Irradiation-induced angiosarcoma and anti-angiogenic therapy: a therapeutic hope?

Amalia Azzariti1, Letizia Porcelli1, Anita Mangia2

  • 1Clinical and Preclinical Pharmacology Laboratory, National Cancer Research Centre, Istituto Tumori Giovanni Paolo II, Viale O. Flacco, 65, 70124 Bari, Italy.

Insights

This study highlights that targeting tumor angiogenesis with anti-angiogenic agents shows promise for treating angiosarcomas. A patient-derived cell line confirmed the role of angiogenesis and drug efficacy in vitro, leading to a positive patient response.

Area of Science:

  • Oncology
  • Molecular Biology
  • Biomedical Research

Background:

  • Angiosarcomas are rare endothelial cell cancers, with secondary breast angiosarcomas a significant subgroup.
  • Therapeutic radiation can induce angiosarcomas, posing treatment challenges.
  • Understanding angiosarcoma molecular biology and identifying therapeutic targets is crucial.

Observation:

  • A primary cell line from an irradiation-induced angiosarcoma was established.
  • Biomarkers (CD31, CD34, HIF-1 alpha, VEGFRs, FVIII, VEGF) were evaluated in tumor specimens and the cell line.
  • In vitro studies revealed high VEGFR-2, nuclear HIF-1 alpha accumulation, and VEGF release, indicating angiogenesis's role.

Findings:

  • Angiogenesis plays a pivotal role in angiosarcoma progression.
  • Both VEGFR-2 inhibitor (Caprelsa) and anti-VEGF antibody (bevacizumab) effectively inhibited tumor cell proliferation in vitro.
  • The patient treated with pazopanib (a tyrosine kinase inhibitor) achieved a long-lasting partial response.

Implications:

  • Patient-derived cell lines can aid in selecting effective therapeutic strategies for angiosarcomas.
  • Anti-angiogenic agents represent a viable therapeutic option for angiosarcoma patients.
  • Targeting the VEGF-VEGFR axis is a promising strategy for angiosarcoma treatment.

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