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SP3-Enabled Rapid and High Coverage Chemoproteomic Identification of Cell-State–Dependent Redox-Sensitive Cysteines

Proteinaceous cysteine residues act as privileged sensors of oxidative stress. As reactive oxygen and nitrogen species have been implicated in numerous pathophysiological processes, deciphering which cysteines are sensitive to oxidative modification and the specific nature of these modifications is...

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Autores principales: Desai, Heta S., Yan, Tianyang, Yu, Fengchao, Sun, Alexander W., Villanueva, Miranda, Nesvizhskii, Alexey I., Backus, Keriann M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9010637/
https://www.ncbi.nlm.nih.gov/pubmed/35219905
http://dx.doi.org/10.1016/j.mcpro.2022.100218
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author Desai, Heta S.
Yan, Tianyang
Yu, Fengchao
Sun, Alexander W.
Villanueva, Miranda
Nesvizhskii, Alexey I.
Backus, Keriann M.
author_facet Desai, Heta S.
Yan, Tianyang
Yu, Fengchao
Sun, Alexander W.
Villanueva, Miranda
Nesvizhskii, Alexey I.
Backus, Keriann M.
author_sort Desai, Heta S.
collection PubMed
description Proteinaceous cysteine residues act as privileged sensors of oxidative stress. As reactive oxygen and nitrogen species have been implicated in numerous pathophysiological processes, deciphering which cysteines are sensitive to oxidative modification and the specific nature of these modifications is essential to understanding protein and cellular function in health and disease. While established mass spectrometry-based proteomic platforms have improved our understanding of the redox proteome, the widespread adoption of these methods is often hindered by complex sample preparation workflows, prohibitive cost of isotopic labeling reagents, and requirements for custom data analysis workflows. Here, we present the SP3-Rox redox proteomics method that combines tailored low cost isotopically labeled capture reagents with SP3 sample cleanup to achieve high throughput and high coverage proteome-wide identification of redox-sensitive cysteines. By implementing a customized workflow in the free FragPipe computational pipeline, we achieve accurate MS1-based quantitation, including for peptides containing multiple cysteine residues. Application of the SP3-Rox method to cellular proteomes identified cysteines sensitive to the oxidative stressor GSNO and cysteine oxidation state changes that occur during T cell activation.
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spelling pubmed-90106372022-04-18 SP3-Enabled Rapid and High Coverage Chemoproteomic Identification of Cell-State–Dependent Redox-Sensitive Cysteines Desai, Heta S. Yan, Tianyang Yu, Fengchao Sun, Alexander W. Villanueva, Miranda Nesvizhskii, Alexey I. Backus, Keriann M. Mol Cell Proteomics Research Proteinaceous cysteine residues act as privileged sensors of oxidative stress. As reactive oxygen and nitrogen species have been implicated in numerous pathophysiological processes, deciphering which cysteines are sensitive to oxidative modification and the specific nature of these modifications is essential to understanding protein and cellular function in health and disease. While established mass spectrometry-based proteomic platforms have improved our understanding of the redox proteome, the widespread adoption of these methods is often hindered by complex sample preparation workflows, prohibitive cost of isotopic labeling reagents, and requirements for custom data analysis workflows. Here, we present the SP3-Rox redox proteomics method that combines tailored low cost isotopically labeled capture reagents with SP3 sample cleanup to achieve high throughput and high coverage proteome-wide identification of redox-sensitive cysteines. By implementing a customized workflow in the free FragPipe computational pipeline, we achieve accurate MS1-based quantitation, including for peptides containing multiple cysteine residues. Application of the SP3-Rox method to cellular proteomes identified cysteines sensitive to the oxidative stressor GSNO and cysteine oxidation state changes that occur during T cell activation. American Society for Biochemistry and Molecular Biology 2022-02-25 /pmc/articles/PMC9010637/ /pubmed/35219905 http://dx.doi.org/10.1016/j.mcpro.2022.100218 Text en © 2022 The Authors https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Research
Desai, Heta S.
Yan, Tianyang
Yu, Fengchao
Sun, Alexander W.
Villanueva, Miranda
Nesvizhskii, Alexey I.
Backus, Keriann M.
SP3-Enabled Rapid and High Coverage Chemoproteomic Identification of Cell-State–Dependent Redox-Sensitive Cysteines
title SP3-Enabled Rapid and High Coverage Chemoproteomic Identification of Cell-State–Dependent Redox-Sensitive Cysteines
title_full SP3-Enabled Rapid and High Coverage Chemoproteomic Identification of Cell-State–Dependent Redox-Sensitive Cysteines
title_fullStr SP3-Enabled Rapid and High Coverage Chemoproteomic Identification of Cell-State–Dependent Redox-Sensitive Cysteines
title_full_unstemmed SP3-Enabled Rapid and High Coverage Chemoproteomic Identification of Cell-State–Dependent Redox-Sensitive Cysteines
title_short SP3-Enabled Rapid and High Coverage Chemoproteomic Identification of Cell-State–Dependent Redox-Sensitive Cysteines
title_sort sp3-enabled rapid and high coverage chemoproteomic identification of cell-state–dependent redox-sensitive cysteines
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9010637/
https://www.ncbi.nlm.nih.gov/pubmed/35219905
http://dx.doi.org/10.1016/j.mcpro.2022.100218
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