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Single dose pharmacokinetics of proguanil and its metabolites in healthy subjects.

1. Plasma and whole blood concentrations of proguanil and its two major metabolites cycloguanil (CG) and 4-chlorophenylbiguanide (CPB) were measured by a sensitive h.p.l.c. technique in nine healthy adult male volunteers after a single oral dose of proguanil 200 mg. 2. Proguanil was absorbed with a median time to peak plasma concentration of 3 h (range 2-4 h). 3. Peak plasma concentrations of proguanil ranged between 150 and 220 (median 170) ng ml-1 compared with 12 to 69 (median 41) ng ml-1 for the active antimalarial metabolite CG, and 3 to 16 (median 11) ng ml-1 for CPB. Peak (mean +/- s.d.) plasma CG concentrations occurred 5.3 +/- 0.9 h and peak CPB concentrations occurred 6.3 +/- 1.4 h after oral administration of proguanil. 4. Whole blood concentrations of proguanil were approximately five times higher, and whole blood CPB concentrations were four times higher than corresponding plasma values, whereas plasma and whole blood concentrations of CG were similar. 5. A triexponential function was fitted to these data; mean (+/- s.d.) values for the AUC were 3046 +/- 313 ng ml-1 h for proguanil, 679 +/- 372 ng ml-1 h for CG and 257 +/- 155 ng ml-1 h for CPB. 6. Plasma and whole blood concentrations of proguanil and its metabolites declined in parallel with terminal elimination half-lives estimated as 16.1 +/- 2.9 h and 15.7 +/- 2.4 h, respectively. Mean residence times in plasma and whole blood were estimated as 21.2 +/- 4.9 and 19.3 +/- 2.4 h.

Adult↗

Disposition of proguanil in Thai patients with uncomplicated falciparum malaria.

The objective of this study was to examine the disposition of proguanil in malaria-infected Thai patients with acute uncomplicated falciparum malaria. Eleven patients were administered 500 mg of proguanil twice a day for three days (total dose = 3,000 mg). Four patients were tentatively classified as extensive metabolizers (EMs) and seven as poor metabolizers (PMs). The mean plasma clearances of proguanil for EMs and PMs were 1.31 and 1.10 L/hr/kg, respectively. The mean elimination half-life of proguanil was statistically longer in PMs than EMs (19.6 hr versus 16.1 hr; P = 0.01). Plasma clearance and elimination half-life of proguanil in the malaria patients were comparable with those reported in the literature for healthy Thai volunteers. In contrast to other ethnic groups. Thai EM patients had relatively low plasma concentrations of cycloguanil, the active metabolite of proguanil. None of the 11 patients treated with proguanil were cured of malaria and their phenotype status did not affect the treatment outcome. Although high levels of parasite resistance to cycloguanil were probably responsible for the poor response to proguanil treatment, the inability of Thai EM and PM patients to produce cycloguanil may have also contributed to the treatment outcome.

Adolescent↗

Proguanil disposition and toxicity in malaria patients from Vanuatu with high frequencies of CYP2C19 mutations.

The increasing resistance of falciparum malaria to common antimalarial drugs has renewed interest in the compound proguanil normally metabolized to cycloguanil, a strong dihydrofolate reductase inhibitor, via the cytochrome P450 isozyme CYP2C19. The relationship between CYP2C19 genotypes and proguanil metabolism was therefore studied in 100 uncomplicated malaria patients on Malakula island in Vanuatu, where a CYP2C19-related poor metabolizer genotype status was known to be frequent. The patients (median age, 7 years) with Plasmodium falciparum or P. vivax infections, received proguanil treatment for 3 days in daily doses corresponding to adult doses of 300-500 mg. Capillary blood samples were collected on filter paper for determining both human CYP2C19 mutations by polymerase chain reaction and mutation-specific restriction enzyme digestion and blood concentrations of proguanil and its metabolites by high-performance liquid chromatography. The frequencies of the defective alleles, CYP2C19*2 and CYP2C19*3, were 0.57 and 0.25, respectively. The patients were genotyped as 68 CYP2C19-related poor metabolizers and 32 extensive metabolizers. Proguanil concentrations were higher and cycloguanil and 4-chlorophenylbiguanide concentrations were lower in poor compared to extensive metabolizers. Among the extensive metabolizers, 27 were heterozygous and five were homozygous for unmutated alleles. The tendency of an intermediate degree of proguanil metabolism in heterozygous extensive metabolizers as compared to homozygous extensive metabolizers and poor metabolizers suggests the trend towards the existence of a gene dose effect. Mild adverse events (mainly gastro-intestinal symptoms) were often reported and positively correlated with proguanil concentrations. The incidence was, however, similar in poor and extensive metabolizers. In conclusion, our data demonstrate an association between CYP2C19 mutations and poor metabolism of proguanil.

Antimalarials↗

The pharmacokinetics of atovaquone and proguanil in pregnant women with acute falciparum malaria.

OBJECTIVE: To determine the pharmacokinetic properties of atovaquone, proguanil, and the triazine metabolite cycloguanil in women with recrudescent multi-drug resistant falciparum malaria during the second and third trimesters of pregnancy treated by artesunate-atovaquone-proguanil. METHODS: Serial plasma concentrations of atovaquone, proguanil and cycloguanil were measured in 24 women at baseline and after the final dose of the 3-day treatment with atovaquone (20 mg/kg/day) plus proguanil (8 mg/kg/day) plus artesunate (4 mg/kg/day) daily. RESULTS: The triple combination was well tolerated and highly effective. The outcomes of pregnancy were all normal. Population mean (+/- SEM) oral clearance (Cl/F) estimates were 313+/-33 ml/h/kg and 1109+/-43 ml/h/kg, total apparent volume of distribution (Vd/F) 13.0+/-1.3 l/kg and 22.9+/-1.4 l/kg, and terminal elimination half-life; 29.1 h and 14.3 h, for atovaquone and proguanil, respectively. Using conventional and population pharmacokinetic analyses, Cl/F and Vd/F estimates for both drugs were approximately twice, and plasma concentrations less than half those reported previously in healthy subjects and patients with acute malaria. CONCLUSION: Artesunate-atovaquone-proguanil is a promising treatment for multi-drug resistant falciparum malaria during pregnancy, but the dose of atovaquone-proguanil may need to be increased.

Acute Disease↗

Efficacy and safety of atovaquone-proguanil compared with mefloquine in the treatment of nonimmune patients with uncomplicated P. falciparum malaria in Japan.

Malaria treatment is becoming increasingly difficult due to the widespread drug resistance of Plasmodium falciparum. In Japan, only three antimalarials are approved for treatment: oral quinine, sulfadoxine-pyrimethamine, and mefloquine. Recently, however, the Research Group on Chemotherapy of Tropical Diseases introduced atovaquone-proguanil for treating drug-resistant P. falciparum malaria. This research group had also introduced mefloquine before it was licensed nationally. Using data obtained from the research group, we analyzed the efficacy and safety of atovaquone-proguanil, as compared with mefloquine, in nonimmune patients with uncomplicated P. falciparum malaria. Cures were attained in all (100%) of 20 atovaquone-proguanil-treated and 49 (98%) of 50 mefloquine-treated adults. The mean fever clearance time (FCT) and parasite clearance time (PCT) appeared to be longer in the atovaquone-proguanil group than in the mefloquine group, but the differences were not statistically significant. Three (15%) of the 20 atovaquone-proguanil-treated adults had adverse events (AEs), all of which were transient elevations of liver enzymes, while 19 (38%) of the 50 mefloquine-treated adults had AEs, including dizziness in 8 (16%) and nausea/vomiting in 7 (14%). All 3 children treated with atovaquone-proguanil were cured without developing AEs. Despite the limitations of this study in not being a formal clinical trial, atovaquone-proguanil seemed to be at least equal to, or even better than, mefloquine for the treatment of uncomplicated P. falciparum malaria in nonimmune patients, including children. Its marketing in Japan could be beneficial in offering an alternative therapeutic option. However, vigilance should be maintained on the possible occurrence of rare but severe AEs, and also of the possible spread of drug resistance.

Adult↗

Antimalaria activity of the triple combination of proguanil, atovaquone and dapsone.

The combination of proguanil and atovaquone has been shown to be more effective in curing drug-resistant infections of falciparum malaria than atovaquone or proguanil alone. Our current study sought to determine whether the antimalaria activity could be increased by adding dapsone. Plasma samples, obtained from individuals 4-72 h after proguanil-atovaquone administration, were 2-3 times more active against Plasmodium falciparum in vitro when dapsone was added to them. The enhanced activity of the combination of proguanil, atovaquone and dapsone is probably due to the combined activity of two synergistic combinations: proguanil-atovaquone and cycloguanil (metabolite of proguanil)-dapsone. These findings suggest that further studies are needed to evaluate the clinical value of the triple drug combination of proguanil, atovaquone and dapsone in the treatment of multi-drug resistant malaria.

Animals↗

Proguanil metabolism in relation to S-mephenytoin oxidation in a Turkish population.

The oxidation of proguanil was studied in 89 unrelated healthy Turkish volunteers after administration of proguanil (single dose, 200 mg, orally). Based on the distribution of the ratio of proguanil to cycloguanil excreted in urine, and using an antimode value of 15, the prevalence of poor metabolizers in a Turkish population was estimated to be 5.6% (95% confidence interval 2.0%-17.3%) which was similar to that in the other Caucasian populations. The relationship between the oxidative capacities of CYP2C19 for the two substrates, proguanil and mephenytoin, was studied in 39 subjects (two poor and 37 extensive metabolizers of proguanil). The two poor metabolizers of proguanil were also identified as poor metabolizers of S-mephenytoin and no misclassification by the two phenotyping methods was observed. The correlation between the metabolic ratio of proguanil to cycloguanil and the S/R-mephenytoin ratio as assessed by Spearman's rank test, was statistically significant (rs = 0.50, P < 0.001).

Adult↗

Relationship between proguanil metabolic ratio and CYP2C19 genotype in a Caucasian population.

AIMS: To investigate the relationship between proguanil metabolic ratio (MR, proguanil/cycloguanil) and CYP2C19 genotype in a Caucasian population. METHODS: Ninety-nine Caucasians (age range: 18-55 years, 54 female, 45 male) were genotyped for CYP2C19 and phenotyped for proguanil oxidation by collecting urine for 8 h after taking 100 mg proguanil hydrochloride. Proguanil and cycloguanil concentrations were measured by h.p.l.c. PCR was employed for CYP2C19 genotyping. RESULTS: The three (3%) individuals who were homozygous for CYP2C19*2 (*2/*2) had the highest proguanil MRs (range: 8.0-134.6). Seventy-three (74%) individuals were homozygous for the wild-type allele (*1/*1) and 23 (23%) were heterozygous (*1/*2). The *1/*1 individuals had lower MRs (median=1.4, range: 0.23-5.9, P=0.003, Mann-Whitney U-test) than the *1/*2 subjects (median=2.5, range: 0.88-7.3). CONCLUSIONS: A CYP2C19 gene-dose effect for proguanil oxidation to cycloguanil was observed, confirming a role for CYP2C19 in cycloguanil formation in vivo. However, there was substantial overlap of proguanil MRs in subjects of different CYP2C19 genotypes, due possibly to variability in the activity of other enzymes contributing to the formation of cycloguanil.

Adolescent↗

The multiple dose pharmacokinetics of proguanil.

Proguanil, a prophylactic antimalarial agent, is metabolised by the polymorphic isoenzyme CYP2Cmep in man. In this study the multiple dose pharmacokinetics of proguanil were investigated in subjects who were phenotyped previously as extensive (n = 6) or poor (n = 2) metabolisers of the drug. Steady-state plasma concentrations of proguanil were achieved within 48 h in extensive metaboliser subjects and chronic administration of the drug did not appear to alter the disposition of proguanil or that of its active metabolite, cycloguanil. The currently recommended dosage regimen appears to be appropriate for extensive metabolisers of proguanil. Poor metabolisers of proguanil had significantly lower plasma concentrations of the active metabolite cycloguanil compared with extensive metabolisers. Thus, even on multiple dose administration these subjects may not achieve adequate plasma concentrations of cycloguanil. Deficient metabolism of proguanil to cycloguanil leads to an increased appearance of the N-dealkylated metabolite p-chlorphenylbiguanide in the urine of poor metabolisers.

Adult↗

In vitro proguanil activation to cycloguanil by human liver microsomes is mediated by CYP3A isoforms as well as by S-mephenytoin hydroxylase.

1. The activation of proguanil to cycloguanil by human liver microsomes was studied to define the cytochrome P450 (CYP) isoforms involved in this reaction. 2. Apparent Km values for proguanil ranged from 35 microM to 183 microM with microsomes from four human livers. 3. There was a 6.3-fold range of activity with microsomes from seventeen human livers. Rates of proguanil activation correlated significantly with CYP3A activities (benzo[a]pyrene metabolism, caffeine 8-oxidation and omeprazole sulphone formation) and CYP3A immunoreactive content. There was also a highly significant correlation with rates of hydroxyomeprazole formation. Correlations with activities selective for CYP1A2, CYP2C9/10 and CYP2E1, and with immunoreactive CYP1A2 content were not significant. 4. Proguanil activation was inhibited by R,S-mephenytoin, troleandomycin and by inhibitory anti-CYP3A antiserum and anti-CYP2C IgG and was activated by alpha-naphthoflavone. Inhibitors selective for CYP1A2, CYP2E1, CYP2A6 or CYP2C9/10 had little or no effect on proguanil activation. The extents of inhibition by R,S-mephenytoin, troleandomycin and the two antibodies varied with the immunoreactive CYP3A content of the microsomes used. 5. It is concluded that proguanil activation to cycloguanil by human liver microsomes is mediated both by S-mephenytoin hydroxylase and isoforms of the CYP3A subfamily. This has implications for the use of proguanil as an in vivo probe for the S-mephenytoin poor metaboliser phenotype.

Aryl Hydrocarbon Hydroxylases↗

Steady-state kinetics of proguanil and its active metabolite, cycloguanil, in man.

The pharmacokinetics of proguanil and its active metabolite, cycloguanil, were determined at steady-state in 6 healthy male volunteers after daily administration of 2 Paludrine tablets (200 mg proguanil hydrochloride). A maximum plasma proguanil concentration of 130.3 +/- 16.0 ng/ml (mean +/- SD) was reached at 3.8 +/- 1.3 h while a maximum cycloguanil concentration of 52.0 +/- 15.2 ng/ml was obtained at 5.3 +/- 1.0 h after dosing. The elimination half-lives of proguanil and cycloguanil were 14.5 +/- 3.0 h and 11.7 +/- 3.1 h, respectively. The plasma clearance of proguanil was 1.43 +/- 0.33 l/h/kg and the apparent volume of distribution was 30.7 +/- 12.3 l/kg. Renal clearance of proguanil (0.33 +/- 0.19 l/h/kg) was about 23% of the plasma clearance and 35.6 +/- 9.6% of the oral dose was recovered as proguanil and cycloguanil.

Administration, Oral↗

Atovaquone-proguanil for treating uncomplicated malaria.

BACKGROUND: Many conventional treatments for uncomplicated malaria are failing because malaria parasites develop resistance to them. One way to combat this resistance is to treat people with a combination of drugs, such as atovaquone-proguanil. OBJECTIVES: To compare atovaquone-proguanil with other antimalarial drugs (alone or in combination) for treating children and adults with uncomplicated Plasmodium falciparum malaria. SEARCH STRATEGY: We searched the Cochrane Infectious Diseases Group Specialized Register (June 2005), CENTRAL (The Cochrane Library Issue 2, 2005), MEDLINE (1966 to June 2005), EMBASE (1980 to June 2005), LILACS (1982 to June 2005), reference lists, and conference abstracts. We also contacted relevant pharmaceutical manufacturers and researchers. SELECTION CRITERIA: Randomized controlled trials comparing atovaquone-proguanil with other antimalarial drugs for treating children and adults confirmed to have uncomplicated P. falciparum malaria. DATA COLLECTION AND ANALYSIS: Three authors independently assessed trial eligibility and methodological quality, and extracted data for an intention-to-treat analysis (where possible). We used relative risk (RR) and 95% confidence intervals (CI) for dichotomous data. We contacted trial authors for additional information where needed. MAIN RESULTS: Ten trials, with a total of 2345 participants, met the inclusion criteria. The trials were conducted in four geographical regions and were often small, but they included comparisons across eight drugs. Nine trials were funded by a pharmaceutical company, only three carried out an intention-to-treat analysis, and allocation concealment was unclear in seven. Atovaquone-proguanil had fewer treatment failures by day 28 than chloroquine (RR 0.04, 95% CI 0.00 to 0.57; 27 participants, 1 trial), amodiaquine (RR 0.22, 95% CI 0.13 to 0.36; 342 participants, 2 trials), and mefloquine (RR 0.04, 95% CI 0.00 to 0.73; 158 participants, 1 trial). There were insufficient data to draw a conclusion for this outcome from comparisons with sulfadoxine-pyrimethamine (172 participants, 2 trials), halofantrine (205 participants, 1 trial), artesunate plus mefloquine (1063 participants, 1 trial), quinine plus tetracycline (154 participants, 1 trial), and dihydroartemisinin-piperaquine-trimethoprim-primaquine (161 participants, 1 trial). Adverse events were mainly common symptoms of malaria and did not differ in frequency between groups. AUTHORS' CONCLUSIONS: Data are limited but appear to suggest that atovaquone-proguanil is more effective than chloroquine, amodiaquine, and mefloquine. There are insufficient data for comparisons against sulfadoxine-pyrimethamine, halofantrine, artesunate plus mefloquine, quinine plus tetracycline, and dihydroartemisinin-piperaquine-trimethoprim-primaquine in treating malaria. There are not enough data to assess safety, but a number of adverse events were identified with all drugs. Large trials comparing atovaquone-proguanil with other new combination therapies are needed.

Antimalarials↗

Effect of oral proguanil on human lymphocyte proliferation.

In vitro studies have indicated that the antifolates pyrimethamine [4, 6] and cycloguanil (the active metabolite of proguanil) suppress the proliferation of stimulated human lymphocytes; proguanil has no effect [2]. During the early growth phase of the cells, 14C-thymidine (14C-TdR) incorporation is increased by pyrimethamine and cycloguanil, reflecting blockage of endogenous TdR synthesis [3]. Proguanil (Paludrine) is increasingly being used for malaria prophylaxis. It is considered the most innocuous of the antimalarials currently employed. Since nothing is known about the effect of oral proguanil on human lymphocytes, the present study was undertaken. Little information is available about the serum levels of proguanil and cycloguanil following ingestion of prophylactic doses [8]. Therefore, the serum concentrations of proguanil and cycloguanil were estimated, to allow comparison with previous in vitro studies [2].

Adult↗

Polymorphic oxidative metabolism of proguanil in a Nigerian population.

OBJECTIVE: The genetic polymorphic metabolic oxidation of proguanil was investigated in 126 healthy, unrelated Nigerian subjects as an indication of the phenotypic status of CYP2C19 in Nigerians. METHODS: The proguanil oxidation capacity was determined using the 8-h urinary metabolic ratio of the parent drug and its metabolite (cycloguanil) after a single oral dose of 200 mg proguanil. RESULTS: The frequency distribution of the proguanil metabolic ratio ranged from 0.01 to 39.64 with a median of 1.38 in the 126 Nigerians. On the basis of the antimode value of 10 for the proguanil/cycloguanil ratio, the prevalence of poor metabolisers in this Nigerian population was estimated to be 4.8% (6 of 126), which is very similar to that of S-mephenytoin (4.3%) found in a previous study in Nigerians. The data also demonstrated enormous inter-individual differences in the urinary proguanil/cycloguanil ratios with poor metabolisers excreting, on average, only about 8% of the quantity of cycloguanil excreted by extensive metabolisers. CONCLUSION: The incidence of phenotypically poor metabolisers of proguanil in this Nigerian population is similar to those reported for Caucasian and other African populations but is much lower than those reported for Orientals. The study further supports previous studies that proguanil can be used as an alternative probe to phenotype for CYP2C19 activity.

Adolescent↗

Adverse effects and compliance with mefloquine or proguanil antimalarial chemoprophylaxis.

OBJECTIVE: We had the impression that adverse reactions to standard antimalarial prophylaxis were reported much more often than stated by the package insert and medical drug references; and that side effects adversely affected compliance. Therefore, we evaluated adverse effects and compliance of the two standard malaria prophylactic regimens (mefloquine 250 mg per week and proguanil 100 mg twice per day) among short-term travellers. We expected that travellers who had experienced possible adverse effects on previous journeys might avoid antimalarial drugs on subsequent journeys (self-selection) and we therefore looked at adverse effects dependent on prior use. METHODS: The presence of neuropsychological and gastrointestinal symptoms were assessed by telephone interviewing of 300 travellers who had visited the travel vaccination service of our regional public health institute. Symptoms, prior use and non-compliance of 104 mefloquine users and 103 proguanil users were compared with 93 non-users in order to control for travel-related symptoms. RESULTS: Mefloquine showed the following adverse effects: depression [excess risk (ER) 7.2 per 100 users], dizziness (ER 9.3) and itching (ER 12.3). Adverse effects of proguanil were dizziness (ER 7.5) and nausea (ER 12.7). Adverse effects were mostly mild to moderate and occurred mainly during the time abroad. These results did not change when adjusting for age, sex, or destination. For almost every symptom, we found a remarkable difference between the relationship of symptoms and antimalarial drugs in first-time users and that in prior users: in the first-time users the relationship was positive, while in prior users it was absent or negative. This could be due to self-selection or adaptation to adverse effects. 22% of mefloquine users were non-compliant, whereas 35% of proguanil users were non-compliant. Adverse effects (experienced or expected) were the most often reported reason for mefloquine users to stop or even not to start taking the drug (42%). For proguanil, most of the non-compliant participants saw no point in starting or continuing its use (perceived uselessness 54%). CONCLUSION: We can confirm the reports by users that adverse effects of mefloquine and proguanil are common and, although mostly mild, adversely affect compliance. We suggest that a longer run-in period for mefloquine as well as counselling travellers about possible adverse effects might improve compliance.

Adult↗

Genetic polymorphism of debrisoquine (CYP2D6) and proguanil (CYP2C19) in South Pacific Polynesian populations.

OBJECTIVE: Genetic oxidation polymorphisms of debrisoquine (CYP2D6) and proguanil (CYP2C19) were studied in unrelated healthy South Pacific Polynesian volunteers recruited in the South Island of New Zealand. METHODS: Phenotyping for CYP2D6 and CYP2C19 activities was determined using debrisoquine and proguanil, respectively, as probe drugs by measuring the urinary metabolic ratio of parent drug and its metabolite. RESULTS: Of 100 Polynesian subjects phenotyped, the metabolic ratio of debrisoquine ranged from 0.01 to 9.94. Therefore, all South Pacific Polynesians were classified as extensive metabolizers of debrisoquine according to previously established criteria of the antimode. The prevalence of poor metabolizers of debrisoquine (CYP2D6) in this Polynesian population is 0% (95% confidence interval of 0-3.6%). Oxidation polymorphism of CYP2C19 using proguanil as a probe was also studied in 59 Polynesian volunteers. The frequency distribution of the proguanil/cycloguanil ratio was bimodal. The proguanil/cycloguanil ratios for these subjects ranged from 0.09 to 34.4. Using a recommended proguanil/cycloguanil ratio cut-off point of 10 established in Caucasian populations, eight Polynesian subjects were identified as poor metabolizers of proguanil (CYP2C19), which corresponds to a poor metabolizer phenotype frequency of 13.6% (a 95% confidence interval of 5.9-24.6%). CONCLUSION: The incidence of poor metabolizer phenotypes for debrisoquine (CYP2D6) in South Pacific Polynesians appears to lower than in Caucasian populations, while the prevalence of poor metabolizers for proguanil (CYP2C19) in this ethnic population is higher. The frequencies of the poor metabolizer phenotype for debrisoquine and also for proguanil in South Pacific Polynesians are similar to those reported in Asian populations.

Adolescent↗

Causal prophylactic efficacy of atovaquone-proguanil (Malarone) in a human challenge model.

Plasmodia infect the liver for about 7 days before subsequently infecting the blood. Present prophylaxis against Plasmodium falciparum malaria employs agents that primarily kill blood stages and must be continued for 28 days after the last exposure. Atovaquone-proguanil (Malarone) is a new antimalarial agent that is licensed in 35 countries as treatment against blood-stage infection, but its components (atovaquone and proguanil) have separately been shown to be active also against liver stages. To determine whether atovaquone-proguanil is sufficiently active against liver stages to be discontinued 7 days after exposure, we challenged 16 volunteers with P. falciparum via infected mosquitoes. Twelve volunteers received atovaquone-proguanil (1 tablet daily) on the day prior to challenge, on the day of challenge, and for the next 6 days; 4 volunteers received matching placebo. All placebo volunteers demonstrated parasitaemia and malarial symptoms beginning on days 11-12 after challenge. No atovaquone-proguanil volunteer acquired malaria. Atovaquone-proguanil is the first licensed antimalarial agent that kills P. falciparum in the liver and that may be discontinued 7 days after the last exposure.

Adolescent↗

Pharmacodynamic interactions among atovaquone, proguanil and cycloguanil against Plasmodium falciparum in vitro.

Synergistic interaction between atovaquone and proguanil has been suggested as the reason for the effectiveness of Malarone. The pharmacodynamic interactions among atovaquone, proguanil and its metabolite cycloguanil were investigated in 4 Plasmodium falciparum parasite strains by culture assays in vitro. The response parameters were determined and 2 statistical methods, log-concentration/response probit method and sum of fractional inhibitory concentrations (sigmaFIC) method, were used to analyse the experimental data. Within therapeutically relevant concentration ratios, the combination of atovaquone and proguanil showed mean sigmaFICs of 0.37 at EC50 (50% effective concentrations) and 0.13 at EC90, indicating high synergism. The combination of atovaquone and cycloguanil yielded corresponding mean sigmaFICs of 3.70 and 2.11, indicating antagonism. The EC50 and EC90 values for proguanil alone were not influenced by RPMI-1640 medium with low concentrations of paraaminobenzoic acid and folic acid (LPLF culture medium), whereas the EC50 and EC90 values for cycloguanil were more than 10 times lower in LPLF medium than in normal RPMI-1640 medium. This confirms the hypothesis that proguanil may act on another target than dihydrofolate reductase. We conclude that the effectiveness of Malarone is due to the synergism between atovaquone and proguanil and may not require the presence of cycloguanil.

Animals↗