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Updated: Feb 16, 2026

Intratibial Osteosarcoma Cell Injection to Generate Orthotopic Osteosarcoma and Lung Metastasis Mouse Models
Published on: October 28, 2021
MiR-34a regulates the invasive capacity of canine osteosarcoma cell lines
Cecilia M Lopez1, Peter Y Yu2, Xiaoli Zhang3
1Department of Veterinary Clinical Sciences, College of Veterinary Medicine, The Ohio State University, Columbus, Ohio, United States of America.
Background:
Osteosarcoma (OSA) is the most common bone tumor in children and dogs; however, no substantial improvement in clinical outcome has occurred in either species over the past 30 years. MicroRNAs (miRNAs) are small non-coding RNAs that regulate gene expression and play a fundamental role in cancer. The purpose of this study was to investigate the potential contribution of miR-34a loss to the biology of canine OSA, a well-established spontaneous model of the human disease.
Methodology And Principal Findings:
RT-qPCR demonstrated that miR-34a expression levels were significantly reduced in primary canine OSA tumors and canine OSA cell lines as compared to normal canine osteoblasts. In canine OSA cell lines stably transduced with empty vector or pre-miR-34a lentiviral constructs, overexpression of miR-34a inhibited cellular invasion and migration but had no effect on cell proliferation or cell cycle distribution. Transcriptional profiling of canine OSA8 cells possessing enforced miR-34a expression demonstrated dysregulation of numerous genes, including significant down-regulation of multiple putative targets of miR-34a. Moreover, gene ontology analysis of down-regulated miR-34a target genes showed enrichment of several biological processes related to cell invasion and motility. Lastly, we validated changes in miR-34a putative target gene expression, including decreased expression of KLF4, SEM3A, and VEGFA transcripts in canine OSA cells overexpressing miR-34a and identified KLF4 and VEGFA as direct target genes of miR-34a. Concordant with these data, primary canine OSA tumor tissues demonstrated increased expression levels of putative miR-34a target genes.
Conclusions:
These data demonstrate that miR-34a contributes to invasion and migration in canine OSA cells and suggest that loss of miR-34a may promote a pattern of gene expression contributing to the metastatic phenotype in canine OSA.
Insights
Loss of miR-34a in canine osteosarcoma (OSA) correlates with increased tumor cell invasion and migration. Restoring miR-34a levels inhibits these metastatic behaviors, suggesting its potential as a therapeutic target for OSA.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Osteosarcoma (OSA) is a common bone cancer in children and dogs with limited treatment advancements.
- MicroRNAs (miRNAs) are crucial regulators of gene expression and play a significant role in cancer development.
- Canine OSA serves as a valuable spontaneous model for studying human OSA biology.
Purpose of the Study:
- To investigate the role of miR-34a loss in the development and progression of canine osteosarcoma.
- To understand how miR-34a affects gene expression and cellular behavior in OSA.
Main Methods:
- Quantitative real-time PCR (RT-qPCR) to measure miR-34a expression levels.
- Lentiviral vectors to overexpress miR-34a in canine OSA cell lines.
- Transcriptional profiling and gene ontology analysis to identify miR-34a target genes.
- Validation of target gene expression using RT-qPCR.
Main Results:
- miR-34a expression was significantly reduced in canine OSA tumors and cell lines compared to normal cells.
- Overexpression of miR-34a inhibited cellular invasion and migration but did not affect proliferation or cell cycle.
- Enforced miR-34a expression led to the downregulation of genes involved in invasion and motility, including direct targets KLF4 and VEGFA.
- Canine OSA tumors showed increased expression of putative miR-34a target genes.
Conclusions:
- Loss of miR-34a contributes to enhanced invasion and migration in canine OSA cells.
- Reduced miR-34a may promote a metastatic phenotype in OSA through dysregulation of specific gene expression patterns.
- miR-34a represents a potential therapeutic target for mitigating OSA metastasis.
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