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Resistance to the antimitotic drug estramustine is distinct from the multidrug resistant phenotype
L A Speicher1, V R Sheridan, A K Godwin
1Department of Pharmacology, Fox Chase Cancer Center, Philadelphia, Pennsylvania 19111.
Abstract:
Following EMS mutagenesis, three estramustine (EM) resistant DU 145 human prostatic carcinoma cell lines were clonally selected by exposure to incrementally increasing concentrations of the drug. Although only low levels of resistance (approximately 3-fold) were attainable, this resistance was stable in the absence of continuous drug exposure. These EM-resistant clones (EMR 4,9,12) did not exhibit cross resistance to vinblastine, taxol, or adriamycin, and had collateral sensitivity to cytochalasin B. None of the lines had elevated expression of P-glycoprotein mRNA or glutathione S-transferase activity, suggesting a phenotype distinct from the classic multi-drug resistance phenotype. This conclusion was supported further by the observation that two MDR cell lines (FLC mouse erythroleukaemic and SKOV3 human ovarian carcinoma cells) showed sensitivity to EM. Fluorescent activated cell sorting analysis of the effects of EM on cell cycle traverse revealed that at EM concentrations up to 20 microM an increasing percentage of wild type cells were blocked in G2/M; no such effect occurred in EMR lines. Differential interference contrast microscopy was employed to study EM's effect on mitosis. EMR lines were able to form functional, albeit smaller, spindles at EM concentrations that resulted in chromosomal disorganisation and inhibition of mitotic progression in wild type cells. EMR lines were able to progress through mitosis and cytokinesis at the same rate as untreated cells. Tritiated EM was used to evaluate potential drug uptake/efflux mutations in ERM clones. EMR 4 and 9 incorporate less EM than wild type cells; however, they have significantly decreased cellular volumes. The initial efflux rate constants for EMR clones were greater than for wild type cells. Within 5 min greater than 70% of the drug was lost from resistant cells compared to a 50% loss by the wild type. Although the specific mechanisms of resistance have yet to be defined, the lack of collateral resistance to other MDR/anti-microtubule agents could serve as the basis for the clinical use of EM in combination chemotherapy.
Insights
Researchers developed estramustine (EM)-resistant prostate cancer cells that show unique resistance mechanisms. These cells offer potential for novel combination chemotherapy strategies against cancer.
Area of Science:
- Oncology
- Pharmacology
- Cell Biology
Background:
- Estramustine (EM) is a chemotherapy agent used for prostate cancer.
- Understanding drug resistance mechanisms is crucial for improving cancer treatment efficacy.
Purpose of the Study:
- To develop and characterize estramustine (EM)-resistant human prostatic carcinoma cell lines.
- To investigate the resistance mechanisms and potential cross-resistance profiles of these EM-resistant cells.
Main Methods:
- Clonal selection of DU 145 cells using incrementally increasing concentrations of EM.
- Assessing cross-resistance to other chemotherapeutic agents (vinblastine, taxol, adriamycin) and collateral sensitivity to cytochalasin B.
- Analyzing P-glycoprotein mRNA expression, glutathione S-transferase activity, and cell cycle effects using flow cytometry.
- Microscopic examination of mitosis and drug uptake/efflux studies using tritiated EM.
Main Results:
- Established stable EM-resistant cell lines (EMR 4,9,12) with approximately 3-fold resistance.
- EMR lines showed no cross-resistance to other agents and collateral sensitivity to cytochalasin B, distinct from classic multi-drug resistance (MDR).
- EMR lines exhibited altered responses to EM during mitosis, with reduced drug incorporation and increased efflux rates, potentially due to decreased cellular volume.
Conclusions:
- The developed EM-resistant cell lines possess a unique resistance phenotype, not associated with P-glycoprotein or glutathione S-transferase.
- These findings suggest that EM resistance involves mechanisms other than classical MDR.
- The distinct resistance profile of EM-resistant cells may enable their use in combination chemotherapy to overcome treatment resistance.