Search PubMed⌕ Search

SEARCH · Search PubMed

Results for “Antimalarials”

Search indexed PubMed citations on genomics, clinical trials, systematic reviews and public health. Explore titles, authors and supplied subject terms, then open the PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 325 records · Page 18Linked to original sources

An assessment of drug-haematin binding as a mechanism for inhibition of haematin polymerisation by quinoline antimalarials.

Chloroquine is thought to exert its antimalarial activity by preventing the polymerisation of toxic haematin released during proteolysis of haemoglobin in the Plasmodium digestive vacuole. However, the molecular mechanisms by which this inhibition occurs and the universality of this mechanism for other quinoline antimalarials remain to be established. We demonstrate here a correlation for eight antimalarial quinolines between inhibition of haematin polymerisation in vitro and inhibition of P. falciparum growth in culture, confirming haematin polymerisation as the likely target of quinoline blood schizonticides. Furthermore, using isothermal titration microcalorimetry, a correlation was observed between the haematin binding constant of these compounds and their ability to inhibit haematin polymerisation, suggesting that these compounds mediate their activity through binding to haematin. It was also observed that the compounds bind primarily to the mu-oxo dimer form of haematin rather than the monomeric form. It is postulated that this binding inhibits haematin polymerisation by shifting the haematin dimerisation equilibrium to the mu-oxo dimer, thus reducing the availability of monomeric haematin for incorporation into haemozoin. These data reconcile the haematin polymerisation theory with the Fitch hypothesis, which states that chloroquine mediates its activity through binding to haematin.

Animals↗

Quinoline antimalarials: mechanisms of action and resistance.

The quinoline-containing antimalarial drugs, chloroquine, quinine and mefloquine, are a vital part of our chemotherapeutic armoury against malaria. These drugs are thought to act by interfering with the digestion of haemoglobin in the blood stages of the malaria life cycle. Chloroquine is a dibasic drug which diffuses down the pH gradient to accumulate about a 1000-fold in the acidic vacuole of the parasite. The high intravacuolar concentration of chloroquine is proposed to inhibit the polymerisation of haem. As a result, the haem which is released during haemoglobin breakdown builds up to poisonous levels, thereby killing the parasite with its own toxic waste. The more lipophilic quinolinemethanol drugs, mefloquine and quinine, are not concentrated so extensively in the food vacuole and probably have alternative sites of action. The technique of photoaffinity labelling has been used to identify a series of proteins which interact specifically with mefloquine. These studies have led us to speculate that the quinolinemethanols bind to high density lipoproteins in the serum and are delivered to the erythrocytes where they interact with an erythrocyte membrane protein, known as stomatin, and are then transferred to the intracellular parasite via a pathway used for the uptake of exogenous phospholipid. The final target(s) of quinine and mefloquine action are not yet fully characterised, but may include parasite proteins with apparent molecular weights of 22 kDa and 36 kDa. As resistance to the quinoline antimalarials rises inexorably, there is an urgent need to understand the molecular basis for decreased drug sensitivity. A parasite-encoded homologue of P-glycoprotein has been implicated in the development of drug resistance, possibly by controlling the level of accumulation of the quinoline-containing drugs. As our molecular understanding of these processes increases, it should be possible to design novel antimalarial strategies which circumvent the problem of drug resistance.

Animals↗

Mode of action of iron (III) chelators as antimalarials. IV. Potentiation of desferal action by benzoyl and isonicotinoyl hydrazone derivatives.

The antimalarial action of iron chelators is limited by factors related to drug permeation and parasite susceptibility to metal deprivation. In this study we applied iron-chelating isonicotinoyl and benzoyl hydrazones on Plasmodium falciparum cultures and assessed their antimalarial properties. The agents w ere used both individually and in combination with deferoxamine (DFO), a clinically approved iron chelator, and with hydroxyethyl-starch-DFO, a macromolecular carrier of DFO. Salicylaldehyde isonicotinoyl hydrazone (SIH) and 2-hydroxy-1-naphthylaldehyde m-fluorobenzoyl hydrazone (HNFBH) were found to be highly efficient in suppressing parasite growth at all developmental stages (IC50 24 +/- 6 micromol/L and 0.21 +/- 0.04 micromol/L, respectively, in a 36-to-42 hour test). In combination with impermeant DFO, SIH and HNFBH actions on ring forms were significantly potentiated in terms of speed of drug action and extent of inhibition. The combined effect of the hydrazones with DFO was greater than additive. Based on the capacity of SIH to extract iron from infected cells and to transfer the metal to extracellular DFOs, we propose a mechanism for a synergistic action of permeant hydrazones and impermeant (DFO) iron chelators. The application of a combination of iron chelators as antimalarials might be of therapeutic value.

Animals↗

Simple and rapid physico-chemical methods to examine action of antimalarial drugs with hemin: its application to Artemisia annua constituents.

Malaria is a major health problem in many countries and according to an estimate of the WHO, more than 500 million infections occur per year. Artemisinin, a sesquiterpene from Artemisia annua L., has received considerable attention as a promising and potent antimalarial drug for its stage speciticity, its rather low toxicity, effectiveness against drug-resistant Plasmodium species and activity against cerebral malaria. From recent studies it seems that hemin is primarily involved in the antimalarial activity of the constituents of Artemisia annua L. Thus, the interaction of a compound with hemin may represent a crucial screening test to define its efficacy. In this study the interaction between artemisinin and hemin was investigated by UltraViolet/Visible (UV/Vis) spectrophotometry and High Performance Liquid Chromatography/Diode Array Detector/Mass Spectrometry (HPLC/DAD/MS). In addition, some flavonols isolated from Artemisia annua L. were also tested to investigate their possible role in the interaction between artemisinin and hemin. These two simple physico-chemical methods can be useful as rapid and widespread screening methods for the search of other alkylating antimalarial constituents from natural sources or for the evaluation of the activity of semisynthetic analogues of artemisinin.

Antimalarials↗

A systematic overview of published antimalarial drug trials.

Systematic database searches identified 435 antimalarial drug treatment trials, involving 82,616 patients, conducted and published between 1966 and December 2002. Of these trials 72% were randomised; 64 (15%) trials involved severe malaria, 47 (11%) studied Plasmodium vivax, 3 Plasmodium malariae or Plasmodium ovale, and the remainder (74%) assessed treatment responses in uncomplicated falciparum malaria. Twelve trials (2.7%) specifically evaluated antimalarial treatments in pregnant women. Overall 49% of trials were conducted in Asia (29% from Thailand alone) and 42% in Africa. Half of all the patients studied had been in trials published in the past 7 years. There has been a recent rise in the proportion of trial enrolling children, and a tripling in the average number of patients recruited per trial (from approximately 100 in the 1970s to 300 currently). Chloroquine was given to over half the patients in antimalarial drug trials (n = 53552) compared with artemisinin derivatives (n = 12463), mefloquine-sulphadoxine-pyrimethamine (n = 9153), mefloquine (n = 5546) and sulphadoxine-pyrimethamine (n = 5909). The quality of safety and efficacy data for recently evaluated drugs contrasts with a relative paucity of data for older 'established' compounds.

Antimalarials↗

Antimalarial activity and interactions between quinine, dihydroquinine and 3-hydroxyquinine against Plasmodium falciparum in vitro.

The antimalarial activities of quinine, dihydroquinine (a natural impurity found in commercial pharmaceutical formulations of quinine) and 3-hydroxyquinine (the principal metabolite of quinine in humans) were tested both individually and in pairs against 5 strains of Plasmodium falciparum isolated from patients in Thailand. The median inhibitory concentrations (IC50) were similar for quinine (168 nmol/L, range 68-366), and dihydroquinine (129 nmol/L, range 54-324), and both were significantly lower than that of 3-hydroxyquinine (1160 nmol/L, range 378-3154) (P = 0.027). When these drugs were tested in combination, there was no evidence of synergy or antagonism, as determined by fractionary inhibitory indices and isobolograms. Quinine and its impurity, dihydroquinine, have equivalent antimalarial activities which are approximately 10 times greater than that of the metabolite 3-hydroxyquinine. These 2 compounds, which are not usually measured in specific drug assays, contribute to antimalarial activity after quinine administration.

Animals↗

Proguanil polymorphism does not affect the antimalarial activity of proguanil combined with atovaquone in vitro.

Clinical studies have shown proguanil (PROG) combined with atovaquone (ATQ) to be an effective and safe antimalarial combination for the treatment of multidrug-resistant falciparum malaria. PROG is a prodrug, which undergoes hepatic metabolism to its pharmacologically active metabolite cycloguanil (CYC). Individuals exhibit genetic polymorphism with respect to PROG, and can be phenotyped as either extensive metabolizers (EMs) or poor metabolizers (PMs) by measuring their PROG/CYC concentration ratio in plasma following PROG/ATQ administration. PMs produce lower plasma concentrations of CYC than EMs and thus may be more susceptible to prophylaxis or treatment failure. Both PROG and CYC potentiate the activity of ATQ in vitro. The antimalarial activity ex vivo of Thai patients' plasma samples obtained from EMs and PMs given concurrent PROG and ATQ was studied using the K1 isolate of Plasmodium falciparum. This isolate is resistant to PROG and CYC, but sensitive to ATQ. Maximum inhibitory dilution profiles of the patients' plasma samples containing PROG and ATQ from EMs and PMs were similar. These findings indicate that differences in plasma drug concentrations between EMs and PMs did not alter the antimalarial activity in vitro against the K1 isolate. The phenotypic status of individuals is not an important issue in the treatment of patients with PROG/ATQ.

Animals↗

Incidence of antimalarial pretreatment and drug sensitivity in vitro in multidrug-resistant Plasmodium falciparum infection in Thailand.

Blood samples for determination of baseline antimalarial levels and sensitivity testing in vitro were collected from 411 patients with uncomplicated multidrug-resistant Plasmodium falciparum malaria (365 males, 46 females) before starting antimalarial treatment (62 in hospital and 349 as out-patients). Three hundred and eighty-two were successfully tested, and 110 (28.8%) and 20 (5.2%) patients, respectively, had detectable baseline blood mefloquine and quinine levels. Thirty-nine (10.2%), 44 (11.5%), 23 (6.0%) and 4 (1.1%) cases, respectively, had mefloquine concentrations in whole blood of < 100, 100-500, > 500-1000 and > 1000 ng/mL; the corresponding values for baseline plasma quinine levels were 0 (0%), 9 (2.4%), 3 (0.8%) and 9 (2.4%). None had detectable baseline artemether or artesunate. Sensitivity tests in vitro of pretreatment P. falciparum isolates showed the median IC50, IC90 and IC99 values (ranges in parentheses) for mefloquine, quinine and artemisinin to be 0.121 (0.046-0.715), 0.333 (0.085-3.0) and 0.64 (0.16-1.28) microM, 0.256 (0.064-1.315), 1.10 (0.154-20.49) and 2.56 (0.64-5.12) microM, and 0.02 (0.003-0.382), 0.112 (0.015-4.3) and 0.3 (0.03-3.0) microM, respectively. There was no difference in the sensitivity of P. falciparum isolates to these antimalarial compounds, regardless of the areas where patients had contracted the infection. Previous treatment with mefloquine or quinine was not statistically associated with a high incidence of resistance to these compounds.

Ambulatory Care↗

Antimalarial combinations.

Multidrug resistance has rendered monotherapy for malaria useless in most parts of the world, and has also compromised the usefulness of many of the available combination chemotherapies. New antimalarial regimens are, therefore, urgently needed. We review the various antimalarial combinations that can be used to treat otherwise drug-resistant disease, and discuss what defines an ideal antimalarial combination regimen.

Animals↗

Intermittent preventive antimalarial treatment for Tanzanian infants: follow-up to age 2 years of a randomised, placebo-controlled trial.

Stopping antimalarial chemoprophylaxis can be followed by increased risk of malaria, suggesting that it interferes with the development of antimalarial immunity. We report analysis of extended follow-up until age 2 years of a randomised, placebo-controlled double-blind trial of intermittent preventive antimalarial treatment in infants. The rate of clinical malaria (events per person-year at risk, starting 1 month after final dose of intermittent treatment) was 0.28 in the sulfadoxine-pyrimethamine group and 0.43 in the placebo group (protective effect 36%, 95% CI 11-53). Intermittent treatment produced a sustained reduction in the risk of clinical malaria extending well beyond the duration of the pharmacological effects of the drugs, excluding a so-called rebound effect and suggesting that such treatment could facilitate development of immunity against Plasmodium falciparum.

Antimalarials↗

Quinoline antimalarials: mechanisms of action and resistance and prospects for new agents.

Quinoline-containing antimalarial drugs, such as chloroquine, quinine and mefloquine, are mainstays of chemotherapy against malaria. The molecular basis of the action of these drugs is not completely understood, but they are thought to interfere with hemoglobin digestion in the blood stages of the malaria parasite's life cycle. The parasite degrades hemoglobin, in an acidic food vacuole, producing free heme and reactive oxygen species as toxic by-products. The heme moieties are neutralized by polymerisation, while the free radical species are detoxified by a vulnerable series of antioxidant mechanisms. Chloroquine, a dibasic drug, is accumulated several thousand-fold in the food vacuole. The high intravacuolar chloroquine concentration is proposed to interfere with the polymerisation of heme and/or the detoxification of the reactive oxygen species, effectively killing the parasite with its own metabolic waste. Chloroquine resistance appears to arise as a result of a decreased level of chloroquine uptake, due to an increased vacuolar pH or to changes in a chloroquine importer or receptor. The more lipophilic quinolinemethanol drugs mefloquine and quinine do not appear to be concentrated so extensively in the food vacuole and may act on alternative targets in the parasite. Resistance to the quinolinemethanols is thought to involve a plasmodial homolog of P-glycoprotein. As the malaria parasites become increasingly resistant to the quinoline antimalarials, there is an urgent need to understand the molecular mechanisms for drug action and resistance so that novel antimalarial drugs can be designed. A number of modified quinolines and bisquinoline compounds show some promise in this regard.

Animals↗

An overview of chemotherapeutic targets for antimalarial drug discovery.

The need for new antimalarials comes from the widespread resistance to those in current use. New antimalarial targets are required to allow the discovery of chemically diverse, effective drugs. The search for such new targets and new drug chemotypes will likely be helped by the advent of functional genomics and structure-based drug design. After validation of the putative targets as those capable of providing effective and safe drugs, targets can be used as the basis for screening compounds in order to identify new leads, which, in turn, will qualify for lead optimization work. The combined use of combinatorial chemistry--to generate large numbers of structurally diverse compounds--and of high throughput screening systems--to speed up the testing of compounds--hopefully will help to optimize the process. Potential chemotherapeutic targets in the malaria parasite can be broadly classified into three categories: those involved in processes occurring in the digestive vacuole, enzymes involved in macromolecular and metabolite synthesis, and those responsible for membrane processes and signalling. The processes occurring in the digestive vacuole include haemoglobin digestion, redox processes and free radical formation, and reactions accompanying haem release followed by its polymerization into haemozoin. Many enzymes in macromolecular and metabolite synthesis are promising potential targets, some of which have been established in other microorganisms, although not yet validated for Plasmodium, with very few exceptions (such as dihydrofolate reductase). Proteins responsible for membrane processes, including trafficking and drug transport and signalling, are potentially important also to identify compounds to be used in combination with antimalarial drugs to combat resistance.

Antimalarials↗

The fate of ferriprotorphyrin IX in malaria infected erythrocytes in conjunction with the mode of action of antimalarial drugs.

The intraerythrocytic malaria parasite digests considerable amounts of its host cell cytosol, which consists mostly of hemoglobin. In order to avert the toxicity of ferriprotorphyrin IX (FP) thus produced, it is generally accepted that FP is polymerized to the non-toxic hemozoin. Investigating the fate of FP in cultured Plasmodium falciparum -infected human red blood cells, revealed a straight correlation between amounts of digested hemoglobin and hemozoin, but the latter contained less FP than produced. The efficacy of FP polymerization is stage-dependent, increasing with parasite maturation. Different strains display dissimilar efficacy in hemozoin production. Unpolymerized FP possibly exits the food vacuole and is degraded by glutathione, thus accounting for the low levels of free FP found in infected cells. 4-aminoquinoline antimalarials demonstrably form complexes with FP and inhibit hemozoin production in vitro. Chloroquine, amodiaquine, quinine and mefloquine were found to inhibit hemozoin production in intact infected cells, but only the first two drugs caused a dose-dependent accumulation of FP in the membrane fraction of infected cells that correlated well with parasite killing, due to the permeabilization of membranes to ions. This differential effect is explained by the ability of chloroquine and amodiaquine to inhibit the degradation of membrane-associated FP by glutathione and the incapacity of quinine and mefloquine to do so. This discrepancy implies that the antimalarial mode of action of chloroquine and amodiaquine is different in its mechanistic details from that of quinine and mefloquine and is compatible with the diametric sensitivity of most strains to chloroquine and mefloquine and the disparate interaction of these drugs with enhancers of their antimalarial action.

Animals↗

Clinical evaluation of antimalarial regimens in Japan.

The actual situation of the treatment of malaria for the past 10 years in Japan was investigated and analyzed. As a result, it was revealed that there were not a few cases which had been treated improperly probably because of the difficulty of getting antimalarial agents. Moreover, it was made clear that the death rate on falciparum malaria was constantly high, 8.7%, as expected and the relapse rate of vivax malaria was still as high as 18.0%. There was the recrudescence of falciparum malaria at 8.1%, maybe because of the influence of the prevalence of the drug-resistant strains of Plasmodium falciparum. The trouble in getting antimalarial agents has been overcome since 1980. Study Group on Pharmacotherapy of Imported Tropical Diseases was organized by the Ministry of Health and Welfare in 1980, and antimalarial agents have been supplied free of charge through the Study Group for the treatment of the disease. The number of cases of imported malaria has increased in our country. There are a lot of problems to be solved quickly to cope with the situation: people who travel abroad should be enlightened on the danger of the infection of malaria and take prophylactics for the disease and physicians should get familiar with the disease being supplied with information about it.

Animals↗

Antimalarials.

The antimalarials, chloroquine, hydroxychloroquine, and quinacrine, are used primarily for malaria; but they can be beneficial for cutaneous lupus erythematosus (LE), polymorphous light eruption, solar urticaria, and porphyria cutanea tarda. Antimalarials bind to deoxyribonucleic acid (DNA) which prevents DNA and ribonucleic acid (RNA) polymerase reactions and DNA heat inactivation; and they inhibit the LE cell phenomenon, antinuclear antibody reactions, and suppress lymphocyte transformation. By competing with calcium ion, they stabilize membranes and have an anesthetic effect. Their anti-inflammatory potential is due to their inhibition of hydrolytic enzymes, stabilization of lysosomes, interference with prostaglandin synthesis, blocking of chemotaxis, and antagonism of histamine responses. The antimalarials have no sunscreening properties. The most common toxic effects are cutaneous pigmentation, nausea, vomiting, diarrhea, mild ileus, and cycloplegia. There has been a reluctance to use chloroquine and hydroxychloroquine because of the possibility of retinopathy. However, if the "safe" daily dose limit of chloroquine, 2 mg per pound of body weight, and of hydroxychloroquine, 3.5 mg per pound of body weight, is followed, the chance of retinopathy is slight. Quinacrine does not cause retinopathy, but it has more cutaneous side effects than the other two agents.

Antimalarials↗

Synthetic ferrocenic mefloquine and quinine analoguesas potential antimalarial agents.

A few years ago we proposed a strategy for the synthesis of new ferrocene-chloroquine analogues replacing the carbon chain of chloroquine by hydrophobic ferrocenyl moieties. Now, this strategy has been applied to the antimalarial amino-alcohols class to afford new potentially active analogues of mefloquine and quinine bearing a substituted ferrocenic group. The pathway used for the synthesis of the mefloquine analogues includes the coupling of an aminomethyl substituted ferrocene carboxaldehyde with a lithio quinoline compound. On the other hand, the synthesis of quinine analogues was ensured by the 'inverse' reaction of a lithio aminomethyl ferrocene with a quinoline carboxaldehyde. The configurations of each diastereoisomer were unambiguously determined by spectroscopic data. The mechanistic interpretations were fully discussed. Ferrocenyl analogues of mefloquine and quinine exhibited a lower antimalarial activity than mefloquine and quinine themselves. Comparing optical isomers, those isomers dissimilar to ferrocenyl derivatives presented better antimalarial activities than those similar to ferrocenyl.

Animals↗

Antimalarial activity of extracts and fractions from Bidens pilosa and other Bidens species (Asteraceae) correlated with the presence of acetylene and flavonoid compounds.

After interviewing natives and migrants from the Amazon region of Brazil about plants traditionally used for treatment of malaria fever and/or liver disorders, we selected and identified 41 different species, including the native Bidens (Asteraceae). We have undertaken an antimalarial study of Bidens pilosa and other species of Bidens from abroad. The crude ethanol extracts (whole plant, leaves and roots) and the chloroform and butanol fractions from B. pilosa at concentrations of 50 microg/ml caused up to 90% inhibition of Plasmodium falciparum growth in vitro. In vivo the fractions caused partial reduction of Plasmodium berghei parasitemia in mice. The ethanol extracts from nine different Bidens species collected outside Brazil were tested, and seven inhibited parasite growth in vitro by 65-91%. As B. pilosa appears to be a promising antimalarial agent, we further characterized the substances responsible for such activity. HPLC analysis using a photo diode-array detector showed phenyl acetylene and flavonoids in the ethanol extract from the leaves and roots. The chloroform fractions from the roots, which caused 86% inhibition of parasite growth in vitro, contained a major component identified as 1-phenyl-1,3-diyn-5-en-7-ol-acetate. The association of antimalarial activity and the presence of acetylene compounds is discussed. In summary, all species of Bidens which had aliphatic acetylenes (6-14 each) were also very active, whereas extracts of B. parriflora and of B. bitternata with none or the three acetylenes, respectively as reported in literature, were inactive or had a borderline activity in vitro.

Acetylene↗

In vivo antimalarial activities of Quassia amara and Quassia undulata plant extracts in mice.

Extracts obtained from two Nigerian Simaroubaceae plants, Quassia amara L. and Quassia undulata (Giull and Perr) D. Dietr were screened for antimalarial properties using a total of six extracts. The plant extracts showed significant antimalarial activities in the 4 day suppressive in vivo antimalarial assay in mice inoculated with red blood cells parasitized with Plasmodium berghei berghei. Plant extracts were studied at 100 mg and 200 mg per kg body weight mouse per day, respectively. At a concentration of 100 mg/kg of mouse, Q. amara leaf hexane extract had the highest suppressive activity with a parasite density of 0.16 +/- 0.001%. Q. amara leaf methanol extract had an outstanding activity; of 0.05 +/- 0.03% at 200 mg/kg. Chloroquine (10 mg/kg, positive control) had a suppressive activity of 0.34 +/- 0.02 in the same assay on day 4.

Animals↗