Literature DB >> 22681596

Spectroscopic evidence for and characterization of a trinuclear ferroxidase center in bacterial ferritin from Desulfovibrio vulgaris Hildenborough.

Alice S Pereira1, Cristina G Timóteo, Márcia Guilherme, Filipe Folgosa, Sunil G Naik, Américo G Duarte, Boi Hanh Huynh, Pedro Tavares.   

Abstract

Ferritins are ubiquitous and can be found in practically all organisms that utilize Fe. They are composed of 24 subunits forming a hollow sphere with an inner cavity of ~80 Å in diameter. The main function of ferritin is to oxidize the cytotoxic Fe(2+) ions and store the oxidized Fe in the inner cavity. It has been established that the initial step of rapid oxidation of Fe(2+) (ferroxidation) by H-type ferritins, found in vertebrates, occurs at a diiron binding center, termed the ferroxidase center. In bacterial ferritins, however, X-ray crystallographic evidence and amino acid sequence analysis revealed a trinuclear Fe binding center comprising a binuclear Fe binding center (sites A and B), homologous to the ferroxidase center of H-type ferritin, and an adjacent mononuclear Fe binding site (site C). In an effort to obtain further evidence supporting the presence of a trinuclear Fe binding center in bacterial ferritins and to gain information on the states of the iron bound to the trinuclear center, bacterial ferritin from Desulfovibrio vulgaris (DvFtn) and its E130A variant was loaded with substoichiometric amounts of Fe(2+), and the products were characterized by Mössbauer and EPR spectroscopy. Four distinct Fe species were identified: a paramagnetic diferrous species, a diamagnetic diferrous species, a mixed valence Fe(2+)Fe(3+) species, and a mononuclear Fe(2+) species. The latter three species were detected in the wild-type DvFtn, while the paramagnetic diferrous species was detected in the E130A variant. These observations can be rationally explained by the presence of a trinuclear Fe binding center, and the four Fe species can be properly assigned to the three Fe binding sites. Further, our spectroscopic data suggest that (1) the fully occupied trinuclear center supports an all ferrous state, (2) sites B and C are bridged by a μ-OH group forming a diiron subcenter within the trinuclear center, and (3) this subcenter can afford both a mixed valence Fe(2+)Fe(3+) state and a diferrous state. Mechanistic insights provided by these new findings are discussed and a minimal mechanistic scheme involving O-O bond cleavage is proposed.

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Year:  2012        PMID: 22681596      PMCID: PMC3390943          DOI: 10.1021/ja211368u

Source DB:  PubMed          Journal:  J Am Chem Soc        ISSN: 0002-7863            Impact factor:   15.419


  51 in total

1.  The ferroxidase reaction of ferritin reveals a diferric mu-1,2 bridging peroxide intermediate in common with other O2-activating non-heme diiron proteins.

Authors:  P Moënne-Loccoz; C Krebs; K Herlihy; D E Edmondson; E C Theil; B H Huynh; T M Loehr
Journal:  Biochemistry       Date:  1999-04-27       Impact factor: 3.162

2.  A SIMPLE SERUM IRON METHOD USING THE NEW SENSITIVE CHROMOGEN TRIPYRIDYL-S-TRIAZINE.

Authors:  D S FISCHER; D C PRICE
Journal:  Clin Chem       Date:  1964-01       Impact factor: 8.327

3.  Crystal structures of a tetrahedral open pore ferritin from the hyperthermophilic archaeon Archaeoglobus fulgidus.

Authors:  Eric Johnson; Duilio Cascio; Michael R Sawaya; Mari Gingery; Imke Schröder
Journal:  Structure       Date:  2005-04       Impact factor: 5.006

4.  Stages in iron storage in the ferritin of Escherichia coli (EcFtnA): analysis of Mössbauer spectra reveals a new intermediate.

Authors:  E R Bauminger; A Treffry; M A Quail; Z Zhao; I Nowik; P M Harrison
Journal:  Biochemistry       Date:  1999-06-15       Impact factor: 3.162

5.  EPR study of the mixed-valent diiron sites in mouse and herpes simplex virus ribonucleotide reductases. Effect of the tyrosyl radical on structure and reactivity of the diferric center.

Authors:  R M Davydov; A Davydov; R Ingemarson; L Thelander; A Ehrenberg; A Gräslund
Journal:  Biochemistry       Date:  1997-07-29       Impact factor: 3.162

Review 6.  Mineralization in ferritin: an efficient means of iron storage.

Authors:  N D Chasteen; P M Harrison
Journal:  J Struct Biol       Date:  1999-06-30       Impact factor: 2.867

7.  Crystal structure of bullfrog M ferritin at 2.8 A resolution: analysis of subunit interactions and the binuclear metal center.

Authors:  Y Ha; D Shi; G W Small; E C Theil; N M Allewell
Journal:  J Biol Inorg Chem       Date:  1999-06       Impact factor: 3.358

8.  Geometry of the soluble methane monooxygenase catalytic diiron center in two oxidation states.

Authors:  A C Rosenzweig; P Nordlund; P M Takahara; C A Frederick; S J Lippard
Journal:  Chem Biol       Date:  1995-06

9.  How the presence of three iron binding sites affects the iron storage function of the ferritin (EcFtnA) of Escherichia coli.

Authors:  A Treffry; Z Zhao; M A Quail; J R Guest; P M Harrison
Journal:  FEBS Lett       Date:  1998-08-07       Impact factor: 4.124

Review 10.  Iron storage in bacteria.

Authors:  S C Andrews
Journal:  Adv Microb Physiol       Date:  1998       Impact factor: 3.517

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  3 in total

1.  Functionality of the three-site ferroxidase center of Escherichia coli bacterial ferritin (EcFtnA).

Authors:  F Bou-Abdallah; H Yang; A Awomolo; B Cooper; M R Woodhall; S C Andrews; N D Chasteen
Journal:  Biochemistry       Date:  2014-01-14       Impact factor: 3.162

2.  Spectroscopic evidence for the presence of a high-valent Fe(IV) species in the ferroxidase reaction of an archaeal ferritin.

Authors:  Kourosh Honarmand Ebrahimi; Eckhard Bill; Peter-Leon Hagedoorn; Wilfred R Hagen
Journal:  FEBS Lett       Date:  2017-06-14       Impact factor: 4.124

3.  Using Biotechnology to Solve Engineering Problems: Non-Destructive Testing of Microfabrication Components.

Authors:  Carla C C R de Carvalho; Patrick L Inácio; Rosa M Miranda; Telmo G Santos
Journal:  Materials (Basel)       Date:  2017-07-12       Impact factor: 3.623

  3 in total

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