Peroxynitrite-Mediated Dimerization of 3-Nitrotyrosine: Unique Chemistry along the Spectrum of Peroxynitrite-Mediated Nitration of Tyrosine.

Med One Pub Date : 2019-01-01 Epub Date: 2019-03-06 DOI:10.20900/mo.20190003
Tara R deBoer, Rafael I Palomino, Pradip K Mascharak
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引用次数: 7

Abstract

Peroxynitrite (ONOO-, PN) has long been considered a potent nitrating agent implicated in numerous inflammation-mediated diseases. The current work highlights an unexplored oxidation chemistry initiated under conditions of sustained PN exposure. Impetus for this investigation developed from mass spectral results that suggested dimerization of a model peptide with a single tyrosine residue that was first nitrated following extended exposure to PN generated in situ. In attempts to substantiate this dimerization event and divulge the possible mode of linkage between the tyrosine derivatives of the peptide monomers, 3-nitrotyrosine (3-NT) was exposed to sustained fluxes of PN in a two-component PN-generating platform developed in this laboratory. Such exposure afforded products with tandem mass spectrometry and fluorescence spectroscopy profiles indicative of C-O coupling between 3-NT moieties. Synthesis and comparative analysis of the C-C coupled 3-NT isomer corroborated these findings. Most notably, the mass spectral data of the C-C coupled 3-NT dimer displayed a 226.80 m/z peak following exposure to high collision energy, corresponding to symmetric cleavage of the parent dimer peak (m/z = 453) along with a fragmentation product at m/z = 180.04 (-NO2 species). This fragmentation profile was distinct from the C-O coupled 3-NT dimer that exhibited a predominant 209.14 m/z peak with a small secondary 226.15 m/z peak indicative of asymmetric cleavage of the parent dimer. Results of this study indicate that formation of C-O coupled 3-NT dimer is promoted by elevated levels of 3-NT formed under high and sustained flux of PN.

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过氧亚硝酸盐介导的3-硝基酪氨酸二聚化:沿过氧亚硝酸盐介导的酪氨酸硝化光谱的独特化学。
过氧亚硝酸盐(ONOO-, PN)长期以来被认为是一种有效的硝化剂,与许多炎症介导的疾病有关。目前的工作强调了在持续PN暴露条件下启动的未探索的氧化化学。这项研究的动力来自于质谱结果,该结果表明,在长时间暴露于原位生成的PN后,首先硝化的是一个具有单一酪氨酸残基的模型肽的二聚化。为了证实这一二聚化事件,并揭示肽单体的酪氨酸衍生物之间可能的连接模式,在实验室开发的双组分PN生成平台中,3-硝基酪氨酸(3-NT)暴露于持续的PN通量中。这种暴露使产品具有串联质谱和荧光光谱谱,表明3-NT部分之间的C-O偶联。C-C偶联3-NT异构体的合成和对比分析证实了这些发现。最值得注意的是,C-C偶联3-NT二聚体的质谱数据显示,在高碰撞能量下暴露后,其峰为226.80 m/z,对应于母体二聚体峰(m/z = 453)的对称解理以及m/z = 180.04 (-NO2种)的破碎产物。这种断裂剖面不同于C-O偶联的3-NT二聚体,其主要峰为209.14 m/z,次要峰为226.15 m/z,表明母体二聚体的不对称断裂。本研究结果表明,在高和持续的PN通量下形成的3-NT水平升高促进了C-O偶联3-NT二聚体的形成。
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