P388 leukaemia cells resistant to the anthracycline menogaril lack multidrug resistant phenotype

G J Badiner1, B C Moy, K S Smith

  • 1Cancer and Infectious Diseases Research, Upjohn Company, Kalamazoo, Michigan 49001.

British Journal of Cancer
|September 1, 1990
PubMed

Insights

Menogaril-resistant cells (P388/MEN) were developed and showed resistance to menogaril but not a typical multidrug-resistant phenotype. Glutathione was not involved in this menogaril resistance.

Area of Science:

  • Pharmacology
  • Cancer Biology
  • Drug Resistance

Background:

  • Menogaril is an anthracycline in Phase II clinical trials.
  • Understanding drug resistance mechanisms is crucial for cancer therapy.
  • Developing drug-resistant cell lines aids in studying resistance.

Purpose of the Study:

  • To develop and characterize menogaril-resistant mouse leukemia P388 cells (P388/MEN).
  • To investigate the resistance phenotype of P388/MEN cells.
  • To determine the role of glutathione in menogaril resistance.

Main Methods:

  • Induction of menogaril resistance in P388 cells through stepwise drug exposure.
  • Cloning of resistant cells (P388/MEN).
  • Assessment of cross-resistance to other drugs, drug uptake/efflux, verapamil reversal, karyotyping, mdr gene expression, and glutathione levels.

Main Results:

  • P388/MEN cells exhibited 40-fold in vitro resistance to menogaril, which was stable and present in vivo.
  • P388/MEN cells did not display a typical multidrug-resistant phenotype, showing cross-resistance only to adriamycin.
  • Menogaril uptake/efflux, verapamil sensitivity, karyotype, mdr gene expression, and glutathione levels were similar to sensitive cells.

Conclusions:

  • Menogaril resistance in P388/MEN cells is not associated with the classical multidrug-resistant phenotype.
  • Glutathione is unlikely to be involved in the observed menogaril resistance.
  • These findings provide insights into novel mechanisms of anthracycline resistance.

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