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Updated: Mar 16, 2026

Three-Dimensional Bone Extracellular Matrix Model for Osteosarcoma
Published on: April 12, 2019
WWOX and p53 Dysregulation Synergize to Drive the Development of Osteosarcoma
Sara Del Mare1, Hussam Husanie1, Ortal Iancu1
1The Lautenberg Center for Immunology and Cancer Research, IMRIC, Faculty of Medicine, Hebrew University of Jerusalem, Israel.
Abstract:
Osteosarcoma is a highly metastatic form of bone cancer in adolescents and young adults that is resistant to existing treatments. Development of an effective therapy has been hindered by very limited understanding of the mechanisms of osteosarcomagenesis. Here, we used genetically engineered mice to investigate the effects of deleting the tumor suppressor Wwox selectively in either osteoblast progenitors or mature osteoblasts. Mice with conditional deletion of Wwox in preosteoblasts (WwoxΔosx1) displayed a severe inhibition of osteogenesis accompanied by p53 upregulation, effects that were not observed in mice lacking Wwox in mature osteoblasts. Deletion of p53 in WwoxΔosx1 mice rescued the osteogenic defect. In addition, the Wwox;p53Δosx1 double knockout mice developed poorly differentiated osteosarcomas that resemble human osteosarcoma in histology, location, metastatic behavior, and gene expression. Strikingly, the development of osteosarcomas in these mice was greatly accelerated compared with mice lacking p53 only. In contrast, combined WWOX and p53 inactivation in mature osteoblasts did not accelerate osteosarcomagenesis compared with p53 inactivation alone. These findings provide evidence that a WWOX-p53 network regulates normal bone formation and that disruption of this network in osteoprogenitors results in accelerated osteosarcoma. The Wwox;p53Δosx1 double knockout establishes a new osteosarcoma model with significant advancement over existing models. Cancer Res; 76(20); 6107-17. ©2016 AACR.
Insights
The WWOX tumor suppressor is crucial for normal bone formation. Disrupting the WWOX-p53 network in bone progenitors accelerates osteosarcoma development, creating a new preclinical model.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Osteosarcoma is a deadly bone cancer in young people, resistant to current therapies.
- Understanding osteosarcomagenesis mechanisms is vital for developing new treatments.
Purpose of the Study:
- To investigate the role of the WWOX tumor suppressor in osteosarcoma development.
- To explore the WWOX-p53 interaction in bone formation and cancer.
Main Methods:
- Used genetically engineered mice with conditional WWOX deletion in osteoblast progenitors.
- Analyzed the impact of WWOX and p53 gene deletions on bone formation and osteosarcoma.
- Compared osteosarcoma development in WWOX;p53 double knockout mice with single knockouts.
Main Results:
- WWOX deletion in osteoblast progenitors inhibited bone formation and upregulated p53.
- Deleting p53 rescued the bone formation defect in WWOX-deficient mice.
- WWOX;p53 double knockout mice developed aggressive osteosarcomas resembling human tumors, with accelerated onset compared to p53-deficient mice.
Conclusions:
- A WWOX-p53 network regulates normal bone development.
- Disruption of this network in osteoprogenitors drives accelerated osteosarcoma.
- The Wwox;p53Δosx1 mouse model offers significant advancements for osteosarcoma research.
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