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Contribution of mdr1b-type P-glycoprotein to okadaic acid resistance in rat pituitary GH3 cells
1Institute of Pharmacology and Toxicology, University of Göttingen, Germany.
Abstract:
Okadaic acid as well as other, structurally different, inhibitors of serine/threonine phosphatases 1 and 2A induce apoptosis in pituitary GH3 cells. Incubation with stepwise raised concentrations of okadaic acid resulted in the isolation of cells that were increasingly less sensitive to the cytotoxic effect of this agent. After about 18 months cells were selected that survived at 300 nM okadaic acid, which is about 30 times the initially lethal concentration. This study revealed that a major pharmacokinetic mechanism underlying cell survival was the development of a P-glycoprotein-mediated multidrug resistance (MDR) phenotype. The increase in mRNA levels of the mdr1b P-glycoprotein isoform correlated with the extent of drug resistance. Functional assays revealed that increasing drug resistance was paralleled by a decreased accumulation of rhodamine 123, a fluorescent dye which is a substrate of mdr1-mediated efflux activity. Resistance could be abolished by structurally different chemosensitizers of P-glycoprotein function like verapamil and reserpine but not by the leukotriene receptor antagonist MK571 which is a modulator of the multidrug resistance-associated protein (MRP). Okadaic acid resistance included cross-resistance to other cytotoxic agents that are substrates of mdr1-type P-glycoproteins, like doxorubicin and actinomycin D, but not to non-substrates of mdr1, e.g. cytosine arabinoside. Thus, functional as well as biochemical features support the conclusion that okadaic acid is a substrate of the mdr1-mediated efflux activity in rat pituitary GH3 cells. Maintenance of resistance after withdrawal of okadaic acid as well as metaphase spreads of 100 nM okadaic acid-resistant cells suggested a stable MDR genotype without indications for the occurrence of extrachromosomal amplifications, e.g. double minute chromosomes.
Insights
Okadaic acid resistance in pituitary cells develops via P-glycoprotein-mediated multidrug resistance (MDR). This involves increased mdr1b P-glycoprotein, reduced dye accumulation, and cross-resistance to other drugs, indicating a stable MDR genotype.
Area of Science:
- Cell Biology
- Pharmacology
- Molecular Biology
Background:
- Serine/threonine phosphatases 1 and 2A inhibitors, like okadaic acid, induce apoptosis in pituitary GH3 cells.
- Developing resistance to okadaic acid is crucial for understanding cellular survival mechanisms.
Purpose of the Study:
- To investigate the pharmacokinetic mechanisms underlying cell survival against okadaic acid.
- To characterize the multidrug resistance (MDR) phenotype developed by GH3 cells.
Main Methods:
- Selected GH3 cells for resistance to increasing okadaic acid concentrations over 18 months.
- Analyzed P-glycoprotein expression (mRNA levels of mdr1b) and function (rhodamine 123 accumulation).
- Tested chemosensitizers (verapamil, reserpine, MK571) and cross-resistance to other cytotoxic agents.
Main Results:
- GH3 cells developed resistance to 300 nM okadaic acid, a 30-fold increase in tolerance.
- Resistance was mediated by P-glycoprotein, evidenced by increased mdr1b mRNA and decreased rhodamine 123 uptake.
- Resistance was reversed by verapamil and reserpine, but not MK571, and showed cross-resistance to doxorubicin and actinomycin D.
Conclusions:
- Okadaic acid is a substrate for mdr1-mediated efflux in rat pituitary GH3 cells.
- The developed MDR phenotype is stable and genetically based, without evidence of gene amplification.