Literature DB >> 27324931

Tyrosine-Nitrated Proteins: Proteomic and Bioanalytical Aspects.

Carlos Batthyány1,2,3, Silvina Bartesaghi3,4, Mauricio Mastrogiovanni2,3, Analía Lima1, Verónica Demicheli2,3, Rafael Radi2,3.   

Abstract

SIGNIFICANCE: "Nitroproteomic" is under active development, as 3-nitrotyrosine in proteins constitutes a footprint left by the reactions of nitric oxide-derived oxidants that are usually associated to oxidative stress conditions. Moreover, protein tyrosine nitration can cause structural and functional changes, which may be of pathophysiological relevance for human disease conditions. Biological protein tyrosine nitration is a free radical process involving the intermediacy of tyrosyl radicals; in spite of being a nonenzymatic process, nitration is selectively directed toward a limited subset of tyrosine residues. Precise identification and quantitation of 3-nitrotyrosine in proteins has represented a "tour de force" for researchers. Recent Advances: A small number of proteins are preferential targets of nitration (usually less than 100 proteins per proteome), contrasting with the large number of proteins modified by other post-translational modifications such as phosphorylation, acetylation, and, notably, S-nitrosation. Proteomic approaches have revealed key features of tyrosine nitration both in vivo and in vitro, including selectivity, site specificity, and effects in protein structure and function. CRITICAL ISSUES: Identification of 3-nitrotyrosine-containing proteins and mapping nitrated residues is challenging, due to low abundance of this oxidative modification in biological samples and its unfriendly behavior in mass spectrometry (MS)-based technologies, that is, MALDI, electrospray ionization, and collision-induced dissociation. FUTURE DIRECTIONS: The use of (i) classical two-dimensional electrophoresis with immunochemical detection of nitrated proteins followed by protein ID by regular MS/MS in combination with (ii) immuno-enrichment of tyrosine-nitrated peptides and (iii) identification of nitrated peptides by a MIDAS™ experiment is arising as a potent methodology to unambiguously map and quantitate tyrosine-nitrated proteins in vivo. Antioxid. Redox Signal. 26, 313-328.

Entities:  

Keywords:  free radicals; nitration; peroxynitrite; protein oxidation; proteomics

Mesh:

Substances:

Year:  2016        PMID: 27324931      PMCID: PMC5326983          DOI: 10.1089/ars.2016.6787

Source DB:  PubMed          Journal:  Antioxid Redox Signal        ISSN: 1523-0864            Impact factor:   8.401


  123 in total

1.  Analysis of free and protein-bound nitrotyrosine in human plasma by a gas chromatography/mass spectrometry method that avoids nitration artifacts.

Authors:  M T Frost; B Halliwell; K P Moore
Journal:  Biochem J       Date:  2000-02-01       Impact factor: 3.857

2.  Cytokine-treated human neutrophils contain inducible nitric oxide synthase that produces nitration of ingested bacteria.

Authors:  T J Evans; L D Buttery; A Carpenter; D R Springall; J M Polak; J Cohen
Journal:  Proc Natl Acad Sci U S A       Date:  1996-09-03       Impact factor: 11.205

3.  A simple and robust LC-MS/MS method for quantification of free 3-nitrotyrosine in human plasma from patients receiving on-pump CABG surgery.

Authors:  Yu Hui; Michael Wong; Shuai Sherry Zhao; Jennifer A Love; David M Ansley; David D Y Chen
Journal:  Electrophoresis       Date:  2012-02       Impact factor: 3.535

Review 4.  Immunogenicity of an inflammation-associated product, tyrosine nitrated self-proteins.

Authors:  Hitoshi Ohmori; Naoki Kanayama
Journal:  Autoimmun Rev       Date:  2004-12-30       Impact factor: 9.754

5.  Nitric oxide (NO) induces nitration of protein kinase Cepsilon (PKCepsilon ), facilitating PKCepsilon translocation via enhanced PKCepsilon -RACK2 interactions: a novel mechanism of no-triggered activation of PKCepsilon.

Authors:  Zarema Balafanova; Roberto Bolli; Jun Zhang; Yuting Zheng; Jason M Pass; Aruni Bhatnagar; Xian-Liang Tang; Ouli Wang; Ernest Cardwell; Peipei Ping
Journal:  J Biol Chem       Date:  2002-02-11       Impact factor: 5.157

6.  Site-specific nitration of apolipoprotein A-I at tyrosine 166 is both abundant within human atherosclerotic plaque and dysfunctional.

Authors:  Joseph A DiDonato; Kulwant Aulak; Ying Huang; Matthew Wagner; Gary Gerstenecker; Celalettin Topbas; Valentin Gogonea; Anthony J DiDonato; W H Wilson Tang; Ryan A Mehl; Paul L Fox; Edward F Plow; Jonathan D Smith; Edward A Fisher; Stanley L Hazen
Journal:  J Biol Chem       Date:  2014-02-20       Impact factor: 5.157

Review 7.  L-arginine metabolism during interaction of Trypanosoma cruzi with host cells.

Authors:  Gonzalo Peluffo; Lucía Piacenza; Florencia Irigoín; María Noel Alvarez; Rafael Radi
Journal:  Trends Parasitol       Date:  2004-08

Review 8.  Kinetic and mechanistic considerations to assess the biological fate of peroxynitrite.

Authors:  Sebastián Carballal; Silvina Bartesaghi; Rafael Radi
Journal:  Biochim Biophys Acta       Date:  2013-07-18

9.  Peroxynitrous acid induces structural and functional modifications to basement membranes and its key component, laminin.

Authors:  Georg Degendorfer; Christine Y Chuang; Astrid Hammer; Ernst Malle; Michael J Davies
Journal:  Free Radic Biol Med       Date:  2015-10-08       Impact factor: 7.376

10.  Cyclosporine A-induced nitration of tyrosine 34 MnSOD in endothelial cells: role of mitochondrial superoxide.

Authors:  Mariano Redondo-Horcajo; Natalia Romero; Pablo Martínez-Acedo; Antonio Martínez-Ruiz; Celia Quijano; Catia F Lourenço; Nieves Movilla; Jose Antonio Enríquez; Fernando Rodríguez-Pascual; Eduardo Rial; Rafael Radi; Jesús Vázquez; Santiago Lamas
Journal:  Cardiovasc Res       Date:  2010-01-27       Impact factor: 10.787

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  18 in total

1.  Peroxynitrite nitrates adenine nucleotide translocase and voltage-dependent anion channel 1 and alters their interactions and association with hexokinase II in mitochondria.

Authors:  Meiying Yang; Yanji Xu; James S Heisner; Jie Sun; David F Stowe; Wai-Meng Kwok; Amadou K S Camara
Journal:  Mitochondrion       Date:  2018-11-01       Impact factor: 4.160

2.  Myeloid-derived suppressor cells inhibit T cell activation through nitrating LCK in mouse cancers.

Authors:  Shan Feng; Xi Cheng; Lin Zhang; Xuemin Lu; Seema Chaudhary; Ruifang Teng; Christian Frederickson; Matthew M Champion; Ren Zhao; Liang Cheng; Yiyi Gong; Haiteng Deng; Xin Lu
Journal:  Proc Natl Acad Sci U S A       Date:  2018-09-19       Impact factor: 11.205

3.  Design of a Protein Motif Responsive to Tyrosine Nitration and an Encoded Turn-Off Sensor of Tyrosine Nitration.

Authors:  Andrew R Urmey; Neal J Zondlo
Journal:  Biochemistry       Date:  2019-06-12       Impact factor: 3.162

4.  The mitochondrial thioredoxin reductase system (TrxR2) in vascular endothelium controls peroxynitrite levels and tissue integrity.

Authors:  Petra Kameritsch; Miriam Singer; Christoph Nuernbergk; Natalia Rios; Aníbal M Reyes; Kjestine Schmidt; Julian Kirsch; Holger Schneider; Susanna Müller; Kristin Pogoda; Ruicen Cui; Thomas Kirchner; Cor de Wit; Bärbel Lange-Sperandio; Ulrich Pohl; Marcus Conrad; Rafael Radi; Heike Beck
Journal:  Proc Natl Acad Sci U S A       Date:  2021-02-16       Impact factor: 11.205

Review 5.  Oxygen radicals, nitric oxide, and peroxynitrite: Redox pathways in molecular medicine.

Authors:  Rafael Radi
Journal:  Proc Natl Acad Sci U S A       Date:  2018-05-25       Impact factor: 11.205

Review 6.  Detection and quantification of nitric oxide-derived oxidants in biological systems.

Authors:  Matías N Möller; Natalia Rios; Madia Trujillo; Rafael Radi; Ana Denicola; Beatriz Alvarez
Journal:  J Biol Chem       Date:  2019-08-12       Impact factor: 5.157

7.  Role of papillary thyroid carcinoma patients with Hashimoto thyroiditis: evaluation of oxidative stress and inflammatory markers.

Authors:  Natália Medeiros Dias Lopes; Hannah Hamada Mendonça Lens; Walison Augusto da Silva Brito; Julya Karen Bianchi; Poliana Camila Marinello; Rubens Cecchini; André Armani; Alessandra Lourenço Cecchini
Journal:  Clin Transl Oncol       Date:  2022-07-28       Impact factor: 3.340

Review 8.  Regulation of Chemokine Function: The Roles of GAG-Binding and Post-Translational Nitration.

Authors:  Sarah Thompson; Beatriz Martínez-Burgo; Krishna Mohan Sepuru; Krishna Rajarathnam; John A Kirby; Neil S Sheerin; Simi Ali
Journal:  Int J Mol Sci       Date:  2017-08-03       Impact factor: 5.923

Review 9.  Detection of ROS Induced Proteomic Signatures by Mass Spectrometry.

Authors:  Brian McDonagh
Journal:  Front Physiol       Date:  2017-07-07       Impact factor: 4.566

Review 10.  Genetic Code Expansion: A Powerful Tool for Understanding the Physiological Consequences of Oxidative Stress Protein Modifications.

Authors:  Joseph J Porter; Ryan A Mehl
Journal:  Oxid Med Cell Longev       Date:  2018-04-23       Impact factor: 6.543

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