Literature DB >> 21080654

Peroxynitrite mediates active site tyrosine nitration in manganese superoxide dismutase. Evidence of a role for the carbonate radical anion.

N Basak Surmeli1, Nadia K Litterman, Anne-Frances Miller, John T Groves.   

Abstract

Protein tyrosine nitration has been observed in a variety of human diseases associated with oxidative stress, such as inflammatory, neurodegenerative, and cardiovascular conditions. However, the pathways leading to nitration of tyrosine residues are still unclear. Recent studies have shown that peroxynitrite (PN), produced by the reaction of superoxide and nitric oxide, can lead to protein nitration and inactivation. Tyrosine nitration may also be mediated by nitrogen dioxide produced by the oxidation of nitrite by peroxidases. Manganese superoxide dismutase (MnSOD), which plays a critical role in cellular defense against oxidative stress by decomposing superoxide within mitochondria, is nitrated and inactivated under pathological conditions. In this study, MnSOD is shown to catalyze PN-mediated self-nitration. Direct, spectroscopic observation of the kinetics of PN decay and nitrotyrosine formation (k(cat) = 9.3 × 10(2) M(-1) s(-1)) indicates that the mechanism involves redox cycling between Mn(2+) and Mn(3+), similar to that observed with superoxide. Distinctive patterns of tyrosine nitration within MnSOD by various reagents were revealed and quantified by MS/MS analysis of MnSOD trypsin digest peptides. These analyses showed that three of the seven tyrosine residues of MnSOD (Tyr34, Tyr9, and Tyr11) were the most susceptible to nitration and that the relative amounts of nitration of these residues varied widely depending upon the nature of the nitrating agent. Notably, nitration mediated by PN, in both the presence and absence of CO2, resulted in nitration of the active site tyrosine, Tyr34, while nitration by freely diffusing nitrogen dioxide led to surface nitration at Tyr9 and Tyr11. Flux analysis of the nitration of Tyr34 by PN-CO2 showed that the nitration rate coincided with the kinetics of the reaction of PN with CO2. These kinetics and the 20-fold increase in the efficiency of tyrosine nitration in the presence of CO2 suggest a specific role for the carbonate radical anion (•CO3(-)) in MnSOD nitration by PN. We also observed that the nitration of Tyr34 caused inactivation of the enzyme, while nitration of Tyr9 and Tyr11 did not interfere with the superoxide dismutase activity. The loss of MnSOD activity upon Tyr34 nitration implies that the responsible reagent in vivo is peroxynitrite, acting either directly or through the action of •CO3(-).

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Year:  2010        PMID: 21080654      PMCID: PMC3050995          DOI: 10.1021/ja105684w

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


  84 in total

1.  Bicarbonate enhances the hydroxylation, nitration, and peroxidation reactions catalyzed by copper, zinc superoxide dismutase. Intermediacy of carbonate anion radical.

Authors:  H Zhang; J Joseph; C Felix; B Kalyanaraman
Journal:  J Biol Chem       Date:  2000-05-12       Impact factor: 5.157

2.  Myoglobin catalyzes its own nitration.

Authors:  J L Bourassa; E P Ives; A L Marqueling; R Shimanovich; J T Groves
Journal:  J Am Chem Soc       Date:  2001-05-30       Impact factor: 15.419

3.  Mn(II)-texaphyrin as a catalyst for the decomposition of peroxynitrite.

Authors:  R Shimanovich; S Hannah; V Lynch; N Gerasimchuk; T D Mody; D Magda; J Sessler; J T Groves
Journal:  J Am Chem Soc       Date:  2001-04-18       Impact factor: 15.419

4.  Endothelial dysfunction and peroxynitrite formation are early events in angiotensin-induced cardiovascular disorders.

Authors:  S K Wattanapitayakul; D M Weinstein; B J Holycross; J A Bauer
Journal:  FASEB J       Date:  2000-02       Impact factor: 5.191

Review 5.  Nitric oxide and peroxynitrite. The ugly, the uglier and the not so good: a personal view of recent controversies.

Authors:  B Halliwell; K Zhao; M Whiteman
Journal:  Free Radic Res       Date:  1999-12

6.  Reaction of peroxynitrite with Mn-superoxide dismutase. Role of the metal center in decomposition kinetics and nitration.

Authors:  C Quijano; D Hernandez-Saavedra; L Castro; J M McCord; B A Freeman; R Radi
Journal:  J Biol Chem       Date:  2001-01-04       Impact factor: 5.157

7.  Factors determining the selectivity of protein tyrosine nitration.

Authors:  J M Souza; E Daikhin; M Yudkoff; C S Raman; H Ischiropoulos
Journal:  Arch Biochem Biophys       Date:  1999-11-15       Impact factor: 4.013

8.  Removing a hydrogen bond in the dimer interface of Escherichia coli manganese superoxide dismutase alters structure and reactivity.

Authors:  R A Edwards; M M Whittaker; J W Whittaker; E N Baker; G B Jameson
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9.  Carbon dioxide stimulates the production of thiyl, sulfinyl, and disulfide radical anion from thiol oxidation by peroxynitrite.

Authors:  M G Bonini; O Augusto
Journal:  J Biol Chem       Date:  2000-12-27       Impact factor: 5.157

Review 10.  Mechanisms of cell death governed by the balance between nitrosative and oxidative stress.

Authors:  M G Espey; K M Miranda; M Feelisch; J Fukuto; M B Grisham; M P Vitek; D A Wink
Journal:  Ann N Y Acad Sci       Date:  2000       Impact factor: 5.691

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  27 in total

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2.  A Fast Photochemical Oxidation of Proteins (FPOP) platform for free-radical reactions: the carbonate radical anion with peptides and proteins.

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Journal:  Free Radic Biol Med       Date:  2018-11-28       Impact factor: 7.376

Review 3.  Abeta, oxidative stress in Alzheimer disease: evidence based on proteomics studies.

Authors:  Aaron M Swomley; Sarah Förster; Jierel T Keeney; Judy Triplett; Zhaoshu Zhang; Rukhsana Sultana; D Allan Butterfield
Journal:  Biochim Biophys Acta       Date:  2013-10-09

Review 4.  Tyrosine-Nitrated Proteins: Proteomic and Bioanalytical Aspects.

Authors:  Carlos Batthyány; Silvina Bartesaghi; Mauricio Mastrogiovanni; Analía Lima; Verónica Demicheli; Rafael Radi
Journal:  Antioxid Redox Signal       Date:  2016-07-22       Impact factor: 8.401

Review 5.  Chemical Warfare at the Microorganismal Level: A Closer Look at the Superoxide Dismutase Enzymes of Pathogens.

Authors:  Sabrina S Schatzman; Valeria C Culotta
Journal:  ACS Infect Dis       Date:  2018-03-14       Impact factor: 5.084

6.  Structural and molecular basis of the peroxynitrite-mediated nitration and inactivation of Trypanosoma cruzi iron-superoxide dismutases (Fe-SODs) A and B: disparate susceptibilities due to the repair of Tyr35 radical by Cys83 in Fe-SODB through intramolecular electron transfer.

Authors:  Alejandra Martinez; Gonzalo Peluffo; Ariel A Petruk; Martín Hugo; Dolores Piñeyro; Verónica Demicheli; Diego M Moreno; Analía Lima; Carlos Batthyány; Rosario Durán; Carlos Robello; Marcelo A Martí; Nicole Larrieux; Alejandro Buschiazzo; Madia Trujillo; Rafael Radi; Lucía Piacenza
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Review 7.  Redox proteomics in selected neurodegenerative disorders: from its infancy to future applications.

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8.  Peroxynitrite chemistry derived from nitric oxide reaction with a Cu(II)-OOH species and a copper mediated NO reductive coupling reaction.

Authors:  Sunghee Kim; Maxime A Siegler; Kenneth D Karlin
Journal:  Chem Commun (Camb)       Date:  2013-12-09       Impact factor: 6.222

Review 9.  Reactive oxygen and nitrogen species in steatotic hepatocytes: a molecular perspective on the pathophysiology of ischemia-reperfusion injury in the fatty liver.

Authors:  Megan J Reiniers; Rowan F van Golen; Thomas M van Gulik; Michal Heger
Journal:  Antioxid Redox Signal       Date:  2014-02-19       Impact factor: 8.401

10.  Superoxide induces protein oxidation in plasma and TNF-α elevation in macrophage culture: Insights into mechanisms of neurotoxicity following doxorubicin chemotherapy.

Authors:  Jeriel T R Keeney; Sumitra Miriyala; Teresa Noel; Jeffrey A Moscow; Daret K St Clair; D Allan Butterfield
Journal:  Cancer Lett       Date:  2015-07-28       Impact factor: 8.679

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