Literature DB >> 20925432

S-alkylating labeling strategy for site-specific identification of the s-nitrosoproteome.

Yi-Ju Chen1, Wei-Chi Ku, Pei-Yi Lin, Hsiao-Chiao Chou, Kay-Hooi Khoo, Yu-Ju Chen.   

Abstract

S-nitrosylation, a post-translational modification of cysteine residues induced by nitric oxide, mediates many physiological functions. Due to the labile nature of S-nitrosylation, detection by mass spectrometry (MS) is challenging. Here, we developed an S-alkylating labeling strategy using the irreversible biotinylation on S-nitrosocysteines for site-specific identification of the S-nitrosoproteome by LC-MS/MS. Using COS-7 cells without endogenous nitric oxide synthase, we demonstrated that the S-alkylating labeling strategy substantially improved the blocking efficiency of free cysteines, minimized the false-positive identification caused by disulfide interchange, and increased the digestion efficiency for improved peptide identification using MS analyses. Using this strategy, we identified total 586 unique S-nitrosylation sites corresponding to 384 proteins in S-nitroso-N-acetylpenicillamine (SNAP)/l-cysteine-treated mouse MS-1 endothelial cells, including 234 previously unreported S-nitrosylated proteins. When the topologies of 84 identified transmembrane proteins were further analyzed, their S-nitrosylation sites were found to mostly face the cytoplasmic side, implying that S-nitrosylation occurs in the cytoplasm. In addition to the previously known acid/basic motifs, the ten deduced consensus motifs suggested that combination of local hydrophobicity and acid/base motifs in the tertiary structure contribute to the specificity of S-nitrosylation. Moreover, the S-nitrosylated cysteines showed preference on beta-strand, having lower relative surface accessibility at the S-nitrosocysteines.

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Year:  2010        PMID: 20925432     DOI: 10.1021/pr100680a

Source DB:  PubMed          Journal:  J Proteome Res        ISSN: 1535-3893            Impact factor:   4.466


  27 in total

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Journal:  Antioxid Redox Signal       Date:  2018-01-10       Impact factor: 8.401

Review 4.  The roles of S-nitrosylation and S-glutathionylation in Alzheimer's disease.

Authors:  Ryan R Dyer; Katarena I Ford; Renã A S Robinson
Journal:  Methods Enzymol       Date:  2019       Impact factor: 1.600

5.  Cyclic Alopecia and Abnormal Epidermal Cornification in Zdhhc13-Deficient Mice Reveal the Importance of Palmitoylation in Hair and Skin Differentiation.

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Journal:  J Invest Dermatol       Date:  2015-06-29       Impact factor: 8.551

Review 6.  Thioredoxin 1-mediated post-translational modifications: reduction, transnitrosylation, denitrosylation, and related proteomics methodologies.

Authors:  Changgong Wu; Andrew M Parrott; Cexiong Fu; Tong Liu; Stefano M Marino; Vadim N Gladyshev; Mohit R Jain; Ahmet T Baykal; Qing Li; Shinichi Oka; Junichi Sadoshima; Annie Beuve; William J Simmons; Hong Li
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7.  Endothelial NO Synthase-Dependent S-Nitrosylation of β-Catenin Prevents Its Association with TCF4 and Inhibits Proliferation of Endothelial Cells Stimulated by Wnt3a.

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8.  Site-specific nitrosoproteomic identification of endogenously S-nitrosylated proteins in Arabidopsis.

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9.  Target-selective protein S-nitrosylation by sequence motif recognition.

Authors:  Jie Jia; Abul Arif; Fulvia Terenzi; Belinda Willard; Edward F Plow; Stanley L Hazen; Paul L Fox
Journal:  Cell       Date:  2014-10-16       Impact factor: 41.582

10.  Nitric oxide-based protein modification: formation and site-specificity of protein S-nitrosylation.

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