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Dynamic equilibria in iron uptake and release by ferritin

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Abstract

The function of ferritins is to store and release ferrous iron. During oxidative iron uptake, ferritin tends to lower Fe2+ concentration, thus competing with Fenton reactions and limiting hydroxy radical generation. When ferritin functions as a releasing iron agent, the oxidative damage is stimulated. The antioxidant versus pro-oxidant functions of ferritin are studied here in the presence of Fe2+, oxygen and reducing agents. The Fe2+-dependent radical damage is measured using supercoiled DNA as a target molecule. The relaxation of supercoiled DNA is quantitatively correlated to the concentration of exogenous Fe2+, providing an indirect assay for free Fe2+. After addition of ferrous iron to ferritin, Fe2+ is actively taken up and asymptotically reaches a stable concentration of 1–5μ m. Comparable equilibrium concentrations are found with plant or horse spleen ferritins, or their apoferritins. After addition of ascorbate, iron release is observed using ferrozine as an iron scavenger. Rates of iron release are dependent on ascorbate concentration. They are about 10 times larger with pea ferritin than with horse ferritin. In the absence of ferrozine, the reaction of ascorbate with ferritins produces a wave of radical damage; its amplitude increases with increased ascorbate concentrations with plant ferritin; the damage is weaker with horse ferritin and less dependent on ascorbate concentrations.

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References

  • Ames BN, Cathcart R, Schwiers E, Hochstein P. 1981 Uric acid provides an antioxidant defense in humans against oxidant and radical-caused aging and cancer: a hypothesis.Proc Natl Acad Sci USA 78, 6858–6862.

    Google Scholar 

  • Andrews SC, Arosio P, Bottke W,et al. 1992 Structure, function, and evolution of ferritins.J Inorg Biochemistry 47, 161–174.

    Google Scholar 

  • Aruoma OI, Halliwell B. 1987 Superoxide-dependent and ascorbatedependent formation of hydroxyl radicals from hydrogen peroxide in the presence of iron.Biochem J 241, 273–278.

    Google Scholar 

  • Balla G, Jacob HS, Balla J,et al. 1992 Ferritin: a cytoprotective antioxidant stratagem of endothelium.J Biol Chem 267, 18148–18153.

    Google Scholar 

  • Bienfait HF, Van Den Breil ML. 1980 Rapid mobilisation of ferritin iron by ascorbate in the presence of oxygen.Biochem Biophys Acta 631, 507–510.

    Google Scholar 

  • Boyer RF, Clark HM, LaRoche AP. 1988 Reduction and release of ferritin iron by plant phenolics.J Inorg Biochem 32, 171–181.

    Google Scholar 

  • Briat JF, Labouré AM, Laulhère JP,et al. 1995 Molecular and cellular biology of plant ferritins. In: Abadia, J, ed.Iron Nutrition in Soils and Plants. Dordrecht: Kluwer.

    Google Scholar 

  • Bridges KR, Hoffman KE. 1986 The effect of ascorbic acid on the intracellular metabolism of iron and ferritin.J Biol Chem 261, 14273–14277.

    Google Scholar 

  • Cairo G, Tacchini L, Pogliaghi G, Anzon E, Tomasini A, Bernelli-Zazzera A. 1995 Induction of ferritin synthesis by oxidative stress. Transcriptional and post-transcriptional regulation by expansion of the ‘free’ iron pool.J Biol Chem 270, 700–703.

    Google Scholar 

  • Crichton RR. 1991Inorganic Biochemistry of Iron Metabolism. Chichester: Ellis Horwood; 190–212.

    Google Scholar 

  • Floyd RA. 1981 DNA-ferrous iron-catalysed hydroxyl free radical formation from hydrogen peroxide.Biochem Biophys Res Commun 99, 1209–1215.

    Google Scholar 

  • Grady JK, Chen Y, Chasteen ND, Harris DC. 1989 Hydroxyl radical production during oxidative deposition of iron in ferritin.J Biol Chem 264, 20224–20229.

    Google Scholar 

  • Halliwell B. 1987 Oxidative damage, lipid peroxidation and antioxidant protection in chloroplasts.Chem Phys Lipids 44, 327–340.

    Google Scholar 

  • Harrison PM, Lilley TH. 1989 Ferritin. In: Loehred TM, ed.Iron Carriers and Iron Proteins (Physical Bioinorganic Chemistry Series 5). Weinheim: VCH.

    Google Scholar 

  • Laulhère JP, Briat JF. 1993 Iron release and uptake by plant ferritin: effects of pH, reduction and chelation.Biochem J 290, 693–699.

    Google Scholar 

  • Laulhère JP, Lescure AM, Briat JF. 1988 Purification and characterisation of ferritin from maize, pea, and soyabean seeds.J Biol Chem 263, 10289–10294.

    Google Scholar 

  • Laulhère JP, Labouré AM, Briat JF. 1990 Mechanism of the transition from plant ferritin to phytosiderin.J Biol Chem 264, 3629–3635.

    Google Scholar 

  • Law MY, Charles SA, Halliwell B. 1983 Gluthatione and ascorbic acid in spinach (Spinacia oleracea) chloroplasts. The effect of hydrogene peroxide and of paraquat.Biochem J 210, 899–903.

    Google Scholar 

  • Lobréaux S, Briat JF. 1991 Ferritin accumulation in different organs of pea (Pisum sativum) during development.Biochem J 274, 601–606.

    Google Scholar 

  • Lobréaux S, Yewdall SJ, Briat JF, Harrison PM. 1992 Amino-acid sequence and predicted three-dimensional structure of pea seed (Pisum sativum) ferritin.Biochem J 288, 931–939.

    Google Scholar 

  • Miller JPG, Perkins DJ. 1969 Model experiments for the study of iron transfer from transferrin to ferritin.Eur J Biochem 10, 146–151.

    Google Scholar 

  • Rohrer JS, Joo MS, Dartyge E, Sayers DE, Fontaine A, Theil EC. 1987 Stabilization of iron in a ferrous form by ferritin.J Biol Chem 262, 13385–13387.

    Google Scholar 

  • Rohrer JS, Frankel RB, Papaefthymiou GC, Theil EC. 1989 Protein coats of ferritin can sequester large amounts of ferrous iron.Inorg Chem 28, 3393–3395.

    Google Scholar 

  • Sun S, Chasteen ND. 1992 Ferroxidase kinetics of horse spleen apoferritin.J Biol Chem 267, 25160–25166.

    Google Scholar 

  • Toyokuni S, Sagripanti JL. 1992 Iron mediated DNA damage: sensitive detection of DNA strand breakage catalysed by iron.J Inorg Biochem 47, 241–248.

    Google Scholar 

  • Treffy A, Sowerby JM, Harrison PM. 1979 Oxidant specificity in ferritin formation.FEBS Lett 100, 33–36.

    Google Scholar 

  • van der Mark F, de Lange T, Bienfait HF. 1981 The role of ferritin in developing primary bean leaves under various light conditions.Planta 153, 338–342.

    Google Scholar 

  • Wade VJ, Teffry A, Laulhère JP,et al. 1993 Structure and composition of ferritin cores from pea seed (Pisum sativum).Biochem Biophys Acta 1161, 91–96.

    Google Scholar 

  • Xu B, Chasteen ND, 1991 Iron oxidation chemistry in ferritin.J Biol Chem 266, 19965–19970.

    Google Scholar 

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Laulhére, J.P., Barcelò, F. & Fontecave, M. Dynamic equilibria in iron uptake and release by ferritin. Biometals 9, 303–309 (1996). https://doi.org/10.1007/BF00817931

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