Related Experiment Video
Updated: Nov 8, 2025

Author Spotlight: Replicating Human Osteosarcoma Progression in Immunodeficient Mice for Cancer Study
Published on: March 22, 2024
An mTOR and VEGFR inhibitor combination arrests a doxorubicin resistant lung metastatic osteosarcoma in a PDOX mouse
Hiromichi Oshiro1,2,3, Yasunori Tome4, Kentaro Miyake1,2
1AntiCancer Inc., 7917 Ostrow Street, San Diego, CA, 92122, USA.
Abstract:
In order to identify more effective therapy for recalcitrant osteosarcoma, we evaluated the efficacy of an mTOR-VEGFR inhibitor combination on tumor growth in a unique osteosarcoma patient-derived orthotopic xenograft (PDOX) mouse model derived from the lung metastasis of an osteosarcoma patient who failed doxorubicin therapy. We also determined the efficacy of this inhibitor combination on angiogenesis using an in vivo Gelfoam fluorescence angiogenesis mouse model implanted with osteosarcoma patient-derived cells (OS-PDCs). PDOX models were randomly divided into five groups of seven nude mice. Group 1, control; Group 2, doxorubicin (DOX); Group 3, everolimus (EVE, an mTOR and VEGF inhibitor); Group 4, pazopanib (PAZ, a VEGFR inhibitor); Group 5, EVE-PAZ combination. Tumor volume and body weight were monitored 2 times a week. The in vivo Gelfoam fluorescence angiogenesis assay was performed with implanted OS-PDCs. The nude mice with implanted Gelfoam and OSPDCs also were divided into the four therapeutic groups and vessel length was monitored once a week. The EVE-PAZ combination suppressed tumor growth in the osteosarcoma PDOX model and decreased the vessel length ratio in the in vivo Gelfoam fluorescent angiogenesis model, compared with all other groups (p < 0.05). There was no significant body-weight loss in any group. Only the EVE-PAZ combination caused tumor necrosis. The present study demonstrates that a combination of an mTOR-VEGF inhibitor and a VEGFR inhibitor was effective for a DOX-resistant lung-metastatic osteosarcoma PDOX mouse model, at least in part due to strong anti-angiogenesis efficacy of the combination.
Insights
A combination therapy targeting mTOR and VEGFR effectively reduced tumor growth and angiogenesis in a doxorubicin-resistant osteosarcoma mouse model, offering a promising treatment for recalcitrant osteosarcoma.
Area of Science:
- Oncology
- Pharmacology
- Cancer Research
Background:
- Osteosarcoma is a challenging bone cancer, particularly when resistant to standard therapies like doxorubicin.
- Targeting angiogenesis, the formation of new blood vessels that feed tumors, is a key strategy in cancer treatment.
Purpose of the Study:
- To evaluate the efficacy of a combined mTOR-VEGFR inhibitor therapy against doxorubicin-resistant osteosarcoma.
- To assess the anti-angiogenic effects of this combination in a relevant preclinical model.
Main Methods:
- Utilized a patient-derived orthotopic xenograft (PDOX) mouse model of lung metastatic osteosarcoma.
- Tested a combination of everolimus (mTOR/VEGF inhibitor) and pazopanib (VEGFR inhibitor) against control and single-agent therapies.
- Employed an in vivo Gelfoam fluorescence angiogenesis assay to quantify vessel formation.
Main Results:
- The everolimus-pazopanib combination significantly suppressed tumor growth in the osteosarcoma PDOX model.
- This combination markedly reduced vessel length in the angiogenesis model compared to other treatments.
- Only the combination therapy induced significant tumor necrosis without causing substantial body weight loss.
Conclusions:
- A combination of mTOR-VEGF and VEGFR inhibitors demonstrates significant efficacy against doxorubicin-resistant osteosarcoma.
- The potent anti-angiogenic activity of the combination contributes to its therapeutic effectiveness.
- This targeted therapy approach holds promise for treating recalcitrant and metastatic osteosarcoma.
More Related Videos
10:27Testing Targeted Therapies in Cancer using Structural DNA Alteration Analysis and Patient-Derived Xenografts
Published on: July 25, 2020
08:47Improved Visualization of Lung Metastases at Single Cell Resolution in Mice by Combined In-situ Perfusion of Lung Tissue and X-Gal Staining of lacZ-Tagged Tumor Cells
Published on: August 21, 2012