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Updated: Feb 19, 2026

Author Spotlight: Exploring Advanced Therapeutic Targets in Osteosarcoma Through Spatial Transcriptomics
Published on: May 3, 2024
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.
Abstract:
In complex, highly unstable genomes such as in osteosarcoma, targeting aberrant checkpoint processes (metabolic, cell cycle or immune) may prove more successful than targeting specific kinase or growth factor signaling pathways. Here, we establish a comparative oncology approach characterizing the most lethal osteosarcomas identified in a biorepository of tumors from three different species: human, mouse and canine. We describe the development of a genetically-engineered mouse model of osteosarcoma, establishment of primary cell cultures from fatal human tumors, and a biorepository of osteosarcoma surgical specimens from pet dogs. We analyzed the DNA mutations, differential RNA expression and in vitro drug sensitivity from two phenotypically-distinct cohorts: tumors with a highly aggressive biology resulting in death from rapidly progressive, refractory metastatic disease, and tumors with a non-aggressive, curable phenotype. We identified ARK5 (AMPK-Related Protein Kinase 5, also referred to as NUAK Family Kinase 1) as a novel metabolic target present in all species, and independent analyses confirmed glucose metabolism as the most significantly aberrant cellular signaling pathway in a model system for highly metastatic tumors. Pathway integration analysis identified Polo Like Kinase 1 (PLK1)-mediated checkpoint adaptation as critical to the survival of a distinctly aggressive osteosarcoma. The tumor-associated macrophage cytokine CCL18 (C-C Motif Chemokine Ligand 18) was significantly over-expressed in aggressive human osteosarcomas, and a clustering of mutations in the BAGE (B Melanoma Antigen) tumor antigen gene family was found. The theme of these features of high risk osteosarcoma is checkpoint adaptations, which may prove both prognostic and targetable.
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.

