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Updated: Jul 4, 2026

Establishment of Patient-Derived Xenograft Mouse Model with Human Osteosarcoma Tissues
Published on: March 22, 2024
Multiple pathways are involved in drug resistance to doxorubicin in an osteosarcoma cell line
Thangarajan Rajkumar1, Manoharan Yamuna
1Department of Molecular Oncology, Cancer Institute (WIA), Adyar, Chennai 600020, India. rajkumart@yahoo.com
Abstract:
Drug resistance continues to be a stumbling block in achieving a better cure rate in several cancers, including osteosarcoma. To understand this, we developed a doxorubicin drug-resistant osteosarcoma cell line (143B-DR-DOX). This cell line had an IC50 of 75 micromol/l compared with the parental 143B cell line's IC50 of 0.4 micromol/l. Using a 22000 70-mer oligomicroarray, gene expression studies were performed in four replicates. Data analysis was done using the TIGR Microarray suite. Seventy-four genes were found to be either upregulated (21) or downregulated (53). Real time quantitative-PCR was done on 21 genes, which confirmed the gene expression data for 11 genes. Choosing the significant fold change criteria of greater than 2-fold upregulation or downregulation, four genes including multidrug resistance 1, interleukin-8, Krüppel-like factor 2 and MGC4175 were found to be upregulated and seven genes including epidermal growth factor receptor-coamplified and overexpressed protein, uridine phosphorylase 1, a disintegrin and metalloproteinase domain 19, cytochrome C1, SEC, S-adenosyl homocysteine hydrolase and p53 were found to be downregulated. The data suggest that apart from the known gene alterations in doxorubicin resistance (multidrug resistance 1, topoisomerase IIbeta), others can also contribute to the drug-resistance phenotype. The involvement of interleukin-8 and Krüppel-like factor 2 suggests that the peroxisome proliferator-activated receptors gamma pathway may also be involved in doxorubicin drug resistance in the 143B-DR-DOX cell line.
Insights
Drug resistance in osteosarcoma hinders cancer treatment. Researchers identified new genes involved in doxorubicin resistance, suggesting novel therapeutic targets for this challenging cancer.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Drug resistance significantly impacts osteosarcoma treatment outcomes.
- Developing drug-resistant cell lines is crucial for understanding resistance mechanisms.
Purpose of the Study:
- To investigate gene expression changes in a novel doxorubicin-resistant osteosarcoma cell line (143B-DR-DOX).
- To identify potential novel molecular targets contributing to doxorubicin resistance in osteosarcoma.
Main Methods:
- Development of a doxorubicin-resistant osteosarcoma cell line (143B-DR-DOX).
- Oligomicroarray analysis of gene expression in 143B-DR-DOX cells compared to parental cells.
- Validation of gene expression changes using real-time quantitative PCR.
Main Results:
- Seventy-four genes were identified as differentially expressed (21 upregulated, 53 downregulated).
- Key upregulated genes include multidrug resistance 1 (MDR1) and interleukin-8 (IL-8).
- Key downregulated genes include epidermal growth factor receptor (EGFR) and p53.
Conclusions:
- Gene expression profiling reveals novel contributors to doxorubicin resistance beyond known mechanisms.
- Interleukin-8 and Krüppel-like factor 2 involvement suggests a role for the PPARγ pathway in drug resistance.
- These findings offer potential new therapeutic strategies for overcoming drug resistance in osteosarcoma.
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