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EPR Studies on the Superoxide-scavenging Capacity of the Nutraceutical Resveratrol

Overview
Publisher Springer
Specialty Biochemistry
Date 2008 Apr 15
PMID 18409032
Citations 25
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Abstract

Resveratrol (3,4',5-trihydroxystilbene), a polyphenolic compound found in mulberries, grapes, and red wine, has received considerable attention because of its apparent protective effects against various degenerative diseases due to its potential antioxidant activities. However, direct evidence for the superoxide-scavenging capacity of resveratrol is lacking in literature. In this study, electron paramagnetic resonance spectroscopy in combination with 5-(diethoxyphosphoryl)-5-methylpyrroline-N-oxide (DEPMPO)-spin trapping technique was utilized to determine the ability of resveratrol in scavenging superoxide anions generated from both potassium superoxide and the xanthine oxidase/xanthine system. We have demonstrated here for the first time that the presence of resveratrol resulted in decreased formation of DEPMPO-superoxide adduct (DEPMPO-OOH) in both the potassium superoxide and xanthine oxidase/xanthine systems, indicating that resveratrol could directly scavenge superoxide anions. The inhibition of DEPMPO-OOH in the xanthine oxidase/xanthine system, however, was found to be much potent as compared to that observed in potassium superoxide system. It was further shown that resveratrol could also directly inhibit xanthine oxidase activity as assessed by oxygen consumption and formation of uric acid. Taken together, the dual role of resveratrol in directly scavenging superoxide and inhibiting its generation via xanthine oxidase reported in this study may explain, at least in part, the protective role of this compound against oxidative injury in various disease processes.

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References
1.
Molavi B, Mehta J . Oxidative stress in cardiovascular disease: molecular basis of its deleterious effects, its detection, and therapeutic considerations. Curr Opin Cardiol. 2004; 19(5):488-93. DOI: 10.1097/01.hco.0000133657.77024.bd. View

2.
Timmins G, Liu K, Bechara E, Kotake Y, Swartz H . Trapping of free radicals with direct in vivo EPR detection: a comparison of 5,5-dimethyl-1-pyrroline-N-oxide and 5-diethoxyphosphoryl-5-methyl-1-pyrroline-N-oxide as spin traps for HO* and SO4*-. Free Radic Biol Med. 1999; 27(3-4):329-33. DOI: 10.1016/s0891-5849(99)00049-0. View

3.
Heunks L, Vina J, van Herwaarden C, Folgering H, Gimeno A, Dekhuijzen P . Xanthine oxidase is involved in exercise-induced oxidative stress in chronic obstructive pulmonary disease. Am J Physiol. 1999; 277(6):R1697-704. DOI: 10.1152/ajpregu.1999.277.6.R1697. View

4.
Kehrer J . Free radicals as mediators of tissue injury and disease. Crit Rev Toxicol. 1993; 23(1):21-48. DOI: 10.3109/10408449309104073. View

5.
Kong L, Wolfender J, Cheng C, Hostettmann K, Tan R . Xanthine oxidase inhibitors from Brandisia hancei. Planta Med. 2000; 65(8):744-6. DOI: 10.1055/s-2006-960854. View