spectrum of immunophenotypes similar to primary ATRT tumors. To demonstrate the feasibility of this orthotopic ATRT xenograft model for therapeutic testing with correlation to biomarker analysis, we examined the responses of luciferase-modified ATRT cells to temozolomide (TMZ). These xenografts, which highly express MGMT, are resistant to TMZ treatment when compared with an orthotopic glioblastoma xenograft that is MGMT deficient and responsive to TMZ. These data suggest that an orthotopic ATRT xenograft model, in which BLI is used for monitoring tumor growth and response to therapy, should contribute to the identification of effective therapeutics and regimens for treating this highly aggressive pediatric brain tumor.
Insights
A new bioluminescence imaging model using athymic mice allows for preclinical testing of treatments for atypical teratoid rhabdoid tumors (ATRT). This model accurately reflects ATRT characteristics and aids in identifying effective therapies for this aggressive pediatric brain cancer.
Area of Science:
- Neuro-oncology
- Pediatric oncology
- Cancer biology
Background:
- Atypical teratoid rhabdoid tumor (ATRT) is a rare, aggressive pediatric central nervous system malignancy with a poor prognosis.
- The low incidence of ATRT hinders large clinical trials, necessitating robust preclinical models for therapeutic development.
Purpose of the Study:
- To develop and validate an orthotopic xenograft model of ATRT in athymic mice for preclinical therapeutic testing.
- To utilize bioluminescence imaging (BLI) for monitoring tumor growth and treatment response in this model.
Main Methods:
- ATRT cell lines were adapted for bioluminescence imaging and implanted intracranially into athymic mice to establish orthotopic xenografts.
- Tumor growth, dissemination, cellular morphology, and immunophenotype were analyzed.
- The model's utility was demonstrated by assessing the response of MGMT-expressing ATRT xenografts to temozolomide (TMZ) compared to an MGMT-deficient glioblastoma model.
Main Results:
- Intracranial ATRT xenografts grew rapidly in athymic mice, exhibiting intraventricular spread and neuraxis dissemination.
- The xenografts displayed rhabdoid-like morphology and immunophenotypes consistent with primary ATRT.
- MGMT-expressing ATRT xenografts showed resistance to temozolomide, unlike MGMT-deficient glioblastoma xenografts.
Conclusions:
- An orthotopic ATRT xenograft model using BLI is feasible for preclinical drug screening and biomarker analysis.
- This model effectively recapitulates ATRT biology and can aid in identifying effective treatments for this challenging pediatric brain tumor.
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