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Deferoxamine inhibition of malaria is independent of host iron status.

The mechanism whereby deferoxamine (DF) inhibits the growth of malaria parasites was studied in rats infected with Plasmodium berghei. Peak parasitemia was 32.6% (day 14) in untreated controls and 0.15% (day 7) in rats receiving 0.33 mg/g in 8 hourly DF injections, subcutaneously. DF inhibition of parasite growth was achieved without any reduction in transferrin saturation or hemoglobin synthesis and with only a partial (56%) depletion of hepatic iron stores. Dietary iron depletion resulted in anemia (hematocrit 25 vs. 46%), microcytosis (MCV 54 vs. 60 fl), and reduced transferrin saturation (17 vs. 96%) without any effect on infection (peak parasitemia 30 vs. 36%). Similarly, parenteral iron loading with ferric citrate over 10 d (75 mg iron/kg) failed to aggravate infection. In a search for evidence of direct interaction between DF and parasitized erythrocytes, gel filtration and ultrafiltration was performed on hemolysates obtained from in vivo 59Fe-labeled parasitized erythrocytes. This showed that 1.1-1.9% of the intracellular radioiron was located in a chelatable, labile iron pool. Incubation of intact cells with 0-500 microM DF resulted in a proportional increase in intracellular iron chelation, and the chelation of all available labile intracellular iron was completed within 6 h. These observations indicate that the severity of P. berghei infection in rats and its in vivo suppression by DF are independent of host iron status and suggest that DF inhibition of malaria involves intracellular chelation of a labile iron pool in parasitized erythrocytes.

Animals↗

Deferoxamine lowers tissue damage after 80% exchange transfusion with polymerized hemoglobin.

Hemoglobin (Hb) solutions have been proposed as potential substitutes for erythrocytes to maintain oxygen-carrying capacity in situations in which blood is not available. This study investigated systemic and microvascular hemodynamics as well as tissue oxygenation and viability after an 80% exchange transfusion with an oxygen-carrying blood substitute based on polymerized bovine hemoglobin (PBH). Studies were carried in unanesthetized hamsters prepared with a window-chamber model for microcirculation evaluation. Heme iron-mediated injury to the tissue was analyzed by using deferoxamine (an iron chelator), which reduces free iron toxicity. Exchange transfusion led to a significant decrease in hematocrit (Hct) and an increase in plasma Hb, in addition to a significant decrease of arteriolar and venular diameters, flow velocity, and, therefore, microvascular blood flow. Capillary perfusion was severely compromised after exchange, but tissue pO2 increased above baseline, and oxygen extraction was reduced. Apoptotic and necrotic cells increased significantly after the exchange; however, this effect was only partially due to the toxicity of free iron. Iron therapy decreased the microvascular and oxygenation changes but did not fully reverse the adverse effects. Assessment of tissue viability after exchange suggests that chelation treatment in cases of large exchange transfusions with acellular Hb could be potentially beneficial.

Animals↗

Dextran-coupled deferoxamine improves outcome in a murine model of head injury.

Tissue damage involving oxygen-derived free radicals may be greatly exacerbated by free, reactive iron, which acts as a catalyst in oxidative reactions. The effects of free iron can be attenuated by the administration of deferoxamine (DFO), an iron chelator. However, DFO has limited therapeutic utility because it has a short plasma half-life (approximately 5.5 min in mice) and produces profound hypotension upon intravenous infusion. These negative attributes have been circumvented by the covalent attachment of DFO to large polymers, such as dextran or hydroxyethyl starch. The ability of the dextran-conjugated DFO (DEX-DFO) to inhibit iron-catalyzed reactions with lipids was compared to that of the native molecule in an in vitro model of CNS lipid degradation in the presence of 200 microM ferrous iron. There was no difference between native DFO and the modified form. Modified and unmodified DFO were also compared for therapeutic efficacy in a murine model of head injury. Using a previously described "grip test" as a measure of neurologic impairment following injury, DEX-DFO, native DFO, and dextran were administered intravenously 3-5 min after injury. Dextran-DFO significantly decreased the incidence of severe neurologic impairment at dosage levels of 0.1 (n = 92), 1.0 (n = 76), and 10.0 (n = 80) mg/kg. Administration of native DFO or dextran had no effect at the same dosages and concentrations. These results suggest that the murine model of head injury contains a significant iron-dependent component that should be assessed in other models of neural injury.

Animals↗

Deferoxamine infusion during coronary artery bypass grafting ameliorates lipid peroxidation and protects the myocardium against reperfusion injury: immediate and long-term significance.

AIMS: Previous reports have demonstrated enhanced myocardial protection and better post-ischaemic recovery using the oxygen free radical scavenger deferoxamine (DEF) during cardioplegia. The aim of this study was to test whether, in patients undergoing coronary artery bypass grafting (CABG), DEF i.v. infusion can reduce reperfusion injury on a short- and long-term basis. METHODS AND RESULTS: Forty-five consecutive male patients were randomly allocated to two groups: in group D (n=25, age 60.8+/-8.6 years), 4 g of DEF were infused for 8 h starting immediately after the induction of anaesthesia; in group C (n=20, age 62.2+/-6.4 years) dextrose solution was given for the same time as placebo. Haemodynamic monitoring and measurement of oxygen free radical production [by measuring thiobarbituric acid reactive substances (TBARS)] were carried out before and after CABG. Left ventricular ejection fraction (EF) and wall motion score index (WMSI) were measured before and after CABG and 12 months later. Haemodynamic measurements were similar in both groups before and after CABG. TBARS peaked at 4.8+/-1.1 nmol/mL in group C, but remained unchanged (2.4+/-0.9 nmol/mL) in group D (P=0.01). At baseline, both the EF and WMSI were similar between the groups. Following CABG, EF increased more in group D (8.8+/-8.4%) than in group C (1.3+/-6.7%), P=0.008, while WMSI decreased more in group D (-0.7+/-0.3) than in group C (-0.2+/-0.2), P=0.0001. Dividing group D according to the pre-operative median EF value (38%), we observed that after 1 year follow-up, DEF infusion conferred more protection in patients with a lower EF (EF increased by 19.3+/-6.2%, WMSI decreased by -1.1+/-0.2) than in those with a higher EF (EF increased by 7.7+/-4.5%, WMSI decreased by -0.8+/-0.2), P=0.001, respectively. CONCLUSION: In patients undergoing CABG, DEF i.v. infusion ameliorates oxygen free radical production and protects the myocardium against reperfusion injury. Patients with a lower EF seem to benefit more by DEF i.v. infusion.

Coronary Artery Bypass↗

Deferoxamine, cyclophosphamide, etoposide, carboplatin, and thiotepa (D-CECaT): a new cytoreductive chelation-chemotherapy regimen in patients with advanced neuroblastoma.

Thirteen patients with Stage III (3 patients) or Stage IV (10 patients) neuroblastoma were treated with a new iron chelation-cytotoxic therapy regimen. Deferoxamine given for five consecutive days followed by 3 days of cyclophosphamide, etoposide, carboplatin, and thiotepa (D-CECaT) caused moderate to severe myelotoxicity. In 39 courses there were four episodes of sepsis; platelet and packed red blood cell transfusions were required in 72% and 82% of courses, respectively. Mild nausea and vomiting occurred in 52% of courses. Objective responses after two courses were observed in 12 of 13 patients. Three of four partial responses were achieved in previously treated relapsed patients, and seven of eight complete responses (four of which were surgically documented) were achieved in previously untreated patients. This cytoreduction regimen appears to be an improvement over other initial induction regimens and may be worth testing in larger populations.

Antineoplastic Combined Chemotherapy Protocols↗

Hypocalcemia complicating deferoxamine therapy in an infant with parenteral nutrition-associated aluminum overload: evidence for a role of aluminum in the bone disease of infants.

Aluminum (Al) contaminates total parenteral nutrition (TPN) solutions given to infants, and high levels of Al have been demonstrated in their bone, serum, and urine. However, it is uncertain whether Al at current levels of contamination of TPN solutions is harmful to bone. We report an 8-month-old infant who developed osteopenic bone disease while receiving TPN, which did not respond to large amounts of calcium, phosphate, and vitamin D2. Serum and urine Al levels were greatly elevated and fell after a short course of deferoxamine. However, shortly after treatment began, serum calcium levels fell in the absence of hypercalciuria. We postulate that chelation of Al from this patient's bone permitted increased bone calcium uptake. This would suggest that Al at current levels of contamination of TPN solutions may impair bone calcium uptake and thus contribute to the pathogenesis or exacerbation of TPN-related osteopenia.

Adult↗

Efficacy and safety of deferoxamine conjugated to hydroxyethyl starch.

The efficacy and safety of deferoxamine conjugated to hydroxyethyl starch (HES-DFO) was evaluated in an in vitro rat cardiac membrane lipid peroxidation (CMLP) assay and in a swine model of regional myocardial ischemia/reperfusion injury in comparison to DFO. The rat CMLP results demonstrate that HES-DFO is at least as potent as DFO (IC50 = 10 and 13 microM, respectively). HES-DFO given intravenously (i.v.) at the equivalence of 25 mg/kg and 100 mg/kg DFO in a swine model of regional myocardial ischemia [20-min left anterior descending coronary artery (LAD) occlusion followed by 60-min reperfusion] showed no significant changes in hemodynamics as compared with DFO at 25 mg/kg i.v. In addition, HES-DFO was at least as potent as DFO with regard to recovery of regional segment shortening function (%SS). Furthermore, both HES-DFO and DFO significantly reduced tissue water content (edema) in the area at risk (AAR). We conclude that conjugation of DFO to HES improves the safety without any interference in the efficacy of DFO.

Animals↗

Diabetes-induced endothelial dysfunction is prevented by long-term treatment with the modified iron chelator, hydroxyethyl starch conjugated-deferoxamine.

Oxygen radicals are believed to play a role in vascular complications of diabetes mellitus. In this study, we evaluated whether long-term treatment with an iron chelator and inhibitor of metal-catalyzed hydroxyl radicals (.OH) could prevent diabetes-induced defects in endothelium-dependent relaxation. Diabetes was induced in Sprague-Dawley rats by injection of streptozotocin. At 48 h after streptozotocin, a subgroup of diabetic rats received daily injections of 50 mg/kg hydroxyethyl starch conjugated-deferoxamine (HES-DFO) for a total of 8 weeks. Long-term treatment with HES-DFO did not modify serum insulin or blood glucose taken at the end of the study; however, a modest reduction in glycosylated hemoglobin was present. In precontracted aortic rings suspended in tissue baths, endothelium-dependent relaxation to acetylcholine was impaired in diabetic rings compared with control rings in the presence or absence of indomethacin. Endothelium-independent relaxation to nitroglycerin was unaltered. Long-term treatment with HES-DFO had no effect on relaxation to nitroglycerin but completely prevented the impaired relaxation to acetylcholine in diabetic rings in either the presence or absence of indomethacin. These data suggest that iron-catalyzed .OH formation contributes to the development of diabetes-associated endothelial dysfunction.

Animals↗

Fluid resuscitation with deferoxamine prevents systemic burn-induced oxidant injury.

We studied the effect of deferoxamine (DFO) infused after burns on hemodynamic stability as well as local and systemic inflammation and oxidant-induced lipid peroxidation. Eighteen anesthetized sheep were given a 40% of total body surface burn and fluid resuscitated to restore oxygen delivery (DO2) and filling pressures to baseline values. Animals were resuscitated with lactated Ringer's (LR) alone or LR plus 1,500 ml of a 5% hetastarch complexed with DFO (8 mg/ml). Animals were killed 6 hours postburn. The sheep resuscitated with LR and LR plus hetastarch demonstrated significant lung inflammation and significant increases in lung and liver malondialdehyde (MDA) from controls of 47 +/- 6 and 110 +/- 7 nMol/gm to 63 +/- 13 and 202 +/- 59 for LR and 67 +/- 4 and 211 +/- 9 for LR + hetastarch, respectively. The group resuscitated with hetastarch alone required 15% less fluid. VO2 returned to baseline values in both groups by 2 hours. Resuscitation with the 5% hetastarch-DFO decreased total fluids by 30% over LR and prevented the increase in lung and liver MDA. In addition, postburn VO2 increased by 25% above baseline values. Burn tissue edema, measured as protein-rich lymph flow, was significantly increased with the administration of DFO compared with the other groups. We conclude that DFO used for burn resuscitation prevents systemic lipid peroxidation and decreases the vascular leak in nonburn tissues while also increasing O2 utilization. Resuscitation with hetastarch-DFO may accentuate burn tissue edema, possibly by increased perfusion of burn tissue.

Animals↗

Starch-deferoxamine conjugate inhibits hepatocyte Ca2+ uptake during hemorrhagic shock and resuscitation.

BACKGROUND: This study investigated whether hepatocyte Ca2+ dysregulation after hemorrhagic shock and resuscitation could be modulated by the iron chelator hydroxyethyl starch-conjugated deferoxamine (HES-DFO). METHODS: In a randomized experimental study, anesthetized rats (n = 7) were bled for 60 minutes to maintain mean arterial blood pressure at 40 mm Hg. They were then resuscitated with 60% of shed blood and threefold the shed-blood volume as lactated Ringer's solution, 1 mL of pentastarch solution (hydroxyethyl starch 10%) per mL of shed blood, or 1 mL of HES-DFO solution (10%) per mL of shed blood. In isolated hepatocytes, the rate of Ca2+ influx (Ca2+ in), total Ca2+ uptake (Ca2+ up), and membrane Ca2+ flux (Ca2+ flux) were determined by 45Ca incubation. Reduced or oxidized glutathione and malondialdehyde concentrations were assessed fluorometrically. RESULTS: Significant increases of hepatocellular Ca2+ in, Ca2+ up, and Ca2+ flux were observed in rats resuscitated with lactated Ringer's solution compared with control groups (p < 0.05). Although hydroxyethyl starch decreased Ca2+ in but not Ca2+ up, HES-DFO not only prevented the increase of Ca2+ in and Ca2+ up but also inhibited hepatocyte oxidative injury. CONCLUSION: Iron-catalyzed oxyradical production and membrane peroxidation seem to alter hepatocyte Ca2+ homeostasis after hemorrhagic shock and resuscitation.

Animals↗

Deferoxamine induces hypotension in experimental gram-negative septicemia.

Multiple organ system failure may result from tissue damage caused by activated neutrophils or endotoxin. A significant part of this tissue damage is due to peroxidation induced by oxygen-free radicals and requires iron as a co-factor. Iron chelation has been shown to prevent tissue damage in some models. This experiment was carried out to determine whether iron chelation with deferoxamine (DFO) would prevent lung damage in a swine model of Gram-negative septicemia. Fifteen animals were randomized to control, Pseudomonas aeruginosa infusion at a rate of 2 x 10(7) colony forming units/20 kg/min (septic group), or Pseudomonas infusion combined with DFO pretreatment at a dose of 80 mg/kg/h (septic-treated group). Three of six septic-treated animals became severely hypotensive and died during the course of the experiment as opposed to none of six septic animals. Surviving septic-treated animals were significantly hypotensive (60 +/- 24 mmHg mean arterial pressure) compared to septic (122 +/- 9 mmHg) and control (109 +/- 8 mmHg) animals. DFO did not improve respiratory function (e.g., pO2) or morphology in septic animals. We conclude that iron-chelation therapy with DFO at the above dosage results in a significant deterioration in cardiovascular function in septic swine. Lung damage was not prevented.

Animals↗

Synergistic antiproliferative effects on HL-60 cells: deferoxamine enhances cytosine arabinoside, methotrexate, and daunorubicin cytotoxicity.

Deferoxamine (DFO), a widely used therapeutic iron chelator, was found to inhibit proliferation of the promyelocytic leukemia cell line HL-60 in a dose-dependent fashion when tested in a clonogenic assay at concentrations ranging from 1.0 to 10.0 microM. Cytosine arabinoside, methotrexate, and daunorubicin also produced dose-dependent inhibition of HL-60 colony growth when tested singly in vitro. When DFO, 1.0 microM, was included with each agent in dose-response studies, a synergistic enhancement of the antiproliferative effects was observed. This synergism probably results from a DFO-induced decrease in intracellular levels of deoxyribonucleoside triphosphates and an inhibition of the cells at the early S-phase of cell cycle. Our data suggest that DFO has potential as an adjunctive antileukemic agent.

Antimetabolites, Antineoplastic↗

Sensorimotor neurotoxicity associated with high-dose deferoxamine treatment.

PURPOSE: We report a reversible sensorimotor neurotixicity that developed in two beta-thalassemic patients treated with high-dose deferoxamine (DFO) for iron overload. METHODS: Two patients were treated with high-dose (120 mg/kg/day) intravenous DFO for iron overload. RESULTS: Sensorimotor toxicity developed after 5 and 6 months of treatment, respectively. The development of the neurotoxicity did not correlate with the serum ferritin or the ratio of DFO dose to serum ferritin. Symptoms resolved in both patients with discontinuation of DFO treatment. In 1 patient, symptoms recurred with resumption of DFO treatment. CONCLUSIONS: These cases demonstrate that a reversible sensorimotor neurotoxicity, a previously unreported toxicity, may complicate DFO therapy, this complements the previously reported auditory and visual neurotoxicity associated with DFO therapy. Discontinuation of therapy at the time of onset of neurotoxicity is recommended, with possible resumption at lower doses.

Adult↗

Iron chelation with deferoxamine: comparing the results of a critical pathway to a national survey.

PURPOSE: The clinical outcomes of an institution's critical pathway that uses a comprehensive approach to serum ferritin management are reported. The results of this center are compared with the results of a national survey of deferoxamine (DFO) use and serum ferritin level outcomes. METHODS: Current DFO dosing and serum ferritin levels of 38 patients at this center were summarized. A questionnaire was then sent to 98 centers throughout the United States requesting information on criteria for beginning treatment with DFO, administration methods, dose modifications, and serum ferritin levels. RESULTS: The application of a critical pathway in this program resulted in 29 of 38 patients maintaining serum ferritin levels <2,000 ng/mL. Of the 42 institutions that responded to the survey, 10 attained this ferritin level in > or =50% of their patients. Ferritin levels ranged from 500 ng/mL to >20,000 ng/mL, and wide variations were reported in all study parameters. CONCLUSIONS: Iron overload can be effectively managed with alteration of DFO doses and routes using a consistent approach. Modification of administration methods, including administration of DFO during red blood cell transfusions, are indicated to attain ferritin levels of <2,000 ng/mL.

Adolescent↗

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↗

Effect of hypothermia, dichloroacetate, and deferoxamine in the treatment for cortical edema and functional recovery after experimental cortical impact in the rat.

OBJECTIVE: To investigate the effects of hypothermia alone or in combination with dichloroacetic acid (DCA) and/or deferoxamine (DFO) in reducing cortical edema (CE) and improving neurologic functional recovery after moderate closed and head trauma with controlled cortical impact (CCI). METHODS: Anesthetized rats were randomized to receive right parietal moderate CCI (impact depth 2 mm, speed 3.5 m/sec) or sham operations. Immediately after trauma, the animals underwent selective brain cooling to 30 degrees C (temporalis muscle temperatures). Ten minutes after trauma, the randomized animals received intraperitoneal doses of DCA (25 mg/kg), DFO (50 mg/kg), both DCA and DFO, or equivolume normal saline. For evaluation of cortical edema, some animals (n = 42) were sacrificed 4 hours after trauma and cortical specific gravity (SpG) was determined gravimetrically. The other animals (n = 47) were evaluated for functional recovery beginning 6 days posttrauma. Neurobehavioral performance was assessed in the Morris water maze. RESULTS: Cortical edema was significantly less in the animals treated with hypothermia (SpG = 1.041 +/- 0.001, p < 0.05) compared with the untreated traumatized animals (SpG = 1.037 +/- 0.001). Combination treatment with hypothermia and drug treatment did not reduce cortical edema when compared with no treatment. Hypothermia with and without drug treatment did not improve neurobehavioral performance when compared with no treatment. CONCLUSIONS: In this pilot study with a relatively small sample size, hypothermia alone significantly reduced post-CCI cortical edema as measured by SpG. Hypothermia combined with drug treatment did not reduce posttraumatic cortical edema. Hypothermia with and without drug therapy did not improve functional neurologic recovery in the rats subjected to CCI.

Animals↗

Response of rat model of Pneumocystis carinii pneumonia to continuous infusion of deferoxamine.

The iron-chelating drug deferoxamine mesylate (DFO) is active against Pneumocystis carinii in vitro and in rat and mouse models of P. carinii pneumonia. Because DFO has a short half-life, daily divided or continuous dosage was expected to improve the dose response, as is the case with DFO treatment of malaria. Therefore, results of single daily intraperitoneal injections were compared with results of an evenly divided four-times-daily dosage and the efficacy of delivery with implanted infusion pumps. The highest bolus dosage (1,000 mg kg-1 of body weight day-1) was as effective as the standard combination of trimethoprim with sulfamethoxazole. Unexpectedly, very little improvement was observed with the divided or continuous dosage, and several mechanisms that could account for this are discussed.

Animals↗

Inhibition of growth of Histoplasma capsulatum yeast cells in human macrophages by the iron chelator VUF 8514 and comparison of VUF 8514 with deferoxamine.

Histoplasma capsulatum requires intracellular iron to survive and multiply within human and murine macrophages (M phi). Thus, iron chelators may be useful compounds in the treatment of histoplasmosis. In the present study we compared the efficacies of five different iron chelators with deferoxamine (DEF) for their capacity to inhibit the growth of H. capsulatum yeast cells in culture medium and within human M phi. Of the agents tested, only one, VUF 8514, a 2,2'-bipyridyl analog, was found to be effective. VUF 8514 inhibited the growth of yeast cells in tissue culture medium and within M phi in a dose-response fashion. In tissue culture medium, the 50% effective dose (ED50) of VUF 8514 was 30 nM and the ED50 of DEF was 1 mM. In human M phi, the ED50 of VUF 8514 was 520 nM and the ED50 of DEF was 4 mM. Thus, VUF 8514 was effective at a concentration 7.7 x 10(3)-fold lower than DEF in inhibiting the growth of yeast cells in M phi. Inhibition of the intracellular growth of yeast cells by VUF 8514 was reversed by holotransferrin and iron nitriloacetate, an iron compound that is soluble at neutral to alkaline pH. Thus, VUF 8514 inhibits the intracellular growth of yeast cells by acting as an iron chelator rather than through its capacity as a weak base. These data suggest that the hydroxamic acid siderophore of H. capsulatum yeast cells competes successfully for iron against some iron chelators but not others and that VUF 8514 may be a potential therapeutic agent for the treatment of histoplasmosis.

2,2'-Dipyridyl↗