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The origins of antimalarial drug resistance.

Resistance of Plasmodium falciparum to the antimalarial drug sulfadoxine-pyrimethamine is a result of extremely rare mutations that have spread over large geographical areas. This pattern was completely unexpected because mutations encoding resistance occur commonly in laboratory conditions, leading to the expectation that resistance would originate locally on numerous occasions. This can be reconciled with basic P. falciparum biology and epidemiology, and it is concluded that this pattern of extremely rare mutations and subsequent spread should be regarded as the most likely pattern of resistance to future antimalarials. Consequently, strategies to slow the spread of resistance need to be designed on regional, rather than national, considerations.

Adsorption↗

dUTPase as a platform for antimalarial drug design: structural basis for the selectivity of a class of nucleoside inhibitors.

Pyrimidine metabolism is a major route for therapeutic intervention against malaria. Here we report inhibition and structural studies on the deoxyuridine nucleotidohydrolase from the malaria parasite Plasmodium falciparum (PfdUTPase). We have identified a series of triphenylmethane derivatives of deoxyuridine with antimalarial activity in vitro which inhibit specifically the Plasmodium dUTPase versus the human enzyme. A 2.4 Angstrom crystal structure of PfdUTPase in complex with one of these inhibitors reveals an atypical trimeric enzyme in which the triphenylmethane derivative can be seen to select for PfdUTPase by way of interactions between the trityl group and the side chains of residues Phe46 and Ile117. Immunofluorescence microscopy studies of parasitized red blood cells reveal that enzyme concentrations are highest during the trophozoite/schizont stages, suggesting that PfdUTPase has a major role in DNA replication. Taken together the data show that PfdUTPase may be considered as an antimalarial drug target.

Amino Acid Sequence↗

An antimalarial extract from neem leaves is antiretroviral.

An acetone-water neem leaf extract with antimalarial activity was evaluated in vitro at 5 microg/ml for inhibition of adhesion of malaria parasite-infected erythrocytes and cancer cells to endothelial cells, and at 10 microg/ml for protection of lymphocytes against invasion by HIV. The extract was also evaluated in 10 patients with HIV/AIDS at 1000 mg daily for 30 d. The mean binding of infected erythrocytes and cancer cells per endothelial cell was 15 and 11 respectively in the absence of the extract, and 0 and 2 respectively in with the extract. In the absence and presence of the extract, 0% and 75%, respectively, of lymphocytes were protected. In the treated patients, haemoglobin concentration, mean CD4+ cell count and erythrocyte sedimentation rate, which were initially 9.8 g/dl, 126 cells/microl and 90 mm/h respectively, improved to 12.1 g/dl, 241 cells/microl and 49 mm/h. Mean bodyweight and platelet count, initially 57 kg and 328 x 10(3)/mm3 respectively, increased to 60 kg and 359 x 10(3)/mm3. No adverse effects were observed during the study. The extract showed antiretroviral activity with a mechanism of action that may involve inhibition of cytoadhesion. The results may help in the development of novel antiretroviral and antimalarial drugs.

Adult↗

Efficacy of antimalarial chemoprophylaxis among French residents travelling to Africa.

Controversy exists about which antimalarial chemoprophylaxis regimen should be used among travellers to Africa: the WHO and other experts recommend the use of mefloquine throughout sub-Saharan Africa, whereas French experts still support the combination of chloroquine and proguanil in most of West Africa (the so-called zone 2 countries). In this case-control study based at a travel clinic, we examined the compliance with antimalarial chemoprophylaxis and its efficacy among travellers to tropical areas. Cases were patients with Plasmodium falciparum malaria (n = 131). Controls were patients who had a negative malaria film (n = 158). Of all controls, only 36 (22.8%) were adequately protected (i.e. compliant with an adapted regimen of chemoprophylaxis). In zone 2 countries, the efficacy of the combined chloroquine and proguanil was 58% (95% CI 22-78%) for all users, but increased to 100% (95% CI 89-100%) for compliant users. In zone 3 countries, the efficacy of mefloquine was 90% (95% CI 51-98%) and 100% (95% CI 58-100%) for all users and compliant users, respectively.

Adult↗

Antimalarial activity from three ascidians: an exploration of different marine invertebrate phyla.

Recent research suggests that marine organisms may produce compounds with activity against malaria parasites. Of a total of 27 aqueous extracts from different marine species, collected on the northwest Cuban coast, 20 were considered as showing no significant activity against Plasmodium falciparum F32, with minimum inhibitory concentrations (MIC) >500 microg/ml, while seven extracts (MIC < or =500 microg/ml) were selected for further investigation by determining their selectivity indices and in vivo antimalarial activity. Three species of tunicates were chosen, as more than 50% reduction of P. berghei parasitaemia was produced after administration of 250 or 500 mg/kg of their crude extracts into infected mice. The aqueous extracts of Microcosmus goanus, Ascidia sydneiensis and Phallusia nigra were partitioned between water and n-butanol; the organic phases inhibited P. falciparum growth by 50% at concentrations of 17.5 microg/ml, 20.9 microg/ml and 29.4 microg/ml respectively. In general, these results are similar to those of most ethnobotanical surveys. Further chemical studies are being undertaken in order to isolate new antimalarial compounds from these Caribbean tunicates.

Animals↗

Antimalarial activity of azithromycin, artemisinin and dihydroartemisinin in fresh isolates of Plasmodium falciparum in Thailand.

Antibiotics with antimalarial activity may offer an interesting alternative for the treatment of multidrug-resistant falciparum malaria. Azithromycin, a relatively recent semisynthetic derivative of erythromycin, was tested for its in vitro activity against fresh isolates of Plasmodium falciparum. As the reportedly slow onset of action of azithromycin suggests its combination with fast-acting substances, such as artemisinin-derivatives, dihydroartemisinin (DHA) was tested parallel as a possible combination partner. The effective concentrations found for azithromycin in this study (EC(50) = 29.3 micromol/l, EC(90) = 77.1 micromol/l blood medium mixture (BMM)) are comparable to those of other antimalarials in the antibiotics class and are considerably higher than those found for mefloquine or quinine. The absence of an activity correlation between azithromycin and chloroquine, quinine and artemisinin emphasises the independence of azithromycin drug response from the sensitivity to these drugs. A weak activity correlation (rho(EC90) = 0.352; p = 0.028), which could point to a potential cross-sensitivity but is probably of little clinical importance, was found with mefloquine above the EC(50) level. Provided that further clinical trials support the combination of these drugs, DHA may offer an interesting combination partner for azithromycin owing to its rapid onset of action and the comparatively low effective concentrations (EC(50) = 1.65 nmol/l, EC(90) = 7.10 nmol/l BMM). This combination may serve as an interesting alternative for tetracycline and doxycycline, which cannot be used in pregnant women and children, and exhibit phototoxicity. Nevertheless, the relatively high cost of this combination, as well as the controversial reports of the clinical efficacy, may limit the usefulness of azithromycin in malaria therapy and require an adjustment of previously used treatment regimens.

Animals↗

Potentiation of the antimalarial action of chloroquine in rodent malaria by drugs known to reduce cellular glutathione levels.

Ferriprotoporphyrin IX (FP) is released inside the food vacuole of the malaria parasite during the digestion of host cell hemoglobin. FP is detoxified by its biomineralization to hemozoin. This process is effectively inhibited by 4-aminoquinolines. As a result FP accumulates in the membrane fraction and associates with enzymes of infected cells in parallel with parasite killing. Free FP is degraded by reduced glutathione (GSH). This degradation is inhibited by chloroquine (CQ) and amodiaquine (AQ) but not by quinine (Q) or mefloquine (MQ). Increased GSH levels in Plasmodium falciparum-infected cells confer resistance to CQ and vice versa, and sensitize CQ-resistant Plasmodium berghei by inhibiting the synthesis of glutathione. Some drugs are known to reduce GSH in body tissues when used in excess, either due to their pro-oxidant activity or their ability to form conjugates with GSH. We show that acetaminophen, indomethacin and disulfiram were able to potentiate the antimalarial action of sub-curative doses of CQ and AQ in P. berghei- or Plasmodium vinckei petteri-infected mice, but not that of Q and MQ. In contrast, N-acetyl-cysteine which is expected to increase the cellular levels of GSH, antagonized the action of CQ. Although these results imply that alteration in GSH are involved, measurement of total glutathione either in uninfected or P. berghei-infected mice, treated with these drugs did not reveal major changes. In conclusion, experimental evidences provided in this study suggest that some off the counter drugs can be used in combination with some antimalarials to which the parasite has become resistant.

Acetaminophen↗

Modulation of the function of human MDR1 P-glycoprotein by the antimalarial drug mefloquine.

MDR1 P-glycoprotein in membranes of human tumor cells of the CEM/VBL100 line was selectively labelled using photoreactive analogs of verapamil, N-(p-azido-3-[125I]salicyl)amino-verapamil ([125I]ASA-V) and prazosin, 2-[4-(4-azido-3-[125I]iodobenzoyl)piperazin-1-yl]4 -amino-6,7-dimethoxyyquinazoline ([125I]ASA-P). Mefloquine, a quinolinemethanol antimalarial drug, was shown to inhibit the labelling of P-glycoprotein with an efficiency similar to that for verapamil, a known chemosensitizer. By contrast, chloroquine competed poorly for the binding site on P-glycoprotein. Mefloquine also inhibited the functional activity of P-glycoprotein. It decreased the rates of extrusion of [3H]vinblastine and the fluorescent dyes, fluo-3 acetomethoxy ester and rhodamine 123, from drug-resistant cells and decreased the level of resistance of these cells to vinblastine. The ability of mefloquine to inhibit P-glycoprotein function may be involved in the neurotoxic side-effects occasionally associated with the use of mefloquine as an antimalarial drug.

ATP Binding Cassette Transporter, Subfamily B, Mem↗

Aminothiol multidentate chelators as antimalarials.

The antimalarial effects of two compounds from an aminothiol family of multidentate chelators, ethane-1,2-bis(N-1-amino-3-ethylbutyl-3-thiol) (BAT) and N',N',N'-tris(2-methyl-2-mercaptopropyl)-1,4,7-triazacyclononane (TAT), were studied in Plasmodium falciparum cultured in erythrocytes. Both drugs inhibited parasite growth, as was judged from [3H]hypoxanthine incorporation into the nucleic acids of parasites, with 50% inhibitory concentrations (IC50 values: 7.6 +/- 1.2 microM for BAT and 3.3 +/- 0.3 microM for TAT) that exceeded the antimalarial action of desferrioxamine B by 5-10 times. The inhibitory effects of both agents on P. falciparum cultures were fully reversed by pre-complexation with iron, suggesting that this action was related mainly to the withholding of iron. Spectrofluorometric studies with the fluorescent iron-sensing probe calcein showed that both compounds withheld iron from calcein at pH 8.2. The trophozoite and schizont stages of parasite development were the stages most susceptible to inhibition. The IC50 values of BAT and TAT for mammalian cells, which were estimated by [3H]thymidine incorporation into the nucleic acids of cells, were 10-20 times higher than those required to inhibit plasmodial growth. This indicates that multidentate aminothiols may prove to have a clinical margin of safety that makes them appropriate candidates for future clinical development.

Animals↗

Ferryl-oxo heme intermediate in the antimalarial mode of action of artemisinin.

Fourier transform infrared (FTIR) and resonance Raman (RR) spectroscopies have been employed to investigate the reductive cleavage of the O-O bond of the endoperoxide moiety of the antimalarial drug artemisinin and its analog trioxane alcohol by hemin dimer. We have recorded FTIR spectra in the nu(O-O) and nu(as)(Fe-O-Fe) regions of artemisinin and of the hemin dimer that show the cleavage of the endoperoxide and that of the hemin dimer, respectively. We observed similar results in the trioxane alcohol/hemin dimer reaction. The RR spectrum of the artemisinin/hemin dimer reaction displays a vibrational mode at 850 cm(-1) that shifts to 818 cm(-1) when the experiment is repeated with (18)O-O(18) endoperoxide enriched trioxane alcohol. The frequency of this vibration and the magnitude of the (18)O-O(18) isotopic shift led us to assign the 850 cm(-1) mode to the Fe(IV) = O stretching vibration of a ferryl-xoxo heme intermediate that occurs in the artemisinin/hemin dimer and trioxane alcohol/hemin reactions. These results provide the first direct characterization of the antimalarial mode of action of artemisinin and its trioxane analog, and suggest that artemisinin appears to react with heme molecules that have been incorporated into hemozoin and subsequently the heme performs cytochrome P450-type chemistry.

Antimalarials↗

Depolymerization of malarial hemozoin: a novel reaction initiated by blood schizontocidal antimalarials.

Malaria parasite digests hemoglobin and utilizes the globin part for its nutritional requirements. Heme released as a byproduct of hemoglobin degradation is detoxified by polymerization into a crystalline, insoluble pigment, known as hemozoin. We have identified a novel reaction of depolymerization of hemozoin to heme. This reaction is initiated by the interaction of blood schizonticidal antimalarial drugs with the malarial hemozoin. The reaction has been confirmed, with the purified hemozoin as well as the lysate of the malaria parasite. Pigment breakdown was studied by infrared spectroscopy, thin-layer chromatography and spectrophotometric analysis. It was complete within 2 h of drug exposure, which explains the selective sensitivity of late stages (trophozoites and schizonts) of malarial parasites loaded with the hemozoin pigment to the toxic action of these drugs. It is suggested that the failure of the parasite heme detoxification system due to this reaction results in the accumulation of toxic heme, which alone, or complexed with the antimalarial leads to the death of malaria parasite.

Animals↗

Malaria associated anaemia, drug resistance and antimalarial combination therapy.

Malaria associated anaemia represents a major cause of childhood mortality in sub-Saharan Africa. Prevention of severe anaemia necessitates rapid treatment of symptomatic high density parasitaemia, as well as reduction of asymptomatic parasite prevalence to provide recovery period to restore production of erythrocytes. Both interventions are being increasingly impaired by reduced efficacy of antimalarial treatment due to parasite drug resistance. A new treatment strategy, including combinations of antimalarial drugs with optimal pharmacodynamic and kinetic properties may respond to the need of rapid and radical parasite clearance, temporary protection to re-infection, and prevention of drug resistance.

Africa South of the Sahara↗

Antimalarial drugs and the mosquito transmission of Plasmodium.

It is well-known that whenever possible, the treatment of patients with malaria should include measures to prevent them transmitting the infection to others. This is particularly important for P. falciparum, where the gametocytes can survive for a much longer period than the asexual stages. Not all antimalarials are gametocytocidal or sporontocidal and those that are may have particular disadvantages or lose their effectiveness because of resistance. Even drugs that have no obvious gametocytocidal or sporontocidal activity may have other effects. These include the possibility of increasing transmission, either by affecting the parasite within an individual host or by selection for parasite strains with increased potential for infecting the mosquito vector. This review summarises the available information on the properties of antimalarials in relation to mosquito transmission and highlights the need for more attention to be paid to this aspect of drug action.

Animals↗

Resistance of Plasmodium falciparum to antimalarial drugs in a highly endemic area of southern Viet Nam: a study in vivo and in vitro.

To assess the antimalarial sensitivity of Plasmodium falciparum in vivo and in vitro in a highly endemic area of southern Viet Nam, a field study was conducted (in 1999) at a rubber plantation in Binh Phuoc Province north of Ho Chi Minh City. Fifty patients were treated with either artesunate (4 mg/kg on day 0, then 2 mg/kg on day 1 to 4) or mefloquine (10 mg/kg at 0 h, then 5 mg/kg at 6 h), and their progress was followed for 28 days under standard WHO protocols. Blood spots were taken at baseline from all patients, as well as from those who redeveloped parasitaemia during follow-up, for polymerase chain reaction (PCR) determination of parasite genotypes to assist differentiation of re-infection from recrudescence. Both treatments cleared parasites within 5 days. Of the 25 mefloquine-treated patients, 2 (8%) re-presented with probable re-infections. For artesunate, 4 patients (16%) had re-infections and 5 (20%) had recrudescences. Sensitivity tests in vitro of pre-treatment P. falciparum isolates showed geometric mean IC50 values of 29, 38, 209 and 15 nmol/L for chloroquine (n = 32), mefloquine (n = 33), quinine (n = 31) and artemisinin (n = 31), respectively. There were significant correlations between IC50s for artemisinin and mefloquine (r = 0.72, P = 0.004), and chloroquine and quinine (r = 0.44, P = 0.05). These data show that, although mefloquine has been used for 10 years in Binh Phuoc Province, it remains fully effective, perhaps because an artemisinin derivative is commonly given at the same time. The recrudescence rate for artesunate is similar to those reported in other epidemiological contexts. The present in-vitro data imply that quinine remains effective and that reduced drug pressure has been associated with increased sensitivity of local strains of P. falciparum to chloroquine. Although from one hyperendemic area, these results may have implications for antimalarial prophylaxis and treatment strategies for residents and travellers to southern Viet Nam.

Adult↗

Polymorphisms in cg2 and pfcrt genes and resistance to chloroquine and other antimalarials in vitro in Plasmodium falciparum isolates from Colombia.

Polymorphisms in Plasmodium falciparum cg2 and pfcrt genes and their association with chloroquine resistance in vitro in Colombian parasites were evaluated in this study. Association of chloroquine resistance with resistance to other antimalarial drugs in vitro was also examined. Polymerase chain reactions (PCR) for kappa and omega cg2 regions and nested PCR and digestion with ApoI enzyme for K-76T pfcrt point mutation defined corresponding polymorphisms in 83 samples collected between 1995 and 1999. The isotopic microtest was used to evaluate sensitivity in vitro in a subgroup of 18 isolates. The predominant cg2 pattern observed was 13K/14omega repeats (46/83 [55.4%]) and all samples presented the K-76T mutant allele. Seventy-eight percent of samples were resistant to chloroquine in vitro, 35.3% to amodiaquine, 16.7% to mefloquine, and 5.6% to quinine. Significant correlations (P < 0.05) were observed between the IC50s of chloroquine and arteether, and among IC50s of arteether, mefloquine, and quinine. These results suggest the development of multiple and cross-resistance of Colombian P. falciparum isolates to second- and third-line antimalarials and new alternative drugs.

Animals↗

Antimalarial drugs inhibit the phagocytosis of erythrocytes infected with Plasmodium falciparum.

Phagocytic cells constitute the first line of defence against malarial parasites. They perform their role by delivering oxidative radicals and by phagocytosing infected red blood cells (IRBC). Phagocytosis is mediated by antibody binding to clustered band 3 antigen in the IRBC membrane and activation of the alternative complement pathway. In this study we showed that treatment of IRBC containing Plasmodium falciparum with therapeutically-relevant concentrations of antimalarial drugs considerably reduced the binding of immunoglobulin G (IgG) to, and the phagocytosis of, IRBC. Opsonization of IRBC by fresh serum before drug treatment prevented this inhibitory action of drugs. Removal of the drug restored IgG binding and the phagocytic susceptibility of IRBC in a time-dependent fashion. Direct measurement of the effect of chloroquine on the clustering of band 3 in IRBC, however, failed to reveal any disruption of the aggregation. We conclude that antimalarial drugs are able to alter, by an as yet unresolved mechanism, the affinity of IgG to clustered band 3. This affinity of IRBC seems to be determined by a dynamic process that depends on the metabolic activity of the parasite.

Antibody Affinity↗

Validity of mother's history regarding antimalarial drug use in Malawian children under five years old.

History obtained from parents and carers is an important, and often the only, source of information for health workers treating children for malaria, but its validity has not been well evaluated. At 2 hospitals in Malawi, we obtained malaria treatment histories from mothers of 973 ill children reported to have had fever as part of the illness. Urine samples were collected from 755 of the 973 children (78%). Of the 755, 457 (61%) were reported to have received some kind of treatment. Among those who reportedly received treatment, 79 (17%) were said to have received chloroquine and 23 (5%) a sulphonamide-containing medicine; however, when urine specimens were tested for antimalarial drugs, chloroquine was found in 182 specimens (40%) and a sulphonamide in 148 (32%). Among urine specimens collected from 291 children who were reported to have received no treatment (no report was recorded for 7 children), chloroquine was detected in 56 (19%) and a sulphonamide in 44 (15%). Although not statistically significant, mothers often reported a child as not having received an antimalarial drug if the child was younger than 12 months or had been sick for more than 3 d. The mothers' information regarding home treatment of fever in children was highly inaccurate. Malaria treatment histories, whether collected at health facilities or in surveys of knowledge, attitudes, and practices, must be interpreted with caution.

Antimalarials↗

Thermodynamic factors controlling the interaction of quinoline antimalarial drugs with ferriprotoporphyrin IX.

The interaction of a variety of quinoline antimalarial drugs as well as other quinoline derivatives with strictly monomeric ferriprotoporphyrin IX [Fe(III)PPIX] has been investigated in 40% aqueous DMSO solution. At an apparent pH of 7.5 and 25 degrees C, log K values for bonding are 5.52 +/- 0.03 (chloroquine), 5.39 +/- 0.04 (amodiaquine), 4.10 +/- 0.02 (quinine), 4.04 +/- 0.03 (9-epiquinine), and 3.90 +/- 0.08 (mefloquine). Primaquine, 8-hydroxyquinoline, 5-aminoquinoline, 6-aminoquinoline, 8-aminoquinoline, and quinoline exhibit no evidence of interaction with Fe(III)PPIX. The enthalpy and entropy changes for the interaction of quinolines with Fe(III)PPIX, as determined from the temperature dependence of the log K values, exhibit a compensation phenomenon that is suggestive of hydrophobic interaction. This is supported by the finding that the interactions of chloroquine and quinine with Fe(III)PPIX are weakened by increasing concentrations of acetonitrile. Interactions of chloroquine, quinine, and 9-epiquinine with Fe(III)PPIX are shown to remain strong at pH 5.6, the approximate pH of the food vacuole of the malaria parasite which is believed to be the locus of drug activity. Implications for the design of antimalarial drugs are briefly discussed.

Antimalarials↗