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Investigation of local primary structure effects on peroxynitrite-mediated tyrosine nitration using targeted mass
Kent W Seeley1, Stanley M Stevens
1Department of Cell Biology, Microbiology, and Molecular Biology, University of South Florida, Tampa, FL, USA.
Abstract:
Protein-tyrosine nitration (PTN) is a posttranslational modification resulting from cellular nitrosative stress that has been implicated in a wide variety of disease states. Determination of factors that influence selectivity of PTN remains a major challenge due to several issues including low biological levels of PTN, proximity of target sites on a single analyte, and analytical limitations for site-specific quantification of the nitration modification. We report a systematic approach that addresses relevant contributing factors to PTN with particular focus on determining the effect of changing proximal amino acid side chain structure on tyrosine nitration yield. A trend was observed in which nitration yield tends to be greater when the tyrosine residue is surrounded by basic and/or uncharged polar residues compared to nitration levels observed when hydrophobic and acidic residues are proximal to the tyrosine residue. Moreover, an electric dipole effect was observed where a higher degree of charge asymmetry surrounding the tyrosine residue correlates with an increased tyrosine nitration yield in certain cases. The reported data are expected to facilitate site-specific prediction and validation of PTN, especially in cases of potential target residues that share a similar solvent exposure environment and contain elements of known higher-order structure.
Insights
Protein-tyrosine nitration (PTN) yield is influenced by surrounding amino acids. Basic and polar residues enhance PTN, while hydrophobic/acidic residues decrease it, aiding in predicting nitration sites.
Area of Science:
- Biochemistry
- Molecular Biology
- Chemical Biology
Background:
- Protein-tyrosine nitration (PTN) is a key posttranslational modification linked to cellular nitrosative stress and various diseases.
- Challenges in PTN research include low biological abundance, site proximity, and analytical difficulties in site-specific quantification.
Purpose of the Study:
- To systematically investigate factors influencing PTN selectivity, focusing on the impact of proximal amino acid side chain structure on tyrosine nitration.
- To develop a predictive framework for site-specific PTN.
Main Methods:
- A systematic approach was employed to analyze the effect of neighboring amino acid side chains on tyrosine nitration yield.
- Investigated trends in nitration yield based on the nature (basic, polar, hydrophobic, acidic) of proximal residues.
Main Results:
- Nitration yield increases when tyrosine residues are flanked by basic and/or uncharged polar amino acids.
- Hydrophobic and acidic residues proximal to tyrosine correlate with lower nitration levels.
- An electric dipole effect was observed, where charge asymmetry around tyrosine can increase nitration yield.
Conclusions:
- The study identifies key amino acid sequence features that dictate PTN selectivity.
- Findings facilitate the prediction and validation of specific PTN sites, particularly in proteins with similar structural contexts.
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