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Effect of deferiprone on urinary zinc excretion in multiply transfused children with thalassemia major.

A prospective multi-centric study was conducted to determine if iron-chelating agent deferiprone also chelates zinc. Twenty four-hour urinary zinc levels were compared in multiply transfused children with thalassemia major not receiving any chelation therapy (Group A, n = 28), those receiving deferiprone (Group B, n = 30) and age and sex-matched controls of subjects in Group B (Group C, n = 29) by a colorimetric method. The 24-hour mean urinary excretion of zinc was significantly higher in Group B than in the other two groups indicating that deferiprone chelates zinc.

Blood Transfusion↗

The influence of deferiprone (L1) and deferoxamine on iron and essential element tissue level and parameters of oxidative status in dietary iron-loaded mice.

The seven week feeding of a diet enriched with 0.5% TMH-ferrocene to male mice was used in this study to produce an iron-overload model in experimental animals for evaluating the effect of deferoxamine (DFO) and deferiprone (L1) on tissue-stored iron, induced lipid peroxidation (LP) and parameters of oxidative status. The iron concentration in the liver reached 600% of the level in control animals. The administration of seven doses of deferoxamine (DFO) i.p. and deferiprone (L1) p.o. (0.72 mmol/kg b.w., every 48 h) during 9th and 10th week significantly decreased the liver, kidneys and heart iron level in both iron-loaded and control mice. The DFO and L1 treatment also equally attenuated lipid peroxidation and increased the GSH level in the liver of iron loaded mice. The glutathione peroxidase (GSH-Px) activity and catalase activity were not affected by iron loading, however, both DFO and L1 caused a decrease of GSH-Px activity.

Animals↗

Deferiprone (L1) induced conformation change of hemoglobin: A fluorescence and CD spectroscopic study.

The interaction of deferiprone (1,2-dimethyl-3-hydroxy-pyrid-4-one) L1, the first clinically available oral iron chelator, with the tetrameric allosteric protein hemoglobin from human red blood cells has been investigated spectrofluorometrically and by circular dichroism spectroscopy. The interaction is hydrogenbond like electrostatic in nature, the binding constant being 4.54 x 10(3) M(-1) in 0.15 M NaCl. Circular dichroism studies indicate a conformational change of hemoglobin in presence of deferiprone, helicity of hemoglobin being reduced in presence of increasing concentration of the drug L1.

Circular Dichroism↗

New concepts of iron and aluminium chelation therapy with oral L1 (deferiprone) and other chelators. A review.

The introduction of oral chelation therapy with the alpha-ketohydroxypyridine chelator 1,2-dimethyl-3-hydroxypyrid-4-one (L1, INN/BAN: deferiprone) in iron- and aluminium-overloaded patients has been initiated in over 15 countries in the last 7 years. Over 600 patients with various conditions, in 26 centres have received L1, in some cases daily for over 5 years. In the vast majority of iron-loaded patients, doses of 55-100 mg kg-1 of L1 resulted in urinary iron excretion levels greater than those accumulating from transfusions (15-35 mg d-1) and also reduction in serum ferritin and liver iron to near normal levels. Urinary iron excretion was related to the iron load of the patients, as well as the dose and frequency of administration of L1. The L1 appears to mobilize iron mainly from a serum iron pool in excess of transferrin saturation, transferrin-bound iron and tissue iron, mainly but not exclusively from the liver. The order of metal binding by L1 at pH 7.4 is Fe > Cu > A1 > Zn. Aluminium removal from aluminium-loaded renal dialysis patients by L1 was also effective at doses similar to those used for iron-loaded patients. Overall toxic side effects include six cases of reversible agranulocytosis, 0-30% incidence of transient musculoskeletal and joint pains, 0-6% of gastric intolerance and 0-2% zinc deficiency. Deferiprone appears to be as effective as desferrioxamine in iron and aluminium removal and has low toxicity. Its oral efficacy and low cost make it more accessible than desferrioxamine for the vast majority of patients needing iron chelation worldwide. The development of other alpha-ketohydroxypyridines is currently in progress.

Aluminum↗

The safety and effectiveness of deferiprone in a large-scale, 3-year study in Italian patients.

In 1997, the Italian Ministry of Health created a special programme for the controlled distribution of deferiprone to collect data and to evaluate its safety and effectiveness in long-term use. Five hundred and thirty-two thalassaemia patients from 86 treatment centres were enrolled in this programme. One hundred and eighty-seven patients (32%) experienced a total of 269 events that led to a temporary interruption or, in some cases, to a discontinuation of treatment. The incidence of agranulocytosis and milder neutropenias were 0.4/100 and 2.1/100 patient-years respectively. Neutropenia occurred predominantly in younger and non-splenectomized patients. Transient alanine transaminase increase, gastrointestinal discomfort and arthralgia were the other most commonly reported events. Ferritin levels showed a significant decrease in time after 3 years of therapy. This is the largest number of deferiprone-treated patients to have been reported to date. These data show that the drug was effective in reducing serum ferritin levels and the incidence of adverse events was not greater than the frequency reported in clinical trials.

Adolescent↗

Comparison between desferrioxamine and combined therapy with desferrioxamine and deferiprone in iron overloaded thalassaemia patients.

Desferrioxamine (DFX) alone (40-50 mg/kg/d s.c. over 8-12 h, five times weekly) was compared with combined DFX twice weekly and deferiprone (75 mg/kg/d) over 12 months in previously poorly chelated thalassaemia patients. Serum ferritin fell from 5506 +/- 635 microg/l (mean +/- SEM) to 3998 +/- 604 microg/l (P < 0.001; n = 14) in the DFX group and from 4153 +/- 517 microg/l to 2805 +/- 327 microg/l in the combined group (P < 0.01; n = 11). Deferiprone plus DFX produced a greater mean urine iron excretion (1.01 mg/kg/24 h) than iron intake from blood transfusion in each patient. Main side-effects were skin reactions (DFX alone), nausea and arthralgia (combined therapy). As chelation therapy, the combined protocol was as effective as DFX five times weekly.

Adolescent↗

Clinical trial of deferiprone iron chelation therapy in beta-thalassaemia/haemoglobin E patients in Thailand.

Nine patients with either beta-thalassaemia/haemoglobin E (7) or homozygous beta-thalassaemia (2) not requiring regular transfusions were treated with the oral iron chelator, deferiprone 25-50 mg/kg/d for between 17 and 86 weeks (mean 49 weeks). There were significant decreases in serum ferritin (initial mean +/- standard deviation 2168 +/- 1142, final 418 +/- 247 micro g/l; t-test for paired samples, P = 0.005), hepatic iron (initial 20.3 +/- 6.26, final 11.7 +/- 4.83 mg/g/dry weight; P = < 0.02), red cell membrane iron (initial 76.2 +/- 3.64, final 7.2 +/- 0.56 mmol/mg protein; P = < 0.0005) and serum non-transferrin bound iron (initial 9.0 +/- 0.56, final 5.9 +/- 0.89 micro mol/l; P = < 0.0005). There was also a significant rise in serum erythropoietin (initial 240 +/- 195.1, final 433.2 +/- 269.2 U/l; P = 0.034). The haemoglobin level rose in three patients and transfusion requirements were reduced substantially in four patients. Serum thiobarbituric acid reactive substance (TBARS) also fell in six of eight patients. Patients generally improved clinically, with weight gain observed. Side-effects were mild and included gastrointestinal symptoms (6) and arthralgia (1), not requiring withdrawal of the drug. One patient died at 17 weeks of therapy as a result of an intercurrent infection. His neutrophil count was normal. We conclude that deferiprone is an effective, well-tolerated iron chelator for patients with thalassaemia intermedia. Further studies are needed to determine the optimum dose and length of treatment needed to reduce iron burden to a safe level in these patients.

Administration, Oral↗

Iron mobilization from transferrin and non-transferrin-bound-iron by deferiprone. Implications in the treatment of thalassemia, anemia of chronic disease, cancer and other conditions.

Iron mobilization from transferrin is one of the most important screening methods for the selection of chelators intended for clinical use in the treatment of iron overload in thalassemia and other conditions. In vitro and in vivo screening of approved and experimental chelating drugs has shown that only the alpha-ketohydroxypyridines deferiprone (L1) and 1-allyl-2 methyl-3-hydroxypyrid-4-one (L1NAll), are effective in the mobilization of iron from transferrin. Iron mobilization from transferrin and non-transferrin-bound-iron (NTBI) can be used to optimize existing chelation therapy protocols for the treatment of iron loaded patients. New chelation strategies involving L1 and its combination with deferoxamine (DFO) and other chelators can be used to increase iron excretion and reduce or prevent excess iron deposition in the heart and other vital organs of iron loaded patients by comparison to monotherapies. Deferiprone and its combinations may also have potential applications in the treatment of cancer, the anemia of chronic disease and other conditions.

Anemia↗

Inhibition of human immunodeficiency virus type 1 replication in human mononuclear blood cells by the iron chelators deferoxamine, deferiprone, and bleomycin.

Replication of human immunodeficiency virus type 1 (HIV-1) can be influenced by iron. Hence, decreasing the availability of iron may inhibit HIV-1 replication. Deferoxamine and deferiprone, both forming catalytically inactive iron-chelator complexes, and bleomycin, by use of which iron catalyzes oxidative nucleic acid destruction, were investigated. Expression of p24 antigen in human monocyte-derived macrophages and peripheral blood lymphocytes (PBL) was reduced by all 3 iron chelators. In PBL, p24 reduction was mirrored by a decrease in proliferation after incubation with deferoxamine or deferiprone, suggesting that viral inhibition is closely linked to a decrease in cellular proliferation. In contrast, clinically relevant bleomycin concentrations reduced p24 levels by approximately 50% without affecting proliferation. When deferoxamine and the nucleoside analogue dideoxyinosine were used in combination, they acted synergistically in inhibiting HIV-1 replication. These observations suggest that iron chelators with different mechanisms of action could be of additional benefit in antiretroviral combination therapy.

Anti-HIV Agents↗

Chelation therapy in patients with thalassemia using the orally active iron chelator deferiprone (L1).

BACKGROUND AND OBJECTIVE: Excessive hemosiderosis is the main reason for the multi-organ failure observed in multitransfused patients. Deferiprone (1,2-dimethyl-3-hydroxy-pyridine-4-one, L1) is an orally active iron chelator mainly excreted via urine. We conducted a study in order to determine the efficacy and safety of L1 in Greek thalassemic patients. DESIGN AND METHODS: A group of 11 thalassaemic patients entered the study; L1, the Cipla formulation for deferiprone, at a daily dose of 75-100 mg/kg bw t.i.d. was used. After giving informed consent all patients were subjected to clinical examination and biological tests. RESULTS: All patients tolerated the L1 well; there were no significant side effects (except for slight gastrointestinal disturbances for the first days). The net urinary iron excretion ranged from 6.96 to 26.1 mg/24h. Serum ferritin declined within 4-6 months in most of the patients. INTERPRETATION AND CONCLUSIONS: The results suggest that L1 is a rather safe drug which decreases iron overload without causing any considerable side-effects in Greek thalassemics.

Administration, Oral↗

Comparative efficacy of desferrioxamine, deferiprone and in combination on iron chelation in thalassemic children.

OBJECTIVE: Ascertainment of an appropriate strategy of iron chelation for multi-transfused thalassemic children in developing countries. DESIGN: Prospective study from May 2000 to April 2001. SETTING: Urban tertiary care center. METHODS: Thirty thalassemic children having received more than 20 blood transfusions and a serum ferritin greater than 1500 ng/ml were enrolled and randomized into three groups. Group I received desferrioxamine (DFX) at a dose of 40 mg/kg subcutaneously, 5 days/week. Children in group II received oral deferiprone (L1) at a dose of 75 mg/kg/day daily and group III received a combination of daily L1 at a dose of 75 mg/kg/day and DFX at a dose of 40 mg/kg/day two times per week. The assessment of chelation was done by 24-hr urinary iron excretion (UIE) and measurement of serum ferritin levels at start and after 6 months of follow up. Statistical difference of serum ferritin levels between the three groups was assessed by applying analysis of variance. Analysis of covariance was applied to find out the urinary iron excretion keeping serum ferritin values same in each groups. RESULTS: Ferritin levels after 6 months of intervention were maximally decreased in group I. There was a significant difference between groups I and II however, no difference was noted between groups I and group III. There was no statistically significant difference in mean urinary iron excretion by keeping the initial serum ferritin levels equal though it was found to be more in group III as compared to other groups. CONCLUSIONS: DFX is the most effective chelating drug in iron overloaded multi-transfused thalassemic patients. In view of cost and unacceptability of daily DFX injections, combination therapy is an effective method of chelation thus increasing the compliance and cost effectiveness. Deferiprone (L1) alone is not an effective mode of chelation when used for a short period.

Blood Transfusion↗

Cytotoxic activity of deferiprone, maltol and related hydroxyketones against human tumor cell lines.

Hydroxyketone chelators, deferiprone (HK1), maltol (HK3) and their related compounds (HK2, 4-8), were characterized for their cytotoxic profiles against oral human normal and tumor cells. Most hydroxyketones except HK6 showed relatively higher tumor-specific cytotoxicity. Deferiprone (HK1), which showed the highest tumor specificity, had 10 times higher cytotoxicity than maltol (HK3) in both human promyelocytic leukemia HL-60 and human oral squamous cell carcinoma HSC-2 cell lines. The cytotoxic activity of HK1 against HL-60 and HSC-2 cells was reduced in the presence of FeCl3, while that of HK3 was significantly increased by FeCl3. Agarose gel electrophoresis showed that HK1 induced internucleosomal DNA fragmentation in HL-60 cells, but the addition of FeCl3 inhibited the DNA fragmentation. HK3 did not induce DNA fragmentation in HL-60 cells, regardless of the presence or absence of FeCl3. In HSC-2 cells, HK1 and 3 did not induce DNA fragmentation in the presence or absence of FeCl3. Colorimetric protease assay showed that HK1 activated the caspase 3, 8 and 9 in HL-60 cells. On the other hand, HK3 did not activate the caspase 3, 8 and 9 in HL-60 cells, but activated the caspase 3 only slightly in the presence of FeCl3. HK1 and 3 also activated the caspase 3, 8 and 9 in HSC-2 cells, but to a lesser extent. The present study suggested that the antitumor activity of hydroxyketones may be modified by Fe3+ concentration.

Antineoplastic Agents↗

Liver iron stores in patients with secondary haemosiderosis under iron chelation therapy with deferoxamine or deferiprone.

Total body iron stores including liver and spleen iron were assessed by non-invasive SQUID biomagnetometry. The liver iron concentration was measured in groups of patients with beta-thalassaemia major or other posttransfusional siderosis under treatment with the oral iron chelator deferiprone (n = 19) and/or with parenteral deferoxamine (n = 33). An interquartile range for liver iron concentrations of 1680-4470 micrograms/g liver was found in these patients. In both groups a poor correlation between liver iron and serum ferritin values was observed. Repeated measurements of liver and spleen iron concentrations as well as determination of liver and spleen volume by sonography were performed in six patients under continuous deferiprone treatment for 3-15 months. In this group detailed information was obtained on the whole body iron store (5-36g) and the iron excretion rates (14-34 mg/d) for each patient. As indicated by decreasing liver iron concentrations, five out of six subjects showed a negative iron balance (2-13 mg/d). Conventional measurements of both serum ferritin and urine iron excretion gave fluctuating results, thus being only of limited use in the control of iron depletion therapy. The non-invasive biomagnetic liver iron quantification is a precise and clinically verified technique which offers more direct information on the long-term efficacy of an iron depletion therapy than the hitherto used methods. This technique may be of use in the clinical evaluation of new oral iron chelators.

Adult↗

Iron and atherosclerosis: inhibition by the iron chelator deferiprone (L1).

BACKGROUND: Accumulating evidence suggests that oxidative modification of lipoproteins may play a significant role in atherogenesis. In this study, we hypothesized that the iron chelator deferiprone (L1) would function as an antioxidant and decrease atherosclerosis progression. MATERIALS AND METHODS: For the in vitro studies, human low-density lipoprotein (LDL) was collected and then subjected to oxidation by either hemin/H2O2 or copper sulfate in the presence of various concentrations of L1. Lag time to oxidation was measured to assess antioxidant activity of L1. In addition, human umbilical vein endothelial cells (HUVEC) were subjected to oxidized LDL in the presence of varying concentrations of L1 to assess the antioxidant cytoprotective ability of L1. For the in vivo studies, rabbits (n = 21) were maintained on a 0.25% by weight cholesterol diet for 10 weeks; 9 rabbits also received twice daily L1 by gavage (total dose = 100 mg/kg/day). Lipid profiles were measured during the study. At 10 weeks, rabbits were sacrificed, and thoracic aorta cholesterol content (TACC) and planimetry were determined to assess atherosclerosis severity. RESULTS: In vitro, L1 prevented oxidation of LDL and protected HUVEC from the cytotoxic effects of oxidized LDL in a concentration-dependent manner. In vivo, L1 reduced TACC (P = 0.001), while also significantly decreasing total plasma cholesterol (P = 0.003), very-low-density lipoprotein cholesterol (P = 0.01), and LDL cholesterol (P = 0.002) compared to control animals. However, no significant differences between L1-treated animals and controls were evident for the surface area of plaque involvement by planimetry (P = 0.3) or in the serum iron levels (P = 0.3). CONCLUSIONS: These results confirm that L1 possesses antioxidant activity in vitro and may reduce atherogenesis in vivo.

Animals↗

Combined therapy with deferiprone and desferrioxamine successfully regresses severe heart failure in patients with beta-thalassemia major.

Cardiac complications caused by iron deposition are major causes of death in patients with beta-thalassemia major. Deferiprone (L1) was found to have greater efficacy at depleting myocardial iron than desferrioxamine (DFX). Furthermore, combined therapy with L1 and DFX produced an additive or synergistic iron chelating effect. We report the successful treatment of severe heart failure in two patients with beta-thalassemia major with the combined therapy. Magnetic resonance images showed a marked recovery of signal intensity in the heart, indicating a significant reduction of iron load in the heart. No significant adverse effects were noted. Therefore, combined therapy with L1 and DFX should be considered in patients with beta-thalassemia major and cardiac complications.

Adult↗

Combined therapy with desferrioxamine and deferiprone in beta thalassemia major patients with transfusional iron overload.

Iron overload is the main cause of morbidity and mortality especially from heart failure in patients with beta thalassemia major (TM). Successful iron chelation is therefore essential for the optimal management of TM. Although desferrioxamine (DFX) has been the major iron-chelating treatment of transfusional iron overload, compliance is a major hindrance in achieving optimal therapeutic results. The availability of oral iron chelation with deferiprone (L(1)) since 1987 is useful but showed poor efficacy when used alone as compared to DFX. We therefore decided to compare DFX alone with a prospective combined therapy with DFX and L(1) in beta thalassemia major patients with iron overload. We studied 91 patients with beta thalassemia major (mean age+/-SD, 15.02+/-5.8; range 2-30 years) attending the day care unit for regular transfusional support. They received packed red cells every 3-4 weeks to maintain pretransfusion hemoglobin concentration above 9 g/dl. They had been receiving DFX at a daily dose of 40 mg kg(-1) day(-1) by subcutaneous infusion for 8-10 h on 4-5 nights each week for the past several years. However, due to various reasons, they had developed considerable transfusional iron overload. These patients were allocated to prospectively receive additional therapy with oral iron chelator L(1) at 75 mg kg(-1) day(-1) body weight in three divided doses with food after informed consent and continued to receive treatment with DFX as per the above dosage. Of the 91 patients, six developed severe gastrointestinal (GI) upset, two agranulocytosis, two arthropathy, one persistently raised liver enzymes, two died owing to sepsis, and two received allogeneic bone marrow transplantation. Amongst the remaining 76 patients, 21 were found noncompliant (not taking DFX regularly, but taking L(1) regularly). Thus, in the 55 evaluable patients {6-48 months on combination therapy; mean [(+/-SD)22+/-12 months]}, the mean serum ferritin (+/-SD) fell dramatically from 3,088 (+/-1,299) ng/ml (DFX alone) to 2,051 (+/-935) ng/ml (DFX and L(1); p<0.001). It is interesting to note that there was also a significant improvement in the myocardial function as assessed by the ejection fraction (p<0.004) and fractional shortening (p<0.05) in those patients (n=42) who could be studied after being on combination therapy for a minimum of 1 year. The study emphasizes that beta thalassemia major patients with transfusional iron overload can be successfully treated with a combination of DFX and L(1). Our results also demonstrate a significant statistical improvement after as little as 6 months of combination therapy. Furthermore, these improvements lead to a progressive fall in the mean serum ferritin. Lastly, the study also demonstrates significant improvement in the echocardiographic parameters of myocardial performance in these patients receiving combination therapy.

Adolescent↗

Removal of thallium by combining desferrioxamine and deferiprone chelators in rats.

The hypothesis that two known chelators deferiprone (1,2-dimethy1-3-hydroxypyrid-4-one, L1) and desferrioxamine (DFO) might be more efficient as combined treatment than as monotherapies in removing thallium from the body was tested in rats. Six-week-old male Wistar rats received chelators: L1 (p.o.), DFO (i.p.) or L1 + DFO as 110 or 220 mg/kg dose half an hour after a single i.p. administration of 8 mg Tl/kg body weight in the form of chloride. Serum thallium concentration, urinary thallium and iron excretions were determined by graphite furnace atomic absorption spectrometry. Both chelators were effective only at the higher dose level, while DFO was more effective than L1 in enhancing urinary thallium excretion, L1 was more effective than DFO in enhancing urinary iron excretion. In the combined treatment group, L1 did not increase the DFO effect on thallium and DFO did not increase the effect of L1 on iron elimination. Our results support the usefulness of this animal model for preliminary in vivo testing of thallium chelators. Urinary values were more useful because of the high variability of serum results. Result of combined chelators treatment should be confirmed in a different experimental model before extrapolation to other systems.

Animals↗

Iron chelation treatment with combined therapy with deferiprone and deferioxamine: a 12-month trial.

The simultaneous use of deferioxamine (DFO) and deferiprone (DFP) has an additive effect in iron excretion in transfusion-dependent thalassemic patients. In a prospective study, we evaluated the safety and effectiveness of combined therapy with these two chelators. Fifty patients with beta-thalassemia were uniformly treated with DFP for 4 days per week and combined therapy with DFP and DFO for 3 days of the week. Efficacy was evaluated by ferritin and cardiac shortening fraction (SF). Hepatic hemosiderosis was also assessed by estimation of the T2 relaxation time by magnetic resonance in a subgroup of patients. Forty-three patients completed 1 year of therapy. Mean ferritin decreased from 3363.7 +/- 2144.5 microg/L to 2323.2 +/- 1740.8 microg/L (P < 0.0001). The reduction was significant even in the group of patients with ferritin <2500 microg/L. Significant improvement in T2 relaxation and SF was observed. The most common adverse events were gastrointestinal symptoms (20%) and transaminasemia (18%). The rate of agranulocytosis was 4.2 cases per 100 patient-years. Prolonged use of combined therapy with DFP and DFO is effective in decreasing iron load and improving cardiac function. Its possible association with higher incidence of agranulocytosis emphasizes the need for close monitoring.

Adolescent↗