Literature DB >> 20666389

Mechanisms of peroxynitrite interactions with heme proteins.

Jia Su1, John T Groves.   

Abstract

Oxygenated heme proteins are known to react rapidly with nitric oxide (NO) to produce peroxynitrite (PN) at the heme site. This process could lead either to attenuation of the effects of NO or to nitrosative protein damage. PN is a powerful nitrating and oxidizing agent that has been implicated in a variety of cell injuries. Accordingly, it is important to delineate the nature and variety of reaction mechanisms of PN interactions with heme proteins. In this Forum, we survey the range of reactions of PN with heme proteins, with particular attention to myoglobin and cytochrome c. While these two proteins are textbook paradigms for oxygen binding and electron transfer, respectively, both have recently been shown to have other important functions that involve NO and PN. We have recently described direct evidence that ferrylmyolgobin (ferrylMb) and nitrogen dioxide (NO(2)) are both produced during the reaction of PN and metmyolgobin (metMb) (Su, J.; Groves, J. T. J. Am. Chem. Soc. 2009, 131, 12979-12988). Kinetic evidence indicates that these products evolve from the initial formation of a caged radical intermediate [Fe(IV) horizontal lineO.NO(2)]. This caged pair reacts mainly via internal return with a rate constant k(r) to form metMb and nitrate in an oxygen-rebound scenario. Detectable amounts of ferrylMb are observed by stopped-flow spectrophotometry, appearing at a rate consistent with the rate, k(obs), of heme-mediated PN decomposition. Freely diffusing NO(2), which is liberated concomitantly from the radical pair (k(e)), preferentially nitrates myoglobin Tyr103 and added fluorescein. For cytochrome c, Raman spectroscopy has revealed that a substantial fraction of cytochrome c converts to a beta-sheet structure, at the expense of turns and helices at low pH (Balakrishnan, G.; Hu, Y.; Oyerinde, O. F.; Su, J.; Groves, J. T.; Spiro, T. G. J. Am. Chem. Soc., 2007, 129, 504-505). It is proposed that a short beta-sheet segment, comprising residues 37-39 and 58-61, extends itself into the large 37-61 loop when the latter is destabilized by protonation of H26, which forms an anchoring hydrogen bond to loop residue P44. This conformation change ruptures the Met80-Fe bond, as revealed by changes in ligation-sensitive Raman bands. It also induces peroxidase activity with the same temperature profile. This process is suggested to model the apoptotic peroxidation of cardiolipin by cytochrome c.

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Year:  2010        PMID: 20666389      PMCID: PMC2919162          DOI: 10.1021/ic902157z

Source DB:  PubMed          Journal:  Inorg Chem        ISSN: 0020-1669            Impact factor:   5.165


  124 in total

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Authors:  S Herold; M Exner; T Nauser
Journal:  Biochemistry       Date:  2001-03-20       Impact factor: 3.162

2.  Proteomic method identifies proteins nitrated in vivo during inflammatory challenge.

Authors:  K S Aulak; M Miyagi; L Yan; K A West; D Massillon; J W Crabb; D J Stuehr
Journal:  Proc Natl Acad Sci U S A       Date:  2001-10-02       Impact factor: 11.205

3.  Studying reactive processes with classical dynamics: rebinding dynamics in MbNO.

Authors:  David R Nutt; Markus Meuwly
Journal:  Biophys J       Date:  2005-12-02       Impact factor: 4.033

4.  Part I: pathogenetic role of peroxynitrite in the development of diabetes and diabetic vascular complications: studies with FP15, a novel potent peroxynitrite decomposition catalyst.

Authors:  Csaba Szabó; Jon G Mabley; Suzanne M Moeller; Roman Shimanovich; Pál Pacher; László Virag; Francisco G Soriano; John H Van Duzer; William Williams; Andrew L Salzman; John T Groves
Journal:  Mol Med       Date:  2002-10       Impact factor: 6.354

5.  Cytochrome c acts as a cardiolipin oxygenase required for release of proapoptotic factors.

Authors:  Valerian E Kagan; Vladimir A Tyurin; Jianfei Jiang; Yulia Y Tyurina; Vladimir B Ritov; Andrew A Amoscato; Anatoly N Osipov; Natalia A Belikova; Alexandr A Kapralov; Vidisha Kini; Irina I Vlasova; Qing Zhao; Meimei Zou; Peter Di; Dimitry A Svistunenko; Igor V Kurnikov; Gregory G Borisenko
Journal:  Nat Chem Biol       Date:  2005-08-14       Impact factor: 15.040

6.  Interaction of myeloperoxidase with peroxynitrite. A comparison with lactoperoxidase, horseradish peroxidase and catalase.

Authors:  R Floris; S R Piersma; G Yang; P Jones; R Wever
Journal:  Eur J Biochem       Date:  1993-08-01

Review 7.  The chemistry of peroxynitrite: implications for biological activity.

Authors:  Sara Goldstein; Gabor Merényi
Journal:  Methods Enzymol       Date:  2008       Impact factor: 1.600

8.  A peroxynitrite decomposition catalyst counteracts sensory neuropathy in streptozotocin-diabetic mice.

Authors:  Viktor R Drel; Pal Pacher; Igor Vareniuk; Ivan Pavlov; Olga Ilnytska; Valeriy V Lyzogubov; Jyoti Tibrewala; John T Groves; Irina G Obrosova
Journal:  Eur J Pharmacol       Date:  2007-06-09       Impact factor: 4.432

9.  Kinetics of nitric oxide and hydrogen peroxide production and formation of peroxynitrite during the respiratory burst of human neutrophils.

Authors:  M C Carreras; G A Pargament; S D Catz; J J Poderoso; A Boveris
Journal:  FEBS Lett       Date:  1994-03-14       Impact factor: 4.124

10.  Peroxynitrite-mediated tyrosine nitration catalyzed by superoxide dismutase.

Authors:  H Ischiropoulos; L Zhu; J Chen; M Tsai; J C Martin; C D Smith; J S Beckman
Journal:  Arch Biochem Biophys       Date:  1992-11-01       Impact factor: 4.013

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  24 in total

1.  Molecular probes of the mechanism of cytochrome P450. Oxygen traps a substrate radical intermediate.

Authors:  Harriet L R Cooper; John T Groves
Journal:  Arch Biochem Biophys       Date:  2010-11-12       Impact factor: 4.013

2.  Direct Resonance Raman Characterization of a Peroxynitrito Copper Complex Generated from O2 and NO and Mechanistic Insights into Metal-Mediated Peroxynitrite Decomposition.

Authors:  Jeffrey J Liu; Maxime A Siegler; Kenneth D Karlin; Pierre Moënne-Loccoz
Journal:  Angew Chem Int Ed Engl       Date:  2019-07-03       Impact factor: 15.336

3.  Conversion of Aldehyde to Alkane by a Peroxoiron(III) Complex: A Functional Model for the Cyanobacterial Aldehyde-Deformylating Oxygenase.

Authors:  Alireza Shokri; Lawrence Que
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4.  Factors That Control the Reactivity of Cobalt(III)-Nitrosyl Complexes in Nitric Oxide Transfer and Dioxygenation Reactions: A Combined Experimental and Theoretical Investigation.

Authors:  Pankaj Kumar; Yong-Min Lee; Lianrui Hu; Jianwei Chen; Young Jun Park; Jiannian Yao; Hui Chen; Kenneth D Karlin; Wonwoo Nam
Journal:  J Am Chem Soc       Date:  2016-06-07       Impact factor: 15.419

5.  Reaction Intermediates and Molecular Mechanism of Peroxynitrite Activation by NO Synthases.

Authors:  Jérôme Lang; Amandine Maréchal; Manon Couture; Jérôme Santolini
Journal:  Biophys J       Date:  2016-11-15       Impact factor: 4.033

6.  Copper(I)/NO(g) Reductive Coupling Producing a trans-Hyponitrite Bridged Dicopper(II) Complex: Redox Reversal Giving Copper(I)/NO(g) Disproportionation.

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Journal:  J Am Chem Soc       Date:  2017-09-12       Impact factor: 15.419

7.  Effects of slow, sustained, and rate-tunable nitric oxide donors on human aortic smooth muscle cells proliferation.

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Journal:  Chem Biol Drug Des       Date:  2011-08-03       Impact factor: 2.817

Review 8.  Oxygen Activation and Radical Transformations in Heme Proteins and Metalloporphyrins.

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Journal:  Chem Rev       Date:  2017-12-29       Impact factor: 60.622

Review 9.  Production of dioxygen in the dark: dismutases of oxyanions.

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10.  Reactions of a chromium(III)-superoxo complex and nitric oxide that lead to the formation of chromium(IV)-oxo and chromium(III)-nitrito complexes.

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Journal:  J Am Chem Soc       Date:  2013-09-30       Impact factor: 15.419

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