
AbstractTreatment of the symptomatic asexual stage of Plasmodium falciparum relies almost exclusively on artemisinin (ART) combination therapies (ACTs) in endemic regions. ACTs combine ART or its derivative with a long-acting partner drug to maximize efficacy during the typical three-day regimen. Both laboratory and clinical studies have previously demonstrated that the common drug resistance determinants P. falciparum chloroquine resistance transporter (PfCRT) and multidrug resistance transporter (PfMDR1) can modulate the susceptibility to many current antimalarial drugs and chemical compounds. Here we investigated the parasite responses to dihydroartemisinin (DHA) and various Ca2+ and Na+ channel blockers and showed positively correlated responses between DHA and several channel blockers, suggesting potential shared transport pathways or mode of action. Additionally, we demonstrated that PfCRT and PfMDR1 could also significantly modulate the pharmacodynamic interactions of the compounds and that the interactions were influenced by the parasite genetic backgrounds. These results provide important information for better understanding of drug resistance and for assessing the overall impact of drug resistance markers on parasite response to ACTs.
ATP-Binding Cassette, Sub-Family C Proteins, Genotype, Plasmodium falciparum, Drug Resistance, Protozoan Proteins, Lidocaine, Membrane Transport Proteins, Chloroquine, Calcium Channel Blockers, Article, Artemisinins, Antimalarials, Gene Expression Regulation, Parasitic Sensitivity Tests, Drug Therapy, Combination, Sodium Channel Blockers
ATP-Binding Cassette, Sub-Family C Proteins, Genotype, Plasmodium falciparum, Drug Resistance, Protozoan Proteins, Lidocaine, Membrane Transport Proteins, Chloroquine, Calcium Channel Blockers, Article, Artemisinins, Antimalarials, Gene Expression Regulation, Parasitic Sensitivity Tests, Drug Therapy, Combination, Sodium Channel Blockers
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