Cargando…

Overexpression of Catalase Diminishes Oxidative Cysteine Modifications of Cardiac Proteins

Reactive protein cysteine thiolates are instrumental in redox regulation. Oxidants, such as hydrogen peroxide (H(2)O(2)), react with thiolates to form oxidative post-translational modifications, enabling physiological redox signaling. Cardiac disease and aging are associated with oxidative stress wh...

Descripción completa

Detalles Bibliográficos
Autores principales: Yao, Chunxiang, Behring, Jessica B., Shao, Di, Sverdlov, Aaron L., Whelan, Stephen A., Elezaby, Aly, Yin, Xiaoyan, Siwik, Deborah A., Seta, Francesca, Costello, Catherine E., Cohen, Richard A., Matsui, Reiko, Colucci, Wilson S., McComb, Mark E., Bachschmid, Markus M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4671598/
https://www.ncbi.nlm.nih.gov/pubmed/26642319
http://dx.doi.org/10.1371/journal.pone.0144025
_version_ 1782404424478490624
author Yao, Chunxiang
Behring, Jessica B.
Shao, Di
Sverdlov, Aaron L.
Whelan, Stephen A.
Elezaby, Aly
Yin, Xiaoyan
Siwik, Deborah A.
Seta, Francesca
Costello, Catherine E.
Cohen, Richard A.
Matsui, Reiko
Colucci, Wilson S.
McComb, Mark E.
Bachschmid, Markus M.
author_facet Yao, Chunxiang
Behring, Jessica B.
Shao, Di
Sverdlov, Aaron L.
Whelan, Stephen A.
Elezaby, Aly
Yin, Xiaoyan
Siwik, Deborah A.
Seta, Francesca
Costello, Catherine E.
Cohen, Richard A.
Matsui, Reiko
Colucci, Wilson S.
McComb, Mark E.
Bachschmid, Markus M.
author_sort Yao, Chunxiang
collection PubMed
description Reactive protein cysteine thiolates are instrumental in redox regulation. Oxidants, such as hydrogen peroxide (H(2)O(2)), react with thiolates to form oxidative post-translational modifications, enabling physiological redox signaling. Cardiac disease and aging are associated with oxidative stress which can impair redox signaling by altering essential cysteine thiolates. We previously found that cardiac-specific overexpression of catalase (Cat), an enzyme that detoxifies excess H(2)O(2), protected from oxidative stress and delayed cardiac aging in mice. Using redox proteomics and systems biology, we sought to identify the cysteines that could play a key role in cardiac disease and aging. With a ‘Tandem Mass Tag’ (TMT) labeling strategy and mass spectrometry, we investigated differential reversible cysteine oxidation in the cardiac proteome of wild type and Cat transgenic (Tg) mice. Reversible cysteine oxidation was measured as thiol occupancy, the ratio of total available versus reversibly oxidized cysteine thiols. Catalase overexpression globally decreased thiol occupancy by ≥1.3 fold in 82 proteins, including numerous mitochondrial and contractile proteins. Systems biology analysis assigned the majority of proteins with differentially modified thiols in Cat Tg mice to pathways of aging and cardiac disease, including cellular stress response, proteostasis, and apoptosis. In addition, Cat Tg mice exhibited diminished protein glutathione adducts and decreased H(2)O(2) production from mitochondrial complex I and II, suggesting improved function of cardiac mitochondria. In conclusion, our data suggest that catalase may alleviate cardiac disease and aging by moderating global protein cysteine thiol oxidation.
format Online
Article
Text
id pubmed-4671598
institution National Center for Biotechnology Information
language English
publishDate 2015
publisher Public Library of Science
record_format MEDLINE/PubMed
spelling pubmed-46715982015-12-10 Overexpression of Catalase Diminishes Oxidative Cysteine Modifications of Cardiac Proteins Yao, Chunxiang Behring, Jessica B. Shao, Di Sverdlov, Aaron L. Whelan, Stephen A. Elezaby, Aly Yin, Xiaoyan Siwik, Deborah A. Seta, Francesca Costello, Catherine E. Cohen, Richard A. Matsui, Reiko Colucci, Wilson S. McComb, Mark E. Bachschmid, Markus M. PLoS One Research Article Reactive protein cysteine thiolates are instrumental in redox regulation. Oxidants, such as hydrogen peroxide (H(2)O(2)), react with thiolates to form oxidative post-translational modifications, enabling physiological redox signaling. Cardiac disease and aging are associated with oxidative stress which can impair redox signaling by altering essential cysteine thiolates. We previously found that cardiac-specific overexpression of catalase (Cat), an enzyme that detoxifies excess H(2)O(2), protected from oxidative stress and delayed cardiac aging in mice. Using redox proteomics and systems biology, we sought to identify the cysteines that could play a key role in cardiac disease and aging. With a ‘Tandem Mass Tag’ (TMT) labeling strategy and mass spectrometry, we investigated differential reversible cysteine oxidation in the cardiac proteome of wild type and Cat transgenic (Tg) mice. Reversible cysteine oxidation was measured as thiol occupancy, the ratio of total available versus reversibly oxidized cysteine thiols. Catalase overexpression globally decreased thiol occupancy by ≥1.3 fold in 82 proteins, including numerous mitochondrial and contractile proteins. Systems biology analysis assigned the majority of proteins with differentially modified thiols in Cat Tg mice to pathways of aging and cardiac disease, including cellular stress response, proteostasis, and apoptosis. In addition, Cat Tg mice exhibited diminished protein glutathione adducts and decreased H(2)O(2) production from mitochondrial complex I and II, suggesting improved function of cardiac mitochondria. In conclusion, our data suggest that catalase may alleviate cardiac disease and aging by moderating global protein cysteine thiol oxidation. Public Library of Science 2015-12-07 /pmc/articles/PMC4671598/ /pubmed/26642319 http://dx.doi.org/10.1371/journal.pone.0144025 Text en © 2015 Yao et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Yao, Chunxiang
Behring, Jessica B.
Shao, Di
Sverdlov, Aaron L.
Whelan, Stephen A.
Elezaby, Aly
Yin, Xiaoyan
Siwik, Deborah A.
Seta, Francesca
Costello, Catherine E.
Cohen, Richard A.
Matsui, Reiko
Colucci, Wilson S.
McComb, Mark E.
Bachschmid, Markus M.
Overexpression of Catalase Diminishes Oxidative Cysteine Modifications of Cardiac Proteins
title Overexpression of Catalase Diminishes Oxidative Cysteine Modifications of Cardiac Proteins
title_full Overexpression of Catalase Diminishes Oxidative Cysteine Modifications of Cardiac Proteins
title_fullStr Overexpression of Catalase Diminishes Oxidative Cysteine Modifications of Cardiac Proteins
title_full_unstemmed Overexpression of Catalase Diminishes Oxidative Cysteine Modifications of Cardiac Proteins
title_short Overexpression of Catalase Diminishes Oxidative Cysteine Modifications of Cardiac Proteins
title_sort overexpression of catalase diminishes oxidative cysteine modifications of cardiac proteins
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4671598/
https://www.ncbi.nlm.nih.gov/pubmed/26642319
http://dx.doi.org/10.1371/journal.pone.0144025
work_keys_str_mv AT yaochunxiang overexpressionofcatalasediminishesoxidativecysteinemodificationsofcardiacproteins
AT behringjessicab overexpressionofcatalasediminishesoxidativecysteinemodificationsofcardiacproteins
AT shaodi overexpressionofcatalasediminishesoxidativecysteinemodificationsofcardiacproteins
AT sverdlovaaronl overexpressionofcatalasediminishesoxidativecysteinemodificationsofcardiacproteins
AT whelanstephena overexpressionofcatalasediminishesoxidativecysteinemodificationsofcardiacproteins
AT elezabyaly overexpressionofcatalasediminishesoxidativecysteinemodificationsofcardiacproteins
AT yinxiaoyan overexpressionofcatalasediminishesoxidativecysteinemodificationsofcardiacproteins
AT siwikdeboraha overexpressionofcatalasediminishesoxidativecysteinemodificationsofcardiacproteins
AT setafrancesca overexpressionofcatalasediminishesoxidativecysteinemodificationsofcardiacproteins
AT costellocatherinee overexpressionofcatalasediminishesoxidativecysteinemodificationsofcardiacproteins
AT cohenricharda overexpressionofcatalasediminishesoxidativecysteinemodificationsofcardiacproteins
AT matsuireiko overexpressionofcatalasediminishesoxidativecysteinemodificationsofcardiacproteins
AT colucciwilsons overexpressionofcatalasediminishesoxidativecysteinemodificationsofcardiacproteins
AT mccombmarke overexpressionofcatalasediminishesoxidativecysteinemodificationsofcardiacproteins
AT bachschmidmarkusm overexpressionofcatalasediminishesoxidativecysteinemodificationsofcardiacproteins