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Cellular adaptation to drug exposure: evolution of the drug-resistant phenotype

Y Matsumoto1, H Takano, T Fojo

  • 1Division of Clinical Sciences, National Cancer Institute, NIH, Bethesda, Maryland 20892, USA.

Cancer Research
|November 26, 1997
PubMed

Insights

Drug resistance limits chemotherapy efficacy. Studies show reduced topoisomerase II and increased MRP expression contribute to etoposide (VP-16) resistance through cellular adaptation. This adaptation involves multiple mechanisms for high-level resistance.

Area of Science:

  • Oncology
  • Molecular Biology
  • Pharmacology

Background:

  • Chemotherapeutic efficacy is often limited by acquired drug resistance.
  • Etoposide (VP-16) resistance is associated with MDR-1/MRP expression and topoisomerase II alterations.

Purpose of the Study:

  • To investigate cellular adaptation mechanisms conferring resistance to etoposide (VP-16) under increasing drug pressure.
  • To characterize the molecular changes in etoposide-resistant cancer cell sublines.

Main Methods:

  • Generation of etoposide-resistant sublines (MCF-7-VP17, ZR-75B-VP13, MDA-MB-231-VP7) through stepwise drug exposure.
  • Analysis of topoisomerase II expression, activity, and drug accumulation.
  • Assessment of multidrug resistance-associated protein (MRP) expression and casein kinase II activity.

Main Results:

  • Initial VP-16 resistant isolates showed reduced topoisomerase II mRNA, protein, and activity, leading to 6-314-fold resistance.
  • With increasing resistance, MRP expression rose, decreasing VP-16 accumulation.
  • Adaptation involved restored topoisomerase II activity via increased expression or hyperphosphorylation, with MDA-MB-231-VP7 showing casein kinase II involvement.

Conclusions:

  • Cellular adaptation to increasing etoposide pressure involves synergistic mechanisms, including reduced topoisomerase II and MRP overexpression.
  • Reduced topoisomerase II expression confers early resistance, while MRP overexpression contributes to high-level resistance.
  • These findings elucidate complex cellular adaptations driving multidrug resistance in cancer therapy.

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