[Distribution of endovenous Fe55 and Fe59 in ferro-proteins in normal rabbits and those on a myopathic diet].
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Siderophore iron transport was followed in Ustilago sphaerogena using isotope transport assays coupled with EPR spectroscopy. EPR spectroscopy was used as a quantitative tool to follow the rate of reduction of siderophore iron(III) to iron(II) in the cell suspension by following the disappearance of the signal at g = 4.3. This rate was compared with the rate of iron transport, measured by the disappearance of radioactively labeled iron from the medium. The transport of three iron chelates was examined: the ferric siderophores ferrichrome and ferichrome A, and iron(III) chelated to excess citrate. For the transport of ferrichrome, an iron(III) ionophore, the rate of reduction of iron(III) to iron(II) was significantly lower than the rate of uptake of isotope from the medium supernatant, which is consistent with the established mechanism of uptake of the entire complex followed by intracellular reduction to remove the iron from the ligand. However, the rate of reduction of ferrichrome A, a non-ionophore, was identical with the rate of transport of iron into the cell. Iron(III) citrate was reduced at a rate slightly lower than the rate of transport. These data suggest that reduction of iron(III) is involved in the transport of iron from ferichrome A and possibly from iron(III) citrate.
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1. After an intraperitoneal injection of 59Fe the recovery of radioactivity in the liver, but not in other tissues, was increased in cobalt-pretreated rats. There was no proportional increase in the radioactivity recovered from liver haem. 2. Rats were injected intravenously with serum containing protein-bound 59Fe and 125I-labelled albumin as a marker. At various times after injection the specific radioactivities of iron in plasma and of non-haem iron in liver were determined; corrections were applied for the content of plasma in samples of liver. In cobalt-pretreated rats there was a more rapid loss of 59Fe radioactivity from the plasma and a corresponding increase in the uptake of 59Fe into liver non-haem iron. 3. The results are discussed in relation to the possible sites of action of cobalt, and the possibility is considered that only a fraction of the liver non-haem iron may be involved.
Absorption of iron was studied with a double-isotope technique that allowed differentiation between "mucosal uptake," "mucosal transfer," and ultimate "retention" of iron. A physiologic dose of ferrous sulfate was administered to 25 healthy young adults, 40 active aged persons, and 20 patients with uncomplicated iron deficiency. Radioactivity was measured with a whole-body scanner. Iron absorption values were not decreased in aged subjects compared to young adults. Mucosal uptake, mucosal transfer, and retention of iron were equally increased in both young and old patients with iron deficiency. In 12 young adults and 33 aged persons red cell iron uptake was studied in addition to iron absorption. Young adults utilized 91% of the retained, orally administered iron and the aged only 66%. An increase in ineffective erythropoiesis in old age is suggested.
Analysis of human serum transferrin on gel isoelectric focusing resolved this iron-transport protein into two iron-containing components which were identified by the use of radioactively labelled iron and iron-specific stain. These two components were found to be monoferric transferrin (Fe-transferrin) and diferric transferrin (Fe2-transferrin) with isoelectric points of 5.6 and 5.2 respectively. The estimation of the relative proportions of these two components in serum did not correspond to the calculated theoretical ratio based on random binding of iron to the two binding sites of transferrin. However, the analysis of partially resatured apotransferrin gave a ratio corresponding to a random distribution of iron. The significance of these results is discussed.
Bovine aortic endothelial cells in monolayers were used to study iron and transferrin binding and transport mechanisms. Diferric bovine transferrin labeled with 59Fe was used as an iron donor. We have shown the presence of saturable iron uptake when cells were incubated with varying concentrations of diferric transferrin. This uptake decreased when the cells were treated with trypsin, ammonium chloride and methylamine. The effects of the latter two could be reversed by the addition of 2.0 mM Ca2+. Energy dependence was shown by using various electron transport/oxidative phosphorylation inhibitors. The presence of transferrin receptors on the cell surface was confirmed by their isolation, SDS-PAGE and autoradiography. There were approximately 1.5 x 10(6) transferrin receptors per cell with a Kd of 9.1 x 10(-7) M in the physiological iron range. Iron was also taken up when the cells were incubated with radioactive ferrous iron without transferrin. Uptake was not affected by receptor-mediated endocytosis inhibitors. Calcium increased ferrous iron uptake and overcame the effects of metabolic inhibitors on iron uptake from transferrin. A ferrireductase was detected in cell membranes. It is proposed that iron is transported by bovine endothelial cells by two mechanisms: one is receptor-mediated endocytosis from transferrin, and the other involves a non-endocytic mechanism from transferrin and Fe2+, which is possibly promoted by Ca2+.
Pulse-chase analysis of newt (Triturus cristatus) erythroblasts has shown that ferritin is not a primary source of iron for heme synthesis. During chase incubation with and without non-radioactive plasma iron in the medium, no transfer of 59Fe from ferritin to hemoglobin was detected although the integrity of heme synthesis was maintained. In puromycin-inhibited cells where iron uptake was drastically curtailed, heme synthesis continued to occur, though at reduced levels; incorporation of 59Fe from the plasma appeared initially in heme and hemoglobin without any prior labelling of ferritin. These results indicate that ferritin is neither an obligatory iron intermediate in heme synthesis nor a cytosolic transport molecule involved in mobilization of iron from the transferrin-receptor complex. The most likely role for erythroid ferritin is storage of excess iron.
Food iron and lead absorption were measured simultaneously in 28 subjects by extrinsically labeling three consecutive meals with the radioactive tracers, iron 59-sulfate and lead 203-chloride. Absorption was measured directly in all subjects by whole-body counting and indirectly in 15 subjects by assessing subsequent levels of tracer in blood. Iron status of the subjects ranged from iron deficient to replete, thus providing a wide range of iron absorption. Statistically significant positive correlations were obtained between food-iron and lead absorption measured by whole-body counting and also between the tracer levels of iron and lead in the blood. However, the correlation between the absorption of the two elements was not strong, as evidenced by the fact that only 50% of the subjects who hyperabsorbed iron also hyperabsorbed lead.
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Cells of the marine fish pathogen Vibrio anguillarum 775 harboring a plasmid associated with virulence can grow unaffected in the presence of iron-binding compounds such as transferrin. In contrast, the growth of isogenic plasmidless derivatives is inhibited by the presence of iron chelators. Radioactive from (55Fe3+) uptake experiments indicate that this plasmid-linked ability of V. anguillarum cells to grow under conditions of iron limitation is indeed due to a more rapid and efficient iron uptake mediated by the virulence plasmid. In addition, V. anguillarum cells growing under iron limitation show at least two novel outer membrane proteins. One of them, a 86,000-dalton protein we called OM2, is inducible only in those cells in which the virulence plasmid is present.
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