Literature DB >> 23748021

Site specific identification of endogenous S-nitrosocysteine proteomes.

Paschalis-Thomas Doulias1, Margarita Tenopoulou, Karthik Raju, Lynn A Spruce, Steven H Seeholzer, Harry Ischiropoulos.   

Abstract

Cysteine S-nitrosylation is a post-translational modification regulating protein function and nitric oxide signaling. Herein the selectivity, reproducibility, and sensitivity of a mass spectrometry-based proteomic method for the identification of endogenous S-nitrosylated proteins are outlined. The method enriches for either S-nitrosylated proteins or peptides through covalent binding of the cysteine sulfur with phenylmercury at pH=6.0. Phenylmercury reacts selectively and efficiently with S-nitrosocysteine since no reactivity can be documented for disulfides, sulfinic or sulfonic acids, S-glutathionylated, S-alkylated or S-sulfhydrylated cysteine residues. A specificity of 97±1% for the identification of S-nitrosocysteine peptides in mouse liver tissue is achieved by the inclusion of negative controls. The method enables the detection of 36 S-nitrosocysteine peptides starting with 5pmolS-nitrosocysteine/mg of total tissue protein. Both the percentage of protein molecules modified as well as the occupancy by S-nitrosylation can be determined. Overall, selective, sensitive and reproducible enrichment of S-nitrosylated proteins and peptides is achieved by the use of phenylmercury. The inclusion of appropriate negative controls secures the precise identification of endogenous S-nitrosylated sites and proteins in biological samples. BIOLOGICAL SIGNIFICANCE: The current study describes a selective, sensitive and reproducible method for the acquisition of endogenously S-nitrosylated proteins and peptides. The acquisition of endogenous S-nitrosoproteomes provides robust data that is necessary for investigating the mechanism(s) of S-nitrosylation in vivo, the factors that govern its selectivity, the dependency of the modification on different isoforms of nitric oxide synthases (NOS), as well as the physiological functions of this protein modification. This article is part of a Special Issue entitled: Posttranslational Protein modifications in biology and Medicine.
Copyright © 2013 Elsevier B.V. All rights reserved.

Entities:  

Keywords:  Cysteine modification; Mass spectrometry; Nitric oxide; Protein S-nitrosylation

Mesh:

Substances:

Year:  2013        PMID: 23748021      PMCID: PMC3818367          DOI: 10.1016/j.jprot.2013.05.033

Source DB:  PubMed          Journal:  J Proteomics        ISSN: 1874-3919            Impact factor:   4.044


  36 in total

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3.  S-nitrosylated GAPDH initiates apoptotic cell death by nuclear translocation following Siah1 binding.

Authors:  Makoto R Hara; Nishant Agrawal; Sangwon F Kim; Matthew B Cascio; Masahiro Fujimuro; Yuji Ozeki; Masaaki Takahashi; Jaime H Cheah; Stephanie K Tankou; Lynda D Hester; Christopher D Ferris; S Diane Hayward; Solomon H Snyder; Akira Sawa
Journal:  Nat Cell Biol       Date:  2005-06-12       Impact factor: 28.824

4.  SIRT3 deacetylates mitochondrial 3-hydroxy-3-methylglutaryl CoA synthase 2 and regulates ketone body production.

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Journal:  Cell Metab       Date:  2010-12-01       Impact factor: 27.287

5.  Reductive assays for S-nitrosothiols: implications for measurements in biological systems.

Authors:  K Fang; N V Ragsdale; R M Carey; T MacDonald; B Gaston
Journal:  Biochem Biophys Res Commun       Date:  1998-11-27       Impact factor: 3.575

6.  Nitric oxide regulates mitochondrial fatty acid metabolism through reversible protein S-nitrosylation.

Authors:  Paschalis-Thomas Doulias; Margarita Tenopoulou; Jennifer L Greene; Karthik Raju; Harry Ischiropoulos
Journal:  Sci Signal       Date:  2013-01-01       Impact factor: 8.192

7.  Mass spectrometric and computational analysis of cytokine-induced alterations in the astrocyte secretome.

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Review 8.  Mass spectrometry-based identification of S-nitrosocysteine in vivo using organic mercury assisted enrichment.

Authors:  Paschalis-Thomas Doulias; Karthik Raju; Jennifer L Greene; Margarita Tenopoulou; Harry Ischiropoulos
Journal:  Methods       Date:  2012-10-29       Impact factor: 3.608

9.  Nitric oxide-induced nuclear GAPDH activates p300/CBP and mediates apoptosis.

Authors:  Nilkantha Sen; Makoto R Hara; Michael D Kornberg; Matthew B Cascio; Byoung-Il Bae; Neelam Shahani; Bobby Thomas; Ted M Dawson; Valina L Dawson; Solomon H Snyder; Akira Sawa
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10.  S-Nitrosylation of mitochondrial caspases.

Authors:  J B Mannick; C Schonhoff; N Papeta; P Ghafourifar; M Szibor; K Fang; B Gaston
Journal:  J Cell Biol       Date:  2001-09-10       Impact factor: 10.539

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Review 2.  Mass spectrometry in studies of protein thiol chemistry and signaling: opportunities and caveats.

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Review 3.  Signaling by S-nitrosylation in the heart.

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4.  Strategies for correcting very long chain acyl-CoA dehydrogenase deficiency.

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5.  Organic mercury solid phase chemoselective capture for proteomic identification of S-nitrosated proteins and peptides.

Authors:  Paschalis-Thomas Doulias; Margarita Tenopoulou; Iordanis Zakopoulos; Harry Ischiropoulos
Journal:  Nitric Oxide       Date:  2021-09-15       Impact factor: 4.898

6.  Regulation of brain glutamate metabolism by nitric oxide and S-nitrosylation.

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Journal:  Sci Signal       Date:  2015-07-07       Impact factor: 8.192

7.  SNOs Differ: Methodological and Biological Implications.

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8.  TCA cycle metabolic compromise due to an aberrant S-nitrosoproteome in HIV-associated neurocognitive disorder with methamphetamine use.

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Review 9.  Differential alkylation-based redox proteomics--Lessons learnt.

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10.  Alkylation damage by lipid electrophiles targets functional protein systems.

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Journal:  Mol Cell Proteomics       Date:  2014-01-15       Impact factor: 5.911

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