The nature and mechanism of superoxide production by the electron transport chain: Its relevance to aging

被引:156
作者
Muller F. [1 ]
机构
[1] Institute of Biological Chemistry, Washington State University, Pullman
关键词
Lipid; Reactive Oxygen Species; Superoxide; Antioxidant Enzyme; Mitochondrial Membrane;
D O I
10.1007/s11357-000-0022-9
中图分类号
学科分类号
摘要
Most biogerontologists agree that oxygen (and nitrogen) free radicals play a major role in the process of aging. The evidence strongly suggests that the electron transport chain, located in the inner mitochondrial membrane, is the major source of reactive oxygen species in animal cells. It has been reported that there exists an inverse correlation between the rate of superoxide/hydrogen peroxide production by mitochondria and the maximum longevity of mammalian species. However, no correlation or most frequently an inverse correlation exists between the amount of antioxidant enzymes and maximum longevity. Although overexpression of the antioxidant enzymes SOD1 and CAT (as well as SOD1 alone) have been successful at extending maximum lifespan in Drosophila, this has not been the case in mice. Several labs have overexpressed SOD1 and failed to see a positive effect on longevity. An explanation for this failure is that there is some level of superoxide damage that is not preventable by SOD, such as that initiated by the hydroperoxyl radical inside the lipid bilayer, and that accumulation of this damage is responsible for aging. I therefore suggest an alternative approach to testing the free radical theory of aging in mammals. Instead of trying to increase the amount of antioxidant enzymes, I suggest using molecular biology/ transgenics to decrease the rate of superoxide production, which in the context of the free radical theory of aging would be expected to increase longevity. This paper aims to summarize what is known about the nature and mechanisms of superoxide production and what genes are involved in controlling the rate of superoxide production.
引用
收藏
页码:227 / 253
页数:26
相关论文
共 178 条
[1]  
Beckman K.B., Ames B.N., Mitochondrial aging: Open questions, Ann. N. Y. Acad. Sci., 854, pp. 118-127, (1998)
[2]  
Beckman K.B., Ames B.N., The free radical theory of aging matures, Physiol. Rev., 78, pp. 547-581, (1998)
[3]  
Beckman K.B., Ames B.N., Endogenous oxidative damage of mtDNA, Mutat. Res., 424, pp. 51-58, (1999)
[4]  
Orr W.C., Sohal R.S., Extension of life-span by overexpression of superoxide dismutase and catalase in Drosophila melanogaster, Science, 263, pp. 1128-1130, (1994)
[5]  
Parkes T.L., Elia A.J., Dickinson D., Hilliker A.J., Phillips J.P., Boulianne G.L., Extension of Drosophila lifespan by overexpression of human SOD1 in motorneurons, Nat. Genet., 19, pp. 171-174, (1998)
[6]  
Elia A.J., Parkes T.L., Kirby K., St. George-Hyslop P., Boulianne G.L., Phillips J.P., Hilliker A.J., Expression of human FALS SOD in motorneurons of Drosophila, Free Radic. Biol. Med., 26, pp. 1332-1338, (1999)
[7]  
Reveillaud I., Niedzwiecki A., Bensch K.G., Fleming J.E., Expression of bovine superoxide dismutase in Drosophila melanogaster augments resistance of oxidative stress, Mol. Cell. Biol., 11, pp. 632-640, (1991)
[8]  
Sun J., Tower J., FLP recombinase-mediated induction of Cu/Zn-superoxide dismutasetransgene expression can extend the life span of adult Drosophila melanogaster flies, Mol. Cell. Biol., 19, pp. 216-228, (1999)
[9]  
Staveley B.E., Phillips J.P., Hilliker A.J., Phenotypic consequences of copper-zinc superoxide dismutase overexpression in Drosophila melanogaster, Genome, 33, pp. 867-872, (1990)
[10]  
Seto N.O., Hayashi S., Tener G.M., Overexpression of Cu-Zn superoxide dismutase in Drosophila does not affect life-span, Proc. Natl. Acad. Sci. USA, 87, pp. 4270-4274, (1990)