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Inhibition of dapsone-induced methaemoglobinaemia by cimetidine in the rat during chronic dapsone administration.

Dapsone undergoes N-acetylation to monoacetyl dapsone as well as N-hydroxylation to a hydroxylamine which is responsible for the haemotoxicity (i.e. methaemoglobinaemia; Met Hb) of the drug. Since dapsone is always given chronically, we have investigated the ability of cimetidine to inhibit Met Hb formation caused by repeated dapsone administration. The drug was given (i.p.) to four groups (n = 6 per group) of male Wistar rats, 300-360 g. Group I received 10 mg kg-1 at 1, 24, 48 and 72 h. Group II received 10 mg kg-1 at 1, 8, 24, 32, 48, 56, 72 and 80 h. Groups III and IV received the drug as for groups I and II, respectively, as well as cimetidine (50 mg kg-1) 1 h before each dose of dapsone. Twice daily dapsone administration (Group II) resulted in a significantly greater (P less than 0.05) Met Hb AUC (757 +/- 135 vs 584 +/- 115% Met Hb h), dapsone AUC (140 +/- 17.5 vs 113 +/- 13.0 micrograms h mL-1) and monoacetyl dapsone AUC (48.2 +/- 18.3 vs 10.8 +/- 4.6 micrograms h mL-1) compared with a single daily dapsone dose (group I). The administration of cimetidine before the once daily dose of dapsone (group III) resulted in a significant (P less than 0.05) fall in Met Hb (302 +/- 179 vs 584 +/- 115% Met Hb h) and an increase in both the dapsone (151 +/- 22.2 vs 113 +/- 13.0 micrograms h mL-1) and monoacetyl dapsone AUC values (33.6 +/- 5.8 vs 10.8 +/- 4.0 micrograms h mL-1) compared with a single daily dose of dapsone (group I).(ABSTRACT TRUNCATED AT 250 WORDS)

Animals

Studies on dapsone induced haemolytic anaemia. I. Methaemoglobin production and G-6-PD activity in correlation with dapsone dosage.

The present study was undertaken on the hypothesis that methaemoglobin production and haemolytic anaemia following dapsone administration could be ascribed to an impairment of glucose-6-phosphate dehydrogenase-enzymatic activity. Analysis of the kinetic parameters of the G-6-PD (Vmax and KM) was performed in ten patients, normal with respect to G-6-PD, suffering from various dermatoses. It was concluded that haemolytic anaemia after dapsone therapy is not due to a functional impairment of the enzyme. The close relationship between dapsone dosage, methaemoglobin production and anaemia make reasonable the hypothesis that a toxic dapsone derivative (DDS-NHOH) could be responsible for the methaemoglobin formation and the haemolytic anaemia.

Anemia, Hemolytic

Dapsone-induced hemolytic anemia: effect of N-hydroxy dapsone on the sulfhydryl status and membrane proteins of rat erythrocytes.

Dapsone hydroxylamine (DDS-NOH), a known metabolite of dapsone, has recently been shown to be a direct-acting hemotoxin responsible in part for dapsone-induced hemolytic anemia in the rat. The effect of DDS-NOH on the morphology, sulfhydryl status, and membrane skeletal proteins of the rat red cell has been investigated. Exposure of rat red cells to a TC50 of DDS-NOH induced transformation of about 50% of the cells to an extreme echinocyte morphology. Reduced glutathione content of the cells was rapidly lost with concomitant increase in the formation of mixed disulfide between glutathione and the soluble protein of the cell. Oxidized glutathione content of the cells did not increase at any time during exposure to DDS-NOH. Examination of the skeletal membrane proteins by SDS-PAGE indicated that DDS-NOH caused the apparent loss of band 4.2, decrease in peaks 1, 2.1, and 3, and the appearance of new bands at about 16, 27, 40, and 54 kDa. Bands 4.1 and 7 appeared unchanged. Treatment of DDS-NOH altered proteins with dithiothreitol, reversed the protein changes, and indicated that the observed alterations were due to the formation of disulfide-linked adducts between hemoglobin and the various skeletal proteins as well as between hemoglobin monomers. The possible significance of the parallel changes in cell morphology and in membrane skeletal proteins for the premature splenic sequestration of the injured rat red cells is discussed.

Anemia, Hemolytic

Determination of plasma concentrations of dapsone, monoacetyl dapsone and pyrimethamine in human subjects dosed with maloprim.

A high-performance liquid chromatographic method was developed to enable dapsone, monoacetyl dapsone and pyrimethamine to be measured simultaneously in plasma samples from volunteers in England and Malaysia who had been dosed with Maloprim. Mean half-lives of 25 and 80 h were calculated for dapsone and pyrimethamine, respectively, but there was wide individual variation. All subjects were found to be classifiable as "slow acetylators".

Adult

The pharmacokinetics of dapsone and acetylated dapsone in serum and saliva.

The concentrations of dapsone (DDS) and its acetylated derivatives (MADDS and DADDS) were determined in the serum and saliva after one oral dose of dapsone until 72 hr. The peak serum concentrations of DDS and MADDS were reached, on average, at 3.8--4.3 hr after the dosage. The amounts of DADDS were negligible. The elimination half-life of the first order kinetics was, on average, at 20--21 hr for both DDS and MADDS. The study group included 6 rapid acetylators and 4 slow acetylators with the mean ratios MADDS/DDS 1.0 and 0.19, respectively. No difference in the pharmacokinetics of DDS or MADDS could be seen between the rapid and slow acetylators. The protein-free fractions of DDS and MADDS were 50 and 41 per cent, respectively, of the total serum concentrations as measured at 8 and 32 hr after the dosage. The salivary concentration of DDS was, on average, 49 per cent of the total serum concentration during the whole study period. The salivary concentration of MADDS was 40 per cent, respectively. The elimination half-life of DDS and MADDS in saliva did not differ from that in serum. Between the salivary and serum protein-free concentrations a strict correlation existed (p less than 0.001). The salivary concentration of dapsone and its monoacetyl derivative reflect the protein-free, active drug in serum.

Acetylation

The use of cimetidine to reduce dapsone-dependent methaemoglobinaemia in dermatitis herpetiformis patients.

1. We have attempted to reduce dapsone-dependent methaemoglobinaemia formation in six dermatitis herpetiformis patients stabilised on dapsone by the co-administration of cimetidine. 2. In comparison with control, i.e. dapsone alone, methaemoglobinaemia due to dapsone fell by 27.3 +/- 6.7% and 26.6 +/- 5.6% the first and second weeks after commencement of cimetidine administration. The normally cyanotic appearance of the patient on the highest dose of dapsone (350 mg day-1), underwent marked improvement. 3. There was a significant increase in the trough plasma concentration of dapsone (2.8 +/- 0.8 x 10(-5)% dose ml-1) at day 21 in the presence of cimetidine compared with control (day 7, 1.9 +/- 0.6 x 10(-5)% dose ml-1, P less than 0.01). During the period of the study, dapsone-mediated control of the dermatitis herpetiformis in all six patients was unchanged. 4. Trough plasma concentrations of monoacetyl dapsone were significantly increased (P less than 0.05) at day 21 (1.9 +/- 1.0 x 10(-5)% dose ml-1) compared with day 7 (1.6 +/- 0.9 x 10(-5)% dose ml-1:control). 5. Over a 12 h period, 20.6 +/- 8.9% (day 0) of a dose of dapsone was detectable in urine as dapsone hydroxylamine. Significantly less dapsone hydroxylamine was recovered from urine at day 14 (15.0 +/- 8.4) in the presence of cimetidine, compared with day 0 (control: P less than 0.05). 6. The co-administration of cimetidine may be of value in increasing patient tolerance to dapsone, a widely used, effective, but comparatively toxic drug.

Adult

The disposition of dapsone in cirrhosis.

Acetylation and N-hydroxylation of dapsone were evaluated in drug-free, non-smoking, normal subjects and subjects with cirrhosis (n = 7 for each group) after oral administration of 100 mg dapsone. Acetylation was not correlated with oral dapsone clearance or reduced in cirrhosis (0.37 +/- 0.43 versus 0.52 +/- 0.32). Fractional metabolic clearance of dapsone to its hydroxylamine was associated with dapsone oral clearance (r = 0.96, p less than 0.001, n = 14). In patients with cirrhosis, liver disease was associated with a trend to reduction in oral clearance (22%) and metabolic clearance of dapsone (48%). Protein binding was minimally reduced by cirrhosis (73% +/- 1% versus 69% +/- 3% in patients with cirrhosis (p less than 0.02). The dapsone recovery ratio was validated as a phenotypic index of the metabolic clearance of dapsone (r = 0.74, p less than 0.05). In an extended comparison of 14 patients with cirrhosis to 70 control subjects, cirrhosis was associated with reductions of 28% in dapsone recovery ratio (p less than 0.001), and 37% in acetylation ratio (p less than 0.01). Neither dapsone recovery ratio nor acetylation ratio correlated with Pugh Score, conventional liver function tests, indocyanine green clearance, or phenotypic measures of S-mephenytoin hydroxylase or debrisoquin hydroxylase activity. We conclude that cirrhosis is associated with minor changes in dapsone disposition and that dosage modification is not required. In addition, there is evidence that cirrhosis has a selective influence on activity of individual isozymes of cytochrome P450.

Acetylation

Dapsone suppresses integrin-mediated neutrophil adherence function.

The anti-inflammatory influence of dapsone may involve suppression of neutrophil chemotaxis to selected attractants, but other actions of the drug are likely also involved. We have discovered that dapsone may suppress migration of neutrophils to extravascular sites through inhibition of adherence functions required for neutrophil recruitment. Neutrophil adherence mediated by integrins (CD11/CD18 or Mac-1 family receptors) was measured in vitro in terms of binding of stimulated cells to albumin-coated wells of microtiter plates, using phorbol myristate acetate (PMA) and N-formylmethionyl-leucyl-phenylalanine (FMLP) as stimuli. Adherence was assessed by staining attached cells with crystal violet dye and measuring the dye concentration at OD590 using an automated plate reader. The role of integrins in this assay was confirmed by the ability of anti-integrin antibody to suppress stimulated neutrophil adherence. The OD590 value for cells adhering to albumin in the absence of stimulus and dapsone averaged 0.2 +/- 0.04 (SEM) over five experiments. In the presence of 0.1 microM PMA or 10(-6) M FMLP, the OD590 values averaged 0.88 +/- 0.1 and 0.75 +/- 0.12, respectively. Dapsone did not affect unstimulated neutrophil adherence but, when present with stimulus, produced a dose-related inhibitory effect on adherence. Fifty percent inhibitory doses were approximately 150 micrograms/ml dapsone for both stimuli. Sulfapyridine reproduced the inhibitory effect of dapsone, but two structurally related compounds, hydrochlorothiazide and furosamide, did not. The observed ability of dapsone to inhibit neutrophil chemotaxis under agarose to FMLP and interleukin-8 may also be explained by interference with integrin-mediated adherence required for motility in this assay system. To consider if dapsone might have a similar inhibitory influence on neutrophil adherence in vivo, we tested the stimulated adherence function of neutrophils isolated from three individuals on dapsone therapy for dermatitis herpetiformis. Stimulated adherence of patients' cells averaged less than 40 percent of the control value. Suppression of leukocyte integrin function may therefore also contribute to the ability of dapsone to inhibit neutrophil infiltration in neutrophilic dermatoses.

Cell Adhesion

Inhibition of dapsone-induced methaemoglobinaemia by cimetidine in the presence of trimethoprim in the rat.

Administration of dapsone in combination with trimethoprim and cimetidine to male rats resulted in a marked decrease (P less than 0.05) in measured methaemoglobin levels (46.2 +/- 24% Met Hb h) compared with administration of dapsone alone (124.5 +/- 24.4% Met Hb h). The elimination half-life of dapsone (814 +/- 351 min) was more than doubled in the presence of trimethoprim and cimetidine compared with control (355 +/- 160 min, P less than 0.05). However, there were no significant differences in AUC and clearance when dapsone was administered in combination with trimethoprim and cimetidine compared with dapsone alone. Co-administration of trimethoprim with dapsone in the absence of cimetidine did not affect either methaemoglobin formation, AUCs, half-lives, or clearance values of dapsone compared with control. There was a threefold increase in the AUC of trimethoprim (6296 +/- 2249 micrograms min mL-1) in the presence of dapsone compared with trimethoprim alone (2122 +/- 552 micrograms min mL-1). There was also a corresponding decrease in the clearance of trimethoprim in the presence of dapsone compared with control (19.1 +/- 6.9 vs 60.8 +/- 21.0 mL min-1). However, there was no change in the elimination half-life of trimethoprim between the two experimental groups (273 +/- 120 vs 292 +/- 54 min). The AUC of trimethoprim increased more than threefold in the presence of cimetidine (7100 +/- 1501 micrograms min mL-1) compared with trimethoprim alone (2122 +/- 552 micrograms min mL-1).(ABSTRACT TRUNCATED AT 250 WORDS)

Acetylation

Comparative trial of dapsone versus trimethoprim/sulfamethoxazole for primary prophylaxis of Pneumocystis carinii pneumonia.

The purpose of this study was to compare the efficacy and safety of dapsone and trimethoprim/sulfamethoxazole in the primary prophylaxis of Pneumocystis carinii pneumonia (PCP) in patients infected with the human immunodeficiency virus (HIV) and having less than 200 CD4-positive cells per ml. This was a prospective, randomized, open-label study, using dapsone (100 mg p.o.) or trimethoprim/sulfamethoxazole (160 mg/800 mg p.o.) daily. Patients who developed toxicity requiring discontinuation were offered to cross over to the other study drug. They continued in the study until development of toxicity or documented PCP. Eighty-six patients were enrolled; 47 were randomized to receive dapsone and 39 to receive trimethoprim/sulfamethoxazole. Discontinuation of initial study drug occurred in 33 of the dapsone group and 25 of the trimethoprim/sulfamethoxazole group. Rash was the most common reason for discontinuation. Ten patients crossed over from dapsone to trimethoprim/sulfamethoxazole (4 successfully) and 11 patients crossed over from trimethoprim/sulfamethoxazole to dapsone (6 successfully). During 1,638 patient-months of observation (862 for dapsone and 776 for trimethoprim/sulfamethoxazole), one episode of PCP developed in each group. Both dapsone and trimethoprim/sulfamethoxazole are efficacious for the prophylaxis of PCP in HIV-infected persons with less than 200 CD4-positive cells per ml, but are each associated with significant toxicity. Development of toxicity to one drug does not invariably predict toxicity to the other.

Adult

Mechanisms by which clofazimine and dapsone inhibit the myeloperoxidase system. A possible correlation with their anti-inflammatory properties.

The mechanisms by which two anti-leprotic drugs (clofazimine and dapsone), both with anti-inflammatory properties, inhibit myeloperoxidase (MPO)-catalysed reactions, were investigated. The disappearance of NADH fluorescence was used as an assay for its oxidation. Chloride stimulated the oxidation of NADH in the MPO-H2O2 system in a concentration-dependent manner (50-fold at 150 mM NaCl). Under these conditions Cl- is oxidized and the oxidant formed, presumably hypochlorous acid (HOCl), oxidizes NADH. Observations demonstrating the effect of the drugs on the MPO system, are: (1) Inhibition of Cl(-)-stimulated oxidation of NADH. (2) Inhibition of polypeptide modification in a model protein, thyroglobulin (TG). (3) Protection of MPO against loss of catalytic activity caused by chlorinating oxidants generated by the system. (4) Inhibition of haemoglobin oxidation. Only dapsone was active here. HPLC analyses suggested that the drugs were not significantly metabolized in the MPO-H2O2 system in the absence of Cl-. Bleaching of clofazimine was stimulated by Cl- in the MPO system, suggesting the involvement of HOCl. Clofazimine was found to be a more potent scavenger of HOCl than dapsone when the inhibition of NADH oxidation by reagent HOCl was used as an assay. This finding is also supported by HPLC analyses which indicated a greater sensitivity of HOCl for clofazimine than for dapsone. Relatively low concentrations of dapsone inhibited the oxidation of oxygenated haemoglobin (HbO2), suggesting that the drug was not metabolized to its N-hydroxylated derivative which is thought to be responsible for methaemoglobin (metHb) formation in vivo. It is proposed that the inhibitory mechanism of action of clofazimine is to scavenge chlorinating oxidants generated by the MPO-Cl(-)-H2O2 system, while dapsone converts MPO into its inactive compound II (ferryl) form. The different inhibitory mechanisms of clofazimine and dapsone towards the MPO system may contribute to the anti-inflammatory actions of the drugs.

Anti-Inflammatory Agents, Non-Steroidal

Inhibition of the human leukocyte enzymes myeloperoxidase and eosinophil peroxidase by dapsone.

Dapsone (4,4'-diaminodiphenylsulfone) is an antimicrobial substance that also has anti-inflammatory activity, which has been attributed to inhibition of the leukocyte enzyme myeloperoxidase (MPO). We observed that dapsone was a much better inhibitor of the eosinophil peroxidase (EPO) in an assay that measured peroxidase-catalyzed oxidation of tetramethylbenzidine at pH 5.4. To clarify the specificity and pH-dependence of dapsone inhibition of the purified enzymes under more physiologic conditions, we studied peroxidase-catalyzed oxidation of chloride to the antimicrobial and cytotoxic agent hypochlorous acid. Taurine was added as a trap for hypochlorous acid, to prevent inactivation of the enzymes or chlorination of dapsone by hypochlorous acid. Dapsone was much more effective as an inhibitor of both MPO and EPO when chloride rather than tetramethylbenzidine was the substrate. Inhibition of both enzymes was greater at neutral pH than at acid pH (pH 7 vs pH 5), but EPO was more sensitive to inhibition than MPO regardless of pH. Inhibition was increased by lowering chloride, raising hydrogen peroxide, or lowering the enzyme concentration. Inhibition was accompanied by irreversible loss of enzyme activity, which was correlated with loss of the heme absorption spectrum, indicating chemical modification of the enzyme active site. EPO, but not MPO, was partially protected against inactivation by adding physiologic levels of bromide along with chloride. The results suggest that dapsone could prevent MPO- and EPO-mediated tissue injury at sites where the peroxidase enzymes are secreted and diluted into the neutral pH environment of the tissue interstitial space. Dapsone might not inhibit peroxidase-mediated antimicrobial activity, which occurs at high enzyme concentrations in the acid environment of phagolysosomes.

Benzidines

Dapsone syndrome in Vanuatu: a high incidence during multidrug treatment (MDT) of leprosy.

Side-effects of leprosy treatment with dapsone are said to be uncommon, with drug allergy occurring in only one of every several hundred patients treated with dapsone. The dapsone or sulphone syndrome (DDS) has been recognized since the earliest days of sulphone therapy but until recently its incidence had been decreasing. In Vanuatu, during the years 1988-1991, nine leprosy patients have developed the dapsone syndrome, four of whom have died. During the last 4 years only 37 patients were started on treatment, which is an incidence of the dapsone syndrome of 24% with a fatality rate of 11%. All the patients were being given multi-drug treatment (MDT) of daily dapsone (100 mg) and clofazimine (50 mg) and monthly rifampicin (600 mg) and clofazimine (300 mg). There has been speculation that the increased incidence of what was previously described as a rare reaction is due to the use of MDT, and the reasons for this are discussed. We feel the increase in the number of reactions in Vanuatu since starting MDT is probably due to the high starting dose of 100 mg of dapsone, possibly enhanced by the combination with clofazimine and rifampicin and a genetic susceptibility of the Melanesian population.

Adolescent

Oral dapsone versus nebulized pentamidine for Pneumocystis carinii pneumonia prophylaxis: an open randomized prospective trial to assess efficacy and haematological toxicity.

OBJECTIVE: To compare the haematological toxicity and efficacy of oral dapsone and nebulized pentamidine as Pneumocystis carinii pneumonia (PCP) prophylaxis in HIV-infected patients receiving zidovudine. DESIGN: Randomized, prospective. SETTING: Infectious diseases hospital with participants drawn from both inpatient and outpatient departments. PATIENTS: Those eligible were starting treatment with zidovudine, needed PCP prophylaxis (CD4+ count < 200 x 10(6)/l or < 20% total lymphocyte count or previous episode of PCP), and had a normal glucose-6-phosphate dehydrogenase screen. Of the 98 patients enrolled, 96 returned for follow-up. INTERVENTIONS: Fifty patients received dapsone (100mg orally twice weekly) and 46 pentamidine (400 mg nebulized monthly). Follow-up was for a median of 18 months. MAIN OUTCOME MEASURES: The development of PCP, transfusion requirements, monthly complete blood cell counts, serious adverse reactions and death were recorded. RESULTS: Nine (18%) dapsone and eight (17%) pentamidine recipients developed PCP. There was no significant difference in number of patients transfused (12 dapsone and nine pentamidine recipients) or transfusion-free survival. At exit from the study, mean haemoglobin (11.7 versus 12.4 g/dl), white blood cell (3.9 versus 3.7 x 10(9)/l) and platelet (195 versus 184 x 10(9)/l) counts did not differ for the dapsone and pentamidine arms, respectively. There was no significant difference in the occurrence of serious adverse reactions (six in the dapsone and eight in the pentamidine arm). CONCLUSIONS: Dapsone can be recommended in preference to pentamidine as PCP prophylaxis on the basis of equivalent efficacy, absence of excessive haematological toxicity, low cost and ease of administration.

AIDS-Related Opportunistic Infections

Reassessment of dapsone as a marker of acetylator phenotypes.

The ratio of metabolite to parent dapsone concentrations at 3 hours after dosing has been used as a marker of acetylator phenotypes. The absorption of dapsone is somewhat erratic with peak concentrations often found after the 3-hour determination. The present study done in 30 healthy, male volunteers compared ratios of metabolite to parent dapsone concentrations 3 hours after dosing with AUC values calculated during a 24-hour period as well as extrapolated to infinity. A single oral dose of 100 mg of dapsone was given to fasting subjects and serial blood samples were obtained over a 24-hour period and assayed by high-performance liquid chromatography for parent and acetylated metabolite. Dapsone pharmacokinetic parameters of AUC (23.4 +/- 8.6 micrograms.h/ml), half-life (24.8 +/- 11.5 hours) and apparent clearance values (81 +/- 30 ml/min) were consistent with those reported previously. Using established criteria for acetylation phenotyping, 20 percent of the subjects (6 of 30) demonstrated rapid acetylation. Bimodality in the ratios, independent of the experimental indices used to differentiate genetic metabolism, was not readily apparent. The data suggest that large variability in the pharmacokinetics of dapsone may sufficiently obscure the evidence of polymorphic metabolism. The use of dapsone as a marker of acetylator phenotyping should be limited to patient populations.

Acetylation

Studies on the carboxymethyl chitosan-containing liposomes for their stability and controlled release of dapsone.

Stable liposomes containing carboxymethyl chitosan (CMC) were prepared and characterized. CMC was introduced in the phosphatidyl choline (PC) liposomes by different methods; firstly, CMC in a free state in the aqueous phase; secondly as a coat (coupled); and finally as a conjugate of dapsone. The stability of liposomes was assessed by their disintegration in ethanol and surfactants. Both hydrophilic bromothymol blue and lipophilic dapsone were encapsulated in these liposomes and their in vitro release studies were carried out at 37 degrees C using different media, namely, phosphate buffer (pH 7.4), 0.02 N-HCl and 1% mouse plasma. The conjugate of dapsone with CMC present in PC liposomes gave the best results in its stability as compared to other modified liposomes. The release data of dapsone also confirmed the results of the stability studies on liposomes. CMC-dapsone conjugate released the dapsone much slower in all three media than did PCCMC and PCCMC-coat liposomes.

Bromthymol Blue