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Resistance to pyrazofurin and 6-azauridine in normal MC3T3-E1 murine osteoblasts
D R Beidler1, A F Candia, M I Chernin
1Orthopaedic Research Laboratory, Allegheny-Singer Research Institute, Pittsburgh, PA 15212.
Abstract:
Stable variants resistant to pyrazofurin (PF) and 6-azauridine (AZUrd) were serially selected in increasing drug concentrations from an MC3T3-E1 nontumorigenic murine osteoblastic cell line. Monophosphates of both AZUrd and PF competitively inhibit orotidine-5'-monophosphate decarboxylase (ODCase) activity of the UMP synthase multifunctional enzyme. When compared to the wild type cells, the AZUrdr and PFr lines were 3000- and 10,000-fold more resistant, respectively. Flow cytometry indicated tetraploidy in wild type cells and a reduction of DNA content in both resistant cell lines. DNA dot blot analysis showed no amplification of the gene coding for UMP synthase in either AZUrdr or PFr cells. Measurements of UMP synthase showed a 6-fold higher activity in AZUrdr cells and no significant difference in PFr cells as compared to wild type. Sensitivity to 5-fluorouracil was increased in the AZUrdr line as opposed to PFr and normal cell lines, indicating an increased orotate phosphoribosyltransferase activity in the AZUrdr cells. In comparison to wild type cells, PFr cells were 100-fold resistant to 6-methylmercaptopurine riboside, suggesting a lack of adenosine kinase activity. The control and AZUrdr cells showed equal sensitivity to 5-fluorouridine, thus indicating unchanged uridine kinase levels. While PFr cells were not cross-resistant to AZUrd, the AZUrdr cells were cross-resistant to PF. These results indicate the possibility of an altered ODCase active site. Although amplification of unrelated sequences cannot be excluded, our findings show that bone tetraploid, nontumorigenic cells acquire drug resistance through mechanisms other than the amplification of a target gene and that this resistance is accompanied by the partial loss of a chromosomal complement.
Insights
Drug-resistant osteoblastic cells (MC3T3-E1) were developed using pyrazofurin (PF) and 6-azauridine (AZUrd). Resistance mechanisms in these cells, unlike gene amplification, involve altered enzyme activity and chromosomal changes.
Area of Science:
- Biochemistry
- Cell Biology
- Pharmacology
Background:
- Orotidine-5'-monophosphate decarboxylase (ODCase) is a key enzyme in UMP synthesis.
- Pyrazofurin (PF) and 6-azauridine (AZUrd) are known inhibitors of ODCase.
- Understanding drug resistance mechanisms is crucial for therapeutic development.
Purpose of the Study:
- To investigate the mechanisms of drug resistance in osteoblastic cells selected for resistance to PF and AZUrd.
- To characterize the biochemical and genetic alterations associated with resistance.
- To explore potential cross-resistance patterns.
Main Methods:
- Serial drug selection of MC3T3-E1 cells with increasing concentrations of PF and AZUrd.
- Flow cytometry to assess DNA content and ploidy.
- DNA dot blot analysis to evaluate gene amplification.
- Enzyme activity assays for UMP synthase, orotate phosphoribosyltransferase, and adenosine kinase.
- Drug sensitivity assays for various antimetabolites.
Main Results:
- Resistant cell lines (AZUrdr and PFr) showed significant resistance to AZUrd (3000-fold) and PF (10,000-fold).
- Resistant cells exhibited reduced DNA content and tetraploidy compared to wild-type.
- No amplification of the UMP synthase gene was detected.
- AZUrdr cells displayed increased UMP synthase and orotate phosphoribosyltransferase activity, while PFr cells showed decreased adenosine kinase activity.
- AZUrdr cells were cross-resistant to PF, but PFr cells were not cross-resistant to AZUrd.
Conclusions:
- Drug resistance in these osteoblastic cells is acquired through mechanisms other than target gene amplification.
- Altered ODCase active site and changes in other enzyme activities contribute to resistance.
- Resistance is associated with a partial loss of chromosomal complement.
- These findings provide insights into cellular adaptation to antimetabolite drugs.