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Contribution of mdr1b-type P-glycoprotein to okadaic acid resistance in rat pituitary GH3 cells

V Ritz1, J Marwitz, S Sieder

  • 1Institute of Pharmacology and Toxicology, University of Göttingen, Germany.

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.

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