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Assessment of Plasmodium falciparum PfMDR1 transport rates using Fluo-4
O Friedrich1, S J Reiling, J Wunderlich
1Institute of Medical Biotechnology, Friedrich-Alexander-University Erlangen-Nuremberg, Erlangen, Germany; SAOT, Erlangen Graduate School of Advanced Optical Technologies, Friedrich-Alexander-University Erlangen-Nuremberg, Erlangen, Germany.
Abstract:
Mutations in the multidrug resistance transporter of Plasmodium falciparum PfMDR1 have been implicated to play a significant role in the emergence of worldwide drug resistance, yet the molecular and biochemical mechanisms of this transporter are not well understood. Although it is generally accepted that drug resistance in P. falciparum is partly associated with PfMDR1 transport activity situated in the membrane of the digestive vacuole, direct estimates of the pump rate of this transport process in the natural environment of the intact host-parasite system have never been analysed. The fluorochrome Fluo-4 is a well-documented surrogate substrate of PfMDR1 and has been found to accumulate by actively being transported into the digestive vacuole of several parasitic strains. In the present study, we designed an approach to use Fluo-4 fluorescence uptake as a measure of compartmental Fluo-4 concentration accumulation in the different compartments of the host-parasite system. We performed a 'reverse Fluo-4 imaging' approach to relate fluorescence intensity to changes in dye concentration rather than Ca(2+) fluctuations and were able to calculate the overall rate of transport for PfMDR1 in Dd2 parasites. With this assay, we provide a powerful method to selectively measure the effect of PfMDR1 mutations on substrate transport kinetics. This will be of high significance for future compound screening to test for new drugs in resistant P. falciparum strains.
Insights
This study quantifies the transport rate of the drug resistance transporter PfMDR1 in Plasmodium falciparum using a novel imaging technique. This method aids in understanding drug resistance mechanisms and screening new antimalarial drugs.
Area of Science:
- Malariology
- Molecular Parasitology
- Drug Resistance Mechanisms
Background:
- Mutations in Plasmodium falciparum multidrug resistance transporter (PfMDR1) are linked to global antimalarial drug resistance.
- The precise transport mechanisms and kinetics of PfMDR1 in the digestive vacuole remain poorly understood.
- Direct measurement of PfMDR1 pump rates in intact host-parasite systems is lacking.
Purpose of the Study:
- To develop and validate a novel method for quantifying PfMDR1 transport activity.
- To measure the transport rate of PfMDR1 using a surrogate substrate in intact P. falciparum.
- To enable selective assessment of PfMDR1 mutations' impact on transport kinetics.
Main Methods:
- Utilized the fluorochrome Fluo-4 as a surrogate substrate for PfMDR1.
- Developed a 'reverse Fluo-4 imaging' approach to quantify dye concentration in parasite compartments.
- Calculated the overall transport rate of PfMDR1 in Dd2 P. falciparum strains.
Main Results:
- Successfully quantified the transport rate of PfMDR1 in intact Dd2 parasites.
- Established a method to correlate Fluo-4 fluorescence intensity with dye concentration.
- Demonstrated the assay's capability to measure PfMDR1 transport kinetics.
Conclusions:
- The developed assay provides a powerful tool for studying PfMDR1 function.
- This method is significant for screening new drugs against resistant Plasmodium falciparum strains.
- Understanding PfMDR1 kinetics is crucial for combating malaria drug resistance.
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