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Deferiprone iron chelation as a novel therapy for experimental mucormycosis.

OBJECTIVES: Patients treated with the iron chelator deferoxamine are known to be more susceptible to mucormycosis. However, while deferoxamine is an iron chelator from the perspective of the human host, deferoxamine actually serves as a siderophore, delivering free iron to Rhizopus oryzae, the major cause of mucormycosis. Other iron chelators, including deferiprone, which do not deliver iron to R. oryzae have been described. We therefore sought to determine whether iron-chelation therapy with deferiprone would effectively treat mucormycosis. METHODS: In vitro MIC and minimum fungicidal concentration (MFC) of the iron chelator, deferiprone, for R. oryzae were determined by microdilution assay. In addition, we compared the efficacy of deferiprone with that of liposomal amphotericin B (LAmB) in treating mucormycosis in diabetic ketoacidotic mice. RESULTS: Deferiprone demonstrated static activity against R. oryzae at 24 h, but showed cidality at 48 h of incubation. Deferiprone was as effective as LAmB at improving survival and decreasing brain fungal burden, and both drugs were more effective than placebo in non-iron-overloaded animals. Administration of free iron with deferiprone reversed protection, confirming that the mechanism of protection was iron chelation. CONCLUSIONS: Iron chelation is a promising, novel therapeutic strategy for refractory mucormycosis infections. Further studies are warranted to evaluate combination antifungal/iron chelation therapy and to evaluate the efficacy of other iron-chelating agents.

Amphotericin B↗

Systemic administration of the iron chelator deferiprone attenuates subarachnoid hemorrhage-induced cerebral vasospasm in the rabbit.

OBJECTIVE: Iron catalyzed generation of injurious free radicals has been implicated in the pathogenesis of cerebral vasospasm after subarachnoid hemorrhage (SAH). The present study assessed the effects of the iron chelator deferiprone on cerebral vasospasm in an in vivo rabbit model of SAH. METHODS: Twenty-four rabbits were assigned to three groups as follows: SAH plus placebo (n = 8), SAH plus deferiprone (n = 8), or control plus placebo (n = 8). Deferiprone was administered to an additional group of three rabbits that were not subjected to SAH. Drug administration was initiated 8 hours after SAH was induced and was repeated at 8-hour intervals. The animals were killed using perfusion-fixation 48 hours after SAH. Cross-sectional areas of basilar artery histological sections were measured by an investigator blinded to the treatment groups. RESULTS: In placebo-treated animals, the average luminal cross-sectional area of the basilar artery was reduced by 54% after SAH compared to controls (i.e., from 0.272 to 0.125 mm2). The vasospastic response after SAH was attenuated significantly in animals treated with deferiprone (0.208 mm2, representing a 24% reduction). CONCLUSION: Previous experimental studies suggested that iron chelation can be effective in attenuating cerebral vasospasm after SAH. Deferiprone is a recently developed iron chelator that has been extensively evaluated for the treatment of patients requiring chronic blood transfusions. The present study demonstrates that deferiprone is effective in attenuating experimental cerebral vasospasm. Because of its stability, lipophilicity, and ability to penetrate the blood-brain barrier, deferiprone represents an attractive candidate for the treatment of cerebral vasospasm.

Animals↗

A multi-center safety trial of the oral iron chelator deferiprone.

Deferiprone, also known as L1, is an orally active iron chelator that has been studied extensively in clinical trials. The sporadic occurrence of agranulocytosis in association with deferiprone and the highly variable frequency of other possible side effects such as arthralgia have created uncertainty about the true incidence of deferiprone-related complications. A multi-center, 1-year trial was initiated to determine the safety profile of deferiprone. Using the Apotex formulation of deferiprone, 187 patients with thalassemia who were unable or unwilling to use deferoxamine were enrolled in four centers; 162 patients completed one year of therapy. Agranulocytosis (ANC < 500/mm3) occurred in one patient after 15 weeks of treatment, was not accompanied by infection and resolved following treatment with G-CSF. Nine other subjects developed less severe neutropenia (ANC 500-1500/mm3) with the lowest absolute neutrophil count reaching 500-1250/mm3. The neutropenia in these patients developed after 1-50 weeks of therapy, frequently accompanied febrile illnesses, and occurred predominantly in non-splenectomized patients. Reasons other than neutropenia for discontinuing use of deferiprone included nausea (4), voluntary withdrawal (3), high ALT (2), platelet count < 100,000/mm3 (2), low but unconfirmed ANC (1), protocol violation (1) fatigue (1), and depression (1). Mean ALT levels rose within three months of therapy and stabilized thereafter. Arthralgia and nausea and/or vomiting occurred in 6% and 24% of subjects, respectively. In this multi-center trial with weekly monitoring of blood counts, the incidence of agranulocytosis was 0.58 per 100 patient-years, and the frequency of agranulocytosis after one year was 0.5%. These findings support the safety of this formulation of deferiprone, using the careful monitoring system employed in this trial.

Administration, Oral↗

Cardiac morbidity and mortality in deferoxamine- or deferiprone-treated patients with thalassemia major.

Deferoxamine (DFO) therapy has been associated with improved survival of thalassemia patients. However, cardiac disease remains the main cause of death in those patients. In 1995, the oral chelator deferiprone became available for clinical use. We compared the occurrence of cardiac disease in patients treated only with DFO and in those whose therapy was switched to deferiprone during the period of observation, from January 31, 1995, to December 31, 2003. All patients with thalassemia major treated in 7 Italian centers who were born between 1970 and 1993 and who had not experienced a cardiac event prior to January 1995 were included. DFO only was given to 359 patients, and 157 patients received deferiprone for part of the time. A total of 3,610 patient-years were observed on DFO and 750 on deferiprone. At baseline, the 2 groups were comparable for age and sex, while ferritin levels were significantly higher in patients switched to deferiprone. Fifty-two cardiac events, including 10 cardiac deaths, occurred during therapy with DFO. No cardiac events occurred during deferiprone therapy or within at least 18 months after the end of it. In the setting of a natural history study, deferiprone therapy was associated with significantly greater cardiac protection than deferoxamine in patients with thalassemia major.

Adolescent↗

[Effect of desferrioxamine and deferiprone on osteocalcin secretion in osteoblast-type cells].

Desferrioxamine and deferiprone are both metal-chelating drugs often used in aluminum-overloaded dialysis patients. In these patients, desferrioxamine produces an improvement on bone mineralisation without a relevant decrease in bone aluminum. Thus, desferrioxamine might have a direct effect on bone cells. The aim of this study was to assess the effect of desferrioxamine and deferiprone on 1,25(OH)2D3-stimulated osteocalcin secretion in osteoblast--like cells. The study was carried out in MG-63 cell cultures. Cells were seeded at a density of 15,000 cel/cm2 and grown to confluence for 72 hours in DMEM supplemented with 10% FCS. The medium was then replaced by another medium containing 1% BSA, 10(-9) M 1,25(OH)2D3 and desferrioxamine 5, 10, 20, 40, 60, 80 microM or deferiprone 15, 30, 60, 120, 180, 240 microM. Tris-HCl at pH 7.4 was used as control. After 48 hours, supernatants were collected for the measurement of secreted osteocalcin. Desferrioxamine and deferiprone, at high doses (desferrioxamine: 60 microM, 80 microM; deferiprone: 180 microM, 240 microM), inhibited the 1,25(OH)2D3-induced osteocalcin secretion. On the contrary, at lower doses (desferrioxamine 5 microM; deferiprone 15 microM) stimulated the secretion. In summary, these results suggest that desferrioxamine and deferiprone exert a direct effect on bone cell metabolism that might be independent from their metal-chelating properties.

Aluminum↗

Clinical use, therapeutic aspects and future potential of deferiprone in thalassemia and other conditions of iron and other metal toxicity.

The therapeutic aspects and future prospects of the new iron chelating drug deferiprone are reviewed, with an emphasis on its clinical use in thalassemia and other conditions of iron overload, imbalance and toxicity, as well as its possible use in other metal toxicity conditions. Orally administered deferiprone appears to be as effective as subcutaneous deferoxamine in the removal of iron in transfused iron loaded patients, with an equivalent therapeutic index profile in both animals and humans. Only about 10% of patients requiring iron chelation therapy worldwide receive deferoxamine mainly because of its high cost, toxicity and low compliance with subcutaneous administration. Deferiprone has been used by over 6000 patients in 40 countries worldwide, in some cases daily for more than 10 years, with very promising results. Doses of 50-120 mg/kg/day are effective in bringing patients to negative iron balance. Deferiprone increases urinary iron excretion, decreases serum ferritin levels and reduces liver iron in the majority of chronically transfused iron loaded patients. All of the toxic side effects of deferiprone are considered reversible and manageable, and include agranulocytosis, musculoskeletal and joint pains, gastrointestinal complaints and zinc deficiency. In general, the incidence of toxic side effects could be reduced by using lower doses or combination therapy with deferoxamine. The suggestion that deferiprone therapy may cause liver fibrosis has not been confirmed. New therapeutic protocols for maximizing the efficacy and minimizing the toxicity of deferiprone are being considered based on new findings in relation to its metal chelation, pharmacological, toxicological and metabolic properties. (c) 2001 Prous Science. All rights reserved.

Journal Article↗

Meta-analytic review of the clinical effectiveness of oral deferiprone (L1).

OBJECTIVE: To summarize efficacy and effectiveness in iron overloaded patients treated with the orally active iron chelator deferiprone also known as L1 or, using meta-analysis of the literature. METHODS: We reviewed the literature, searching Medline and Embase databases, as well as reviews and other literature on the topic. Inclusion criteria were: original clinical trials reporting results for serum ferritin concentration (SF), hepatic iron concentration or urinary iron excretion (UIE). Efficacy data had to have been reported after > or =3 months of treatment. Data were combined using a random effects model (Cochrane) modified for use with single groups to produce a point estimate and a 95% confidence interval. To summarize the clinical effectiveness, overall proportion of patients where deferiprone was able to reduce serum ferritin was calculated. We also examined average (mg x l(-1)) serum ferritin levels over the reported time (mean) and absolute decrease from the baseline after therapy. To summarize efficacy, success was defined as the proportion of patients who achieved UIE of 25 mg per day or 0.5 mg x kg(-1) x day(-1), which equals the average amount received from monthly blood transfusions. We also calculated the overall average level (mg per day) of UIE over the reported time of therapy (mean). As part of a sensitivity analysis, data were analyzed for two ranges of deferiprone dosage: < or = 50 mg x kg(-1) x day(-1) and > or =75 mg x kg(-1) x day(-1). RESULTS: Of 83 identified references, nine clinical trials met our inclusion criteria, providing data for 129 iron overloaded patients. After a mean of 16 months of therapy (range 6.4 36 months) with 66.4 mg x kg(-1) x day(-1) (mean) of deferiprone, 75.5% of highly iron overloaded patients had a decrease in serum ferritin from baseline. The average drop in serum ferritin of 0.8 mg x l(-1) was 23.5% from baseline. The overall average UIE for therapy was 28.8 mg per day in patients receiving > or = 75 mg x kg(-1) x day(-1) over 8.5 months of therapy. At the same dosage, more than half of the patients (51.8%) achieved negative iron balance. When studies with patients receiving lower dosage (< or = 50 mg x k(-1) x day(-1)) were included, the success rate was 45.1%. CONCLUSION: Overall, deferiprone has clinical efficacy in achieving negative iron balance and reducing body iron burden in highly iron overloaded patients. After an average of 16 months of deferiprone in doses > or = 75 mg x kg(-1) x day(-1), most patients had a decrease in ferritine concentration.

Administration, Oral↗

Deferiprone therapy for transfusional iron overload.

Iron chelation is needed to prevent damage to the heart, liver and endocrine glands from iron overload in patients with refractory anaemias who receive regular blood transfusions. Desferrioxamine is still the first-line drug, but because of its expense in many countries, and lack of compliance because of difficulty with administration, there is a major need for an orally active (and cheaper) chelating drug. Seventeen years after the first clinical trials deferiprone, which is orally active, has emerged as suitable for patients for whom desferrioxamine is, for one reason or another, inadequate. Many patients are successfully chelated at a dose of deferiprone 75 mg/kg/day. Some patients may need higher doses (up to 100 mg/kg), or combination therapy of deferiprone every day and desferrioxamine on several days each week. Recent data suggest that deferiprone may be superior to desferrioxamine at protecting the heart from iron overload. The side-effects of deferiprone--agranulocytosis, neutropenia, gastrointestinal symptoms, arthropathy, transient changes in liver enzymes, and zinc deficiency--are now well recognized; they result in discontinuation of the drug in only 5-10% of patients. Deferiprone is now licensed in 43 countries for thalassaemia major patients for whom desferrioxamine is inadequate. If results of current trials confirm its superiority at reducing cardiac damage, it may well become the first-line drug for many patients.

Chelation Therapy↗

Oral iron chelation with deferiprone.

Deferiprone is the most widely studied oral iron chelator and, at present, the only one shown to be effective in achieving negative iron balance in long-term clinical trials for chronic iron overload. Because of its adverse effects (e.g., agranulocytosis and arthropathy) its use is presently restricted to clinical trials and to countries where desferrioxamine is unavailable. Deferiprone was licensed for clinical use in India in 1995. Clinical trials are in progress in many centers worldwide that will provide further information on the long-term effectiveness of deferiprone as well as on the incidence of serious adverse effects in patients with iron overload. Trials of combined use of deferiprone and desferrioxamine are also in progress. In the meantime, deferiprone is an acceptable alternative for patients who cannot use desferrioxamine because of serious adverse effects, lack of compliance, or unavailability. Elucidation of the mechanisms involved in the agranulocytosis and arthropathy associated with deferiprone is still needed, as are methods to predict individual susceptibility to these adverse effects and ways of preventing them. In addition, new indications for iron-chelating therapy are continuously being explored.

Acute Disease↗

Comparison of effects of oral deferiprone and subcutaneous desferrioxamine on myocardial iron concentrations and ventricular function in beta-thalassaemia.

BACKGROUND: Despite the introduction of the parenteral iron chelator desferrioxamine more than 30 years ago, 50% of patients with thalassaemia major die before the age of 35 years, predominantly from iron-induced heart failure. The only alternative treatment is oral deferiprone, but its long-term efficacy on myocardial iron concentrations is unknown. METHODS: We compared myocardial iron content and cardiac function in 15 patients receiving long-term deferiprone treatment with 30 matched thalassaemia major controls who were on long-term treatment with desferrioxamine. Myocardial iron concentrations were measured by a new magnetic-resonance T2* technique, which shows values inversely related to tissue iron concentration. FINDINGS: The deferiprone group had significantly less myocardial iron (median 34.0 ms vs 11.4 ms, p=0.02) and higher ejection fractions (mean 70% [SD 6.5] vs 63% [6.9], p=0.004) than the desferrioxamine controls. Excess myocardial iron (T2* <20 ms) was less common in the deferiprone group than in the desferrioxamine controls (four [27%] vs 20 [67%], p=0.025), as was severe (T2* <10 ms) iron overload (one [7%] vs 11 [37%], p=0.04). The odds ratio for excess myocardial iron in the desferrioxamine controls versus the deferiprone group was 5.5 (95% CI 1.2-28.8). INTERPRETATION: Conventional chelation treatment with subcutaneous desferrioxamine does not prevent excess cardiac iron deposition in two-thirds of patients with thalassaemia major, placing them at risk of heart failure and its complications. Oral deferiprone is more effective than desferrioxamine in removal of myocardial iron.

Administration, Oral↗

Iron-chelation therapy with oral deferiprone in patients with thalassemia major.

BACKGROUND: To determine whether the orally active iron chelator deferiprone (1,2-dimethyl-3-hydroxy-pyridin-4-one) is efficacious in the treatment of iron overload in patients with thalassemia major, we conducted a prospective trial of deferiprone in 21 patients unable or unwilling to use standard chelation therapy with parenteral deferoxamine. METHODS: Hepatic iron stores were determined yearly by chemical analysis of liver-biopsy specimens or magnetic-susceptibility measurements. Detailed clinical and laboratory studies were used to monitor safety and compliance. RESULTS: The patients received deferiprone therapy for a mean (+/-SE) of 3.1 +/- 0.3 years. Ten patients in whom previous chelation therapy with deferoxamine had been ineffective had initial hepatic iron concentrations of at least 80 mumol per gram of liver, wet weight -- values associated with complications of iron overload. Hepatic iron concentrations decreased in all 10 patients, from 125.3 +/- 11.5 to 60.3 +/- 9.6 mumol per gram (P < 0.005), with values that were less than 80 mumol per gram in 8 of the 10 patients (P < 0.005). In all 11 patients in whom deferoxamine therapy had previously been effective, deferiprone maintained hepatic iron concentrations below 80 mumol of iron per gram. CONCLUSIONS: Oral deferiprone induces sustained decreases in body iron to concentrations compatible with the avoidance of complications from iron overload. The risk of agranulocytosis associated with deferiprone may restrict its administration to patients who are unable or unwilling to use deferoxamine.

Administration, Oral↗

Deferiprone, an oral iron chelator, ameliorates experimental colitis and gastric ulceration in rats.

Iron is pivotal is producing tissue-damaging reactive oxygen metabolites. Our aim is to determine the antiinflammatory activity of deferiprone, an oral iron chelator, in experimental colitis and gastritis. Colitis was induced by intraceccal administration of 2 ml 5% acetic acid or by intracolonic administration of 0.1 ml 3% iodoacetamide, with or without cotreatment with deferiprone. Gastritis was induced by intragastric administration of ethanol or hydrochloric acid (HCl) and by subcutaneous injection of indomethacin, with and without deferiprone. Rats were killed 24 hours after acetic acid and iodoacetamide, 30 minutes after ethanol, one hour after HCl, and three hours after indomethacin administration. The colon or stomach was isolated, macroscopic damage was measured, and mucosal samples were obtained for determination of eicosanoid generation, myeloperoxidase (MPO), and nitric oxide synthase (NOS) activities. Deferiprone decreased iodoacetamide and acetic acid-induced macroscopic colonic damage by 67% and 69%, respectively, and macroscopic gastric damage by 91%, 68%, and 46% induced by ethanol, HCl, and indomethacin, respectively. The effect of deferiprone was accompanied by significant decrease in colonic and gastric, MPO and NOS activities, and colonic prostaglandin E2 (PGE2) generation, in acetic acid, ethanol, and indomethacin models, whereas in the iodoacetamide and HCl models attenuation of the decrease in PGE2 generation was seen. Deferiprone is protective in experimental colitis and gastritis, probably due to decreased production of iron-dependent oxygen-free radicals. Oral iron chelators may constitute a novel approach to ameliorate gastrointestinal inflammatory disorders.

Acetates↗

Deferiprone protects the isolated atria from cardiotoxicity induced by doxorubicin.

AIM: To investigate the effects of deferiprone on doxorubicin-induced cardiotoxicity and determine its protection on cardiac contractility in vivo at tissue level. METHODS: Spontaneously-beating isolated atria from rats were pretreated with deferiprone for 10 min at 1.2 mmol/L or 0.3 mmol/L, respectively before co-incubation with doxorubicin (DOX) at 0.03 mmol/L for 60 min. Contractility (dF/dt) was assessed every 10 min during the incubation. After that, the tissues around the sinuatrial nodes were fixed for ultrastructural study; succinate dehydrogenase (SDH) and Cu, Zn superoxide dismutase (Cu, Zn-SOD) activity, as well as malondialdehyde (MDA) level of the atria were assayed. RESULTS: Treatment with DOX alone resulted in a 49.34% reduction of the contractility, mitochondria swelling, disruption of mitochondrial crista and decreased electron density of the matrices. Conversely, with the presence of deferiprone, the negative inotropic effect and lesions in the cardiac mitochondria structure induced by DOX were attenuated. Cu, Zn-SOD activity increased by 12.97%-12.11%, the MDA level decreased by 29.12%-39.82% and succinate dehydrogenase (SDH) activity was ameliorated by 25.15%-34.76%. CONCLUSION: Deferiprone can efficiently preserve cardiac contractility. Moreover, the results of this study indicate that deferiprone is able to protect mitochondrial function and structure form damage induced by DOX. This cardiac protective potential of deferiprone could be due to its defense capability against oxidative damage.

Animals↗

Comparison of the effects of deferiprone versus deferoxamine on growth and virulence of Yersinia enterocolitica.

Deferoxamine, a drug used to treat patients with iron overload, has the capacity to promote systemic Y. enterocolitica infections in humans. The aim of this study was to determine whether deferiprone, the only orally active alternative treatment, has the same potential. When Y. enterocolitica IP864 was grown in an iron-poor chemically defined medium, addition of deferoxamine promoted its growth, while various concentrations of deferiprone did not display this activity. Similarly, on iron-poor agar plates, various Y. enterocolitica strains were able to grow around paper disks impregnated with deferoxamine in a dose-dependent manner, while no growth was observed around the deferiprone disks. In a mouse experimental model of infection, the 50% lethal dose (LD(50)) of strain IP864 was decreased by more than 5 log units in mice pretreated with deferoxamine, while a deferiprone pretreatment did not affect it. Therefore, in contrast to deferoxamine, deferiprone does not enhance growth of pathogenic Y. enterocolitica in vitro and does not have the potential to promote Y. enterocolitica septicemia in a mouse model of infection. Deferiprone may thus represent a useful alternative iron-chelation therapy during invasive Y. enterocolitica infections.

2,2'-Dipyridyl↗

Randomized controlled trial of deferiprone or deferoxamine in beta-thalassemia major patients with asymptomatic myocardial siderosis.

Most deaths in beta-thalassemia major result from cardiac complications due to iron overload. Differential effects on myocardial siderosis may exist between different chelators. A randomized controlled trial was performed in 61 patients previously maintained on subcutaneous deferoxamine. The primary end point was the change in myocardial siderosis (myocardial T2(*)) over 1 year in patients maintained on subcutaneous deferoxamine or those switched to oral deferiprone monotherapy. The dose of deferiprone was 92 mg/kg/d and deferoxamine was 43 mg/kg for 5.7 d/wk. Compliance was 94% +/- 5.3% and 93% +/- 9.7% (P = .81), respectively. The improvement in myocardial T2(*) was significantly greater for deferiprone than deferoxamine (27% vs 13%; P = .023). Left ventricular ejection fraction increased significantly more in the deferiprone-treated group (3.1% vs 0.3% absolute units; P = .003). The changes in liver iron level (-0.93 mg/g dry weight vs -1.54 mg/g dry weight; P = .40) and serum ferritin level (-181 microg/L vs -466 microg/L; P = .16), respectively, were not significantly different between groups. The most frequent adverse events were transient gastrointestinal symptoms for deferiprone-treated patients and local reactions at the infusion site for deferoxamine. There were no episodes of agranulocytosis. Deferiprone monotherapy was significantly more effective than deferoxamine over 1 year in improving asymptomatic myocardial siderosis in beta-thalassemia major.

Adult↗

Comparative study of the protective effect between deferoxamine and deferiprone on chronic iron overload induced cardiotoxicity in rats.

Patients with iron overload frequently suffer from hemochromatosis of major organs, such as the heart and liver. Heart affection is the most common cause of death in patients with iron overload. Although the beneficial effects of deferoxamine (DFO) on iron-associated mortality are well documented, the role of deferiprone in the management of transfusional iron overload is controversial. The aim of this study was to compare the protective effect of iron chelators (DFO and deferiprone) individually and in combination with the anti-oxidant (vitamin C) in the prevention of myocardial damage. Sixty albino rats were divided into six groups: two control groups (noniron-loaded and iron-loaded) and four iron-loaded groups classified as follows: DFO group, DFO combined with vitamin C group, deferiprone group and deferiprone combined with vitamin C group. Heart tissue and blood samples were taken for histopathological examination of the heart, determination of total iron-binding capacity, 8-OH-deoxyguanosine (8-OH-dG), myocardial lipid peroxidation and glutathione (GSH) content. Less histopathological cardiac changes and a significant decrease in all biochemical parameters, except myocardial GSH, were observed in the deferiprone group. The addition of vitamin C improves the biochemical and histopathological changes in comparison to those rats administered DFO or deferiprone individually.

8-Hydroxy-2'-Deoxyguanosine↗

Experience with the oral iron chelator deferiprone in transfusion-dependent children.

OBJECTIVE: To establish efficacy and safety of deferiprone. DESIGN: Prospective study. SETTING: The Lady Ridgeway Hospital for Children, Colombo. PATIENTS: Transfusion-dependent children in the age group 1 to 15 years. INTERVENTION: Patients were given 75 mg/kg/day of deferiprone orally in divided doses. MEASUREMENTS: Efficacy of deferiprone therapy was assessed by 4 to 6 monthly serum ferritin (SF) assays. Safety of therapy was assessed by 4-weekly white cell counts and serum alanine aminotransferase (ALT) levels. The Z-score was used to assess the significance of the difference between the mean initial and final SF level. RESULTS: 82 patients received deferiprone therapy for a mean duration of 30 +/- 14 months. Initial SF levels ranged from 1115 to 12,165 micrograms/l with a mean of 5156 +/- 2631 micrograms/l. Final SF levels ranged from 312 to 15,285 micrograms/l with a mean of 2809 +/- 2380 micrograms/l (Z score 5.99; p < 0.001). Two (2.4%) children developed agranulocytosis which reverted to normal on discontinuation of treatment. 41 (50%) developed arthropathy and in 17 this was severe enough to require discontinuation of therapy. Serum ALT levels were raised in 35 (43%) patients but reverted to pretreatment values or lower despite continuation of deferiprone therapy. There was one death in a 9-year old child who developed diabetes mellitus and heart failure despite deferiprone therapy for 3 years. CONCLUSIONS: A final SF level < 2500 micrograms/l was achieved in 52% children. Severe arthropathy and agranulocytosis may necessitate permanent discontinuation of therapy.

Administration, Oral↗

Assessment of the effect of the oral iron chelator deferiprone on asymptomatic Plasmodium falciparum parasitemia in humans.

While the parenteral iron-chelating agent desferrioxamine B has anti-malarial activity in humans, the usefulness of an orally active chelator for this indication has not been investigated previously in vivo. We conducted a prospective, double-blind, placebo-controlled, cross-over trial of deferiprone (L1; CP20; 1,2-dimethyl-3-hydroxypyridin-4-one) in 25 adult Zambians with asymptomatic Plasmodium falciparum parasitemia. Deferiprone was administered daily for three or four days in divided doses of 75 or 100 mg/kg of body weight, dosages that are effective for treating iron overload. No reduction in asexual intra-erythrocytic parasites was observed during or after deferiprone treatment. The mean peak plasma concentration of deferiprone (108.9 +/- 24.9 micromol/L) achieved was within the range demonstrated to inhibit the growth of P. falciparum in vitro, but the systemic exposure as determined by the 24-hr plasma concentration-time curve would not be predicted inhibit growth in vivo. No evidence of deferiprone-associated hematological toxicity was noted in this short-term study of these subjects, all of whom had clinical evidence of normal body iron stores. Because of the risk of neutropenia and other adverse effects with higher doses or prolonged use of the chelator, additional trials of deferiprone as a sole anti-malarial agent would not seem to be justified. In contrast, further efforts are needed to develop other orally active iron-chelating agents specifically for their anti-malarial action.

Administration, Oral↗