Scinovex
reviewTop 1% cited

Nitric oxide, superoxide, and peroxynitrite: the good, the bad, and ugly

American Journal of Physiology-Cell Physiology · 1996 · Vol. 271(5) · pp. C1424–C1437
Joseph S. BeckmanWillem H. Koppenol

Abstract

Nitric oxide contrasts with most intercellular messengers because it diffuses rapidly and isotropically through most tissues with little reaction but cannot be transported through the vasculature due to rapid destruction by oxyhemoglobin. The rapid diffusion of nitric oxide between cells allows it to locally integrate the responses of blood vessels to turbulence, modulate synaptic plasticity in neurons, and control the oscillatory behavior of neuronal networks. Nitric oxide is not necessarily short lived and is intrinsically no more reactive than oxygen. The reactivity of nitric oxide per se has been greatly overestimated in vitro because no drain is provided to remove nitric oxide. Nitric oxide persists in solution for several minutes in micromolar concentrations before it reacts with oxygen to form much stronger oxidants like nitrogen dioxide. Nitric oxide is removed within seconds in vivo by diffusion over 100 microns through tissues to enter red blood cells and react with oxyhemoglobin. The direct toxicity of nitric oxide is modest but is greatly enhanced by reacting with superoxide to form peroxynitrite (ONOO-). Nitric oxide is the only biological molecule produced in high enough concentrations to out-compete superoxide dismutase for superoxide. Peroxynitrite reacts relatively slowly with most biological molecules, making peroxynitrite a selective oxidant. Peroxynitrite modifies tyrosine in proteins to create nitrotyrosines, leaving a footprint detectable in vivo. Nitration of structural proteins, including neurofilaments and actin, can disrupt filament assembly with major pathological consequences. Antibodies to nitrotyrosine have revealed nitration in human atherosclerosis, myocardial ischemia, septic and distressed lung, inflammatory bowel disease, and amyotrophic lateral sclerosis.

Nitric Oxide and Endothelin EffectsNeuroscience of respiration and sleepRenin-Angiotensin System StudiesPeroxynitriteNitric oxideChemistrySuperoxideNitrotyrosineBiophysicsNitric oxide synthaseSuperoxide dismutaseBiochemistryReactive nitrogen species

MeSH terms

AnimalsArteriosclerosisEndothelium, VascularHumansModels, BiologicalMuscle, Smooth, VascularNeuronsNitratesNitric OxideOxyhemoglobinsSuperoxidesSuperoxide DismutaseSynapsesSecond Messenger Systems
Citations
5,497
FWCI
85.55
field-weighted impact
References
76
Percentile
100%
vs. same field & year
Citations per year
Cited by
Does ADMA Cause Endothelial Dysfunction?
Arteriosclerosis Thrombosis and Vascular Biology · 2000 · 581 citations
I. Physiological chemistry of nitric oxide and its metabolites: implications in inflammation
American Journal of Physiology-Gastrointestinal and Liver Physiology · 1999 · 451 citations
Mitochondrial formation of reactive oxygen species
The Journal of Physiology · 2003 · 3,946 citations
Oxidative and nitrosative stress in acute renal ischemia
American Journal of Physiology-Renal Physiology · 2001 · 337 citations
Related articles
Citation Network

How this paper connects to the literature. Drag to explore, click any node to open that paper.