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Updated: Apr 15, 2026

A Syngeneic Orthotopic Osteosarcoma Sprague Dawley Rat Model with Amputation to Control Metastasis Rate
Published on: May 3, 2021
Systematic Screening Identifies Dual PI3K and mTOR Inhibition as a Conserved Therapeutic Vulnerability in
Ankita Gupte1, Emma K Baker1, Soo-San Wan2
1St. Vincent's Institute of Medical Research, Fitzroy, Victoria, Australia. Department of Medicine, St. Vincent's Hospital, University of Melbourne, Fitzroy, Victoria, Australia.
Purpose:
Osteosarcoma is the most common cancer of bone occurring mostly in teenagers. Despite rapid advances in our knowledge of the genetics and cell biology of osteosarcoma, significant improvements in patient survival have not been observed. The identification of effective therapeutics has been largely empirically based. The identification of new therapies and therapeutic targets are urgently needed to enable improved outcomes for osteosarcoma patients.
Experimental Design:
We have used genetically engineered murine models of human osteosarcoma in a systematic, genome-wide screen to identify new candidate therapeutic targets. We performed a genome-wide siRNA screen, with or without doxorubicin. In parallel, a screen of therapeutically relevant small molecules was conducted on primary murine- and primary human osteosarcoma-derived cell cultures. All results were validated across independent cell cultures and across human and mouse osteosarcoma.
Results:
The results from the genetic and chemical screens significantly overlapped, with a profound enrichment of pathways regulated by PI3K and mTOR pathways. Drugs that concurrently target both PI3K and mTOR were effective at inducing apoptosis in primary osteosarcoma cell cultures in vitro in both human and mouse osteosarcoma, whereas specific PI3K or mTOR inhibitors were not effective. The results were confirmed with siRNA and small molecule approaches. Rationale combinations of specific PI3K and mTOR inhibitors could recapitulate the effect on osteosarcoma cell cultures.
Conclusions:
The approaches described here have identified dual inhibition of the PI3K-mTOR pathway as a sensitive, druggable target in osteosarcoma, and provide rationale for translational studies with these agents.
Insights
Dual inhibition of the PI3K-mTOR pathway shows promise for treating osteosarcoma (bone cancer). This approach effectively induced cancer cell death in preclinical models, offering a new therapeutic strategy for this challenging disease.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Osteosarcoma is a prevalent bone cancer in adolescents with limited therapeutic advancements.
- Current treatment strategies for osteosarcoma lack significant survival improvements.
- Novel therapeutic targets are crucial for enhancing patient outcomes in osteosarcoma.
Purpose of the Study:
- To identify novel therapeutic targets for osteosarcoma using genome-wide screening.
- To evaluate the efficacy of targeting specific molecular pathways in osteosarcoma.
- To provide a rationale for new drug development in osteosarcoma treatment.
Main Methods:
- Conducted a genome-wide siRNA screen in genetically engineered murine osteosarcoma models.
- Performed small molecule screens on primary human and murine osteosarcoma cell cultures.
- Validated findings across independent cell cultures and human/mouse osteosarcoma models.
Main Results:
- Genetic and chemical screens revealed significant enrichment of PI3K and mTOR pathway involvement.
- Combined PI3K and mTOR inhibition induced apoptosis in osteosarcoma cells in vitro.
- Single PI3K or mTOR inhibition was less effective than dual inhibition.
Conclusions:
- Dual inhibition of the PI3K-mTOR pathway represents a druggable target in osteosarcoma.
- This study provides a strong rationale for clinical trials investigating dual PI3K-mTOR inhibitors.
- The findings pave the way for improved therapeutic strategies for osteosarcoma patients.
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