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Effective combination therapy of deferiprone and deferoxamine for the rapid clearance of excess cardiac IRON and the prevention of heart disease in thalassemia. The Protocol of the International Committee on Oral Chelators.

The International Committee on Oral Chelators (ICOC) combination therapy protocol involving the administration of deferiprone (L1) during the day (80-110 mg/kg/day) and deferoxamine (DFO) (40-60 mg/kg at least 3 days/week) during the night for 8-12 hours using a pump, or the whole 24 hours using an elastomeric pump infuser, has been tested in 11 thalassemia patients (seven males, four females) over a period of 9-28 months. The patients had variable serum ferritin levels (0.54-4.6 mg/L) and cardiac iron load ranging from normal to severe siderosis levels (MRI T2*: 4.7-45 ms). There was a substantial overall reduction in serum ferritin levels (0.17-2.16 mg/L) and normalization of cardiac iron (MRI T2* >20 ms) in all patients. In two patients with severe and moderate cardiac iron load range levels, cardiac iron normalization was achieved within 9-10 months. Two patients on L1 monotherapy (80-120 mg/kg/day) maintained normal range MRI T2* cardiac iron levels over the same period. The ICOC combination therapy protocol appears to be the most effective and least cumbersome form of chelation treatment for the rapid clearance of excess iron from the heart.

Administration, Oral↗

A randomized controlled study evaluating the safety and efficacy of deferiprone treatment in thalassemia major patients from Hong Kong.

A controlled, open-label and randomized study was conducted to evaluate the safety and efficacy of the oral iron chelator deferiprone (L1) in thalassemia major patients from Hong Kong. Forty-nine patients were recruited in total (median age: 20 years; range: 8 to 40 years). The division of the patients was determined based on liver iron content and put into either the poorly-chelated (Group I) or well-chelated (Group II) groups. In Group I, 20 patients received combined therapy of L1 daily plus desferrioxamine (DFO), in a reduced frequency of twice weekly, while the control group consisted of 16 patients who were treated with DFO alone. In Group II, six patients received L1 only, while the control group consisted of seven patients treated with DFO alone. Only patients who participated for longer than 6 months were analyzed for efficacy (n = 44). The median study period was 18 months. Transient and mild gastrointestinal upset (31%), joint pain (15%) and liver enzyme elevation (23%) were the most common side effects noted for L1. No case of neutropenia was observed in this study. Serum ferritin (SF) levels showed significant decline in the poorly-chelated patients using combined therapy (L1 and reduced frequency DFO) as compared to those on DFO alone. However, their pre- and post-study liver iron content was not significantly different. Evaluation of the well-chelated group demonstrated no significant change in SF or liver iron content in both the study and control arms. We conclude that the short-term use of L1, with or without DFO, was safe and efficacious in our Chinese patient cohort. The long-term efficacy of reducing iron overload by treatment regimens including L1 requires further study.

Adolescent↗

Future chelation monotherapy and combination therapy strategies in thalassemia and other conditions. comparison of deferiprone, deferoxamine, ICL670, GT56-252, L1NAll and starch deferoxamine polymers.

Deferiprone (L1), and appropriate combinations with deferoxamine (DFO), can be used effectively for the treatment of thalassemia and other transfusional iron loading conditions. A number of experimental iron chelators such as deferasirox or ICL670 or Exjade (4-(3,5-bis (2-hydroxyphenyl)-1,2,4-triazol-1-yl)-benzoic acid), deferitrin (4,5-dihydro-2-(2,4-dihydroxyphenyl)-4-methylthiazole-4 (S)-carboxylic acid) or GT56-252, 1-allyl-2-methyl-3-hydroxypyrid-4-one or L1NAll and starch DFO polymers, are under clinical evaluation. ICL670 is the most advanced in development and appears to be effective in reducing liver iron in some patients but is overall ineffective in causing negative iron balance. It is also suspected that it is not effective in cardiac iron removal. Combination therapies using L1, DFO and new iron chelating drugs may cause higher efficacy and lower toxicity by comparison to monotherapies. However, several limitations including the high cost of the new chelating drugs may not facilitate the availability of these new treatments to the vast majority of thalassemia patients, most of whom live in developing countries.

Benzoates↗

Potential myocardial iron content evaluation by magnetic resonance imaging in thalassemia major patients treated with Deferoxamine or Deferiprone during a randomized multicenter prospective clinical study.

The purpose of this study was to evaluate if the variations of heart magnetic resonance imaging in beta-thalassemia major patients treated with Deferoxamine B mesylate (DF) or Deferiprone (L1) chelation therapy is a useful tool of the indirect myocardial iron content determination. For this reason, a prospective study was carried out. Seventy-two consecutive patients with beta-thalassemia major (35 treated with DF and 37 with L1) were studied. The main outcome results were laboratory parameters including determination of the liver iron concentration (LIC) and magnetic resonance imaging (MRI) of the heart and liver. The heart to muscle signal intensity ratios (HSIRs) were significantly increased in both the DF (t = -2.8; p < 0.01) and L1 (t = -3.1; p < 0.01) groups after one year of treatment No statistically significant difference in the values of HSIRs was present between the two groups at the beginning of treatment (p = 0.25; t = 1.13), and after one year of treatment (p = 0.20; t = 1.28). The HSIR were inversely correlated to the LIC (r = -0.52; p < 0.001) but not with ferritin levels (r = 0.10; p = 0.18). A positive correlation was found between the variation of HSIRs and that of the liver signal intensity ratios (r=0.52; p < 0.001), and a mild correlation (r = 0.40; p < 0.001) was found between the gamma glutamyltransferase (gammaGt) levels and the HSIRs values. Our data confirm that heart MRI is sensitive enough to detect significant variations of the mean HSIR during iron chelation with DF or L1.

Administration, Oral↗

Salivary measurement of deferiprone concentrations and correlation with serum levels.

Deferiprone (L1) is the first clinically available oral iron chelator and it has been proven to be effective for the treatment of transfusional iron overload in thalassemic patients. Because many of these patients have impaired compliance with their medications, effective means of continuous monitoring of compliance are crucial. Saliva drug monitoring has the potential advantage of an easy, noninvasive approach, assuming that it represents serum levels. However, drugs have variable correlations between saliva and serum concentration. We compared serum and saliva levels of L1 at various time points after ingestion of a 75 mg/kg/day dose in nine thalassemic patients. A highly significant correlation between serum-free L1 and saliva levels (r = 0.97, p = 0.0003) was found. Pharmacokinetic profiles were similar using serum and saliva monitoring. We conclude that saliva can be substituted for serum in monitoring L1 levels.

Deferiprone↗

The effect of deferiprone (L1) and desferrioxamine on myelopoiesis using a liquid culture system.

Agranulocytosis was observed in a 63-year-old patient with myelodysplasia 6 weeks after commencing chelation with the oral iron chelator deferiprone (1,2-dimethyl-3-hydroxypyrid-4-one, L1) at a daily dose of 79 mg/kg. Using a liquid culture system no difference was observed when L1 toxicity to normal and patient myelopoiesis was compared (IC50: 150 v 172 microM respectively). L1 was found to be less toxic than desferrioxamine (DFX) (IC50: 150 v 9 microM respectively) to normal myelopoiesis. Delayed addition of iron to myeloid cultures containing an inhibitory concentration of L1 or DFX was associated with reversal of chelator-induced inhibition of myelopoiesis up to 6 h but not after 24 h. Further studies are needed to determine the incidence and elucidate the pathogenesis of agranulocytosis associated with L1 therapy.

Agranulocytosis↗

Pharmacokinetics of the oral iron chelator deferiprone (L1) in patients with iron overload.

Single oral dose pharmacokinetics of the iron chelator deferiprone (L1) were studied in 24 patients with chronic iron overload and correlated with 24 h urinary iron excretion (UIE) and creatinine clearance. Absorption of L1 was rapid with a t1/2 of 22.2 +/- 17.7 (mean +/- SD) min. The elimination half-life (elt1/2) of the drug was 91.1 +/- 33.1 min and of its metabolite, L1-glucuronide (L1G) 147.7 +/- 52.0 min. Creatinine clearance of the patients correlated significantly with the elimination t1/2 of L1G (r = -0.79, P = 0.002). There was also a significant correlation between 24 h UIE in the 14 patients studied and L1 versus time area under the curve (AUC) (P = 0.007). The total amount of L1 recovered in urine in 24 h comprised 77.9 +/- 13.3% of the L1 dose. L1 efficiency (the 24 h UIE divided by the amount of iron the oral dose of L1 is capable of binding) in the 14 patients was 3.8 +/- 1.9%. These data show for the first time that the urinary elimination of L1G is influenced by the renal function of the patient. Although no significant accumulation of L1 and L1G will occur in most of the patients if L1 is given more than once daily, in some patients with impaired renal function, L1G may accumulate.

Administration, Oral↗

Results of long-term deferiprone (L1) therapy: a report by the International Study Group on Oral Iron Chelators.

This report updates the combined experience of four centres involved in the long-term treatment of transfusional iron overload in 84 patients with the oral iron chelator deferiprone (L1) over 167 patient-years. The source of L1 was variable, including two university research laboratories and three pharmaceutical firms. Compliance was rated as excellent in 48%, intermediate in 36%, and poor in 16% of patients. On a mean L1 dose of 73-81 mg/kg/d, urinary iron excretion was stable, at around 0.5 mg/kg/d, with no indication of a diminishing response with time. Serum ferritin showed a very steady decrease with time from an initial mean +/- 1 SD of 4207 +/- 3118 to 1779 +/- 1154 micrograms/l after 48 months (P < 0.001). 17 patients abandoned L1 therapy. Major complications of L1 requiring permanent discontinuation of treatment included agranulocytosis (three), severe nausea (four), arthritis (two) and persistent liver dysfunction (one). The remaining patients abandoned treatment because of low compliance (three) and conditions unrelated to L1 toxicity (four). Lesser complications permitting continued L1 treatment included transient mild neutropenia (four), zinc deficiency (12), transient increase in liver enzymes (37), moderate nausea (three) and arthropathy (17). There was no treatment-related mortality. Although the complications associated with L1 treatment are significant and require close monitoring, they do not preclude effective long-term therapy in the vast majority of patients. Further well-controlled prospective studies of L1 are required in order to enable proper judgement of its suitability for general long-term clinical use.

Adult↗

Use of the oral chelator deferiprone in the treatment of iron overload in patients with Hb H disease.

Seventeen non-transfusion-dependent Chinese haemoglobin H (Hb H) disease patients (age 29-76 years) with serum ferritin >900 microg/l were treated with deferiprone for up to 18 months. One patient withdrew and data from 16 patients were analysed. Sixteen other Hb H patients with ferritin <900 microg/l, matched for age and genotype, acted as controls. Treatment was well tolerated except for mild arthralgia. Serum ferritin fell with treatment, reaching significance at 6 and 18 months (from 1492.3 +/- 901.4 to 519.4 +/- 405.4 microg/l at 18 months, P = 0.0008). Nine of 16 patients had levels below 397 microg/l before 18 months. Serum ferritin remained stable 6 months after stopping treatment. In contrast, there was no change in ferritin levels in the control group. Magnetic resonance imaging was used for measurement of liver iron content. Spin echo T(1)-signal intensity ratio (T(1)-SIR) and gradient echo T(2)-signal intensity ratio (T(2)-SIR) increased with treatment. T(2)-SIR rose from 0.17 +/- 0.08 pretreatment to 0.58 +/- 0.50 at 2 years (P = 0.0055). Improvement occurred in 12 of 16 patients, reaching normal in three patients. Using echocardiography, peak early diastolic : late diastolic blood flow (E/A) remained unchanged with treatment, but isovolumic relaxation time (IVRT) was prolonged at 2 years indicating mild impairment of diastolic function. All systolic function parameters were normal. A longer treatment period is desirable to demonstrate improvement in cardiac function.

Administration, Oral↗

Deferiprone-associated myelotoxicity.

Agranulocytosis developed in a 63-year-old patient with myelodysplasia 6 weeks after commencing treatment with the oral iron chelator deferiprone (L1, 1,2-dimethyl-3-hydroxypyrid-4-one, CP20) at a daily dose of 79 mg/kg. This was the 3rd case of agranulocytosis (neutrophils 0 x 10(9)/l) in clinical trials of L1 at the Royal Free Hospital. The neutrophil count recovered 7 days after stopping L1 and commencing G-CSF at a dose of 300 micrograms daily. Three other patients with milder degrees of neutropenia (neutrophils < 1.5 x 10(9)/l) have also been observed in our trials. The case histories of these 4 patients are described here; other reported cases of neutropenia or agranulocytosis are reviewed. Based on worldwide long-term clinical trials the incidence of agranulocytosis is about 1.6% and of neutropenia 2%.

Adult↗

Long-term treatment with deferiprone in a L1 veteran.

We studied a patient with mild beta-thalassaemia major under treatment with the oral chelator deferiprone (DFP or L1) for about 10 yr (L1 veteran). Due to poor compliance with desferrioxamine, the patient started compassionate use of DFP at an age of 23 yr with a serum ferritin of 5200 microg/L. Monitoring iron overload by SQUID biosusceptometry revealed a dramatic decrease of liver iron concentrations from 4500 to 950 microg/g(liver) within 9.5 yr. A good clinical response to chelation treatment with DFP was observed together with an improvement of liver and cardiac function and a reduction in the hepatitis virus load.

Administration, Oral↗

Evaluation of the efficacy of oral deferiprone in beta-thalassemia major by multislice multiecho T2*.

OBJECTIVES: Oral deferiprone (L1) appears to be promising in the treatment of beta-thalassemia major (TM) patients. T2* magnetic resonance imaging (MRI) with a single measurement in the mid-ventricular septum was validated as a quantitative evaluation of myocardial iron overload. Previous studies suggested a marked heterogeneity of iron distribution in the myocardium. We set up a multislice multiecho T2* MRI for the detection of this heterogeneity. The aim of our study was to investigate differences between the L1 vs. the subcutaneous desferrioxamine (DF)-treated patients using this new approach. METHODS: Thirty-six beta-TM patients (age 29 +/- 8 yr) underwent MRI. Eighteen patients received long-term L1, and 18 other patients matched for age and sex received DF. T2* multiecho sequences on three short axis views of the left ventricle were obtained and analyzed by custom-made software. In each slice, the myocardium was automatically segmented into four segments. Cine-dynamic images were also obtained to evaluate biventricular function. RESULTS: For multislice T2* technique, the coefficient of variation for intra- and inter-observer, and inter-study reproducibility was 3.9%, 4.7%, and 5.5%, respectively. The global heart T2* value was significantly higher in the L1 vs. DF group (35 +/- 7 vs. 27 +/- 2 ms; P = 0.02). The number of segments with normal T2* value (>20 ms) was significantly higher in the L1 vs. the DF group (11 +/- 1 vs. 8 +/- 5 segments; P = 0.03). We did not detect significant differences in biventricular function parameters. CONCLUSIONS: This new approach confirms that L1 could be more effective than DF in removal of myocardial iron.

Adult↗

Long-term trials of deferiprone in Cooley's anemia.

Deferoxamine is the currently available agent for the iron-chelation therapy required by Cooley's anemia patients. The difficulties associated with parenteral administration have mandated a search for alternative therapies, especially orally active iron chelators, to remove excess iron that results in damage to the liver, endocrine organs, and heart. Four orally active agents have reached clinical trials in the last decade. The agent under consideration in this paper, deferiprone (1,2-dimethyl-3-hydroxypyridin-4-one), has shown some promise, but, according to the studies discussed here, may not provide adequate sustained control of body iron in a substantial proportion of Cooley's anemia patients.

Clinical Trials as Topic↗

Factors influencing effectiveness of deferiprone in a thalassaemia major clinical setting.

The effectiveness of deferiprone (L1) and the influence of other factors were determined in a clinical setting. Patients of Southern Italian origin, affected by beta-thalassaemia major (n = 13: 7 M, 6 F), aged 10-28 years (median 18 years), were treated with L1 within a 'Controlled Programme' of the Italian Ministry of Health. Desferrioxamine could not be administered in these patients because of anaphylactic reactions or other serious side effects. L1 was considered to be effective when the liver iron concentration was reduced or stable as measured by biomagnetic liver susceptometry. L1 proved to be effective in 3 out the 9 evaluable patients. A high pre-L1 iron overload was the main clinical factor influencing L1 effectiveness.

Adolescent↗

Efficacy and side effects of deferiprone (L1) in thalassemia patients not compliant with desferrioxamine.

We report our experience with deferiprone (L1) (DFP) in 17 thalassemic patients, followed up in one center in Lebanon, who were initially on desferrioxamine and then shifted to DFP at a dose of 50-75 mg/kg/day as the sole chelator during 1-year follow-up. All 17 patients were compliant with therapy and there was no change in physical examination over the study period. Eight patients (47.1%) were positive for hepatitis C virus (HCV) antibodies. Urinary iron excretion was 21.8 +/- 14 mg/24 h (mean +/- SD) 1 week after starting DFP and dropped 12 months later to 13 +/- 7.4 mg/24 h (p = 0.009, paired t test). The initial serum ferritin level was 3,863 +/- 2,344 microg/l which dropped to 3,179 +/- 2,075 at 12 months after starting therapy (p = 0.07). HCV-negative patients as a group exhibited a significant decrease in serum ferritin after 6 and 12 months of DFP therapy (3,942 +/- 2,739 vs. 2,341 +/- 1,179 and 2,681 +/- 1,519 microg/l; p < 0.03 and p < 0.05, respectively). The most frequent side effects were joint pain, stiffness or swelling in 6 patients (35.3%), and nausea in 7 patients (41.2%), but these were well tolerated and did not require stopping treatment.

Adolescent↗

Effects of deferiprone on immune status and cytokine pattern in thalassaemia major.

OBJECTIVE: The present study was undertaken to evaluate the possible occurrence of immunological abnormalities in thalassaemia major patients treated with deferiprone (L1). METHODS: Longitudinal observational cohort study. RESULTS: The absolute number of CD8+ lymphocytes was high and the CD4/CD8 ratio low before L1 treatment; these parameters returned to normal after 3 months of L1 treatment. TNF-alpha, IL-2 and IL-2sRalpha were elevated before L1 treatment (11.83 +/- 1.75, 11.75 +/- 3.91, 1,409 +/- 621 pg/ml, respectively), while IL-6 was normal (2.58 +/- 0.79 pg/ml). After 12 months of treatment, IL-10 was higher than in previous periods, although always within the normal range. TNF-alpha, IL-2 and IL-2sRalpha returned to normal after 12, 6, and 3 months of L1 treatment, respectively.

Adolescent↗

Reversal of cardiac complications by deferiprone and deferoxamine combination therapy in a patient affected by a severe type of juvenile hemochromatosis (JH).

Juvenile hemochromatosis (JH) is a rare autosomal recessive disorder of iron metabolism, genetically heterogeneous. In JH, symptomatic organ involvement occurs as early as the second decade of life. Heart failure and/or arrhythmias are the most frequent causes of death. Phlebotomy is the safest, most effective, and most economic therapeutic approach in hemochromatosis patients but is not indicated during the treatment of severe congestive heart failure with unstable hemodynamic status. The treatment of iron overload in these prohibitive clinical situations has to be carried out using iron chelators. We report a case of heart failure in the setting of unrecognized juvenile hemochromatosis successfully treated by the simultaneous administration of deferoxamine and deferiprone. To our knowledge, this is the first patient affected by JH treated with combined chelation regimen.

Adult↗

Combined therapy with deferoxamine and deferiprone.

Therapy with either deferiprone (DFP) or deferoxamine (DFO) is inadequate in achieving negative iron balance in many patients with thalassemia. There are mounting theoretical, experimental, and clinical evidences of increased efficacy when therapy includes both chelating agents. DFP and DFO chelate excess iron in different ways without affecting each other's metabolism. When both chelators are administered simultaneously, they interact either in an additive or synergistic manner, probably through "shuttling" iron from DFP to DFO. Iron-balance studies have shown that the use of both agents on the same day can induce negative iron balance in all patients. Long-term combined therapy with DFO with DFP results in considerable reduction of both ferritin levels and liver iron concentration as well as significant improvement in cardiac siderosis and function. This therapeutic regimen is well tolerated and safe, even though it may be related to a small increase in the incidence of agranulocytosis compared with DFP monotherapy. Apart from using both agents simultaneously, sequential administration of DFP and DFO has also shown promising results. Combining the available iron chelators offers many therapeutic options that can be tailored to each patient individually. It is an exciting advance in treating hemosiderosis in thalassemic patients.

Agranulocytosis↗