Alternative Mutations at Position 76 of the Vacuolar Transmembrane Protein PfCRT Are Associated with Chloroquine Resistance and Unique Stereospecific Quinine and Quinidine Responses inPlasmodium falciparum
- 1 January 2002
- journal article
- Published by American Society for Pharmacology & Experimental Therapeutics (ASPET) in Molecular Pharmacology
- Vol. 61 (1), 35-42
- https://doi.org/10.1124/mol.61.1.35
Abstract
Chloroquine resistance (CQR) in Plasmodium falciparum is associated with multiple mutations in the digestive vacuole membrane protein PfCRT. The chloroquine-sensitive (CQS) 106/1 line of P. falciparum has six of seven PfCRT mutations consistently found in CQR parasites from Asia and Africa. The missing mutation at position 76 (K76T in reported population surveys) may therefore be critical to CQR. To test this hypothesis, we exposed 106/1 populations (109–1010 parasites) to a chloroquine (CQ) concentration lethal to CQS parasites. In multiple independent experiments, surviving CQR parasites were detected in the cultures after 28 to 42 days. These parasites showed novel K76N or K76I PfCRT mutations and corresponding CQ IC50 values that were ∼8- and 12-fold higher than that of the original 106/1 IC50. A distinctive feature of the K76I line relative to 106/1 parasites was their greatly increased sensitivity to quinine (QN) but reduced sensitivity to its enantiomer quinidine (QD), indicative of a unique stereospecific response not observed in other CQR lines. Furthermore, verapamil had the remarkable effect of antagonizing the QN response while potentiating the QD response of K76I parasites. In our single-step drug selection protocol, the probability of the simultaneous selection of two specific mutations required for CQR is extremely small. We conclude that the K76N or K76I change added to the other pre-existing mutations in the 106/1 PfCRT protein was responsible for CQR. The various mutations that have now been documented at PfCRT position 76 (K76T, K76N, K76I) suggest that the loss of lysine is central to the CQR mechanism.Keywords
This publication has 48 references indexed in Scilit:
- Distribution of acridine orange fluorescence in Plasmodium falciparum-infected erythrocytes and its implications for the evaluation of digestive vacuole pHMolecular and Biochemical Parasitology, 2001
- A Molecular Marker for Chloroquine-Resistant Falciparum MalariaNew England Journal of Medicine, 2001
- Access to Hematin: The Basis of Chloroquine ResistanceMolecular Pharmacology, 1998
- An Assessment of Drug-Haematin Binding as a Mechanism for Inhibition of Haematin Polymerisation by Quinoline AntimalarialsBiochemical Pharmacology, 1998
- Aminoquinolines That Circumvent Resistance in Plasmodium falciparum in VitroThe American Journal of Tropical Medicine and Hygiene, 1996
- Uptake and efflux of chloroquine by chloroquine-resistant Plasmodium falciparum clones recently isolated in AfricaActa Tropica, 1994
- Relationship of global chloroquine transport and reversal of resistance in Plasmodium falciparumMolecular and Biochemical Parasitology, 1994
- Plasmodium falciparum: Induction, selection, and characterization of pyrimethamine-resistant mutantsExperimental Parasitology, 1986
- Hemolysis of mouse erythrocytes by ferriprotoporphyrin IX and chloroquine. Chemotherapeutic implications.Journal of Clinical Investigation, 1980
- Quantitative assessment of antimalarial activity in vitro by a semiautomated microdilution techniqueAntimicrobial Agents and Chemotherapy, 1979