Brawn K, Fridovich I
Acta Physiol Scand Suppl. 1980;492:9-18.
An enzymic flux of O2- and H2O2 caused strand breaks in the supercoiled covalently closed circular Col El plasmid. Subnanomolar levels of superoxide levels of superoxide dismutase or of catalase prevented this attack on DNA, signifying that both O2- and H2O2 were required. Benzoate, mannitol or histidine, which do not scavenge O2- or H2O2, also protected the DNA suggesting that the proximate attacking species had a reactivity comparable to that of the hydroxyl radical. Replacing EDTA with diethylene triamine pentaacetic acid eliminated this attack. In toto the data suggest a metal-catalyzed interaction between O2- and H2O2 which generates a potent oxidant, possibly OH, which can cause DNA strand scission. The biological implications of the production and the enzymic scavenging of the superoxide radical are discussed.
由O₂⁻和H₂O₂引发的酶促通量导致了超螺旋共价闭合环状Col E1质粒中的链断裂。亚纳摩尔水平的超氧化物歧化酶或过氧化氢酶可防止对DNA的这种攻击,这表明O₂⁻和H₂O₂都是必需的。苯甲酸、甘露醇或组氨酸不能清除O₂⁻或H₂O₂,但也能保护DNA,这表明直接攻击的物质具有与羟基自由基相当的反应活性。用二乙三胺五乙酸取代乙二胺四乙酸消除了这种攻击。总体而言,数据表明O₂⁻和H₂O₂之间存在金属催化的相互作用,产生一种强效氧化剂,可能是OH,它可导致DNA链断裂。文中讨论了超氧自由基产生和酶促清除的生物学意义。