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Halide Ion Addition to Bismuth-Containing Iron Carbonyl Compounds: Synthesis and Characterization of the Two Bridged-Butterfly Cluster Compounds [Et(4)N][(&mgr;-H)Fe(2)(CO)(6)Bi(2){&mgr;-Fe(CO)(4)}] and [{PhCH(2)NMe(3)}{(&mgr;-H)Fe(2)(CO)(6)Bi(2)(&mgr;-Cl)(2)}](infinity) and Stabilization of Reduced-Hypervalent Bismuth Centers by Coordination to a Metal Center in [PhCH(2)NMe(3)](3)[Bi(3)Cl(4)(&mgr;-Cl)(4){Fe(CO)(3)}].

The reaction of [Q](2)[Bi(4)Fe(4)(CO)(13)] ([Q](2)[1]; [Q] = [Et(4)N](+), [PhCH(2)NMe(3)](+)) with MePCl(2) in MeCN is a complicated reaction which gives different results depending upon the stoichiometry of the reaction. At a ratio of 1:1.33 (cluster:phosphine), the reaction yields a mixture of the new bismuth-iron carbonyl compounds [Q][(&mgr;-H)Fe(2)(CO)(6)Bi(2){Fe(CO)(4)}] ([Q][2]), which has a tetrahedral Fe(2)Bi(2) core edge-bridged across the bismuth centers by an [Fe(CO)(4)](2)(-) fragment, and [Q](3)[Bi(3)Cl(4)(&mgr;-Cl)(4){Fe(CO)(3)}] ([Q](3)[3]), containing a reduced complex ion [Bi(3)Cl(8)](-) stabilized by coordination to an iron tricarbonyl fragment. Extended Hückel molecular orbital calculations on this unusual anion are consistent with each bismuth atom possessing the same reduced oxidation state of +2.33. The compound [Et(4)N][2] crystallizes in the triclinic space group P&onemacr; (No. 2) with a = 10.246(2) Å, b = 11.859(2) Å, c = 12.474(2) Å, alpha = 71.11(3) degrees, beta = 79.60(3) degrees, gamma = 76.37(3) degrees, V = 1384.7(4) Å(3), and Z = 2, while [PhCH(2)NMe(3)](3)[3].0.87Et(2)O was characterized in the orthorhombic space group Pbca (No. 61) with a = 20.801(4) Å, b = 19.937(4) Å, c = 25.480(5) Å, V = 10566.8(36) Å(3), and Z = 8. When the reaction is carried out at a ratio of 1:2, the novel hydride [{Q}{(&mgr;-H)Fe(2)(CO)(6)Bi(2){&mgr;-Cl}(2)}](infinity) ([{Q}{4}](infinity)) is isolated. This cluster also has a "tetrahedral" core, with the Bi-Bi vector bridged by a chloride ligand and the molecules joined into infinite polymeric chains in the solid state by the second intermolecularly-bridging chloride ligand. [{PhCH(2)NMe(3)}{4}](infinity) crystallizes in the monoclinic space group P2(1)/n (No. 14) with a = 7.864(2) Å, b = 22.465(4) Å, c = 13.797(3) Å, beta = 105.96(3) degrees, V = 2343.5(9) Å(3), and Z = 4. The metal framework of [4](-) is similar to that of [2](-) with the notable exception that the Bi-Bi bond present in [2](-) is missing in [4](-) because of the additional electrons provided by the chloride ions. At stoichiometries greater than 2:1, the previously reported [Fe(CO)(4)Bi(2)Cl(6)](2)(-) ion is formed.

Journal Article↗

Chronic feeding of carbonyl-iron and TMH-ferrocene in rats. Comparison of two iron-overload models with different iron absorption.

1. The use of carbonyl-iron and (3,5,5-trimethylhexanoyl)-ferrocene (TMH-ferrocene) as a dietary iron-overload model was studied in rats using 59Fe-labelled compounds. 2. The intestinal absorption of carbonyl-iron but not from the TMH-ferrocene-iron was dependent upon the dosage and downregulated in iron-loaded rats. 3. In both models, and similar to hereditary haemochromatosis in humans, the storage of excess iron in the liver started in hepatocytes, whereas the range of iron-loading was strikingly different. 4. Because of the fast and progressive iron-loading, the TMH-ferrocene-model is the most encouraging animal model for experimental haemochromatosis.

Administration, Oral↗

Acute toxicity of carbonyl iron and sodium iron EDTA compared with ferrous sulfate in young rats.

According to the American Association of Poison Control Centers, exposures to excessive doses of iron supplements still occur in children less than 6 years of age. Since 1998, there has been one death among U.S. children in this age group. Exposures, including adverse events, to iron supplements and iron-containing vitamins for the years 1999 and 2000 were 23,215 and 24,249, respectively. To reduce the potential seriousness of such exposures, carbonyl iron (Fe(0)) has been suggested as a possible replacement for ferrous sulfate (FeSO(4)). Carbonyl Fe is a unique form of elemental iron because of its small particle size. It is highly bioavailable when used to correct iron deficiency anemia. There is also current interest in using sodium iron(III) ethylenediaminetetraacetate (NaFeEDTA) for food fortification. In this study both NaFeEDTA and carbonyl Fe were compared with FeSO(4), the most common form of iron for dietary supplements, to obtain information relevant to the acute toxicological profile in young rats. With FeSO(4) and NaFeEDTA, total liver nonheme iron increased with increasing dose, but the response was approximately 50% lower with NaFeEDTA compared with FeSO(4). Serum iron peaked at approximately 0.5 to 1 h for both FeSO(4) and carbonyl Fe, while NaFeEDTA was elevated up to 4 h. FeSO(4) had an LD(50) of 1.1 g Fe/kg and was approximately 45 times more toxic than carbonyl Fe, which had an LD(50) greater then 50 g Fe/kg. NaFeEDTA had an LD(50) of 1.3 g Fe/kg and, when compared with FeSO(4), had approximately the same level of toxicity.

Adjuvants, Immunologic↗

Carbonyl iron for short-term supplementation in female blood donors.

A randomized, double-blind trial of iron replacement after repeated blood donation was conducted in 75 menstruating women; 51 completed the study. Volunteers were assigned randomly to one of three treatment groups: 1) carbonyl iron (nontoxic elemental iron powder), 600 mg; 2) ferrous sulfate, 300 mg (60 mg Fe++); or 3) placebo, each given three times daily for 1 week immediately after blood donation. Blood samples obtained initially and 56 days later were tested for hemoglobin, mean corpuscular volume (MCV), free erythrocyte protoporphyrin, serum ferritin, serum iron, total iron binding capacity (TIBC), and percent saturation of TIBC. The prevalence of gastrointestinal side effects was similar in both groups taking iron. At the end of the study there was no laboratory evidence of change in iron status in women who received carbonyl iron (n = 15). In those treated with ferrous sulfate (n = 17) the mean TIBC increased (p less than 0.001), and in the placebo group (n = 19) there were decreases in mean MCV (p less than 0.01), serum ferritin (p less than 0.001), and percent saturation (p = 0.027) with an increase in mean TIBC (p = 0.004). Carbonyl iron seems to be effective for short-term iron replacement in repeat blood donors and may have the advantage of decreased or absent risk of poisoning if accidentally ingested by children.

Blood Donors↗

Influence of purified saponin mixture from Astragalus corniculatus Bieb. on phagocytic cells in Graffi-tumor bearing hamsters.

A purified saponin mixture (PSM) from Astragalus corniculatus Bieb. protected significantly hamsters against the experimental Graffi myeloid tumor. The application of PSM increased the survival rates, prolonged mean survival time and the tumor growth was markedly reduced. A purified saponin mixture (PSM) of Astragalus corniculatus Bieb. was evaluated for its immunostimulating potentials on the phagocytic cells in Graffi-tumor bearing hamsters. The number, migration and phagocytic indexes of peritoneal macrophages (pMøs) and of blood polymorphonuclear leukocytes (PMNs) were evaluated in healthy and Graffi-tumor bearing hamsters (G-TBH) treated with PSM. It was established that the Graffi myeloid tumor induced suppression of the phagocytic abilities of pMøs and PMNs. The number and migration of pMøs was significantly decreased during the whole period of observation. All tested parameters-number, migration and phagocytic activities of pMøs, as well as phagocytic ability of PMNs increased significantly in healthy and G-TBH after i.p. application of the 50 mg/kg body weight PSM. The PMS extracts from Astragalus corniculatus Bieb. are isolated and examined and their immunostimulating and immunorestorating impact on phagocitic cells was proven for the first time. This effect could be due to their high content of purified saponins.

Animals↗

The influence of high iron diet on rat lung manganese absorption.

Individuals chronically exposed to manganese are at high risk for neurotoxic effects of this metal. A primary route of exposure is through respiration, although little is known about pulmonary uptake of metals or factors that modify this process. High dietary iron levels inversely affect intestinal uptake of manganese, and a major goal of this study was to determine if dietary iron loading could increase lung non-heme iron levels and alter manganese absorption. Rats were fed a high iron (1% carbonyl iron) or control diet for 4 weeks. Lung non-heme iron levels increased approximately 2-fold in rats fed the high iron diet. To determine if iron-loading affected manganese uptake, 54Mn was administered by intratracheal (it) instillation or intravenous (iv) injection for pharmacokinetic studies. 54Mn absorption from the lungs to the blood was lower in it-instilled rats fed the 1% carbonyl iron diet. Pharmacokinetics of iv-injected 54Mn revealed that the isotope was cleared more rapidly from the blood of iron-loaded rats. In situ analysis of divalent metal transporter-1 (DMT1) expression in lung detected mRNA in airway epithelium and bronchus-associated lymphatic tissue (BALT). Staining of the latter was significantly reduced in rats fed the high iron diet. In situ analysis of transferrin receptor (TfR) mRNA showed staining in BALT alone. These data demonstrate that manganese absorption from the lungs to the blood can be modified by iron status and the route of administration.

Absorption↗

Stearoyl coenzyme A desaturase 1 expression and activity are increased in the liver during iron overload.

In humans, hepatic iron overload can lead to hepatocellular carcinoma development. Iron related dysregulation of hepatic genes could play a role in this phenomenon. We previously found that the carbonyl-iron overloaded mouse was a useful model to study the mechanisms involved in the development of hepatic lesions related to iron excess. The aim of the present study was to identify hepatic genes overexpressed in conditions of iron overload by using this model. A suppressive subtractive hybridization was performed between hepatic mRNAs extracted from control and 3% carbonyl-iron overloaded mice during 8 months. This methodology allowed us to identify stearoyl coenzyme A desaturase 1 (SCD1) mRNA overexpression in the liver of iron loaded mice. The corresponding enzymatic activity was also found to be significantly increased. In addition, we demonstrated that both SCD1 mRNA expression and activity were increased in another iron overload model in mice obtained by a single iron-dextran subcutaneous injection. Moreover, we found, in both models, that SCD1 mRNA was not only influenced by the quantity of iron in the liver but also by the duration of iron overload since SCD1 mRNA upregulation was not detected in earlier stages of iron overload. In addition, we found that cellular repartition likely influenced SCD1 mRNA expression. In conclusion, we demonstrated that iron excess in the liver induced both the expression of SCD1 mRNA and its corresponding enzymatic activity. The level and duration of iron overload, as well as cellular repartition of iron excess in the liver likely play a role in this induction. The fact that the expression and activity of SCD1, an enzyme adding a double bound into saturated fatty acids, are induced in two models of iron overload in mice leads to the conclusion that iron excess in the liver may enhance the biosynthesis of unsaturated fatty acids.

Animals↗

Iron overload enhances the development of experimental liver cirrhosis in mice.

The role of iron in initiating liver fibrosis in iron overload diseases is not clearly established. Partly, this is due to the lack of suitable animal models that can produce the full liver pathology seen in genetic hemochromatosis. Recent advances in this field have demonstrated that iron may be interacting with other potential liver-damaging agents. The aim of this study was to investigate if feeding with carbonyl iron (CI) facilitates the development of carbon tetrachloride (CCl4)-induced liver fibrosis in the mouse. Mice were given a diet containing 3% CI and treated with CCl4 intraperitoneally twice weekly and 5% alcohol added to the drinking water for 12 weeks. Hepatic iron content increased 15- and 22-fold in animals receiving CI and CI + CCl4. At histological examination, iron-laden hepatocytes were found in CI treated animals, whereas these were absent in animals not exposed to CI. Mice receiving iron-enriched diet alone showed a mild fibrosis. Conversely, a marked collagen deposition was observed in CCl4 and CI + CCl4 groups. In particular, in this latter group, there was evidence of liver cirrhosis. Biochemical evaluation of collagen content substantiated histologic analysis. These results demonstrate that the addition of iron facilitates the development of cirrhosis in animals exposed to subtoxic doses of CCl4. This model may be useful in exploring the pathogenesis of liver cirrhosis. Moreover, its use in genetically altered mouse strains might provide new insight on the role of iron in fibrosis.

Animals↗

Synthesis of (-)-delobanone.

On irradiation in the presence of Fe(CO)(5) under a CO atmosphere, the alkenyl cyclopropane 2 underwent smooth ring expansion to give the sesquiterpene (-)-delobabone 3. The alkenyl cyclopropane 2 was prepared from the enantiomerically enriched epoxide 1.

Epoxy Compounds↗

Colloidal synthesis and characterization of tetrapod-shaped magnetic nanocrystals.

Tetrapod-shaped maghemite nanocrystals are synthesized by manipulating the decomposition of iron pentacarbonyl in a ternary surfactant mixture under mild thermal conditions. Adjustment of the reaction parameters allows for the systematic tuning of both the width and the length of the tetrapod arms, which grow preferentially along the 111 easy axis direction. Such degree of control leads to modulation of the magnetic behavior of the nanocrystals, which evolves systematically as their surface magnetization phase and shape anisotropy are progressively increased.

Anisotropy↗

Liver iron depletion and toxicity of the iron chelator deferiprone (L1, CP20) in the guinea pig.

The use of the iron chelator deferiprone (L1, CP20, 1,2-dimethyl-3-hydroxypyrid-4-one) for the treatment of diseases of iron overload and other disorders is problematic and requires further evaluation. In this study the efficacy, toxicity and mechanism of action of orally administered L1 were investigated in the guinea pig using the carbonyl iron model of iron overload. In an acute trial, depletion of liver non-heme iron in drug-treated guinea pigs (normal iron status) was maximal (approximately 50% of control) after a single oral dose of L1 of 200 mg kg-1, suggesting a limited chelatable pool in normal tissue. There was no apparent toxicity up to 600 mg kg-1. In each of two sub-acute trials, normal and iron-loaded animals were fed L1 (300 mg kg-1 day-1) or placebo for six days. Final mortalities were 12/20 (L1) and 0/20 (placebo). Symptoms included weakness, weight loss and eye discharge. Iron-loaded as well as normal guinea pigs were affected, indicating that at this drug level iron loading was not protective. In a chronic trial guinea pigs received L1 (50 mg kg-1 day-1) or placebo for six days per week over eight months. Liver non-heme iron was reduced in animals iron-loaded prior to the trial. The increase in a wave latency (electroretinogram), the foci of hepatic, myocardial and musculo-skeletal necrosis, and the decrease in white blood cells in the drug--treated/normal diet group even at the low dose of 50 mg kg-1 day-1 suggests that L1 may be unsuitable for the treatment of diseases which do not involve Fe overload. However, the low level of pathology in animals treated with iron prior to the trial suggests that even a small degree of iron overload (two-fold after eight months) is protective at this drug level. We conclude that the relationship between drug dose and iron status is critical in avoiding toxicity and must be monitored rigorously as cellular iron is depleted.

Administration, Oral↗

Iron overload diminishes atherosclerosis in apoE-deficient mice.

It has been proposed that elevated levels of tissue iron increase the risk for atherosclerosis, perhaps by favoring the formation of pro-atherogenic oxidized LDL. Working with apoE-deficient (apoE(-/-)) mice, which do not require a high-fat diet to develop atherosclerosis, we compared the effects of standard diet (0.02% iron) or a 2% carbonyl iron diet. After 24 weeks, mice fed the 2% carbonyl iron diet had twice as much iron in their plasma, a ninefold increase in bleomycin-detectable free iron in their plasma, and ten times as much iron in their livers as control mice. Dietary iron overload caused a modest (30%) rise in plasma triglyceride and cholesterol. Nevertheless, this regimen did not exacerbate, but rather reduced the severity of atherosclerosis by 50%, and it failed to elevate hepatic levels of heme oxygenase mRNA, which is induced by many different oxidative insults in vitro. Moreover, hepatic levels of protein-bound dityrosine and ortho-tyrosine, two markers of metal-catalyzed oxidative damage in vitro, failed to rise in iron-overloaded animals. Our observations suggest that elevated serum and tissue levels of iron are not atherogenic in apoE(-/-) mice. Moreover, they call into question the hypothesis that elevated levels of tissue iron promote LDL oxidation and oxidative stress in vivo.

Animals↗

Primordial carbonylated iron-sulfur compounds and the synthesis of pyruvate.

Experiments exploring the potential catalytic role of iron sulfide at 250 degrees C and elevated pressures (50, 100, and 200 megapascals) revealed a facile, pressure-enhanced synthesis of organometallic phases formed through the reaction of alkyl thiols and carbon monoxide with iron sulfide. A suite of organometallic compounds were characterized with ultraviolet-visible and Raman spectroscopy. The natural synthesis of such compounds is anticipated in present-day and ancient environments wherever reduced hydrothermal fluids pass through iron sulfide-containing crust. Here, pyruvic acid was synthesized in the presence of such organometallic phases. These compounds could have provided the prebiotic Earth with critical biochemical functionality.

Carbon Monoxide↗

Comparative assessment of the bioavailability, efficacy and safety of a modified-release (MR) carbonyl iron tablet and oral conventional iron preparation in adult Indian patients with nutritional iron deficiency anaemia.

The objective of the study is to evaluate the bioavailability, efficacy and safety of a new modified-release (MR) formulation of carbonyl iron (45 mg) relative to a commercially available conventional formulation of ferrous fumarate (300 mg) in adult Indian patients with clinical and laboratory diagnosis of nutritional iron deficiency anaemia. This prospective, comparative, randomised, double-blind study was carried out among 60 patients received a single daily dose of either MR carbonyl iron or ferrous fumarate for 12 weeks. The effect of therapy on haematological parameters and iron status and estimation of bioavailability were the main efficacy outcomes. There was a significant (p<0.05) increase in mean haemoglobin levels, reticulocyte counts, haematocrit and mean corpuscular volume in MR carbonyl iron group compared to ferrous fumarate group. There was also an increase in mean serum iron and ferritin levels and a corresponding decrease in total iron binding capacity in MR carbonyl iron group compared to ferrous fumarate group at the end of 12 weeks therapy. The estimated overall bioavailability of MR carbonyl iron was about 147% that of ferrous fumarate. Both the formulations were equally well-tolerated and adverse events were mainly gastrointestinal in nature. The prevalence of adverse events was slightly more in the ferrous fumarate group. It can be concluded that the MR formulation of carbonyl iron was more efficacious than ferrous fumarate in correcting haematologic abnormalities and improving iron status in patients with nutritional iron deficiency anaemia. In conditions where efficacy is an important consideration, the higher bioavailability of MR carbonyl iron may make it the treatment of choice for nutritional iron deficiency anaemia.

Administration, Oral↗

Comparison of cytosolic products formed in rat liver in response to parenteral and dietary iron loading.

Two different methods were used to create a situation of iron (Fe) overload in rats. One group of rats received Fe dextran, and another group of rats received a carbonyl Fe-enriched diet. The ferritins present in the liver cytosol of these rats were isolated and compared. From each group, two cytosolic products were isolated with the use of ultracentrifugation: a cytosolic ferritin fraction (CF) and a (slower sedimenting) light ferritin fraction (CLF). There were no differences with respect to the protein coat (subunit composition and amino acid analysis). Analysis of the Fe core revealed that the two CF fractions were similar, whereas the two CLF fractions differed with respect to their Fe content and to the packing of their cores. The carbonyl CLF product contained less Fe atoms/molecule, which, moreover, seemed to be packed in a less compact way.

Amino Acids↗

Effects of iron loading on free radical scavenging enzymes and lipid peroxidation in rat liver.

A comparison of the antioxidant protective system and presence of lipid peroxidation was made between rats iron-loaded by two different mechanisms. Superoxide dismutase activity, glutathione peroxidase activity, and reduced glutathione concentrations, together with malondialdehyde production, were measured in the livers of rats chronically iron-overloaded by (a) parenteral iron (primarily Kupffer cell iron deposition) and (b) dietary carbonyl iron (mainly parenchymal iron deposition). In carbonyl iron-treated rats, hepatic superoxide dismutase activity was significantly decreased, whereas hepatocyte lipid peroxidation, as measured by malondialdehyde levels, was significantly increased when compared with control rats at or above iron concentrations of 100 and 185 mumol/g dry wt, respectively. However, no significant decrease in superoxide dismutase activity or significant increase in malondialdehyde levels was observed in iron dextran-treated rats. Glutathione peroxidase activities and reduced glutathione concentrations in rats, iron-loaded by either method, were not significantly different from those of control animals. These results suggest that the deposition of iron in the reticuloendothelial cells of the liver does not lead to lipid peroxidation; however, iron deposited in the parenchymal cells of the liver may lead to an altered free radical antioxidant protective system, resulting in lipid peroxidation in these cells at a similar level of iron loading. We conclude that the cellular site of iron deposition as well as the hepatic iron concentration is important in determining iron-induced liver injury.

Animals↗