Cellular Uptake of Chloroquine Is Dependent on Binding to Ferriprotoporphyrin IX and Is Independent of NHE Activity in Plasmodium falciparum
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H. Ginsburg | S. Ward | M. Mungthin | P. Bray | O. Janneh | K. Raynes
[1] H. Ginsburg,et al. Inhibition of glutathione-dependent degradation of heme by chloroquine and amodiaquine as a possible basis for their antimalarial mode of action. , 1998, Biochemical pharmacology.
[2] K. Saliba,et al. Role for the plasmodium falciparum digestive vacuole in chloroquine resistance. , 1998, Biochemical pharmacology.
[3] S. Ward,et al. Access to hematin: the basis of chloroquine resistance. , 1998, Molecular pharmacology.
[4] J. Wiesner,et al. Differential Stimulation of the Na+/H+ Exchanger Determines Chloroquine Uptake in Plasmodium falciparum , 1998, The Journal of cell biology.
[5] S. Ward,et al. A comparison of the phenomenology and genetics of multidrug resistance in cancer cells and quinoline resistance in Plasmodium falciparum. , 1998, Pharmacology & therapeutics.
[6] X. Su,et al. Complex Polymorphisms in an ∼330 kDa Protein Are Linked to Chloroquine-Resistant P. falciparum in Southeast Asia and Africa , 1997, Cell.
[7] M. Manfait,et al. Characterization of Acidic Vesicles in Multidrug-resistant and Sensitive Cancer Cells by Acridine Orange Staining and Confocal Microspectrofluorometry , 1997, The journal of histochemistry and cytochemistry : official journal of the Histochemistry Society.
[8] D. Goldberg,et al. Biosynthesis and Maturation of the Malaria Aspartic Hemoglobinases Plasmepsins I and II* , 1997, The Journal of Biological Chemistry.
[9] U. Certa,et al. Expression and characterisation of plasmepsin I from Plasmodium falciparum. , 1997, European journal of biochemistry.
[10] S. Wünsch,et al. Identification of a Chloroquine Importer in Plasmodium falciparum , 1997, The Journal of Biological Chemistry.
[11] D. Sullivan,et al. Hemoglobin metabolism in the malaria parasite Plasmodium falciparum. , 1997, Annual review of microbiology.
[12] S. Mann,et al. Ciba Foundation Symposium , 1997 .
[13] S. Ward,et al. 4-Aminoquinoline resistance of Plasmodium falciparum: insights from the study of amodiaquine uptake. , 1996, Molecular pharmacology.
[14] D. Sullivan,et al. On the molecular mechanism of chloroquine's antimalarial action. , 1996, Proceedings of the National Academy of Sciences of the United States of America.
[15] M. Foley,et al. Novel bisquinoline antimalarials. Synthesis, antimalarial activity, and inhibition of haem polymerisation. , 1996, Biochemical pharmacology.
[16] A. Cerami,et al. Verapamil Reversal of Chloroquine Resistance in the Malaria Parasite Plasmodium falciparum Is Specific for Resistant Parasites and Independent of the Weak Base Effect (*) , 1995, The Journal of Biological Chemistry.
[17] H. Matile,et al. Malarial haemozoin/β-haematin supports haem polymerization in the absence of protein , 1995, Nature.
[18] I. Gluzman,et al. Order and specificity of the Plasmodium falciparum hemoglobin degradation pathway. , 1994, The Journal of clinical investigation.
[19] I. Gluzman,et al. Molecular characterization and inhibition of a Plasmodium falciparum aspartic hemoglobinase. , 1994, The EMBO journal.
[20] S. Ward,et al. Relationship of global chloroquine transport and reversal of resistance in Plasmodium falciparum. , 1994, Molecular and biochemical parasitology.
[21] D. Cutler,et al. Kinetics of chloroquine uptake into isolated rat hepatocytes. , 1993, Journal of pharmaceutical sciences.
[22] H. Ginsburg,et al. Kinetic characterization of Na+/H+ antiport of Plasmodium falciparum membrane , 1993, Journal of cellular physiology.
[23] R. D. Walter,et al. Reversal of chloroquine resistance in Plasmodium falciparum by CDR 87/209 and analogues. , 1993, Tropical medicine and parasitology : official organ of Deutsche Tropenmedizinische Gesellschaft and of Deutsche Gesellschaft fur Technische Zusammenarbeit.
[24] I. Pastan,et al. Biochemistry of multidrug resistance mediated by the multidrug transporter. , 1993, Annual review of biochemistry.
[25] A F Slater,et al. Chloroquine: mechanism of drug action and resistance in Plasmodium falciparum. , 1993, Pharmacology & therapeutics.
[26] S. Ward,et al. Rapid chloroquine efflux phenotype in both chloroquine-sensitive and chloroquine-resistant Plasmodium falciparum. A correlation of chloroquine sensitivity with energy-dependent drug accumulation. , 1992, Biochemical pharmacology.
[27] D. Cutler,et al. Simulation of kinetic data on the influx and efflux of chloroquine by erythrocytes infected with Plasmodium falciparum. Evidence for a drug-importer in chloroquine-sensitive strains. , 1991, Biochemical pharmacology.
[28] A. Gonsalves,et al. Metal-Assisted Reactions. Part 21. Epoxidation of Alkenes Catalyzed by Manganese Porphyrins: The Effects of Various Oxidatively-Stable Ligands and Bases. , 1991 .
[29] H. Ginsburg,et al. Kinetic modelling of chloroquine uptake by malaria-infected erythrocytes. Assessment of the factors that may determine drug resistance. , 1991, Biochemical pharmacology.
[30] B. Chait,et al. Hemoglobin degradation in the human malaria pathogen Plasmodium falciparum: a catabolic pathway initiated by a specific aspartic protease , 1991, The Journal of experimental medicine.
[31] A. Gonsalves,et al. Metal-assisted reactions. Part 21. Epoxidation of alkenes catalysed by manganese-porphyrins: the effects of various oxidatively-stable ligands and bases , 1991 .
[32] C. Slomianny,et al. A cytochemical ultrastructural study of the lysosomal system of different species of malaria parasites. , 1990, The Journal of protozoology.
[33] Thomas E. Wellems,et al. Chloroquine resistance not linked to mdr-like genes in a Plasmodium falciparum cross , 1990, Nature.
[34] D. Goldberg,et al. Hemoglobin degradation in the malaria parasite Plasmodium falciparum: an ordered process in a unique organelle. , 1990, Proceedings of the National Academy of Sciences of the United States of America.
[35] D. Goldberg. Hemoglobin degradation in the malaria parasite : an ordered process in a unique organelle , 1990 .
[36] I. Gluzman,et al. Efflux of chloroquine from Plasmodium falciparum: mechanism of chloroquine resistance. , 1987, Science.
[37] D. V. Vander Jagt,et al. Comparison of proteases from chloroquine-sensitive and chloroquine-resistant strains of Plasmodium falciparum. , 1987, Biochemical pharmacology.
[38] D. Warhurst,et al. Antimalarial schizontocides: why a permease is necessary. , 1986, Parasitology today.
[39] H. Ginsburg,et al. Uptake of [3H]chloroquine by drug-sensitive and -resistant strains of the human malaria parasite Plasmodium falciparum. , 1986, Biochemical pharmacology.
[40] P. K. Smith,et al. Measurement of protein using bicinchoninic acid. , 1985, Analytical biochemistry.
[41] H. Ginsburg,et al. Susceptibility of human malaria parasites to chloroquine is pH dependent. , 1985, Proceedings of the National Academy of Sciences of the United States of America.
[42] D. Balasubramanian,et al. The malaria parasite monitored by photoacoustic spectroscopy. , 1984, Science.
[43] C. D. Fitch,et al. Mode of action of antimalarial drugs. , 1983, Ciba Foundation symposium.
[44] A. Chou,et al. Ferriprotoporphyrin IX fulfills the criteria for identification as the chloroquine receptor of malaria parasites. , 1980, Biochemistry.
[45] J. Haynes,et al. Quantitative assessment of antimalarial activity in vitro by a semiautomated microdilution technique , 1979, Antimicrobial Agents and Chemotherapy.
[46] C. Lambros,et al. Synchronization of Plasmodium falciparum erythrocytic stages in culture. , 1979, The Journal of parasitology.
[47] M. Berenbaum,et al. A method for testing for synergy with any number of agents. , 1978, The Journal of infectious diseases.
[48] W. Trager,et al. Human malaria parasites in continuous culture. , 1976, Science.
[49] C. D. Fitch,et al. Chloroquine-Resistant Plasmodium falciparum: Effect of Substrate on Chloroquine and Amodiaquin Accumulation , 1974, Antimicrobial Agents and Chemotherapy.
[50] C. D. Fitch. Plasmodium falciparum in Owl Monkeys: Drug Resistance and Chloroquine Binding Capacity , 1970, Science.