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  5. Nitric oxide and peroxynitrite. The ugly, the uglier and the not so good

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Article
English
1999

Nitric oxide and peroxynitrite. The ugly, the uglier and the not so good

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English
1999
Free Radical Research
Vol 31 (6)
DOI: 10.1080/10715769900301221

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Barry Halliwell
Barry Halliwell

National University of Singapore

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Barry Halliwell
Kaicun Zhao
Matthew Whiteman

Abstract

Nitric oxide, a gaseous free radical, is poorly reactive with most biomolecules but highly reactive with other free radicals. Its ability to scavenge peroxyl and other damaging radicals may make it an important antioxidant in vivo, particular in the cardiovascular system, although this ability has been somewhat eclipsed in the literature by a focus on the toxicity of peroxynitrite, generated by reaction of O·-2 with NO· (or of NO- with O2). On balance, experimental and theoretical data support the view that ONOO- can lead to hydroxyl radical (OH·) generation at pH 7.4, but it seems unlikely that OH· contributes much to the cytotoxicity of ONOO-. The cytotoxicity of ONOO- may have been over-emphasized: its formation and rapid reaction with antioxidants may provide a mechanism of using NO· to dispose of excess O·-2, or even of using O·-2 to dispose of excess NO·, in order to maintain the correct balance between these radicals in vivo. Injection or instillation of "bolus" ONOO- into animals has produced tissue injury, however, although more experiments generating ONOO- at steady rates in vivo are required. The presence of 3-nitrotyrosine in tissues is still frequently taken as evidence of ONOO- generation in vivo, but abundant evidence now exists to support the view that it is a biomarker of several "reactive nitrogen species". Another under-addressed problem is the reliability of assays used to detect and measure 3-nitrotyrosine in tissues and body fluids: immunostaining results vary between laboratories and simple HPLC methods are susceptible to artefacts. Exposure of biological material to low pH (e.g. during acidic hydrolysis to liberate nitrotyrosine from proteins) or to H2O2 might cause artefactual generation of nitrotyrosine from NO-2 in the samples. This may be the origin of some of the very large values for tissue nitrotyrosine levels quoted in the literature. Nitrous acid causes not only tyrosine nitration but also DNA base deamination at low pH: these events are relevant to the human stomach since saliva and many foods are rich in nitrite. Several plant phenolics inhibit nitration and deamination in vitro, an effect that could conceivably contribute to their protective effects against gastric cancer development.Keywords: Nitric oxideperoxynitritedeamination3-nitrotyrosinexanthinehypoxanthinereactive nitrogenspeciesgastric cancerlipid peroxidationsuperoxidehydroxyl radicalnitrous acidnitritecatechins

How to cite this publication

Barry Halliwell, Kaicun Zhao, Matthew Whiteman (1999). Nitric oxide and peroxynitrite. The ugly, the uglier and the not so good. Free Radical Research, 31(6), pp. 651-669, DOI: 10.1080/10715769900301221.

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Publication Details

Type

Article

Year

1999

Authors

3

Datasets

0

Total Files

0

Language

English

Journal

Free Radical Research

DOI

10.1080/10715769900301221

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