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Book ChapterDOI

The chemistry of peroxynitrite: implications for biological activity.

TLDR
The detailed mechanism of nitration of tyrosine, a vital aromatic amino acid, is delineated, showing the difference in the nitration yield between the addition of authentic peroxynitrite and its continuous generation by NO and O2- radicals.
Abstract
In biological systems, nitric oxide (NO) combines rapidly with superoxide (O2-) to form peroxynitrite ion (ONOO-), a substance that has been implicated as a culprit in many diseases. Peroxynitrite ion is essentially stable, but its protonated form (ONOOH, pKa = 6.5 to 6.8) decomposes rapidly via homolysis of the O-O bond to form about 28% free NO2 and OH radicals. At physiological pH and in the presence of large amounts of bicarbonate, ONOO- reacts with CO2 to produce about 33% NO2 and carbonate ion radicals (CO3-) in the bulk of the solution. The quantitative role of OH/CO3(-) and NO2 radicals during the decomposition of peroxynitrite (ONOOH/ONOO-) under physiological conditions is described in detail. Specifically, the effect of the peroxynitrite dosage rate on the yield and distribution of the final products is demonstrated. By way of an example, the detailed mechanism of nitration of tyrosine, a vital aromatic amino acid, is delineated, showing the difference in the nitration yield between the addition of authentic peroxynitrite and its continuous generation by NO and O2- radicals.

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Citations
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Journal ArticleDOI

Human serum albumin: from bench to bedside.

TL;DR: HSA is a valuable biomarker of many diseases, including cancer, rheumatoid arthritis, ischemia, post-menopausal obesity, severe acute graft-versus-host disease, and diseases that need monitoring of the glycemic control.
Journal ArticleDOI

Mitochondria in Neuroplasticity and Neurological Disorders

TL;DR: Mitochondrial electron transport generates the ATP that is essential for the excitability and survival of neurons, and the protein phosphorylation reactions that mediate synaptic signaling and related long-term changes in neuronal structure and function.
Journal ArticleDOI

Chemical Biology of Peroxynitrite: Kinetics, Diffusion, and Radicals

TL;DR: The chemical kinetics of peroxynitrite as a biochemical transient species is reviewed in order to estimate its rates of formation and decay and then its steady-state concentration in different intra- or extracellular compartments, to provide a quantitative basis for its reactivity.
Journal ArticleDOI

Peroxynitrite, a stealthy biological oxidant

TL;DR: Peroxynitrite is the product of the diffusion-controlled reaction of nitric oxide and superoxide radicals, which affects mitochondrial function and triggers cell death via oxidation and nitration reactions.
Journal ArticleDOI

Protein Tyrosine Nitration: Selectivity, physicochemical and biological consequences, denitration and proteomics methods for the identification of tyrosine-nitrated proteins

TL;DR: The main nitration reactions and elucidate why nitration is not a random chemical process are reviewed and the possibility of an in vivo denitration process is indicated.
References
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Journal ArticleDOI

Apparent hydroxyl radical production by peroxynitrite: implications for endothelial injury from nitric oxide and superoxide.

TL;DR: It is proposed that superoxide dismutase may protect vascular tissue stimulated to produce superoxide and NO under pathological conditions by preventing the formation of peroxynitrite.
Journal ArticleDOI

Peroxynitrite oxidation of sulfhydryls. The cytotoxic potential of superoxide and nitric oxide.

TL;DR: Peroxynitrite anion was a less effective thiol-oxidizing agent than its anion, with oxidation presumably mediated by the decomposition products, hydroxyl radical and nitrogen dioxide.
Journal ArticleDOI

The reaction of no with superoxide

TL;DR: The rate constant for the reaction of NO with .O2- was determined to be (6.7 +/- 0.9) x 10(9) l mol-1 s-1, considerably higher than previously reported.
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