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Comprehensive Identification and Modified-site Mapping of S-nitrosylated Targets in Prostate Epithelial Cells

Overview
Journal PLoS One
Date 2010 Feb 9
PMID 20140087
Citations 46
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Abstract

Background: Although overexpression of nitric oxide synthases (NOSs) has been found associated with prostate diseases, the underlying mechanisms for NOS-related prostatic diseases remain unclear. One proposed mechanism is related to the S-nitrosylation of key regulatory proteins in cell-signaling pathways due to elevated levels of NO in the prostate. Thus, our primary objective was to identify S-nitrosylated targets in an immortalized normal prostate epithelial cell line, NPrEC.

Methodology/principal Findings: We treated NPrEC with nitroso-cysteine and used the biotin switch technique followed by gel-based separation and mass spectrometry protein identification (using the LTQ-Orbitrap) to discover S-nitrosylated (SNO) proteins in the treated cells. In parallel, we adapted a peptide pull-down methodology to locate the site(s) of S-nitrosylation on the protein SNO targets identified by the first technique. This combined approach identified 116 SNO proteins and determined the sites of modification for 82 of them. Over 60% of these proteins belong to four functional groups: cell structure/cell motility/protein trafficking, protein folding/protein response/protein assembly, mRNA splicing/processing/transcriptional regulation, and metabolism. Western blot analysis validated a subset of targets related to disease development (proliferating cell nuclear antigen, maspin, integrin beta4, alpha-catenin, karyopherin [importin] beta1, and elongation factor 1A1). We analyzed the SNO sequences for their primary and secondary structures, solvent accessibility, and three-dimensional structural context. We found that about 80% of the SNO sites that can be mapped into resolved structures are buried, of which approximately half have charged amino acids in their three-dimensional neighborhood, and the other half residing within primarily hydrophobic pockets.

Conclusions/significance: We here identified 116 potential SNO targets and mapped their putative SNO sites in NPrEC. Elucidation of how this post-translational modification alters the function of these proteins should shed light on the role of NO in prostate pathologies. To our knowledge, this is the first report identifying SNO targets in prostate epithelial cells.

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References
1.
Quensel C, Friedrich B, Sommer T, Hartmann E, Kohler M . In vivo analysis of importin alpha proteins reveals cellular proliferation inhibition and substrate specificity. Mol Cell Biol. 2004; 24(23):10246-55. PMC: 529023. DOI: 10.1128/MCB.24.23.10246-10255.2004. View

2.
Ng Q, Goh V, Milner J, Stratford M, Folkes L, Tozer G . Effect of nitric-oxide synthesis on tumour blood volume and vascular activity: a phase I study. Lancet Oncol. 2007; 8(2):111-8. DOI: 10.1016/S1470-2045(07)70001-3. View

3.
Tam N, Leav I, Ho S . Sex hormones induce direct epithelial and inflammation-mediated oxidative/nitrosative stress that favors prostatic carcinogenesis in the noble rat. Am J Pathol. 2007; 171(4):1334-41. PMC: 1988882. DOI: 10.2353/ajpath.2007.070199. View

4.
McKenzie S, Sakamoto S, Kyprianou N . Maspin modulates prostate cancer cell apoptotic and angiogenic response to hypoxia via targeting AKT. Oncogene. 2008; 27(57):7171-9. PMC: 2725761. DOI: 10.1038/onc.2008.321. View

5.
Romero-Puertas M, Laxa M, Matte A, Zaninotto F, Finkemeier I, Jones A . S-nitrosylation of peroxiredoxin II E promotes peroxynitrite-mediated tyrosine nitration. Plant Cell. 2008; 19(12):4120-30. PMC: 2217656. DOI: 10.1105/tpc.107.055061. View