Literature DB >> 12361810

Spatial mapping of pulmonary and vascular nitrotyrosine reveals the pivotal role of myeloperoxidase as a catalyst for tyrosine nitration in inflammatory diseases.

Stephan Baldus1, Jason P Eiserich, Marie-Luise Brennan, Robert M Jackson, C Bruce Alexander, Bruce A Freeman.   

Abstract

Nitrotyrosine (NO(2)Tyr) formation is a hallmark of acute and chronic inflammation and has been detected in a wide variety of human pathologies. However, the mechanisms responsible for this posttranslational protein modification remain elusive. While NO(2)Tyr has been considered a marker of peroxynitrite (ONOO(-)) formation previously, there is growing evidence that heme-protein peroxidase activity, in particular neutrophil-derived myeloperoxidase (MPO), significantly contributes to NO(2)Tyr formation in vivo via the oxidation of nitrite (NO(2)(-)) to nitrogen dioxide (.NO(2)). Coronary arteries from a patient with coronary artery disease, liver and lung tissues from a sickle cell disease patient, and an open lung biopsy from a lung transplant patient undergoing rejection were analyzed immunohistochemically to map relative tissue distributions of MPO and NO(2)Tyr. MPO immunodistribution was concentrated along the subendothelium in coronary tissue and hepatic veins as well as in the alveolar epithelial compartment of lung tissue from patients with sickle cell disease or acute rejection. MPO immunoreactivity strongly colocalized with NO(2)Tyr formation, which was similarly distributed in the subendothelial and epithelial regions of these tissues. The extracellular matrix protein fibronectin (FN), previously identified as a primary site of MPO association in vascular inflammatory reactions, proved to be a major target protein for tyrosine nitration, with a strong colocalization of MPO, NO(2)Tyr, and tissue FN occurring. Finally, lung tissue from MPO(-/-) mice, having tissue inflammatory responses stimulated by intraperitoneal zymosan administration, revealed less subendothelial NO(2)Tyr immunoreactivity than tissue from wild-type mice, confirming the significant role that MPO plays in catalyzing tissue nitration reactions. These observations reveal that (i) sequestration of neutrophil-derived MPO in vascular endothelial and alveolar epithelial compartments is an important aspect of MPO distribution and action in vivo, (ii) MPO-catalyzed NO(2)Tyr formation occurs in diverse vascular and pulmonary inflammatory pathologies, and (iii) extracellular matrix FN is an important target of tyrosine nitration in these inflammatory processes.

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Year:  2002        PMID: 12361810     DOI: 10.1016/s0891-5849(02)00993-0

Source DB:  PubMed          Journal:  Free Radic Biol Med        ISSN: 0891-5849            Impact factor:   7.376


  42 in total

Review 1.  Nitrated lipids: a class of cell-signaling molecules.

Authors:  B Kalyanaraman
Journal:  Proc Natl Acad Sci U S A       Date:  2004-08-03       Impact factor: 11.205

2.  Fatty acid amide hydrolase is a key regulator of endocannabinoid-induced myocardial tissue injury.

Authors:  Partha Mukhopadhyay; Bėla Horváth; Mohanraj Rajesh; Shingo Matsumoto; Keita Saito; Sándor Bátkai; Vivek Patel; Galin Tanchian; Rachel Y Gao; Benjamin F Cravatt; György Haskó; Pál Pacher
Journal:  Free Radic Biol Med       Date:  2010-11-09       Impact factor: 7.376

3.  Plasma concentrations of a type II collagen-derived peptide and its nitrated form in growing Ardenner sound horses and in horses suffering from juvenile digital degenerative osteoarthropathy.

Authors:  J-Ph Lejeune; D Serteyn; M Gangl; N Schneider; G Deby-Dupont; M Deberg; Y Henrotin
Journal:  Vet Res Commun       Date:  2007-01-24       Impact factor: 2.459

Review 4.  Redox-dependent impairment of vascular function in sickle cell disease.

Authors:  Mutay Aslan; Bruce A Freeman
Journal:  Free Radic Biol Med       Date:  2007-08-31       Impact factor: 7.376

5.  Myeloperoxidase interacts with endothelial cell-surface cytokeratin 1 and modulates bradykinin production by the plasma Kallikrein-Kinin system.

Authors:  Joshua M Astern; William F Pendergraft; Ronald J Falk; J Charles Jennette; Alvin H Schmaier; Fakhri Mahdi; Gloria A Preston
Journal:  Am J Pathol       Date:  2007-07       Impact factor: 4.307

6.  The effect of neighboring methionine residue on tyrosine nitration and oxidation in peptides treated with MPO, H2O2, and NO2(-) or peroxynitrite and bicarbonate: role of intramolecular electron transfer mechanism?

Authors:  Hao Zhang; Jacek Zielonka; Adam Sikora; Joy Joseph; Yingkai Xu; B Kalyanaraman
Journal:  Arch Biochem Biophys       Date:  2008-11-24       Impact factor: 4.013

Review 7.  Myeloperoxidase: A new player in autoimmunity.

Authors:  Anna Strzepa; Kirkwood A Pritchard; Bonnie N Dittel
Journal:  Cell Immunol       Date:  2017-05-10       Impact factor: 4.868

8.  Beta-amyloid mediated nitration of manganese superoxide dismutase: implication for oxidative stress in a APPNLH/NLH X PS-1P264L/P264L double knock-in mouse model of Alzheimer's disease.

Authors:  Muthuswamy Anantharaman; Jitbanjong Tangpong; Jeffery N Keller; Michael P Murphy; William R Markesbery; Kelley K Kiningham; Daret K St Clair
Journal:  Am J Pathol       Date:  2006-05       Impact factor: 4.307

9.  Myeloperoxidase levels predict accelerated progression of coronary atherosclerosis in diabetic patients: insights from intravascular ultrasound.

Authors:  Yu Kataoka; Mingyuan Shao; Kathy Wolski; Kiyoko Uno; Rishi Puri; E Murat Tuzcu; Stanley L Hazen; Steven E Nissen; Stephen J Nicholls
Journal:  Atherosclerosis       Date:  2013-12-19       Impact factor: 5.162

10.  Myeloperoxidase-derived oxidants selectively disrupt the protein core of the heparan sulfate proteoglycan perlecan.

Authors:  Martin D Rees; John M Whitelock; Ernst Malle; Christine Y Chuang; Renato V Iozzo; Anastasia Nilasaroya; Michael J Davies
Journal:  Matrix Biol       Date:  2009-09-27       Impact factor: 11.583

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