Literature DB >> 12655068

How does cyanide inhibit superoxide reductase? Insight from synthetic FeIIIN4S model complexes.

Jason Shearer1, Sarah B Fitch, Werner Kaminsky, Jason Benedict, Robert C Scarrow, Julie A Kovacs.   

Abstract

Superoxide reductases (SORs) are nonheme iron-containing enzymes that reduce HO(2) to H(2)O(2). Exogenous substrates such as N(3)(-) and CN(-) have been shown to bind to the catalytic iron site of SOR, and cyanide acts as an inhibitor. To understand how these exogenous ligands alter the physical and reactivity properties of the SOR iron site, acetate-, azide-, and cyanide-ligated synthetic models of SOR have been prepared. The x-ray crystal structures of azide-ligated [Fe(III)(S(Me2)N(4)(tren))(N(3))](+) (3), dimeric cyanide-bridged ([Fe(III)(S(Me2)N(4)(tren))](2)-mu-CN)(3+) (5), and acetate-ligated [Fe(III)(S(Me2)N(4)(tren))(OAc)](+) (6) are described, in addition to x-ray absorption spectrum-derived and preliminary crystallographic structures of cyanide-ligated [Fe(III)(S(Me2)N(4)(tren))(CN)](+) (4). Cyanide coordination to our model (4) causes the redox potential to shift anodically by 470 mV relative to acetate-ligated 6 and 395 mV relative to azide-ligated 3. If cyanide coordination were to cause a similar shift in redox potential with SOR, then the reduction potential of the catalytically active Fe(3+) center would fall well below that of its biological reductants. These results suggest therefore that cyanide inhibits SOR activity by making the Fe(2+) state inaccessible and thus preventing the enzyme from turning over. Cyanide inhibits activity in the metalloenzyme superoxide dismutase via a similar mechanism. The reduced five-coordinate precursor to 3, 4, and 6 [Fe(II)(S(Me2)N(4)(tren))](+) (1) was previously shown by us to react with superoxide to afford H(2)O(2) via an [Fe(III)(S(Me2)N(4)(tren))(OOH)](+) intermediate. Cyanide and azide do not bind to 1 and do not prevent 1 from reducing superoxide.

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Year:  2003        PMID: 12655068      PMCID: PMC152980          DOI: 10.1073/pnas.0637029100

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   11.205


  25 in total

1.  Structures of the superoxide reductase from Pyrococcus furiosus in the oxidized and reduced states.

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Review 2.  Biological chemistry of copper-zinc superoxide dismutase and its link to amyotrophic lateral sclerosis.

Authors:  T J Lyons; E B Gralla; J S Valentine
Journal:  Met Ions Biol Syst       Date:  1999

3.  Functional mimics of superoxide dismutase enzymes as therapeutic agents.

Authors:  D P Riley
Journal:  Chem Rev       Date:  1999-09-08       Impact factor: 60.622

4.  Invited award contribution for ACS Award in Inorganic Chemistry. Geometric and electronic structure contributions to function in bioinorganic chemistry: active sites in non-heme iron enzymes.

Authors:  E I Solomon
Journal:  Inorg Chem       Date:  2001-07-16       Impact factor: 5.165

5.  The superoxide dismutase activity of desulfoferrodoxin from Desulfovibrio desulfuricans ATCC 27774.

Authors:  C V Romão; M Y Liu; J Le Gall; C M Gomes; V Braga; I Pacheco; A V Xavier; M Teixeira
Journal:  Eur J Biochem       Date:  1999-04

6.  Identification of iron(III) peroxo species in the active site of the superoxide reductase SOR from Desulfoarculus baarsii.

Authors:  Christelle Mathé; Tony A Mattioli; Olivier Horner; Murielle Lombard; Jean-Marc Latour; Marc Fontecave; Vincent Nivière
Journal:  J Am Chem Soc       Date:  2002-05-08       Impact factor: 15.419

7.  A synthetic analogue of the active site of Fe-containing nitrile hydratase with carboxamido N and thiolato S as donors: synthesis, structure, and reactivities.

Authors:  J C Noveron; M M Olmstead; P K Mascharak
Journal:  J Am Chem Soc       Date:  2001-04-11       Impact factor: 15.419

8.  X-ray spectroscopy of nitrile hydratase at pH 7 and 9.

Authors:  R C Scarrow; B A Brennan; J G Cummings; H Jin; D J Duong; J T Kindt; M J Nelson
Journal:  Biochemistry       Date:  1996-08-06       Impact factor: 3.162

9.  Anaerobic microbes: oxygen detoxification without superoxide dismutase.

Authors:  F E Jenney; M F Verhagen; X Cui; M W Adams
Journal:  Science       Date:  1999-10-08       Impact factor: 47.728

Review 10.  Superoxide scavenging by neelaredoxin: dismutation and reduction activities in anaerobes.

Authors:  Isabel A Abreu; António V Xavier; Jean LeGall; Diane E Cabelli; Miguel Teixeira
Journal:  J Biol Inorg Chem       Date:  2002-04-18       Impact factor: 3.358

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  21 in total

Review 1.  Biological inorganic chemistry at the beginning of the 21st century.

Authors:  Harry B Gray
Journal:  Proc Natl Acad Sci U S A       Date:  2003-03-25       Impact factor: 11.205

Review 2.  Synthetic analogues of cysteinate-ligated non-heme iron and non-corrinoid cobalt enzymes.

Authors:  Julie A Kovacs
Journal:  Chem Rev       Date:  2004-02       Impact factor: 60.622

3.  Comparison of Structurally-Related Alkoxide, Amine, and Thiolate-Ligated M (M= Fe, Co) Complexes: the Influence of Thiolates on the Properties of Biologically Relevant Metal Complexes.

Authors:  Lisa M Brines; Gloria Villar-Acevedo; Terutaka Kitagawa; Rodney D Swartz; Priscilla Lugo-Mas; Werner Kaminsky; Jason B Benedict; Julie A Kovacs
Journal:  Inorganica Chim Acta       Date:  2008-03-03       Impact factor: 2.545

4.  Influence of thiolate ligands on reductive N-O bond activation. Probing the O2(-) binding site of a biomimetic superoxide reductase analogue and examining the proton-dependent reduction of nitrite.

Authors:  Gloria Villar-Acevedo; Elaine Nam; Sarah Fitch; Jason Benedict; John Freudenthal; Werner Kaminsky; Julie A Kovacs
Journal:  J Am Chem Soc       Date:  2011-01-05       Impact factor: 15.419

5.  Role of protons in superoxide reduction by a superoxide reductase analogue.

Authors:  Roslyn M Theisen; Julie A Kovacs
Journal:  Inorg Chem       Date:  2005-03-07       Impact factor: 5.165

6.  Superoxide Oxidation by a Thiolate-Ligated Iron Complex and Anion Inhibition.

Authors:  Maksym A Dedushko; Jessica H Pikul; Julie A Kovacs
Journal:  Inorg Chem       Date:  2021-04-26       Impact factor: 5.165

7.  Metal-Assisted Oxo Atom Addition to an Fe(III) Thiolate.

Authors:  Gloria Villar-Acevedo; Priscilla Lugo-Mas; Maike N Blakely; Julian A Rees; Abbie S Ganas; Erin M Hanada; Werner Kaminsky; Julie A Kovacs
Journal:  J Am Chem Soc       Date:  2016-12-29       Impact factor: 15.419

8.  Properties of square-pyramidal alkyl-thiolate Fe(III) complexes, including an analogue of the unmodified form of nitrile hydratase.

Authors:  Priscilla Lugo-Mas; Wendy Taylor; Dirk Schweitzer; Roslyn M Theisen; Liang Xu; Jason Shearer; Rodney D Swartz; Morgan C Gleaves; Antonio Dipasquale; Werner Kaminsky; Julie A Kovacs
Journal:  Inorg Chem       Date:  2008-12-01       Impact factor: 5.165

9.  Increasing reactivity by incorporating π-acceptor ligands into coordinatively unsaturated thiolate-ligated iron(II) complexes.

Authors:  Santiago Toledo; Penny Chaau Yan Poon; Morgan Gleaves; Julian Rees; Dylan M Rogers; Werner Kaminsky; Julie A Kovacs
Journal:  Inorganica Chim Acta       Date:  2021-04-30       Impact factor: 2.545

Review 10.  Understanding how the thiolate sulfur contributes to the function of the non-heme iron enzyme superoxide reductase.

Authors:  Julie A Kovacs; Lisa M Brines
Journal:  Acc Chem Res       Date:  2007-05-31       Impact factor: 22.384

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