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1.
Nat Commun ; 14(1): 4234, 2023 07 15.
Article in English | MEDLINE | ID: mdl-37454114

ABSTRACT

The chloroquine resistance transporter, PfCRT, of the human malaria parasite Plasmodium falciparum is sensitive to acidic pH. Consequently, PfCRT operates at 60% of its maximal drug transport activity at the pH of 5.2 of the digestive vacuole, a proteolytic organelle from which PfCRT expels drugs interfering with heme detoxification. Here we show by alanine-scanning mutagenesis that E207 is critical for pH sensing. The E207A mutation abrogates pH-sensitivity, while preserving drug substrate specificity. Substituting E207 with Asp or His, but not other amino acids, restores pH-sensitivity. Molecular dynamics simulations and kinetics analyses suggest an allosteric binding model in which PfCRT can accept both protons and chloroquine in a partial noncompetitive manner, with increased proton concentrations decreasing drug transport. Further simulations reveal that E207 relocates from a peripheral to an engaged location during the transport cycle, forming a salt bridge with residue K80. We propose that the ionized carboxyl group of E207 acts as a hydrogen acceptor, facilitating transport cycle progression, with pH sensing as a by-product.


Subject(s)
Antimalarials , Malaria, Falciparum , Humans , Antimalarials/pharmacology , Antimalarials/chemistry , Chloroquine/pharmacology , Membrane Transport Proteins/metabolism , Protozoan Proteins/metabolism , Plasmodium falciparum/genetics , Plasmodium falciparum/metabolism , Hydrogen-Ion Concentration , Drug Resistance/genetics , Malaria, Falciparum/drug therapy , Malaria, Falciparum/parasitology
2.
PLoS Pathog ; 19(6): e1011436, 2023 06.
Article in English | MEDLINE | ID: mdl-37285379

ABSTRACT

The chloroquine resistance transporter (PfCRT) confers resistance to a wide range of quinoline and quinoline-like antimalarial drugs in Plasmodium falciparum, with local drug histories driving its evolution and, hence, the drug transport specificities. For example, the change in prescription practice from chloroquine (CQ) to piperaquine (PPQ) in Southeast Asia has resulted in PfCRT variants that carry an additional mutation, leading to PPQ resistance and, concomitantly, to CQ re-sensitization. How this additional amino acid substitution guides such opposing changes in drug susceptibility is largely unclear. Here, we show by detailed kinetic analyses that both the CQ- and the PPQ-resistance conferring PfCRT variants can bind and transport both drugs. Surprisingly, the kinetic profiles revealed subtle yet significant differences, defining a threshold for in vivo CQ and PPQ resistance. Competition kinetics, together with docking and molecular dynamics simulations, show that the PfCRT variant from the Southeast Asian P. falciparum strain Dd2 can accept simultaneously both CQ and PPQ at distinct but allosterically interacting sites. Furthermore, combining existing mutations associated with PPQ resistance created a PfCRT isoform with unprecedented non-Michaelis-Menten kinetics and superior transport efficiency for both CQ and PPQ. Our study provides additional insights into the organization of the substrate binding cavity of PfCRT and, in addition, reveals perspectives for PfCRT variants with equal transport efficiencies for both PPQ and CQ.


Subject(s)
Antimalarials , Malaria, Falciparum , Plasmodium falciparum , Quinolines , Humans , Antimalarials/chemistry , Chloroquine/pharmacology , Chloroquine/therapeutic use , Drug Resistance/genetics , Kinetics , Malaria, Falciparum/drug therapy , Mutation , Plasmodium falciparum/genetics , Plasmodium falciparum/metabolism , Protozoan Proteins/metabolism , Quinolines/pharmacology , Quinolines/therapeutic use
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