Literature DB >> 30720039

Ferritin exhibits Michaelis-Menten behavior with oxygen but not with iron during iron oxidation and core mineralization.

Fadi Bou-Abdallah1, Nicholas Flint, Tyler Wilkinson, Samantha Salim, Ayush Kumar Srivastava, Maura Poli, Paolo Arosio, Artem Melman.   

Abstract

The excessively high and inconsistent literature values for Km,Fe and Km,O2 prompted us to examine the iron oxidation kinetics in ferritin, the major iron storage protein in mammals, and to determine whether a traditional Michaelis-Menten enzymatic behavior is obeyed. The kinetics of Fe(ii) oxidation and mineralization catalyzed by three different types of ferritins (recombinant human homopolymer 24H, HuHF, human heteropolymer ∼21H:3L, HL, and horse spleen heteropolymer ∼3.3H:20.7L, HosF) were therefore studied under physiologically relevant O2 concentrations, but also in the presence of excess Fe(ii) and O2 concentrations. The observed iron oxidation kinetics exhibited two distinct phases (phase I and phase II), neither of which obeyed Michaelis-Menten kinetics. While phase I was very rapid and corresponded to the oxidation of approximately 2 Fe(ii) ions per H-subunit, phase II was much slower and varied linearly with the concentration of iron(ii) cations in solution, independent of the size of the iron core. Under low oxygen concentration close to physiological, the iron uptake kinetics revealed a Michaelis-Menten behavior with Km,O2 values in the low μM range (i.e. ∼1-2 μM range). Our experimental Km,O2 values are significantly lower than typical cellular oxygen concentration, indicating that iron oxidation and mineralization in ferritin should not be affected by the oxygenation level of cells, and should proceed even under hypoxic events. A kinetic model is proposed in which the inhibition of the protein's activity is caused by bound iron(iii) cations at the ferroxidase center, with the rate limiting step corresponding to an exchange or a displacement reaction between incoming Fe(ii) cations and bound Fe(iii) cations.

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Year:  2019        PMID: 30720039      PMCID: PMC6470027          DOI: 10.1039/c9mt00001a

Source DB:  PubMed          Journal:  Metallomics        ISSN: 1756-5901            Impact factor:   4.526


  32 in total

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Authors:  P M Harrison; P Arosio
Journal:  Biochim Biophys Acta       Date:  1996-07-31

Review 2.  An overview of molecular basis of iron metabolism regulation and the associated pathologies.

Authors:  Bruno Silva; Paula Faustino
Journal:  Biochim Biophys Acta       Date:  2015-04-02

Review 3.  Mechanisms of iron mineralization in ferritins: one size does not fit all.

Authors:  Justin M Bradley; Geoffrey R Moore; Nick E Le Brun
Journal:  J Biol Inorg Chem       Date:  2014-04-19       Impact factor: 3.358

4.  The consequences of hydroxyl radical formation on the stoichiometry and kinetics of ferrous iron oxidation by human apoferritin.

Authors:  M E Van Eden; S D Aust
Journal:  Free Radic Biol Med       Date:  2001-10-15       Impact factor: 7.376

5.  The distribution of iron between the metal-binding sites of transferrin human serum.

Authors:  J Williams; K Moreton
Journal:  Biochem J       Date:  1980-02-01       Impact factor: 3.857

6.  Two pathways of iron uptake in bovine spleen apoferritin dependent on iron concentration.

Authors:  Koichi Orino; Seiichi Kamura; Masahiro Natsuhori; Shinji Yamamoto; Kiyotaka Watanabe
Journal:  Biometals       Date:  2002-03       Impact factor: 2.949

7.  Phosphate accelerates displacement of Fe(III) by Fe(II) in the ferroxidase center of Pyrococcus furiosus ferritin.

Authors:  Kourosh Honarmand Ebrahimi; Peter-Leon Hagedoorn; Wilfred R Hagen
Journal:  FEBS Lett       Date:  2012-12-14       Impact factor: 4.124

8.  The workings of ferritin: a crossroad of opinions.

Authors:  Wilfred R Hagen; Peter-Leon Hagedoorn; Kourosh Honarmand Ebrahimi
Journal:  Metallomics       Date:  2017-06-21       Impact factor: 4.526

Review 9.  Ferritins: a family of molecules for iron storage, antioxidation and more.

Authors:  Paolo Arosio; Rosaria Ingrassia; Patrizia Cavadini
Journal:  Biochim Biophys Acta       Date:  2008-09-26

10.  Iron release from ferritin by flavin nucleotides.

Authors:  Galina Melman; Fadi Bou-Abdallah; Eleanor Vane; Poli Maura; Paolo Arosio; Artem Melman
Journal:  Biochim Biophys Acta       Date:  2013-05-29
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  5 in total

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Authors:  Ayush K Srivastava; Paolo Arosio; Maura Poli; Fadi Bou-Abdallah
Journal:  J Mol Biol       Date:  2021-08-12       Impact factor: 6.151

2.  Iron Mobilization from Ferritin in Yeast Cell Lysate and Physiological Implications.

Authors:  Gideon L Smith; Ayush K Srivastava; Aliaksandra A Reutovich; Nathan J Hunter; Paolo Arosio; Artem Melman; Fadi Bou-Abdallah
Journal:  Int J Mol Sci       Date:  2022-05-29       Impact factor: 6.208

3.  The metal- and substrate-dependences of 2,4'-dihydroxyacetophenone dioxygenase.

Authors:  Kenneth M Roberts; Gabrielle C Connor; C Haley Cave; Gerard T Rowe; Clinton A Page
Journal:  Arch Biochem Biophys       Date:  2020-06-09       Impact factor: 4.013

4.  Iron Oxidation in Escherichia coli Bacterioferritin Ferroxidase Centre, a Site Designed to React Rapidly with H2 O2 but Slowly with O2.

Authors:  Jacob Pullin; Michael T Wilson; Martin Clémancey; Geneviève Blondin; Justin M Bradley; Geoffrey R Moore; Nick E Le Brun; Marina Lučić; Jonathan A R Worrall; Dimitri A Svistunenko
Journal:  Angew Chem Int Ed Engl       Date:  2021-04-06       Impact factor: 15.336

5.  Structural Insights Into the Effects of Interactions With Iron and Copper Ions on Ferritin From the Blood Clam Tegillarca granosa.

Authors:  Tinghong Ming; Qinqin Jiang; Chunheng Huo; Hengshang Huan; Yan Wu; Chang Su; Xiaoting Qiu; Chenyang Lu; Jun Zhou; Ye Li; Jiaojiao Han; Zhen Zhang; Xiurong Su
Journal:  Front Mol Biosci       Date:  2022-03-11
  5 in total

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