Altered MRP is associated with multidrug resistance and reduced drug accumulation in human SW-1573 cells

E W Eijdems1, G J Zaman, M de Haas

  • 1Division of Molecular Biology, The Netherlands Cancer Institute, Amsterdam.

Insights

Drug resistance in non-small-cell lung cancer SW-1573 cells is primarily due to reduced drug accumulation linked to an altered multidrug resistance-associated protein (MRP). This mechanism can be accompanied by reduced topoisomerase II alpha mRNA levels, particularly with doxorubicin selection.

Area of Science:

  • Oncology
  • Molecular Biology
  • Biochemistry

Background:

  • Multidrug resistance (MDR) is a significant challenge in cancer chemotherapy.
  • Understanding the molecular mechanisms underlying drug resistance is crucial for developing effective treatments.
  • The SW-1573 human non-small-cell lung cancer cell line is a valuable model for studying drug resistance.

Purpose of the Study:

  • To investigate the contribution of various parameters, including drug accumulation, P-glycoprotein (P-gp), multidrug resistance-associated protein (MRP), and topoisomerase II (topo II), to drug resistance in SW-1573 cells.
  • To characterize the molecular alterations associated with acquired resistance to doxorubicin and vincristine.

Main Methods:

  • Development of drug-resistant SW-1573 cell variants through selection with doxorubicin or vincristine.
  • Analysis of drug accumulation, MDR1 mRNA levels, and P-gp expression.
  • Investigation of MRP protein alterations using SDS-PAGE and post-translational modification enzyme treatments.
  • Assessment of topoisomerase II alpha mRNA levels.

Main Results:

  • Drug-resistant clones predominantly exhibited reduced drug accumulation and an altered MRP protein, characterized by slower migration on SDS-PAGE due to post-translational modification.
  • MDR1 mRNA levels did not consistently increase and, in some cases, decreased, and MDR1 knockdown did not induce resistance.
  • Altered MRP was linked to the MDR phenotype and was observed in non-P-gp MDR cells.
  • Reduced topoisomerase II alpha mRNA levels were observed in some doxorubicin-selected clones but not in vincristine-selected clones.

Conclusions:

  • Acquired low-level resistance to doxorubicin or vincristine in SW-1573 cells is mainly driven by reduced drug accumulation associated with an altered MRP protein.
  • The altered MRP protein, resulting from post-translational modification, is a key factor in this MDR phenotype.
  • Other mechanisms, such as reduced topoisomerase II alpha mRNA, can contribute to resistance, particularly with doxorubicin exposure.

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