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Updated: Nov 12, 2025

Development and Maintenance of a Preclinical Patient Derived Tumor Xenograft Model for the Investigation of Novel Anti-Cancer Therapies
Published on: September 30, 2016
Patient-Derived Tumor Xenografts Plus Ex Vivo Models Enable Drug Validation for Tenosynovial Giant Cell Tumors
Fan Tang1,2, Yan Tie3, Wei-Qi Hong2
1Department of Orthopedics, Orthopedic Research Institute, West China Hospital, Sichuan University, Chengdu, China.
Introduction:
Tenosynovial giant cell tumor (TGCT) is a locally aggressive tumor with colony-stimulating factor 1 receptor (CSF1R) signal expression. However, there is a lack of better in vivo and ex vivo models for TGCT. This study aims to establish a favorable preclinical translational platform, which would enable the validation of efficient and personalized therapeutic candidates for TGCT.
Patients And Methods:
Histological analyses were performed for the included patients. Fresh TGCT tumors were collected and sliced into 1.0-3.0 mm3 sections using a sterilized razor blade. The tumor grafts were surgically implanted into subrenal capsules of athymic mice to establish patient-derived tumor xenograft (PDTX) mouse models. Histological and response patterns to CSF1R inhibitors evaluations were analyzed. In addition, ex vivo cultures of patient-derived explants (PDEs) with endpoint analysis were used to validate TGCT graft response patterns to CSF1R inhibitors.
Results:
The TGCT tumor grafts that were implanted into athymic mice subrenal capsules maintained their original morphological and histological features. The "take" rate of this model was 95% (19/20). Administration of CSF1R inhibitors (PLX3397, and a novel candidate, WXFL11420306) to TGCT-PDTX mice was shown to reduce tumor size while inducing intratumoral apoptosis. In addition, the CSF1R inhibitors suppressed circulating nonspecific monocyte levels and CD163-positive cells within tumors. These response patterns of engrafts to PDTX were validated by ex vivo PDE cultures.
Conclusions:
Subrenal capsule supports the growth of TGCT tumor grafts, maintaining their original morphology and histology. This TGCT-PDTX model plus ex vivo explant cultures is a potential preclinical translational platform for locally aggressive tumors, such as TGCT.
Insights
A new patient-derived tumor xenograft (PDTX) mouse model effectively mimics tenosynovial giant cell tumors (TGCT). This model, combined with ex vivo cultures, offers a promising platform for testing new TGCT therapies.
Area of Science:
- Oncology
- Translational Research
- Preclinical Models
Background:
- Tenosynovial giant cell tumor (TGCT) is a locally aggressive neoplasm.
- TGCT is characterized by colony-stimulating factor 1 receptor (CSF1R) signaling.
- Current in vivo and ex vivo models for TGCT are limited, hindering therapeutic development.
Purpose of the Study:
- To establish a robust preclinical translational platform for tenosynovial giant cell tumors.
- To enable validation of targeted therapeutic candidates for TGCT.
- To utilize patient-derived tumor xenograft (PDTX) and patient-derived explant (PDE) models.
Main Methods:
- Histological analysis of patient samples.
- Establishment of TGCT-PDTX models by implanting tumor sections into athymic mice subrenal capsules.
- Evaluation of TGCT graft response to CSF1R inhibitors in vivo and ex vivo using PDE cultures.
Main Results:
- The TGCT-PDTX model demonstrated a high "take" rate (95%) and maintained original tumor morphology and histology.
- CSF1R inhibitors (PLX3397, WXFL11420306) reduced tumor size and induced apoptosis in TGCT-PDTX mice.
- Inhibitor administration suppressed circulating monocytes and intratumoral CD163+ cells, consistent with ex vivo PDE results.
Conclusions:
- The subrenal capsule is a suitable environment for TGCT xenograft growth, preserving tumor characteristics.
- The developed TGCT-PDTX model and ex vivo PDE cultures provide a valuable preclinical platform.
- This platform facilitates the validation of targeted therapies for TGCT and similar locally aggressive tumors.
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