Integration of genomic, transcriptomic and functional profiles of aggressive osteosarcomas across multiple species

Lara E Davis1,2, Sophia Jeng3, Matthew N Svalina2

  • 1Knight Cancer Institute, Division of Hematology and Medical Oncology, Department of Medicine, Oregon Health and Sciences University, Portland, Oregon, USA.

Oncotarget
|November 5, 2017
PubMed

Insights

Targeting checkpoint adaptations, like aberrant glucose metabolism and Polo Like Kinase 1 (PLK1), offers a promising strategy for aggressive osteosarcoma (bone cancer). This comparative oncology study identified ARK5 as a novel metabolic target across species.

Area of Science:

  • Comparative oncology
  • Genomics
  • Cancer biology

Background:

  • Osteosarcoma features complex, unstable genomes.
  • Targeting aberrant checkpoint processes (metabolic, cell cycle, immune) may be more effective than targeting specific signaling pathways.

Purpose of the Study:

  • Characterize lethal osteosarcomas across human, mouse, and canine species.
  • Identify novel therapeutic targets and understand mechanisms of aggressive osteosarcoma.

Main Methods:

  • Developed a genetically-engineered mouse model.
  • Established primary cell cultures from human tumors.
  • Created a biorepository of canine osteosarcoma specimens.
  • Analyzed DNA mutations, RNA expression, and drug sensitivity in aggressive vs. non-aggressive tumors.

Main Results:

  • Identified ARK5 (AMPK-Related Protein Kinase 5) as a conserved metabolic target.
  • Confirmed glucose metabolism as a key aberrant pathway in metastatic osteosarcoma.
  • Found Polo Like Kinase 1 (PLK1)-mediated checkpoint adaptation critical for aggressive tumors.
  • Observed over-expression of CCL18 (C-C Motif Chemokine Ligand 18) and mutations in BAGE (B Melanoma Antigen) genes in aggressive human osteosarcomas.

Conclusions:

  • Checkpoint adaptations are a unifying theme in high-risk osteosarcoma.
  • These adaptations represent potential prognostic markers and therapeutic targets.
  • ARK5 and PLK1-mediated pathways are key areas for future osteosarcoma treatment strategies.