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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.
Abstract:
We have analysed the contribution of several parameters, e.g. drug accumulation, MDR1 P-glycoprotein (P-gp), multidrug resistance-associated protein (MRP) and topoisomerase (topo) II, to drug resistance in a large set of drug-resistant variants of the human non-small-cell lung cancer cell line SW-1573 derived by selection with low concentrations of doxorubicin or vincristine. Selection with either drug nearly always resulted in MDR clones. The resistance of these clones could be explained by reduced drug accumulation and was associated with a decrease rather than an increase in the low MDR1 mRNA level. To test whether a decrease in MDR1 mRNA indirectly affected resistance in these cells, we introduced a MDR1-specific hammerhead ribozyme into wild-type SW-1573 cells. Although this led to a substantial reduction in MDR1 mRNA, it did not result in resistance. In all resistant clones we found an altered form of the multidrug resistance-associated protein (MRP), migrating slightly slower during SDS-polyacrylamide gel electrophoresis than MRP in parental cells. This altered MRP was also present in non-P-gp MDR somatic cell hybrids of the SW-1573 cells, demonstrating a clear linkage with the MDR phenotype. Treatment of crude cellular membrane fractions with N-glycanase, endoglycosidase H or neuraminidase showed that the altered migration of MRP on SDS-PAGE is due to a post-translational modification. There was no detectable difference in sialic acid content. In most but not all doxorubicin-selected clones, this MDR phenotype was accompanied by a reduction in topo II alpha mRNA level. No reduction was found in the clones selected with vincristine. We conclude from these results that selection of the SW-1573 cell line for low levels of doxorubicin or vincristine resistance, predominantly results in MDR with reduced drug accumulation associated with the presence of an altered MRP protein. This mechanism can be accompanied by other resistance mechanisms, such as reduced topo II alpha mRNA in case of doxorubicin selection.
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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