FREE RADICALS and other reactive oxygen species are constantly formed in the human body. Many of them serve useful physiological func tions, but they can be toxic when generated in excess and this toxicity is often aggravated by the presence of ions of such transition metals as iron or copper. Excess generation of reactive oxygen species within tissues can damage DNA, lipids, proteins and carbohydrates. Which of these is the most important target of damage depends upon the cell type subjected to the oxidative stress and upon how it is imposed.
Get full access to this article
View all access options for this article.
References
1.
Akahoshi, T., Oppenheim, J.J. and Matsushima. K. (1988). Interleukin-1 stimulates its own receptor expression on human fibroblasts through the endogenous production of prostaglandin. J. Clin. Invest, 82: 1219-1226.
2.
Aruoma. O.I. and Halliwell, B. (1987). Superoxide-dependent and ascorbate-dependent formation of hydroxyl radicals from hydrogen peroxide in the presence of iron: Are lactoferrin and transferrin promoters of hydroxyl radical generation? Biochem. J., 241: 273-278.
3.
Aruoma. O. I. and Halliwell, B. (ed) (1991). Free Radicals and Food Additives , London: Taylor and Francis.
4.
Aruoma. O.I., Bomford, A., Polson, R.J. and Hai Liwell, B. (1988). Non transferrin-bound iron in plasma from hemochromatosis patient: effects of phlebotomy therapy. Blood, 72: 1416-1419.
5.
Aruoma. O.I., Halliwell. B., Gajewski, E. and Dizdaroglu, M. (1991). Copper ion-dependent damage to the bases in DNA in the presence of hydrogen peroxide. Biochem. J, 273: 601-604.
6.
Babior. B.M. (1984). Oxidants from phagocytes: agents of defense and destruction. Blood, 64: 959-966.
7.
Butler J.Land, E.J. and Swallow. A.J. (1984). Chemical mechanisms of the effects of high energy radiation on biological systems. Radiat. Phys. Chem., 24: 273-283.
8.
Cadogan, J.I.G. (1973). Principles of Free Radical Chemistry, London: The Chemical Society.
9.
Cerruti, P.A. (1985). Pro-oxidant states and tumour activation. Science, 227:375-381.
10.
Cerruti, P. A., Fridovich, I. and McCord, J. M. (ed) ( 1988). Oxy-radicals in molecular Biology and Pathology, New York: Alan R. Liss.
11.
Curnutte. J.T. and Babior, B.M. (1987). Chronic granulomatous disease. Adv. Human Gen., 16: 229-245.
12.
Das, D. K. and Essman W. B. (ed) (1990). Oxygen Radicals: Systemic Events and Disease Process. Basel: Karger .
13.
Dexter, D.T., Well, F.R., Lees, A.J., Agid, Y., Jenner, P. and Marsden C.D. (1989). Increased nigral iron content and alteration in other metal ions occurring in brain in Parkinson's disease. J. Neurochem., 52:1830-1836.
14.
Fenton, H.J.H. (1894). Oxidation of tartaric acid in the presence of iron. J. Chem. Soc., 65: 899-910.
15.
Fridovich. I. (1983). Superoxide radical: an endogenous toxicant. Ann. Rev. Pharmacol. Toxicol., 23: 239-257.
16.
Galaris, D., Mira, D., Sevanian, A., Cadenas, E. and Hochstein. P. (1988). Co-oxidation of salicylate and cholesterol during the oxidation of metmyoglobin by H2O2. Arch. Biochem. Biophys., 262: 221-231.
17.
Gershman, R., Gilbert, D.L., Nye, S.W., Dwyer, P. and Fenn, W.O. (1954). Oxygen poisoning and x-irradiation: a mechanism in common. Science, 119: 623-6226.
18.
Gomberg, M. (1900). An incidence of trivalent carbon trimethylphenyl . J. Am. Chem. Soc. , 22: 757-771.
19.
Grootveld, M. and Halliwell, B. (1987). Measurement of allantoin and uric acid in human bodv fluids. Biochem. J., 243: 803-808
20.
Gutteridge, J.M.C., Rowley, D.A., Griffiths, E. and Halliwell, B. (1985). Low molecular weight iron complexes and oxygen radical reactions in idiopathic haemochromatosis. Clin. Sci. , 68: 463-467.
21.
Haber, F. and Weiss, J.J. (1943). The catalytic decomposition of hydrogen peroxide by iron salts. Proc. Roy. Soc. London Ser. A., 147: 332-352.
22.
Halliwell. B. (1989). Superoxide, iron, vascular endothelium and reperfusion injury. Free Radical Res. Commun., 5: 315-318.
23.
Halliwell, B. and Gutteridge, J.M.C. (1989). Free Radicals in Biology and Medicine2nd edition, London : Clarendon Press.
24.
Halliwell, B. and Gutteridge, J.M.C. (1990). Role of free radicals and catalytic metal ions in human disease: an overview. Methods Enzymol., 186: 1-85.
25.
Halliwell, B., Grootveld. M., Kaur, H. and Fagerheim, I. (1988). Aromatic hydroxylation and uric acid degradation as methods for detecting and measuring oxygen radicals in vitro and in vivo . In Free Radicals, Methodology and Concepts, pp33-59. ( C. Rice-Evans and B. Halliwell editions). London: Richelieu Press.
26.
Hey, D.H. and Waters, W.A., (1937). Some organic reactions involving the occurrence of free radicals in solution. Chem. Rev., 21: 169-208.
27.
Hurst, N.P. (1990). Stress (heat shock) protein and rheumatic disease. New advances or just another band wagon? Rheumatol. Int., 9: 271-276.
28.
Kalyanaraman, B. and Sohnle, P.G. (1985). Generation of free radical intermediates from foreign compounds by neutrophil-derived oxidants. J. Clin. Invest., 75: 1618-1622.
29.
Kaur, H. and Halliwell, B. (1990). Action of biologically-relevant oxidizing species upon uric acid. Identification of uric acid oxidation products. Chem.-Biol. Interac., 73: 235-247.
30.
Klebanoff, S.J. (1980). Oxygen metabolism and the toxic properties of phagocytes. Ann. Intern. med., 93: 480-489.
31.
Kofoed, J.A. and Barcei O, A.C. (1987). The synovial fluid hyaluronic acid in rheumatoid arthritis. Experiencia, 34: 1545-1546.
32.
Krakauer, T. (1986). Human interleukin 1. CRC Crit. Rev. Immunol., 6: 213-244.
33.
Lunec, J. and Blake, D.R. (1985). The determination of dehydroascorbic acid and ascorbic acid in the serum and synovial fluid in rheumatoid arthritis (RA) . Free Radical Res. Commun., 1: 31-39.
34.
Lunec, J., Halloram, S.P., White, A.G. and Dormandy, T.T. (1981). Free radical oxidation (peroxidation) products in serum and synovial fluid in rheumatoid arthritis. J. Rheumatol. , 8: 233-245.
35.
Lunec, J., Griffiths, H.R., Jones, A.F. and Blake, D.R. (1987). Protein fluorescence and its relationship to free radical activity. In Oxygen Radicals and Pathology, pp151-168. (C. Rice-Evans editor). London : Richelieu Press.
36.
Mccord, J.M. and Fridovich, I. (1969). Superoxide dismutase: an enzymic function for erythrocuprein (hemocuprein). J. Biol. Chem., 224: 6049-6055.
37.
Mcclean, L., Winrow, V. and Blake. D. (1990). Role of immunity to mycobacterial stress proteins in rheumatoid arthritis. J. Exp. Path., 71: 295-303.
38.
Meier, B., Radeke, H.H., Selle, S., Raspe, H.H., Sies,Resch, K. and Habermehl, G.G. (1990). Human fibroblasts release reactive oxygen species in response to treatment with synovial fluid from patients suffering from arthritis. Free Radical Res. Commun., 8: 149-160.
39.
Nauseef, W.M., Root. R.K. and Malech, H.L. (1983). Biochemical and immunological analysis of hereditary myeloperoxidase deficiency. J. clin. Invest., 71: 1297-1307.
40.
Palmer, R.M.J., Ashton, D.S. and Moncada. S. (1988). Vascular endothelium cell synthesize nitric oxide from L-arginine. Nature, 333: 664-666.
41.
Recknacel, R.O., Gi Ande Jr, E.A., Dolak, J.A. and Waller, R.L. (1989). Mechanisms or carbontetrachloride toxicity. Pharmac. Ther., 43: 139-154.
42.
Rossi, F., Bianca, V.D., de Tongi, P. (1985). Mechanism and functions of the oxygen radicals producing respiration of phagocytes. Comp. Immunol. Microbial Infect. Dis., 8: 187-204.
43.
Rowley, D., Gutteridge, J.M.C., Blake, D., Farr, M. and Halliwell, B. (1984). Lipid peroxidation in rheumatoid arthritis: thiobarbituric acid reactive material and catalytic iron salts in synovial fluid from rheumatoid arthritis. Clin. Sci., 66: 691-695.
44.
Sbarra. A. J. and Strauss. R. R. (ed) (1988). The respiratory burst and its physiological significance. New York: Plenum.
45.
Seis. H. (ed) (1991). Oxidative Stress: Oxidants and Antioxidants. London and New York: Academic Press.
46.
Si Ater, T.F. (1982). Activation of carbon tetrachloride: chemical principles and biological significance. In Free Radicals, Lipid Peroxidation and Cancer, pp243-274 (D. C. H. McBrien and T. F. Slater editors). New York: Academic Press.