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Proteomic Profiling of Nitrosative Stress: Protein S-Oxidation Accompanies S-Nitrosylation

[Image: see text] Reversible chemical modifications of protein cysteine residues by S-nitrosylation and S-oxidation are increasingly recognized as important regulatory mechanisms for many protein classes associated with cellular signaling and stress response. Both modifications may theoretically occ...

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Autores principales: Wang, Yue-Ting, Piyankarage, Sujeewa C., Williams, David L., Thatcher, Gregory R. J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2014
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3985710/
https://www.ncbi.nlm.nih.gov/pubmed/24397869
http://dx.doi.org/10.1021/cb400547u
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author Wang, Yue-Ting
Piyankarage, Sujeewa C.
Williams, David L.
Thatcher, Gregory R. J.
author_facet Wang, Yue-Ting
Piyankarage, Sujeewa C.
Williams, David L.
Thatcher, Gregory R. J.
author_sort Wang, Yue-Ting
collection PubMed
description [Image: see text] Reversible chemical modifications of protein cysteine residues by S-nitrosylation and S-oxidation are increasingly recognized as important regulatory mechanisms for many protein classes associated with cellular signaling and stress response. Both modifications may theoretically occur under cellular nitrosative or nitroxidative stress. Therefore, a proteomic isotope-coded approach to parallel, quantitative analysis of cysteome S-nitrosylation and S-oxidation was developed. Modifications of cysteine residues of (i) human glutathione-S-transferase P1-1 (GSTP1) and (ii) the schistosomiasis drug target thioredoxin glutathione reductase (TGR) were studied. Both S-nitrosylation (SNO) and S-oxidation to disulfide (SS) were observed for reactive cysteines, dependent on concentration of added S-nitrosocysteine (CysNO) and independent of oxygen. SNO and SS modifications of GSTP1 were quantified and compared for therapeutically relevant NO and HNO donors from different chemical classes, revealing oxidative modification for all donors. Observations on GSTP1 were extended to cell cultures, analyzed after lysis and in-gel digestion. Treatment of living neuronal cells with CysNO, to induce nitrosative stress, caused levels of S-nitrosylation and S-oxidation of GSTP1 comparable to those of cell-free studies. Cysteine modifications of PARK7/DJ-1, peroxiredoxin-2, and other proteins were identified, quantified, and compared to overall levels of protein S-nitrosylation. The new methodology has allowed identification and quantitation of specific cysteome modifications, demonstrating that nitroxidation to protein disulfides occurs concurrently with S-nitrosylation to protein-SNO in recombinant proteins and living cells under nitrosative stress.
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spelling pubmed-39857102015-01-07 Proteomic Profiling of Nitrosative Stress: Protein S-Oxidation Accompanies S-Nitrosylation Wang, Yue-Ting Piyankarage, Sujeewa C. Williams, David L. Thatcher, Gregory R. J. ACS Chem Biol [Image: see text] Reversible chemical modifications of protein cysteine residues by S-nitrosylation and S-oxidation are increasingly recognized as important regulatory mechanisms for many protein classes associated with cellular signaling and stress response. Both modifications may theoretically occur under cellular nitrosative or nitroxidative stress. Therefore, a proteomic isotope-coded approach to parallel, quantitative analysis of cysteome S-nitrosylation and S-oxidation was developed. Modifications of cysteine residues of (i) human glutathione-S-transferase P1-1 (GSTP1) and (ii) the schistosomiasis drug target thioredoxin glutathione reductase (TGR) were studied. Both S-nitrosylation (SNO) and S-oxidation to disulfide (SS) were observed for reactive cysteines, dependent on concentration of added S-nitrosocysteine (CysNO) and independent of oxygen. SNO and SS modifications of GSTP1 were quantified and compared for therapeutically relevant NO and HNO donors from different chemical classes, revealing oxidative modification for all donors. Observations on GSTP1 were extended to cell cultures, analyzed after lysis and in-gel digestion. Treatment of living neuronal cells with CysNO, to induce nitrosative stress, caused levels of S-nitrosylation and S-oxidation of GSTP1 comparable to those of cell-free studies. Cysteine modifications of PARK7/DJ-1, peroxiredoxin-2, and other proteins were identified, quantified, and compared to overall levels of protein S-nitrosylation. The new methodology has allowed identification and quantitation of specific cysteome modifications, demonstrating that nitroxidation to protein disulfides occurs concurrently with S-nitrosylation to protein-SNO in recombinant proteins and living cells under nitrosative stress. American Chemical Society 2014-01-07 2014-03-21 /pmc/articles/PMC3985710/ /pubmed/24397869 http://dx.doi.org/10.1021/cb400547u Text en Copyright © 2014 American Chemical Society
spellingShingle Wang, Yue-Ting
Piyankarage, Sujeewa C.
Williams, David L.
Thatcher, Gregory R. J.
Proteomic Profiling of Nitrosative Stress: Protein S-Oxidation Accompanies S-Nitrosylation
title Proteomic Profiling of Nitrosative Stress: Protein S-Oxidation Accompanies S-Nitrosylation
title_full Proteomic Profiling of Nitrosative Stress: Protein S-Oxidation Accompanies S-Nitrosylation
title_fullStr Proteomic Profiling of Nitrosative Stress: Protein S-Oxidation Accompanies S-Nitrosylation
title_full_unstemmed Proteomic Profiling of Nitrosative Stress: Protein S-Oxidation Accompanies S-Nitrosylation
title_short Proteomic Profiling of Nitrosative Stress: Protein S-Oxidation Accompanies S-Nitrosylation
title_sort proteomic profiling of nitrosative stress: protein s-oxidation accompanies s-nitrosylation
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3985710/
https://www.ncbi.nlm.nih.gov/pubmed/24397869
http://dx.doi.org/10.1021/cb400547u
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