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Severe iron poisoning treated with enteral and intravenous deferoxamine.

An 18-month-old boy ingested approximately 18 g FeSO4, equivalent to 336 mg/kg elemental Fe. He rapidly developed severe gastroenteric symptoms, obtundation, and transient hypotension. The serum iron level two hours after ingestion was 6,798 micrograms/dL. He was treated with deferoxamine intravenously, enterally, and as a lavage solution. His hospital course was notable for lack of severe neurologic, hepatic, metabolic, or cardiovascular complications acutely with apparent complete recovery, although he returned six weeks after ingestion with intestinal obstruction due to a jejunal stricture.

Deferoxamine↗

Concomitant iron and aluminum mass transfer following deferoxamine infusion during hemofiltration.

Variable tissue overloading can alter the removal rate of iron and aluminum from uremics. Owing to its higher affinity to deferoxamine (DFO) and higher plasma concentrations, Fe could impair Al removal in cases of simultaneous body burden. Fe and Al plasma kinetics and mass transfer were therefore studied in 12 uremic patients with different Fe and Al status: six with normal ferritin levels (less than 400 micrograms/L [ng/mL]), and Al 1.4 to 4.7 mumol/L (40 to 131 micrograms/L) (group A); six with increased ferritin (greater than 2,000 micrograms/L), and Al 1.7 to 17 mumol/L (47 to 476 micrograms/L) (group B). DFO (40 and 80 mg/kg in a random sequence) was administered once a week during the first hour of the first hemofiltration (HF). The results show that in both groups and with both DFO doses, maximum Fe and Al mass transfer was achieved in the first and second HF, respectively. The 80-mg/kg dose of DFO significantly raised Al mass transfer in both groups, whereas Fe mass transfer was only slightly affected. Even though plasma Fe levels were almost always higher than Al, Al mass transfer eventually exceeded that of Fe, in both Fe-normal and Fe-overload patients. The bias towards Al in mass transfer was enhanced in both groups in the second HF, and at the higher DFO doses. Thus, DFO once a week reduced Fe loss to less than 30 mumol/wk in patients with normal ferritin levels. In both Fe and Al overloaded patients, Al can be removed, and Al mass transfer may often exceed Fe mass transfer, depending on the degree of tissue burden, the time from DFO infusion, and the DFO dose.

Adult↗

Precipitation of dialysis dementia by deferoxamine treatment of aluminum-related bone disease.

Five patients with chronic renal failure, complicated by bone aluminum toxicity, were treated with deferoxamine (DFO). This treatment appeared to precipitate dialysis dementia, which was fatal in three patients. In two patients, continuous treatment with lower doses of DFO was possible. The development of dialysis dementia in chronic renal failure patients with very high serum aluminum levels may be a complication of DFO treatment.

Adult↗

Reduction in liver iron in hemodialysis patients with transfusional iron overload by deferoxamine mesylate.

Four hemodialysis patients with transfusional iron overload were treated with three times weekly intravenous (IV) deferoxamine mesylate during the dialysis treatment. Using a gamma ray scattering technique, significant reductions in liver iron content were documented, with a mean follow-up of 20 months. Three of the four patients showed significant improvements in liver enzymes. This decrease in liver iron content could not be predicted by clinical parameters or serum ferritin. Therapy proved to be safe and effective, but follow-up requires monitoring of tissue iron by means other than standard laboratory tests.

Adult↗

Accelerated removal of deferoxamine mesylate-chelated aluminum by charcoal hemoperfusion in hemodialysis patients.

Although deferoxamine mesylate (DFO) is effective in removing aluminum (Al) in hemodialysis patients, treatment with this drug is associated with a number of adverse effects. In order to limit the exposure of patients to DFO-Al complexes, the efficacy of colloidin-coated microencapsulated charcoal cartridges added in series to conventional dialyzers was investigated. The clearances of Al by the sorbent system were initially 116 +/- 4.7 mL/min, but decreased to 42.5 +/- 6.6 mL/min after 120 minutes of treatment. Thereafter, the Al clearances remained constant. In contrast, the Al clearances of the dialyzer were 29.5 +/- 1.8 mL/min initially and did not change during the treatment period. Both the percent and absolute decrease in Al levels after four hours of dialysis were greater with the dialyzers plus carbon cartridges than with the dialyzers alone. This resulted in an increase in the minimum net Al removal from 1,862 +/- 174 micrograms/treatment to 3,007 +/- 43 micrograms/treatment (P less than 0.05). Treatment with sorbent hemoperfusion should be considered in selected hemodialysis patients being treated with DFO for Al overload.

Aluminum↗

Comparative aluminum mobilizing actions of deferoxamine and four 3-hydroxypyrid-4-ones in aluminum-loaded rats.

The efficacy of the Al chelating drugs deferoxamine (DFO) and the hydoxypyridones (HPs): 1,2-dimethyl-3-hydroxypyrid-4-one (L1), 1-[3-hydroxy-2-methyl-4-oxopyridyl]-2-ethanesulfonic acid (L6), 1-benzyl-(4-carboxylic acid)-3-hydroxy-2-methyl-4-oxopyridine (Bzcal) and 1-(p-methylbenzyl)-2-ethyl-3-hydroxypyrid-4-one (MeBzEM) in increasing Al excretion and reducing tissue Al accumulation has been compared in adult male rats which had previously received Al nitrate nonahydrate i.p. at 0.16 mmol/kg per day for 2 months. At the end of this period, DFO was injected s.c. and the HPs were given by gavage at 0.89 mmol/kg per day for five consecutive days. Total urines were collected 24 h after each chelator administration. Following chelation treatment animals were killed and samples of brain, bone, liver, kidney, and spleen were collected. DFO administration increased to about 4 x the cumulative urinary Al elimination for 5 days, while the excretion of Al into urine caused by Bzcal, L1, and MeBzEM administration was about twice that of the control group. On the other hand, treatment with Bzcal, DFO, and MeBzEM for 5 days significantly reduced the Al levels in bone by 31, 33, and 29%, and the Al concentrations in brain by 46, 69, and 71%, respectively. These results suggest that oral administrations of MeBzEM and Bzcal can be potential alternatives to parenteral administration of DFO in Al removal.

Aluminum↗

Melatonin improves deferoxamine antioxidant activity in protecting against lipid peroxidation caused by hydrogen peroxide in rat brain homogenates.

Deferoxamine (DF) is an antioxidant molecule because of its ability to chelate iron. This study compared the ability of DF alone or in combination with melatonin, 5-methoxytryptophol or pinoline in preventing lipid peroxidation due to hydrogen peroxide (H(2)O(2)) in rat brain homogenates. Malondialdehyde (MDA) and 4-hydroxyalkenals (4-HDA) in the homogenates were measured as indices of lipid peroxidation. Incubation of homogenates with DF reduced, in a dose-dependent manner, MDA+4-HDA formation due to H(2)O(2). When melatonin, 5-methoxytryptophol or pinoline were added to the incubation medium, the efficacy of DF in preventing lipid peroxidation was enhanced. These cooperative effects between DF, melatonin, and related pineal products may be important in protecting tissues from the oxidative stress due to iron overload.

Animals↗

Protective effect of deferoxamine on sodium nitroprusside-induced apoptosis in PC12 cells.

Reportedly, the generation of nitric oxide (NO) may lead to iron mobilization from ferritin disrupting intracellular iron homeostasis and increasing levels of reactive oxygen species. In the present study, we evaluated the role of endogenous iron in NO-induced apoptosis in PC12 cells. Apoptosis was tested by flow cytometry, fluorescence microscopy and terminal deoxynucleotidyl transferase-mediated 2'-deoxy-uridine 5'-triphosphate nick end labeling (TUNEL) technique. Cell viability was determined by 3-(4,5-dimethylthiazol-2-yl)-2,5-diphenyltetrazolium bromide (MTT) assay. When incubated with 0.5-0.75 mM sodium nitroprusside (SNP, a chemical NO donor), PC12 cells were shown to undergo apoptosis. In addition, SNP induced a time-dependent decrease in cell viability. Since deferoxamine (0.05-0.1 mM), a powerful iron chelator, inhibited both SNP-induced apoptosis and the decrease in cell viability, we suggest that these NO effects may be dependent upon iron mobilization within the cell.

Animals↗

Effects of deferoxamine and sympathectomy on endothelin-1-induced contraction and acetylcholine-induced relaxation following subarachnoid hemorrhage in carotid artery.

The role of endothelium-related factors in the pathogenesis of cerebral vasospasm after subarachnoid hemorrhage (SAH) has gained interest since the discovery of EDRF and of endothelin-1 (ET-1). The effect of SAH and both treatment of deferoxamine (DFO) and sympathectomy on endothelium-dependent vasodilation and ET-1-induced vasoconstriction of isolated rabbit carotid artery was examined using an isometric tension recording method. Thirty-five rabbits were divided into four groups: control animals, 7 days after SAH, treatment with DFO after SAH for 7 days and sympathectomy after SAH. Acetylcholine (10(-8) to 10(-5) M) was used to evoke concentration-dependent vasodilation of isolated arterial rings previously contracted by 10(-6) M phenylephrine. In the animals killed 7 days after SAH, acetylcholine-induced relaxation was suppressed and the degree of relaxation of this group was 50% of the initial contractile tone in response to the 10(-5) M acetylcholine. These relaxant responses did not return to control values in carotid arteries obtained from animals treated with DFO and subjected to sympathectomy. In isolated carotid arteries, ET-1 (10(-10) to 10(-8) M) produced concentration-dependent contractions. These contractile responses were significantly enhanced in animals 7 days after SAH compared with controls and did not return to control values in carotid arteries obtained from animals both treated with DFO and sympathectomized for 7 days after SAH. The present experiments suggest that impairment of endothelium-dependent vasodilation and the hyperreactivity of ET-1 of the carotid artery as well as cerebral arteries may be involved in the pathogenesis of cerebral vasospasm. Both treatment with DFO and sympathectomy during the chronic stage for vasospasm after SAH did not affect these vascular responses of the extradural part of the carotid artery to ET-1 and acetylcholine.

Acetylcholine↗

Suppression of intimal hyperplasia in experimental vein grafts by oral l-arginine supplementation and single ex vivo immersion in deferoxamine manganese.

PURPOSE: Vein grafts undergo morphologic and functional changes after insertion into the arterial circulation with the development of intimal hyperplasia, as well as significant alterations in endothelial and smooth muscle cell physiologic responses. METHODS: Forty New Zealand white rabbits underwent jugular vein interposition grafting of the common carotid artery. Ten animals were controls, 10 animals received 2.25% L-arginine supplementation in their drinking water (200 ml/day; 2 gm/kg) 7 days before surgery and continued thereafter until harvest, in 10 animals the veins were immersed in deferoxamine manganese (DFMn; 10(-3) mol/L in heparinized Ringer's lactate for 15 minutes) before implantation, and 10 received both L-arginine supplementation and either histologic (n=6) or isometric tension studies (n=4). The function of the vein grafts was compared with that of jugular veins. RESULTS: Treatment with DFMn, l-arginine, amd DFMn L-arginine produce increases in mean intimal thickness of 39% (51 +/ -7 microm; p<0.05), 51% (41 +/- 7 microm; p<0.05), and 65% (29 +/- 6 microm; p< 0.01), respectively, compared with control vein grafts (83 +/- 12 microm). Compared with the control group, the intimal ratio ([intima]/[intima + media]) decreased by 16% (difference not significant), 8% (difference not significant), and 47% (p<0.01) in the DFMn-, L-arginine- and and DFMn/L-arginine-treated vein grafts, respectively. Jugular veins relaxed to acetylcholine (53% +/- 12% maximal relaxation), whereas control vein grafts did not relax. In contrast, vein grafts from each of the experimental groups relaxed to acetylcholine with maximal relaxations of 26% +/- 7% (p<0.05 compared with the jugular vein), 22% +/- 8% (p<0.05), and 44% +/- 14% (difference not significant) in the DFMn, L-arginine, DFMn/L-arginine groups, respectively. Neither DFMn nor l-arginine had a significant effect on the alterations in smooth muscle contractility that occur in control vein grafts. CONCLUSION: This study demonstrates that an agent that modulates free radical production combined with a precursor of nitric oxide formation will lead to a significant decrease in the formation of intimal hyperplasia in arterial vein grafts with the preservation of endothelial-derived relaxation.

Administration, Oral↗

Transfusional iron overload and chelation therapy with deferoxamine and deferiprone (L1).

Iron is essential for all living organisms. Under normal conditions there is no regulatory and rapid iron excretion in humans and body iron levels are mainly regulated from the absorption of iron from the gut. Regular blood transfusions in thalassaemia and other chronic refractory anaemias can result in excessive iron deposition in tissues and organs. This excess iron is toxic, resulting in tissue and organ damage and unless it is removed it can be fatal to those chronically transfused. Iron removal in transfusional iron overload is achieved using chelation therapy with the chelating drugs deferoxamine (DF) and deferiprone (L1). Effective chelation therapy in chronically transfused patients can only be achieved if iron chelators can remove sufficient amounts of iron, equivalent to those accumulated in the body from transfusions, maintaining body iron load at a non-toxic level. In order to maintain a negative iron balance, both chelating drugs have to be administered almost daily and at high doses. This form of administration also requires that a chelator has low toxicity, good compliance and low cost. DF has been a life-saving drug for thousands of patients in the last 40 years. It is mostly administered by subcutaneous infusion (40-60 mg/kg, 8-12 h, 5 days per week), is effective in iron removal and has low toxicity. However, less than 10% of the patients requiring iron chelation therapy worldwide are able to receive DF because of its high cost, low compliance and in some cases toxicity. In the last 10 years we have witnessed the emergence of oral chelation therapy, which could potentially change the prognosis of all transfusional iron-loaded patients. The only clinically available oral iron chelator is L1, which has so far been taken by over 6000 patients worldwide, in some cases daily for over 10 years, with very promising results. L1 was able to bring patients to a negative iron balance at doses of 50-120 mg/kg/day. It increases urinary iron excretion, decreases serum ferritin levels and reduces liver iron in the majority of chronically transfused iron-loaded patients. Despite earlier concerns of possible increased risk of toxicity, all the toxic side effects of L1 are currently considered reversible, controllable and manageable. These include agranulocytosis (0.6%), musculoskeletal and joint pains (15%), gastrointestinal complaints (6%) and zinc deficiency (1%). The incidence of these toxic side effects could in general be reduced by using lower doses of L1 or combination therapy with DF. Combination therapy could also benefit patients experiencing toxicity with DF and those not responding to either chelator alone. The overall efficacy and toxicity of L1 is comparable to that of DF in both animals and humans. Despite the steady progress in iron chelation therapy with DF and L1, further investigations are required for optimising their use in patients by selecting improved dose protocols, by minimising their toxicity and by identifying new applications in other diseases of iron imbalance.

Deferiprone↗

Preparation of 66Ga- and 68Ga-labeled Ga(III)-deferoxamine-folate as potential folate-receptor-targeted PET radiopharmaceuticals.

A folate-receptor-targeting radiopharmaceutical, Ga(III)-deferoxamine-folate (Ga-DF-Folate), was radiolabeled with two positron-emitting isotopes of gallium, cyclotron-produced (66)Ga (9.5 hour half-life) and generator-produced (68)Ga (68 minute half-life). The [(66)Ga]Ga-DF-Folate was administered to athymic mice with folate-receptor-positive human KB cell tumor xenografts to demonstrate that microPET mouse tumor imaging is feasible with (66)Ga, despite the relatively high positron energy of this radionuclide. Using the athymic mouse KB tumor xenograft model, dual-isotope autoradiography was also performed following i.v. co-administration of [(18)F]-FDG, a marker of regional metabolic activity, and folate-receptor-targeted [(111)In]In-DTPA-Folate. The autoradiographic images of 1 mm tumor sections demonstrate the gross heterogeneity of the KB cell tumor xenograft, as well as subtle disparity in the regional accumulation of the two radiotracers.

Animals↗

Synthesis, purification, and tumor cell uptake of 67Ga-deferoxamine--folate, a potential radiopharmaceutical for tumor imaging.

The vitamin folic acid was covalently linked to the chelating agent deferoxamine (DF) via an amide bond using a simple carbodiimide coupling reaction. A mixture of two isomers, DF--folate(alpha) and DF--folate(gamma), was produced involving the alpha- and gamma-carboxyl group of folic acid, respectively. These two isomers were separated by anion-exchange chromatography using a NH4HCO3 gradient. Competitive binding studies revealed that only the DF-folate(gamma) is recognized by the folate receptor on KB cells, interacting with an affinity comparable to unconjugated folic acid. The DF--folate conjugates were radiolabeled with the gamma-emitting radionuclide 67Ga3+ and tested for uptake by cultured KB cells overexpressing the folate receptor. The cellular accumulation of 67Ga-DF-folate(gamma) tracer exhibited rapid uptake kinetics in cell culture with a t1/2 of approximately 3 min. The KB cell association of 67Ga-DF--folate(gamma) was competitively blocked by free folic acid, indicating that uptake of the 67Ga-DF--folate(gamma) was specifically mediated by the folate receptor. Since the folate receptor is overexpressed on the surfaces of many neoplastic cells, these results suggest that 67Ga-DF--folate(gamma) complex might be useful as a diagnostic agent for noninvasive imaging of folate receptor-positing tumors.

Biological Transport↗

Experimental study on effects of deferoxamine mesilate in ameliorating cisplatin-induced nephrotoxicity.

PURPOSE: Cisplatin (CCDP), an indispensable agent of several chemotherapy protocols, has serious dose limiting side effects, including nephrotoxicity. In this experimental study, we used deferoxamine mesilate (DFO), an iron chelating agent, to ameliorate cisplatin-induced nephrotoxicity. MATERIALS AND METHODS: Sixty adult male bulb-c mice were divided in 6 equal groups. Group 1 received distilled water, group 2 received 100 mg/kg DFO, group 3 received 0.9 mg/kg CCDP, group 4 received 100 mg/kg DFO one hour before 0.9 mg/kg CCDP, group 5 received 1.8 mg/kg CCDP, and group 6 received 200 mg/kg DFO one hour before 1.8 mg/kg CCDP transperitoneally for 10 days. The next day, blood and urine samples were obtained, and all the animals were sacrificed, the kidneys and testes were removed, and histopathologic and biochemical analyses were performed. RESULTS: Low-dose and high-dose CCDP treated mice had significantly more extensive proximal tubular degeneration (p < 0.001) when compared to control animals. Moreover, these changes were significantly less extensive in the mice taking DFO than mice taking CCDP. DFO showed no effect on cisplatin induced testicular histopathology. The cisplatin administration significantly increased the serum urea and plasma creatinin concentrations, and DFO administration prior to CCDP significantly decreased serum urea and plasma creatinin concentrations. CONCLUSION: Our findings suggest that DFO administration may be safe and useful for ameliorating cisplatin-induced nephrotoxicity.

Animals↗

Iron chelator deferoxamine reduces preneoplastic lesions in liver induced by choline-deficient L-amino acid-defined diet in rats.

The aim of this study was to investigate whether an iron chelator, deferoxamine (DFO) can prevent lipid peroxidation, resulting in reduced liver injury as well as reducing preneoplastic lesions induced by a choline-deficient L-amino acid-defined (CDAA) diet. CDAA diet administration resulted in an increased serum ALT level (367 +/- 58) after two weeks, but simultaneous DFO treatment for two weeks reduced this elevation of ALT as well as malondialdehyde (MDA) production in the liver. Feeding rats a CDAA diet for 12 weeks led to the development of severe liver fibrosis and preneoplastic lesions detected as enzyme-altered lesions. DFO treatment prevented the expression of activated stellate cells, resulting in the reduction of liver fibrosis as well as reducing the development of preneoplastic lesions. These results indicate that iron chelation can reduce the development of preneoplastic lesions in a CDAA diet model.

Alanine Transaminase↗

Reversal of an aluminum-induced behavioral deficit by administration of deferoxamine.

Administration of aluminum sulfate in the drinking water of male Sprague-Dawley rats for 30 days resulted in a reduction in the number of days to reach extinction criterion on a passive avoidance task (38% control level). The behavioral deficit was not due to nonspecific effects caused by lower fluid consumption. Partial reversal of the deficit was produced by discontinuing aluminum treatment 2 weeks prior to testing (p less than .05). Injection of the aluminum chelator deferoxamine returned the performance of the aluminum-treated animals to control levels in a dose-dependent manner but had no effect on control animals. No differences in open-field activity were evident across groups. These results indicate that the behavioral impairment is a specific, reversible, toxic effect of the aluminum administration.

Alum Compounds↗

Deferoxamine and coated charcoal hemoperfusion to remove aluminum in dialysis patients.

We studied the in vitro and in vivo characteristics of aluminum (Al) removal by coated charcoal hemoperfusion (HP) in combination with intravenous deferoxamine (DFO). DFO enhanced the clearance of Al by HP in vitro after 180 minutes of perfusion with a solution containing 403.3 +/- 14.0 ng/ml of Al at 150 ml/min. The Al clearance was 139 +/- 1.0 ml/min with DFO and 49 +/- 10.0 ml/min (P less than 0.001) without DFO. Addition of DFO enhanced in vitro Al removal from 5.5 +/- 0.9 mg to 10.0 +/- 1.2 mg (P less than 0.05). During our in vivo studies, an HP device was in series in the dialysis circuit after a Cuprophan hemodialyzer. Eight patients with Al toxicity were studied on twelve occasions. Patients received DFO (40 mg/kg) 40 hours before the study. The total Al clearance with the combined hemodialysis (HD) and HP devices was higher than that obtained by the dialyzer alone at 30 minutes (62 +/- 4.9 ml/min vs. 25 +/- 2.5 ml/min, P less than 0.02) and after 180 to 210 minutes (32 +/- 3.0 ml/min vs. 19 +/- 2.9 ml/min, P less than 0.02). After 120 minutes the Al clearance by the HP device alone was significantly lower than the initial Al clearance by HP. Combined HD plus HP removed 2.9 +/- 0.4 mg of Al, whereas the total removal of Al by HD alone was 1.5 +/- 0.3 mg (P less than 0.01).

Aluminum↗

Effects of deferoxamine, feroxamine and iron on experimental mucormycosis (zygomycosis).

Mucormycosis was induced in healthy guinea pigs by the i.v. injection of spores from Rhizopus microsporus var. rhizopodiformis or from Rhizopus oryzae, leading to a reproducible mortality. Pretreatment with one dose of 50 mg of deferoxamine (DFO) shortened animal survival from 4.2 +/- 0.4 to 3.3 +/- 0.5 days for Rh. rhizopodiformis and from 8.8 +/- 0.4 to 7.3 +/- 1.9 days for Rh. oryzae (P less than 0.05). Survival was shortened even more after 4 doses of DFO (P = 0.0013 for Rh. rhizopodiformis and P = 0.002 for Rh. oryzae). After Rh. oryzae infection, animal survival decreased similarly after DFO, feroxamine or DFO combined with Fe3+ citrate (P less than 0.001). Fe3+ citrate also decreased survival (P = 0.0011), although significantly less than DFO either alone or combined with Fe3+. In vitro growth of both fungal strains was enhanced by addition of either DFO or Fe3+ at 0.001 to 1 mmol in the medium. DFO abolished the prolonged survival induced by amphotericin B in vivo and in vitro. Indeed, four doses of DFO abolished the improved survival due to amphotericin B (P = 0.0019 for Rh. rhizopodiformis and P = 0.002 for Rh. oryzae); DFO combined with Fe3+ at greater than or equal to 0.1 mmol decreased the antifungal activity of amphotericin B in vitro. These results point to a major role of DFO in the pathogenesis of mucormycosis in dialysis patients and suggest that DFO behaves as a siderophore for Rhizopus strains, stimulating their growth.

Amphotericin B↗