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The relationship between dapsone dose, serum concentration and disease severity in dermatitis herpetiformis.

20 patients with dermatitis herpetiformis maintained on once daily dosing of dapsone were studied to investigate the pharmacodynamics of dapsone in suppressing clinical disease. Multiple correlation analysis was performed on variables including dosage requirements, serum concentration of dapsone and monoacetyl dapsone, acetylation ratio, IgA-containing circulating immune complexes, adherence to a gluten-free diet, and clinical disease severity. It was found that: 1. dapsone exhibits good bioavailability in dermatitis herpetiformis with absorption being unaffected by presumed gluten-sensitive enteropathy; 2. there is wide variation in serum concentrations of dapsone and monoacetyl dapsone with no specific "therapeutic level"; 3. acetylator phenotype was unrelated to dapsone dose requirement; 4. serum dapsone concentration had only a weak correlation with disease severity; and 5. there was poor correlation between IgA circulating immune complexes and dapsone serum concentration. The use of daily dapsone dose requirements or dapsone serum concentration necessary for disease suppression as an indicator of disease severity in the research setting is inappropriate. Measurements of serum concentration of the parent drug (dapsone) or principal metabolite (monoacetyl dapsone) do not serve as a useful guide to therapeutic management.

Acetylation↗

A century of the synthesis of dapsone: its anti-infective capacity now and then.

BACKGROUND: Although dapsone was first synthesized in 1908, a quarter of a century was to pass before it was used in the treatment of bacterial infections. Dapsone was, however, too toxic for humans (because of the excess dosage which was administered at that time) and was thus considered to be of no value in the treatment of common bacterial infections. Since the early 1950s, dapsone has been recognized as being uniquely effective against a number of noninfectious, inflammatory diseases and, today, this is its main indication. Thus, the reason why dapsone was first introduced into medicine, namely the treatment of bacterial infections, has been set aside and its main current applications are the treatment of noninfectious, inflammatory, autoimmune, and bullous diseases. OBJECTIVE: To study the anti-infective capacity of dapsone against common bacterial infections. As many patients who receive dapsone for the treatment of noninfectious, inflammatory diseases have a concomitant bacterial infection or a superinfection of their skin disease, we thought that, if dapsone proved to be effective against common bacterial infections, it may obviate the need for an additional antimicrobial drug in these patients. METHODS: Three bacterial ATCC> strains (Streptococcus pyogenes, Staphylococcus aureus, and Escherichia coli) were tested by a macrodilution minimal inhibitory concentration (MIC) test for dapsone. Dapsone concentrations were between 0.06 and 1125 microg/mL. RESULTS: Even the highest concentration of dapsone of 1125 microg/mL did not inhibit bacterial growth. CONCLUSIONS: Our results indicate that dapsone has no antibacterial effects whatsoever. Even at very high concentrations, it does not suppress the growth of most susceptible strains of bacteria. The story of dapsone (i.e. the long time that elapsed between its synthesis to its use for the chemotherapy of infectious diseases) will not repeat itself this time.

Dapsone↗

Population pharmacokinetics of dapsone in children with human immunodeficiency virus infection.

BACKGROUND: Previous studies of dapsone pharmacokinetics in children have been too small to allow assessment of the relationships between dapsone pharmacokinetic parameters and patient characteristics or markers of efficacy and toxicity. METHODS: We used population analysis to estimate dapsone pharmacokinetic parameters in children participating in a phase I/II study of daily and weekly dapsone in children with human immunodeficiency virus (HIV) infection. With use of the program NONMEM and a 1-compartment open model, the influence of demographic and clinical characteristics on oral clearance (CL/F) and oral volume of distribution (V/F) were examined. Measures of drug exposure (area under the concentration-time curve [AUC] and predicted concentrations just before and 2 hours after administration) were estimated for each patient and correlated with markers of efficacy and toxicity. RESULTS: Sixty children (median age, 3 years; age range, 2 months to 12 years) contributed 412 dapsone concentrations collected after 175 study doses. Final parameter estimates were 1.40 L/kg for V/F, 0.0283 L/kg/h for CL/F, and 2.66 for the absorption rate constant. Of the clinical characteristics evaluated, dapsone CL/F was significantly increased by 50% in children taking rifabutin, by 39% in black children, and by 38% in children younger than 2 years old. Although no significant correlations were found between any dapsone exposure parameter and markers of toxicity, increased AUC was associated with a decreased risk of Pneumocystis carinii pneumonia (PCP). CONCLUSION: Ethnicity, age, and concomitant rifabutin use were associated with dapsone CL/F, with more rapid clearance observed in black children, children younger than 2 years old, and children receiving rifabutin. Dapsone pharmacokinetic parameters were not associated with toxicity, but higher dapsone AUC was associated with decreased risk of PCP. Monitoring of serum dapsone levels may be needed for optimal management of dapsone for PCP prophylaxis in children.

AIDS-Related Opportunistic Infections↗

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↗

Dapsone-induced acute pancreatitis.

OBJECTIVE: To report a case of acute pancreatitis associated with dapsone use. CASE SUMMARY: An 87-year-old white man was prescribed dapsone for dermatitis herpetiformis. Four weeks later, he developed acute abdominal pain requiring hospitalization. The patient had elevated serum amylase and lipase levels. Laboratory test results for other possible etiologies were negative. His symptoms resolved when dapsone was discontinued. Dapsone was reintroduced for exacerbation of dermatitis herpetiformis 4 months later. The patient again had severe abdominal pain with high amylase and lipase levels. Again, symptoms resolved following dapsone discontinuation. DISCUSSION: Only 1 other case of pancreatitis associated with dapsone was found in a MEDLINE search of the literature (1966-June 2003) using the key terms dapsone and pancreatitis. An objective causality assessment revealed dapsone to be a probable cause of acute pancreatitis, based on the Naranjo probability scale. Drugs should always be considered as causative factors for pancreatitis in patients without known risk factors. Dapsone is increasingly used as a second line of treatment of Pneumocystis carinii pneumonia (PCP). The recognition of dapsone-induced pancreatitis is of particular importance in these patients. CONCLUSIONS: While dapsone is traditionally used for the treatment of leprosy and dermatitis herpetiformis, its use for PCP prophylaxis, malaria, brown recluse spider bites, and acne is not uncommon. Pancreatitis is an uncommon adverse effect of dapsone, and greater awareness of this association will prompt a high index of suspicion in an appropriate clinical setting. Further reporting of cases and clinical research of drug-induced pancreatitis is indicated.

Aged↗

Dapsone, trimethoprim, and sulfamethoxazole plasma levels during treatment of Pneumocystis pneumonia in patients with the acquired immunodeficiency syndrome (AIDS). Evidence of drug interactions.

STUDY OBJECTIVE: To examine the interaction between dapsone and trimethoprim in patients with the acquired immunodeficiency syndrome (AIDS). DESIGN: Measurement of drug levels as part of an open study of dapsone alone and randomized, double-blind comparison of trimethoprim-dapsone with trimethoprim-sulfamethoxazole in treating Pneumocystis carinii pneumonia in patients with AIDS. SETTING: County hospital and AIDS clinic. PATIENTS: Eighteen patients treated with dapsone alone, 30 with trimethoprim-dapsone, and 30 with trimethoprim-sulfamethoxazole. INTERVENTION: Dapsone, 100 mg/d; trimethoprim, 20 mg/kg body weight per day, and sulfamethoxazole, 100 mg/kg.d; administered for 21 days. MEASUREMENTS AND MAIN RESULTS: Concentrations of dapsone were 40% higher in patients treated with trimethoprim-dapsone than in those treated with dapsone alone (2.1 compared with 1.5 micrograms/mL; P less than 0.05). Trimethoprimdapsone-treated patients had fewer treatment failures but more side effects and treatment terminations due to toxicity than those treated with dapsone alone. The concentration of trimethoprim was 48.4% higher in patients treated with trimethoprim-dapsone than in those treated with trimethoprim-sulfamethoxazole, (18.4 compared with 12.4 micrograms/mL; P less than 0.05). Discontinuation of therapy due to toxicity was commoner in the trimethoprim-sulfamethoxazole group (57% compared with 30%). CONCLUSIONS: A bidirectional drug interaction exists between dapsone and trimethoprim, resulting in higher concentrations of each in the presence of the other.

Acetylation↗

Dapsone acetylation by human liver arylamine N-acetyltransferases and interaction with antiopportunistic infection drugs.

Dapsone is used in the treatment of Pneumocystis carinii pneumonia, an opportunistic infection that afflicts acquired immunodeficiency syndrome (AIDS) patients. Inhibition of N-acetyltransferase (NAT)-dependent acetylation of dapsone could increase peak plasma concentrations of dapsone and shift the biotransformation pathway to the P450-mediated formation of a toxic metabolite of dapsone, the hydroxylamine. Therefore, we have determined using human liver cytosol and bacterially expressed NATs, the NAT isoform responsible for acetylating dapsone and the potential for antiopportunistic infection drugs to inhibit this metabolic pathway. Formation of monoacetyldiaminodiphenylsulfone (MADDS) was quantitated by HPLC/UV detection at 270 nm after incubation of dapsone with 100 microM acetyl coenzyme A regenerating system and human liver cytosol. The mean +/- SD apparent KM for the formation of MADDS in three different human livers predicted to be fast acetylators based on genotyping was 98 +/- 17.6 microM, and the Vmax was 190 +/- 20 pmol/min/mg cytosol protein. Eadie-Hofstee transformation of the substrate velocity data was linear, indicating acetylation by a kinetically single enzyme. Sulfamethazine (250 microM) inhibited dapsone acetylation by 100% and 80%, respectively, at dapsone concentrations of 3 and 100 microM, in both fast- and slow-acetylating liver cytosol preparations, whereas para-amino-benzoic acid (100 microM) did not inhibit MADDS formation at either of these dapsone concentrations. Lineweaver-Burk plots of dapsone acetylation in the presence of 0, 25, and 50 microM sulfamethazine showed an increase in the apparent KM, with increase in sulfamethazine concentration with no change in the Vmax, indicating competitive inhibition of dapsone acetylation by sulfamethazine. The apparent KM of dapsone acetylation by bacterially expressed NAT1 and NAT2 enzymes was 687 and 136 microM, respectively.(ABSTRACT TRUNCATED AT 250 WORDS)

Acetylation↗

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↗

Lack of effect of nizatidine-induced elevation of gastric pH on the oral bioavailability of dapsone in healthy volunteers.

STUDY OBJECTIVE: To investigate the effect of histamine2 (H2)-receptor antagonist-induced elevation of gastric pH on oral bioavailability of a single dose of dapsone 100 mg. DESIGN: Prospective, randomized, crossover, open-label, single-dose pharmacokinetic study. SETTING: Teaching hospital. PATIENTS: Sixteen men were enrolled in the study; data from 11 subjects were evaluable. INTERVENTIONS: Participants received two treatments separated by at least 14 days. Treatment A consisted of a single dose of dapsone 100 mg. Treatment B consisted of a single dose of dapsone 100 mg plus two doses of oral nizatidine 300 mg administered 3-4 hours apart to maintain gastric pH above 6.0. Plasma samples collected before and up to 120 hours after dapsone administration were analyzed for dapsone and monoacetyldapsone (MADDS) by high-performance liquid chromatography. Pharmacokinetic parameters were determined by noncompartmental analysis. MEASUREMENTS AND MAIN RESULTS: Gastric pH in the first 6 hours after dapsone administration was above 6.0 for a mean +/- SD of 1.1% +/- 2.9% of the time in the absence of nizatidine and 69.5% +/- 18.0% of the time during nizatidine therapy. The geometric mean dapsone maximum plasma concentration (Cmax) declined by 13% (p<0.01), and median time to Cmax occurred 2 hours later (p<0.01) with nizatidine coadministration compared with dapsone alone. Inclusion of the 90% confidence interval for the mean Cmax ratio within the equivalence interval of 0.8-1.25 demonstrated the lack of clinical significance for this modest decrease in Cmax. Neither the area under the dapsone plasma concentration-time curve from zero to infinity nor the elimination half-life of dapsone were significantly altered by nizatidine. No clinically significant changes were observed in the pharmacokinetics of MADDS with regard to coadministration of nizatidine. CONCLUSION: Elevation of gastric pH by H2-receptor antagonists, such as nizatidine, does not result in clinically important changes in the rate or extent of oral dapsone absorption.

Administration, Oral↗

Dapsone decreases the cumulative incidence of diabetes in non-obese diabetic female mice.

Dapsone (4,4'-diaminodiphenyl sulfone) has a large clinical experience due to its antimicrobial effects against Mycobacterium leprae, the causative agent of leprosy, and is used clinically where inflammation mediated by neutrophils is perceived to play a role. We administered dapsone in two concentrations (0.001% and 0.0001% w/w of diet) to 30 female non-obese diabetic (NOD) mice to explore the effect of dapsone on the development of IDDM following either a 1-week pulse or 20 weeks of continuous oral dapsone administration. Those mice receiving either the high or low doses of dapsone in the continuous group had a significantly reduced cumulative percentage of onset of IDDM. One of the seven mice given 0.0001% dapsone became diabetic (age 25 weeks), while none of the eight high dose (0.001%) mice developed the disease. Histological examination of pancreatic sections revealed islet infiltration in all groups of animals. The pulse and continuous experiments showed no statistically significant difference in the frequency or severity of lymphocytic infiltration. Dapsone administration did not inhibit growth, and growth rates were greater in those animals receiving the higher dapsone dose compared with the lower dose comparable to controls. We studied whether dapsone influenced murine lymphocyte function in addition to the published effects of the drug on neutrophils. At doses approximating those achieved in vivo (0.4 and 2 micrograms/ml), dapsone was found to inhibit murine splenocyte IL-2 and IL-4 secretion in response to concanavalin A. In view of the wide clinical experience with dapsone, randomized trials of the drug in new onset diabetes may be warranted.

Animals↗

The effect of clarithromycin, fluconazole, and rifabutin on dapsone hydroxylamine formation in individuals with human immunodeficiency virus infection (AACTG 283).

BACKGROUND: Dapsone hydroxylamine formation is thought to be the cause of the high rates of adverse reactions to dapsone in human immunodeficiency virus (HIV)-infected individuals. Therefore we studied the effect of the commonly coadministered drugs fluconazole, clarithromycin, and rifabutin on hydroxylamine formation in individuals with HIV infection. METHODS: HIV-infected subjects (CD4 + > or =200 cells/mm 3 ) were enrolled in a 2-part (A or B) open-label drug interaction study. In part A, subjects (n = 12) received dapsone (100-mg tablet once daily) alone for 2 weeks and then, in a randomly assigned order, received dapsone and either fluconazole (200 mg daily), rifabutin (300 mg daily), or fluconazole plus rifabutin, each for a 2-week period. Part B (n = 11) was identical to part A except that clarithromycin (500 mg twice daily) was substituted for rifabutin. On the last study day of each 2-week period, plasma and urine were collected over ascorbic acid for 24 hours. RESULTS: In part A, fluconazole decreased the area under the plasma concentration-time curve, percent of dose excreted in 24-hour urine, and formation clearance of the hydroxylamine by 49%, 53%, and 55% (n = 12, P < .05), respectively. This inhibition of in vivo hydroxylamine formation was quantitatively consistent with that predicted from human liver microsomal experiments. Rifabutin had no effect on hydroxylamine area under the plasma concentration-time curve or percent excreted in 24-hour urine but increased formation clearance of the hydroxylamine by 92% (n = 12, P < .05). Dapsone clearance was increased by rifabutin or rifabutin plus fluconazole (67% and 38%, respectively) (n = 12, P < .05) but was unaffected by fluconazole or clarithromycin. In part B, hydroxylamine production was unaffected by clarithromycin but was affected by fluconazole in a manner identical to that in part A. CONCLUSIONS: On the basis of these data and with the assumption that the exposure to the hydroxylamine is a determinant of dapsone toxicity, we predict that coadministration of fluconazole should decrease the rate of adverse reactions to dapsone in persons with HIV infection but that rifabutin and clarithromycin will have no effect. When dapsone is given in combination with rifabutin, dapsone dosage adjustment may be necessary in light of the increase in dapsone clearance.

Adult↗

Minimal in vivo activation of CYP2C9-mediated flurbiprofen metabolism by dapsone.

Dapsone has been shown to activate flurbiprofen 4'-hydroxylation by expressed CYP2C9 enzyme and in human liver microsomes. It has been suggested that this observation is due to substrate cooperativity on enzyme activity; however, the in vivo relevance of this observation is unknown. Thus, the purpose of this study was to evaluate whether dapsone can act cooperatively with flurbiprofen to activate the in vivo metabolism of flurbiprofen to 4'-hydroxyflurbiprofen. Twelve healthy subjects received single-dose flurbiprofen 50 mg on three occasions: alone (visit A); 2 h after a single dapsone 100-mg dose (visit B); and 2 h after the seventh daily dose of dapsone 100 mg (visit C). Concentrations of flurbiprofen and 4'-hydroxy flurbiprofen in plasma and urine and dapsone and N-acetyldapsone in plasma were determined by HPLC. Flurbiprofen pharmacokinetic parameters for the three visits were estimated by non-compartmental methods and compared in the absence and presence of dapsone. Flurbiprofen apparent oral clearance was increased by approximately 11% (P < 0.02) after dapsone 100 mg for 7 days. Dapsone plasma concentrations averaged 5 +/- 2 microM after a single dose and 11 +/- 4 microM after seven daily 100 mg doses. These dapsone plasma concentrations were within the range of concentrations producing activation of flurbiprofen metabolism by CYP2C9 in vitro. These results are consistent with the hypothesis that dapsone does influence flurbiprofen metabolism in vivo in a cooperative way to enhance metabolism. However, the magnitude of effect is substantially less than observed in vitro.

Anti-Inflammatory Agents, Non-Steroidal↗

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 chemiluminescence in human neutrophils by dapsone.

Dapsone at doses of 0.5 to 5.0 micrograms/ml was found to produce a dose-dependent inhibition of opsonized zymosan-induced human polymorphonuclear leukocyte (PMN) chemiluminescence (CL) in vitro. Simultaneous exposure of PMN to dapsone and zymosan was as effective in reducing CL as preincubation of PMN with dapsone. Preincubation of PMN with dapsone followed by washing, resulted in the loss of dapsone-mediated CL inhibition, indicating that dapsone did not permanently alter the CL-generating mechanism and that the drug had to be present to inhibit CL. Dapsone did not absorb light at the wavelength of CL and was not toxic to PMN at concentrations tested. Sodium azide, an inhibitor of myeloperoxidase-mediated CL inhibited PMN CL to the same degree as dapsone. When incubated together with PMN, dapsone and azide did not produce an additive inhibition of CL. These data suggest that inhibition of myeloperoxidase may be the mechanism by which dapsone inhibits PMN CL.

Adult↗

The effect of pregnenolone 16alpha-carbonitrile on the pharmacokinetics and metabolism of dapsone in rats.

The purpose of this study was to evaluate the effect of pregnenolone 16 alpha-carbonitrile (PCN) on the interconversion pharmacokinetics and metabolism of dapsone. To determine microsomal CYP3A activity and protein, eight rats (4 PCN, 4 corn oil) received a 1 mg kg(-1) intravenous bolus dose of dapsone, followed by blood and urine sampling. The formation clearance of dapsone hydroxylamine (CLf DDS-NOH) was calculated from the obtained samples. Interconversion pharmacokinetics estimates were obtained after 10 rats (5 PCN, 5 control) received 1 mg kg(-1) dapsone or 1.17 mg kg(-1) monoacetyldapsone, with a 24-h wash-out. Results from the interconversion analysis demonstrated that PCN significantly increased systemic clearance (CLs) of dapsone, but not its interconversion. The in-vivo/in-vitro correlation study demonstrated that PCN significantly increased CLs of dapsone (8.55 to 16.39mLmin(-1); P<0.01) and CLf DDS-NOH (0.13 to 0.18mLmin(-1); P<0.01). PCN treatment produced a 69% increase in CYP3A protein, and increased 6beta- and 2beta-hydroxytestosterone formation rates. Significant correlations were found between CLf DDS-NOH and either 6beta- (r2 = 0.925), 2beta-hydroxytestosterone (r2 = 0.92), or CYP3A1/2 protein (r2= 0.60). We conclude that PCN treatment produces significant increases in CLs (dapsone) and CLf (DDS-NOH) in rats. These changes were not due to changes in the reversible metabolism of dapsone. These results suggest that the formation clearance of dapsone hydroxylamine reflects alterations in CYP3A activity, despite the fact that it accounted for a small part of the systemic clearance of dapsone.

Animals↗

Dapsone-induced peripheral neuropathy. Case report and review.

A severe motor and a minor sensory neuropathy developed in a man being treated with dapsone (4,4'-diaminodiphenylsulfone) for dermatitis herpetiformis. He had received dapsone for 16 years before any signs of neurotoxicity became evident. Electrodiagnostic and clinical features were consistent with an axonal neuropathy. Clinical characteristics of dapsone-induced neuropathy include a motor neuropathy affecting the extremities, usual onset within five years after the initiation of dapsone therapy, dapsone dosage usually equal to or greater than 300 mg/day, and, almost always, complete recovery from the neuropathy after dapsone-dose reduction or withdrawal. The patient was found to be a slow acetylator of sulfamethazine, and therefore is a slow acetylator of dapsone. An HLA typing was done on the patient. New cases of dapsone-induced neuropathy should be HLA typed and have acetylation profiles in an attempt to identify future high-risk patients. This case is noteworthy for the length of time of dapsone usage (16 years) and the low daily dosage of dapsone (100 mg) taken prior to the development of neuropathy.

Adult↗

In vitro and in vivo dapsone release from hydroxyapatite reservoirs.

Dapsone is a drug which is administered orally, on a daily basis, for four to five years as a cure for leprosy. The major problems associated with dapsone therapy include hemolysis, methemoglobinemia and patient non-compliance. Cimetidine reduces the side effects of dapsone and increases its levels in the blood. A ceramic drug delivery system was developed to maintain therapeutic levels of dapsone for an extended period of time and to alleviate associated side effects. In vitro release of commercial dapsone tablets (100 mg) and cimetidine pellets (400 mg) from hydroxyapatite reservoirs was studied in 100 ml absolute ethanol at 37 degrees C. Hydroxyapatite (HA) reservoirs loaded with one dapsone tablet released the drug at the rate of 8.3 mg/day for nine days, after which a much slower release occurred for another three days. With a load of two dapsone tablets, the rate of release was 6.7 mg/day for four weeks. HA reservoirs loaded with one cimetidine pellet delivered the drug at a rate of 25 mg/day for sixteen days. Combining both drugs in a single reservoir did not affect their respective release rates. When implanted subcutaneously in rats, HA reservoirs loaded with one dapsone tablet appeared to be well tolerated. After nine weeks, 77 mg of dapsone had been released. These experiments showed that HA reservoirs can be used to deliver dapsone and cimetidine in vivo.

Animals↗

Dapsone as a glucocorticoid-sparing agent in maintenance-phase pemphigus vulgaris.

OBJECTIVE: To determine the effect of dapsone on glucocorticoid-dependent patients with active or maintenance-phase pemphigus vulgaris. DESIGN: Retrospective study of consecutive patients treated with dapsone. SETTING: University of Pennsylvania, Philadelphia (a tertiary referral hospital). Patients We observed 9 consecutive adult patients with pemphigus vulgaris being treated with immunosuppressants who were unable to taper prednisone use without abrupt worsening of their disease.Interventions Dapsone treatment added to prednisone and other immunosuppressive therapy. Main Outcome Measure Steroid dosage. RESULTS: All patients were unable to taper their steroid dose during the 3 months prior to the initiation of dapsone therapy or had active disease that was not well controlled by prednisone prior to dapsone treatment. With the exception of 1 patient with uncontrolled disease, all 9 patients were able to taper their steroid dose below the adrenal replacement level during dapsone treatment. Maintenance-phase patients taking 15 mg/d or more of prednisone (n = 5) experienced a mean +/- SEM drop of 67% +/- 7.1% in prednisone dose by 4 months of maximal dapsone treatment and an 84% +/- 3.5% drop in prednisone dose after 8 months of dapsone treatment. CONCLUSIONS: These retrospective study findings suggest that dapsone reduces steroid dependence in patients with pemphigus vulgaris, provided they are in the maintenance phase of their disease. These data support the need for a prospective, randomized trial to confirm these findings.

Adult↗