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Oral atovaquone compared with intravenous pentamidine for Pneumocystis carinii pneumonia in patients with AIDS. Atovaquone Study Group.

OBJECTIVE: To test the hypothesis that the therapeutic success rate of oral atovaquone is not worse than that of intravenous pentamidine in the primary treatment of mild and moderate Pneumocystis carinii pneumonia in patients with the acquired immunodeficiency syndrome and to detect differences in the toxicity rates of the two treatments. DESIGN: Patients were randomly assigned to receive 21 days of open-label therapy with either atovaquone, 750 mg orally with meals three times daily, or intravenous pentamidine, 3 to 4 mg per kg body weight once daily. SETTING: Multicenter study including university and community treatment facilities. PATIENTS: Patients with human immunodeficiency virus infection and clinical presentations consistent with mild or moderate P. carinii pneumonia were eligible. For efficacy and safety analyses, patients with histologically confirmed P. carinii pneumonia were emphasized. MEASUREMENTS: Patients were monitored by clinical and laboratory evaluations for therapeutic efficacy and adverse events during the acute treatment phase and for 8 weeks after therapy was discontinued. RESULTS: As initial therapy for a histologically confirmed episode of P. carinii pneumonia, 56 patients received atovaquone and 53 received pentamidine. More patients were successfully treated with atovaquone (57%) than with pentamidine (40%), a difference of 17% (95% CI, -3% to 38%; P = 0.085), but more patients failed to respond to atovaquone (29%) than to pentamidine (17%), a difference of 12% (CI, -6% to 29%; P = 0.18). Discontinuation of original therapy because of treatment-limiting adverse events was more frequent in the pentamidine group (36%) than in the atovaquone group (4%) (difference, -32%; CI, -48% to -17%; P < 0.001). Nine patients in each treatment group died during the study. CONCLUSIONS: Oral atovaquone and intravenous pentamidine have similar rates for successful treatment of mild and moderate P. carinii pneumonia, but atovaquone has significantly fewer treatment-limiting adverse events.

AIDS-Related Opportunistic Infections↗

Atovaquone as long-term suppressive therapy for toxoplasmic encephalitis in patients with AIDS and multiple drug intolerance. Atovaquone Expanded Access Group.

OBJECTIVE: To evaluate the efficacy and tolerance of atovaquone used as long-term maintenance therapy in patients with toxoplasmic encephalitis and intolerant of conventional anti-Toxoplasma therapies. DESIGN: Uncontrolled open-label study of atovaquone given through an expanded access programme; statistical analysis was performed on an intent-to-treat basis. PATIENTS: Sixty-five patients intolerant of conventional toxoplasmic encephalitis therapies-pyrimethamine, sulphadiazine or clindamycin-received atovaquone as maintenance therapy after resolution of an acute episode of toxoplasmic encephalitis. Patients were clinically and neurologically evaluated monthly. Toxoplasmic encephalitis relapse was defined as the occurrence of neurological abnormalities, except in the case of a proven alternative diagnosis. RESULTS: Sixty-five patients were treated with atovaquone 750 mg four times daily and followed up for a mean period of 1 year. Mean CD4 lymphocytes count was 29 x 10(6)/l. Prior to starting atovaquone, patients had experienced a total of 129 episodes of intolerance to conventional anti-Toxoplasma drugs. Atovaquone was used as a single anti-toxoplasmic agent in 75% of the cases. Seventeen patients (26%) experienced a toxoplasmic encephalitis relapse. Sixty-three patients (97%) were able to tolerate and continued taking atovaquone. Two patients had to discontinue therapy because of side-effects. In a multivariate analysis, only the duration of pyrimethamine-sulphadiazine therapy during the acute therapy phase of toxoplasmic encephalitis was significantly associated with a decreased risk of toxoplasmic encephalitis relapse during maintenance therapy [relative risk, 0.64 for each week of pyrimethamine-sulphadiazine; 95% confidence interval (CI), 0.42-0.96; P = 0.03]. The survival probability was 70% at 1 year after the episode of toxoplasmic encephalitis (95% CI, 57-83). CONCLUSION: These results suggest that atovaquone is a well-tolerated alternative anti-Toxoplasma treatment for maintenance therapy in patients who are intolerant to conventional anti-Toxoplasma drugs.

Acquired Immunodeficiency Syndrome↗

Effect of atovaquone and atovaquone drug combinations on prophylaxis of Pneumocystis carinii pneumonia in SCID mice.

The prophylactic efficacies of atovaquone (ATQ) alone and in combination with azithromycin, clarithromycin, rifabutin, proguanil, PS-15, trimethoprim, co-trimoxazole, or dapsone were investigated in a SCID mouse model of Pneumocystis carinii pneumonia (PCP). ATQ alone was shown to have a significant dose-related effect, and at 200 mg/kg of body weight per day administered orally, the efficacy of ATQ was comparable to that of Septrin (co-trimoxazole). Of the drugs investigated orally in combination with ATQ, only dapsone (25 mg/kg/day) and to a lesser extent PS-15 (5 mg/kg/day) had any noteworthy antipneumocystis activity (at the doses examined) when administered alone. ATQ drug combinations affected the prophylactic efficacy of a subcurative dosage of ATQ (50 mg/kg/day given orally) in the following ways: dapsone (25 mg/kg/day) or co-trimoxazole (25 mg of sulfamethoxazole plus 5 mg of trimethoprim per kg/day) had no significant effect on ATQ, azithromycin (200 mg/kg/day) or clarithromycin (200 mg/kg/day) had a slight additive effect with ATQ, trimethoprim (100 mg/kg/day) or PS-15 (5 mg/kg/day) had an additive effect with ATQ, and proguanil (25 mg/kg/day) or rifabutin (200 mg/kg/day) had a marked synergistic effect on ATQ. The last result was particularly noteworthy as neither proguanil nor rifabutin was effective against PCP when administered alone. None of the drugs examined antagonized the prophylactic activity of ATQ in experimental PCP in SCID mice. The results suggest that clinical trials of ATQ with synergistic drug combinations may now be justified, particularly if such drug combinations improve ATQ's efficacy and broaden its spectrum of activity.

Animals↗

Plasmodium falciparum: the effects of atovaquone resistance on respiration.

Atovaquone is an antimalarial agent that specifically inhibits the cytochrome bc(1) complex of the cytochrome pathway. High-level atovaquone resistance is associated with a point mutation in the cytochrome b gene. A pair of isogenic clinical isolates of Plasmodium falciparum derived from before and after the acquisition of atovaquone resistance was used to determine whether the change in the cytochrome b gene resulted in changes in respiration in response to atovaquone. Since P. falciparum appears to utilize a branched respiratory system comprising both the cytochrome and an alternative respiratory pathway, the proportion of each pathway utilized by the sensitive and resistant parasites was investigated. Atovaquone inhibited total parasite oxygen consumption by up to 66% in the sensitive isolate but only up to 28% in the resistant isolate. Both the atovaquone-sensitive and the atovaquone-resistant parasites were comparably sensitive to the alternative pathway inhibitor, salicylhydroxamic acid. Atovaquone appeared to partially inhibit the rate of oxygen consumed through the alternative pathway in only the atovaquone-sensitive isolate. Cross resistance was noted between atovaquone and a new antimalarial agent WR243251. However, the level of WR243251 resistance was very modest compared to the level of atovaquone resistance. WR243251 was shown to rapidly reduce the rate of parasite oxygen consumption by almost 80% in the atovaquone-sensitive isolate and by 57% in the atovaquone-resistant isolate. Drug interaction studies suggest that atovaquone and WR243251 may inhibit growth additively or with mild synergy. Together, these results suggest that while WR243251 may inhibit respiration, its target of action probably differs from that of atovaquone.

Acridines↗

Lack of a pharmacokinetic interaction between atovaquone and proguanil.

OBJECTIVE: To assess the magnitude of the putative effect of atovaquone on the pharmacokinetics of proguanil and to determine whether the pharmacokinetics of atovaquone are affected by concomitant administration of proguanil, with both drugs administered for 3 days to healthy adult volunteers. METHODS: This was an open-label, randomized, three-way cross-over study, in which 18 healthy volunteers received 400 mg proguanil, 1000 mg atovaquone and 1000 mg atovaquone + 400 mg proguanil. Each treatment was given once daily for 3 days with a 3-week wash-out period between each occasion. For the assay of proguanil, cycloguanil and atovaquone, blood was sampled before dosing and at regular intervals over 8 days when proguanil was given, and over 17 days when atovaquone was given. RESULTS: The geometric mean of the area under the atovaquone plasma concentration-time curve calculated from 0 to 24 h after the last dose (AUC0->24h) was 180 microg x ml(-1) h following administration of atovaquone alone and 193 microg x ml(-1) h following atovaquone with proguanil. The geometric mean AUC0->24h for proguanil was 6296 ng x ml(-1) x h after proguanil alone and 5819 ng x ml(-1) x h following proguanil with atovaquone. The corresponding values for the metabolite cycloguanil were 1297 ng x ml(-1) x h and 1187 ng x ml(-1) x h, respectively. The geometric mean elimination half-life (t1/2) of atovaquone was 57.1 h when given alone and 59.0 h when administered together with proguanil. The corresponding geometric mean values of t1/2 for proguanil were 13.7 h and 14.5 h. Exploratory statistical analysis showed no important gender effects on the pharmacokinetics of atovaquone, proguanil, or cycloguanil. CONCLUSION: The pharmacokinetics of atovaquone and proguanil and its metabolite, cycloguanil, were not different when atovaquone and proguanil were given alone or in combination.

Adult↗

Alternative oxidase inhibitors potentiate the activity of atovaquone against Plasmodium falciparum.

Recent evidence suggests that the malaria parasite Plasmodium falciparum utilizes a branched respiratory pathway including both a cytochrome chain and an alternative oxidase. This branched respiratory pathway model has been used as a basis for examining the mechanism of action of two antimalarial agents, atovaquone and proguanil. In polarographic assays, atovaquone immediately reduced the parasite oxygen consumption rate in a concentration-dependent manner. This is consistent with its previously described role as an inhibitor of the cytochrome bc1 complex. Atovaquone maximally inhibited the rate of P. falciparum oxygen consumption by 73% +/- 10%. At all atovaquone concentrations tested, the addition of the alternative oxidase inhibitor, salicylhydroxamic acid, resulted in a further decrease in the rate of parasite oxygen consumption. At the highest concentrations of atovaquone tested, the activities of salicylhydroxamic acid and atovaquone appear to overlap, suggesting that at these concentrations, atovaquone partially inhibits the alternative oxidase as well as the cytochrome chain. Drug interaction studies with atovaquone and salicylhydroxamic acid indicate atovaquone's activity against P. falciparum in vitro is potentiated by this alternative oxidase inhibitor, with a sum fractional inhibitory concentration of 0.6. Propyl gallate, another alternative oxidase inhibitor, also potentiated atovaquone's activity, with a sum fractional inhibitory concentration of 0.7. Proguanil, which potentiates atovaquone activity in vitro and in vivo, had a small effect on parasite oxygen consumption in polarographic assays when used alone or in the presence of atovaquone or salicylhydroxamic acid. This suggests that proguanil does not potentiate atovaquone by direct inhibition of either branch of the parasite respiratory chain.

Animals↗

Inhibition by atovaquone of CYP2C9-mediated sulphamethoxazole hydroxylamine formation.

OBJECTIVE: To determine whether the antiprotozoal drug atovaquone inhibits the cytochrome P(450) (CYP)2C9-mediated metabolism of sulphamethoxazole (SMX) to its potentially harmful hydroxylamine metabolite (SMX-HA) in vitro. METHODS: Generation of SMX-HA from SMX was measured directly using high-performance liquid chromatography in human liver microsomes or expressed CYP2C9*1, with or without preincubation with reduced nicotinamide adenine dinucleotide phosphate, and the inhibition constant (K(i)) for atovaquone was determined. To determine the effect of protein binding in vitro, in some experiments, atovaquone was pre-incubated with serum proteins, followed by filtration. RESULTS: The K(i) for inhibition of SMX-HA formation by atovaquone was 15 microM, which is within clinically attainable total plasma atovaquone concentrations of 45-55 microM. Atovaquone (45 microM) inhibited SMX-HA formation by 39% in human liver microsomes. However, following preincubation of atovaquone with serum proteins, no inhibitory effect by atovaquone was observed, consistent with previous reports of high plasma protein binding for atovaquone. Compared with human liver microsomes, CYP2C9*1 showed an eightfold greater specific activity for SMX-HA generation; as for liver microsomes, CYP2C9*1 activity was inhibited by atovaquone. CONCLUSIONS: Atovaquone is a relatively weak inhibitor of CYP2C9-mediated SMX-HA formation in vitro. However, the effect is not observed in the presence of serum proteins. It is therefore unlikely that atovaquone would significantly inhibit SMX-HA formation in vivo.

Adult↗

Mutations in Plasmodium falciparum cytochrome b that are associated with atovaquone resistance are located at a putative drug-binding site.

Atovaquone is the major active component of the new antimalarial drug Malarone. Considerable evidence suggests that malaria parasites become resistant to atovaquone quickly if atovaquone is used as a sole agent. The mechanism by which the parasite develops resistance to atovaquone is not yet fully understood. Atovaquone has been shown to inhibit the cytochrome bc(1) (CYT bc(1)) complex of the electron transport chain of malaria parasites. Here we report point mutations in Plasmodium falciparum CYT b that are associated with atovaquone resistance. Single or double amino acid mutations were detected from parasites that originated from a cloned line and survived various concentrations of atovaquone in vitro. A single amino acid mutation was detected in parasites isolated from a recrudescent patient following atovaquone treatment. These mutations are associated with a 25- to 9,354-fold range reduction in parasite susceptibility to atovaquone. Molecular modeling showed that amino acid mutations associated with atovaquone resistance are clustered around a putative atovaquone-binding site. Mutations in these positions are consistent with a reduced binding affinity of atovaquone for malaria parasite CYT b.

Amino Acid Sequence↗

Atovaquone: a review.

OBJECTIVE: To review the chemistry, pharmacology, pharmacokinetics, clinical efficacy, and safety of atovaquone. DATA IDENTIFICATION: An English-language literature search using MEDLINE (1984-1993), programs and abstracts of the 30th, 31st, and 32nd Interscience Conferences on Antimicrobial Agents and Chemotherapy, program and abstracts of the VIII International Conference on AIDS, and unpublished information from Burroughs Wellcome, the manufacturer of atovaquone. STUDY SELECTION: All available pharmacokinetic and clinical trials were reviewed. DATA EXTRACTION: Study quality was assessed by a critical appraisal of study design and methods. Pharmacokinetic studies were evaluated for sampling, methods used to determine pharmacokinetic properties, and the presence of concentration-response and concentration-toxicity relationships. Clinical trials were assessed primarily for comparative efficacy and toxicity. RESULTS: Atovaquone is a novel hydroxynaphthoquinone with potent activity against Pneumocystis carinii and Toxoplasma gondii. Its pharmacokinetic properties are characterized by relatively poor bioavailability, excretion almost exclusively through the feces, lack of hepatic metabolism and urinary excretion, low steady-state plasma concentrations, high protein binding, and a long elimination half-life (50-70 h). Results from comparative clinical trials in AIDS patients with mild-to-moderate P. carinii pneumonia (PCP) reveal similar overall treatment success rates for atovaquone, trimethoprim/sulfamethoxazole (TMP/SMX), and pentamidine. Treatment failure because of lack of therapeutic response was significantly greater in patients who received atovaquone compared with those treated with TMP/SMX (p = 0.002). More atovaquone-patients experienced treatment failure compared with their pentamidine-treated counterparts, although statistical significance was not achieved. Treatment failure secondary to drug toxicity was significantly higher in the TMP/SMX- and pentamidine-treated patients (p < or = 0.01). Atovaquone has not been studied for PCP prophylaxis. Limited data exist on the use of atovaquone for toxoplasmic encephalitis (TE); however, results from an open trial reveal that the drug may be useful in treating this disorder. To date, atovaquone has been well tolerated by most patients administered the drug. The most common adverse effects include maculopapular rash, gastrointestinal disturbances, and fever. Atovaquone is considerably more costly than other oral agents used to treat PCP. CONCLUSIONS: Atovaquone appears to be better tolerated but less effective than TMP/SMX and pentamidine in the treatment of mild-to-moderate PCP. There is not enough information available on the use of atovaquone for PCP prophylaxis or the treatment of TE to definitively describe its efficacy. Comparative clinical trials are needed to assess its role in this clinical setting.

AIDS-Related Opportunistic Infections↗

Characterisation of atovaquone resistance in Leishmania infantum promastigotes.

Atovaquone, an antiparasitic agent, could possibly represent an alternative therapy after relapse following classical treatment for visceral leishmaniasis. Atovaquone-resistant strains were selected in vitro by stepwise drug pressure to study the mechanism of resistance in Leishmania. Characteristics of a promastigote strain resistant to 250 microg/ml of atovaquone were compared with those of the wild type (WT) strain. Resistant strains were shown to have a high level of resistance (45 times). They were stable in drug-free medium for 6 months, and showed no cross-resistance with other antileishmanial drugs. Rhodamine uptake and efflux were studied. They were not modified in the resistant strain, indicating the absence of P-glycoprotein overexpession. The effect of atovaquone on membrane lipidic composition was determined in both WT and atovaquone-resistant promastigotes. Analysis of lipid composition of the atovaquone-resistant strain showed that sterol biosynthesis was decreased in atovaquone-resistant parasites. Cholesterol was found to be the major membrane sterol as opposed to the WT strain. Cholesterol, due to its ordering effect, could decrease membrane fluidity and subsequently block the passage of atovaquone through the membrane. Increased membrane cholesterol content and altered drug membrane fluidity resulted from possible decrease of ergosterol biosynthesis by atovaquone, incorporation of cholesterol by promastigotes in the culture medium, solubilisation of atovaquone by cholesterol and co-passage of the two compounds or influence of dimethylsulfoxide. These results indicate that different cellular alterations may participate in the resistant phenotype, by altering drug membrane permeability.

ATP Binding Cassette Transporter, Subfamily B, Mem↗

A mechanism for the synergistic antimalarial action of atovaquone and proguanil.

A combination of atovaquone and proguanil has been found to be quite effective in treating malaria, with little evidence of the emergence of resistance when atovaquone was used as a single agent. We have examined possible mechanisms for the synergy between these two drugs. While proguanil by itself had no effect on electron transport or mitochondrial membrane potential (DeltaPsim), it significantly enhanced the ability of atovaquone to collapse DeltaPsim when used in combination. This enhancement was observed at pharmacologically achievable doses. Proguanil acted as a biguanide rather than as its metabolite cycloguanil (a parasite dihydrofolate reductase [DHFR] inhibitor) to enhance the atovaquone effect; another DHFR inhibitor, pyrimethamine, also had no enhancing effect. Proguanil-mediated enhancement was specific for atovaquone, since the effects of other mitochondrial electron transport inhibitors, such as myxothiazole and antimycin, were not altered by inclusion of proguanil. Surprisingly, proguanil did not enhance the ability of atovaquone to inhibit mitochondrial electron transport in malaria parasites. These results suggest that proguanil in its prodrug form acts in synergy with atovaquone by lowering the effective concentration at which atovaquone collapses DeltaPsim in malaria parasites. This could explain the paradoxical success of the atovaquone-proguanil combination even in regions where proguanil alone is ineffective due to resistance. The results also suggest that the atovaquone-proguanil combination may act as a site-specific uncoupler of parasite mitochondria in a selective manner.

Animals↗

Malarone (atovaquone and proguanil hydrochloride): a review of its clinical development for treatment of malaria. Malarone Clinical Trials Study Group.

The continuing spread of drug-resistant malaria emphasizes the need for new antimalarial drugs. Atovaquone is a broad-spectrum antiprotozoal drug with a novel mechanism of action, via inhibition of parasite mitochondrial electron transport, and a favorable safety profile. Early studies with atovaquone alone for treatment of malaria demonstrated good initial control of parasitemia but an unacceptable rate of recrudescent parasitemia. Parasites isolated during recrudescence after treatment with atovaquone alone were resistant to atovaquone in vitro. The combination of atovaquone and proguanil is synergistic in vitro, and clinical studies demonstrated enhanced efficacy of the combination compared to either drug alone for treatment of malaria. Malarone, a fixed-dose combination of 250 mg of atovaquone and 100 mg of proguanil hydrochloride, is available in many countries for treatment of acute, uncomplicated malaria caused by Plasmodium falciparum. At the recommended dose (in adults, four tablets once a day for three days), the overall cure rate was > 98% in more than 500 patients with falciparum malaria. In four randomized, controlled clinical trials, treatment with atovaquone and proguanil hydrochloride was significantly more effective than mefloquine (Thailand), amodiaquine (Gabon), chloroquine (Peru and the Philippines) or chloroquine plus pyrimethamine/sulfadoxine (Philippines). In clinical trials where the comparator drug was highly effective, treatment with atovaquone and proguanil hydrochloride was equally effective. Parasites isolated during recrudescence after treatment with the combination of atovaquone and proguanil were not resistant to atovaquone in vitro. The most commonly reported adverse events in clinical trials (abdominal pain, anorexia, nausea, vomiting, diarrhea and coughing) occurred with similar frequency in patients treated with a comparator drug. Malarone is a safe and effective new agent for treatment of malaria.

Adult↗

Atovaquone + proguanil: new preparation. Second-line antimalarial combination.

(1) Quinine, halofantrine and mefloquine are effective treatments for most cases of uncomplicated Plasmodium falciparum malaria. (2) The choice of drug for prevention of P. falciparum malaria in highly endemic regions depends on the risk of chloroquine resistance, and possibly mefloquine resistance. The reference treatments are the chloroquine + proguanil combination, and mefloquine. (3) Marketing authorisation has been granted in France for the atovaquone + proguanil combination, in curative and preventive treatment of P. falciparum malaria. (4) The efficacy of the atovaquone + proguanil combination in uncomplicated malaria is similar to that of other treatments. Some strains of malaria seem to have reduced sensitivity. (5) The atovaquone + proguanil combination is also effective as prophylaxis, but there are no clinical trials showing whether it is equivalent to or better than other preventive treatments in non immune travellers. (6) According to the French licensing terms, atovaquone + proguanil prophylaxis can be stopped 7 days after leaving an endemic area, rather than 3-4 weeks with other drugs. This recommendation is based on weak evidence: mainly on theoretical arguments and on the absence of clinical malaria in some patients with evidence of P. falciparum infection. (7) The atovaquone + proguanil combination is less effective against other Plasmodium species (P. malariae, P. ovale and P. vivax). Chloroquine remains the reference treatment for these forms of malaria, which do not carry a risk of serious complications. (8) There were few adverse events in people taking the atovaquone + proguanil combination during clinical trials. During curative treatment, this combination caused more nausea and vomiting than reference treatments, while, in the prophylactic setting, it had slightly fewer adverse effects than the chloroquine + proguanil combination or mefloquine alone. But the drop out rate was not significantly different between treatment groups. (9) Atovaquone should be taken with food, to improve absorption. (10) The atovaquone + proguanil combination is expensive and is not refunded in France. In contrast, curative treatment with quinine is cheap, and is fully refunded. (11) Mefloquine and quinine remain the treatments of choice for uncomplicated malaria where there is chloroquine resistance. The atovaquone + proguanil combination is useful if mefloquine and quinine are contraindicated; unlike halofantrine, this combination does not carry the risk of serious drug interactions. In the prophylactic setting, the lack of experience with atovaquone means it should only be used as a second line option, after mefloquine, for short-term prophylaxis in areas with a high prevalence of chloroquine resistance.

Antimalarials↗

Efficacy of atovaquone against Babesia gibsoni in vivo and in vitro.

The therapeutic efficacy of atovaquone against Babesia gibsoni was examined in three dogs experimentally infected with B. gibsoni isolated from naturally infected dogs in Aomori Prefecture, Japan. Once parasitemia reached 10%, atovaquone was administered orally (30 mg/kg twice daily for 7 days). Within 2 days of atovaquone treatment, the parasite disappeared from blood smears without any clinical side effects. Anemia and thrombocytopenia were significantly improved in all the dogs. However, a polymerase chain reaction assay revealed that a B. gibsoni marker gene was intermittently present in peripheral blood after atovaquone therapy, indicating that the organism had not been eliminated, and parasites reappeared in blood smears 33 days after the last treatment. To investigate the change in sensitivity against atovaquone, an in vitro sensitivity test was performed using peripheral blood obtained from an untreated dog that was infected with the original parasite isolate, and from two of the experimentally infected and atovaquone-treated animals (blood was collected at the time of the post-treatment recurrence of the B. gibsoni infection). Atovaquone was added to the culture medium to final concentrations of 0.1, 1, 10, 100, and 1000 nM. For the untreated parasites, complete growth inhibition occurred at 1000 nM of atovaquone, whereas the recurrent parasites were inhibited by only 39.52 +/- 8.34% and 31.31 +/- 8.14% at this concentration after 48 h of incubation. Thus, the recurring parasites were less sensitive to atovaquone than the untreated originally isolated parasites.

Administration, Oral↗

Comparison of atovaquone (566C80) with trimethoprim-sulfamethoxazole to treat Pneumocystis carinii pneumonia in patients with AIDS.

BACKGROUND: Both trimethoprim-sulfamethoxazole and pentamidine are effective as treatments for Pneumocystis carinii pneumonia, but adverse effects frequently limit their use. Atovaquone (566C80) is a new hydroxynaphthoquinone with activity against P. carinii. METHODS: We conducted a double-blind, multicenter study in patients with the acquired immunodeficiency syndrome and mild or moderately severe P. carinii pneumonia. They were randomly assigned to 21 days of orally administered treatment three times daily with either atovaquone (750 mg) or trimethoprim (320 mg) plus sulfamethoxazole (1600 mg). RESULTS: Of the 322 patients with histologically confirmed P. carinii pneumonia, 160 received atovaquone and 162 received trimethoprim-sulfamethoxazole. Of those who could be evaluated for therapeutic efficacy, 28 of 138 patients given atovaquone (20 percent) and 10 of 146 patients given trimethoprim-sulfamethoxazole (7 percent) did not respond (P = 0.002). Treatment-limiting adverse effects required a change of therapy in 11 patients in the atovaquone group (7 percent) and 33 patients in the trimethoprim-sulfamethoxazole group (20 percent) (P = 0.001). Therapy involving only the initial drug was successful and free of adverse effects in 62 percent of those assigned to atovaquone and 64 percent of those assigned to trimethoprim-sulfamethoxazole. Within four weeks of the completion of treatment, there were 11 deaths in the atovaquone group (4 due to P. carinii pneumonia) and 1 death in the trimethoprim-sulfamethoxazole group (P = 0.003). Diarrhea at entry was associated with lower plasma drug concentrations (P = 0.009), therapeutic failure (P < 0.001), and death (P < 0.001) in the atovaquone group but not in the trimethoprim-sulfamethoxazole group. CONCLUSIONS: For the treatment of P. carinii pneumonia, atovaquone is less effective than trimethoprim-sulfamethoxazole, but it has fewer treatment-limiting adverse effects.

AIDS-Related Opportunistic Infections↗

Molecular basis for atovaquone binding to the cytochrome bc1 complex.

Atovaquone is a substituted 2-hydroxynaphthoquinone that is used therapeutically to treat Plasmodium falciparum malaria, Pneumocystis carinii pneumonia, and Toxoplasma gondii toxoplasmosis. It is thought to act on these organisms by inhibiting the cytochrome bc1 complex. We have examined the interaction of atovaquone with the bc1 complex isolated from Saccharomyces cerevisiae, a surrogate, nonpathogenic fungus. Atovaquone inhibits the bc1 complex competitively with apparent Ki = 9 nm, raises the midpoint potential of the Rieske iron-sulfur protein from 285 to 385 mV, and shifts the g values in the EPR spectrum of the Rieske center. These results indicate that atovaquone binds to the ubiquinol oxidation pocket of the bc1 complex, where it interacts with the Rieske iron-sulfur protein. A computed energy-minimized structure for atovaquone liganded to the yeast bc1 complex suggests that a phenylalanine at position 275 of cytochrome b in the bovine bc1 complex, as opposed to leucine at the equivalent position in the yeast enzyme, is responsible for the decreased sensitivity of the bovine bc1 complex (Ki = 80 nm) to atovaquone. When a L275F mutation was introduced into the yeast cytochrome b, the sensitivity of the yeast enzyme to atovaquone decreased (Ki = 100 nm) with no loss in activity, confirming that the L275F exchange contributes to the differential sensitivity of these two species to atovaquone. These results provide the first molecular description of how atovaquone binds to the bc1 complex and explain the differential inhibition of the fungal versus mammalian enzymes.

Amino Acid Sequence↗

Molecular basis for atovaquone resistance in Pneumocystis jirovecii modeled in the cytochrome bc(1) complex of Saccharomyces cerevisiae.

Atovaquone is a substituted hydroxynaphthoquinone that is widely used to prevent and clear Plasmodium falciparum malaria and Pneumocystis jirovecii pneumonia. Atovaquone inhibits respiration in target organisms by specifically binding to the ubiquinol oxidation site at center P of the cytochrome bc(1) complex. The failure of atovaquone treatment and mortality of patients with malaria and P. jirovecii pneumonia has been linked to the appearance of mutations in the cytochrome b gene. To better understand the molecular basis of atovaquone resistance, we have introduced seven of the mutations from atovaquone-resistant P. jirovecii into the cytochrome b gene of Saccharomyces cerevisiae and thus obtained cytochrome bc(1) complexes resistant to inhibition by atovaquone. In these enzymes, the IC(50) for atovaquone increases from 25 nm for the enzyme from wild-type yeast to >500 nm for some of the mutated enzymes. Modeling of the changes in cytochrome b structure and atovaquone binding with the mutated bc(1) complexes provides the first quantitative explanation for the molecular basis of atovaquone resistance.

Amino Acid Sequence↗