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Updated: Oct 5, 2025

A Preclinical Mouse Model of Osteosarcoma to Define the Extracellular Vesicle-mediated Communication Between Tumor and Mesenchymal Stem Cells
Published on: May 6, 2018
Genetic context of oncogenic drivers dictates vascular sarcoma development in aP2-Cre mice
Jason A Hanna1,2,3, Casey G Langdon1, Matthew R Garcia1
1Department of Oncology, St. Jude Children's Research Hospital, Memphis, TN, USA.
Abstract:
Angiosarcomas are aggressive vascular sarcomas that arise from endothelial cells and have an extremely poor prognosis. Because of the rarity of angiosarcomas, knowledge of molecular drivers and optimized treatment strategies is lacking, highlighting the need for in vivo models to study the disease. Previously, we generated genetically engineered mouse models of angiosarcoma driven by aP2-Cre-mediated biallelic loss of Dicer1 or conditional activation of KrasG12D with Cdkn2a loss that histologically and genetically resemble human tumors. In the present study, we found that DICER1 functions as a potent tumor suppressor and its deletion, in combination with either KRASG12D expression or Cdkn2a loss, is associated with angiosarcoma development. Independent of the genetic driver, the mTOR pathway was activated in all murine angiosarcoma models. Direct activation of the mTOR pathway by conditional deletion of Tsc1 with aP2-Cre resulted in tumors that resemble intermediate grade human kaposiform hemangioendotheliomas, indicating that mTOR activation was not sufficient to drive the malignant angiosarcoma phenotype. Genetic dissection of the spectrum of vascular tumors identified genes specifically regulated in the aggressive murine angiosarcomas that are also enriched in human angiosarcoma. The genetic dissection driving the transition across the malignant spectrum of endothelial sarcomas provides an opportunity to identify key determinants of the malignant phenotype, novel therapies for angiosarcoma, and novel in vivo models to further explore angiosarcoma pathogenesis. © 2022 The Authors. The Journal of Pathology published by John Wiley & Sons Ltd on behalf of The Pathological Society of Great Britain and Ireland.
Insights
DICER1 acts as a tumor suppressor in angiosarcoma development. Its loss, combined with KRAS or CDKN2A alterations, drives aggressive vascular sarcoma, revealing key molecular pathways for targeted therapies.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Genetics
Background:
- Angiosarcomas are rare, aggressive vascular tumors with poor prognoses.
- Limited understanding of molecular drivers and treatments necessitates better in vivo models.
- Previous models recapitulated human angiosarcoma histology and genetics.
Purpose of the Study:
- Investigate the role of DICER1 in angiosarcoma pathogenesis.
- Identify molecular drivers and pathways in aggressive angiosarcomas.
- Develop and characterize novel in vivo models for angiosarcoma research.
Main Methods:
- Generated genetically engineered mouse models with specific gene alterations (Dicer1 loss, Kras activation, Cdkn2a loss).
- Analyzed tumor histology, genetics, and molecular pathways (e.g., mTOR).
- Performed genetic dissection of vascular tumors across a malignant spectrum.
Main Results:
- DICER1 deletion, with Kras or Cdkn2a loss, promotes angiosarcoma development.
- The mTOR pathway is activated in all studied murine angiosarcoma models.
- mTOR activation alone is insufficient for malignant angiosarcoma phenotype.
- Identified specific genes in aggressive murine angiosarcomas enriched in human tumors.
Conclusions:
- DICER1 is a critical tumor suppressor in angiosarcoma.
- Genetic drivers and pathway activation (mTOR) influence tumor malignancy.
- Findings offer insights into angiosarcoma pathogenesis and potential therapeutic targets.
- The study provides valuable in vivo models for further research.
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