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.

The Journal of Pathology
|January 23, 2022
PubMed

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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