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Published on: November 29, 2014
Determination of the Relationship between Expression and Functional Activity of Multidrug Resistance-Associated
David Polcari1, Javier Alejandro Hernández-Castro2, Kebin Li2
1Department of Chemistry, McGill University , 801 Sherbrooke Street West, Montreal, QC H3A 0B8, Canada.
Abstract:
Cancer cells can develop multidrug resistance (MDR) after prolonged exposure to chemotherapeutic drugs, which is a severe impediment to successful treatment. MDR is typically associated with transmembrane proteins mediating efflux of administered drugs, thereby keeping their intracellular concentration below the threshold required to kill cells. Although expression assays based on flow cytometry and immunostaining have shown that multidrug resistance-associated protein 1 (MRP1) is prevalent in many cancer types, the functional activity of this efflux pump is more difficult to elucidate, especially at the single-cell level. Herein, we report the measurement of MRP1 functional activity in individual cancer cells using scanning electrochemical microscopy (SECM). Cells were cultured onto plastic substrates containing selective adhesion sites. Optical microscopy and SECM revealed that cells adapt to the underlying surface, while MRP1 functional activity increases once the dimensions of the adhesive islands become smaller than those of the cell itself. Time-lapse SECM imaging revealed a suitable window of 30 min to complete each measurement before the cell undergoes blebbing, which is associated with a considerable increase in functional activity. Distinct cell populations were produced by performing a doxorubicin drug challenge on two parental cell lines (e.g., wild-type HeLa cells and MRP1-overexpressing HeLa-R cells). Expression and functional activity of MRP1 were determined using flow cytometry and SECM, and our findings show that these parameters do not directly correlate. This suggests that functional activity may represent a powerful indicator of a cancer cell's response to chemotherapeutic treatment and should improve our understanding of efflux mechanisms based on MRP1.
Insights
Multidrug resistance (MDR) in cancer is linked to efflux pumps like MRP1. This study measured MRP1 functional activity in single cancer cells using scanning electrochemical microscopy (SECM), finding it doesn't always correlate with expression levels.
Area of Science:
- Biophysics
- Cell Biology
- Analytical Chemistry
Background:
- Multidrug resistance (MDR) in cancer hinders chemotherapy by efflux pumps.
- Multidrug resistance-associated protein 1 (MRP1) is a key efflux pump, but its single-cell functional activity is hard to measure.
- Current methods like flow cytometry assess MRP1 expression, not its dynamic function.
Purpose of the Study:
- To measure functional activity of MRP1 in individual cancer cells.
- To investigate the relationship between MRP1 expression and functional activity.
- To explore novel applications of scanning electrochemical microscopy (SECM) in cancer research.
Main Methods:
- Utilized scanning electrochemical microscopy (SECM) to measure MRP1 functional activity at the single-cell level.
- Cultured cancer cells on patterned substrates to study cellular adaptation and its effect on MRP1 activity.
- Employed doxorubicin drug challenge on distinct cell lines (HeLa and MRP1-overexpressing HeLa-R) for comparative analysis.
Main Results:
- SECM successfully measured MRP1 functional activity in individual cancer cells.
- MRP1 functional activity increased when cells adapted to smaller adhesive island sizes.
- A 30-minute imaging window was identified before cellular blebbing significantly altered functional activity.
- MRP1 expression levels did not directly correlate with its functional activity across different cell populations.
Conclusions:
- Functional activity of MRP1, not just its expression, is a crucial indicator of cancer cell response to chemotherapy.
- SECM offers a powerful tool to assess single-cell efflux pump activity, advancing the understanding of MDR.
- Findings suggest functional activity measurements could refine predictions of treatment efficacy in MDR cancers.
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