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Superoxide dismutase and Fenton chemistry. Reaction of ferric-EDTA complex and ferric-bipyridyl complex with hydrogen peroxide without the apparent formation of iron(II).

机译:超氧化物歧化酶和芬顿化学。铁-EDTA络合物和铁-联吡啶基络合物与过氧化氢的反应而没有明显的铁(II)形成。

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摘要

A ferric-EDTA complex, prepared directly from FeCl3 or from an oxidized ferrous salt, reacts with H2O2 to form hydroxyl radicals (.OH), which degrade deoxyribose and benzoate with the release of thiobarbituric acid-reactive material, hydroxylate benzoate to form fluorescent dihydroxy products and react with 5,5-dimethylpyrrolidine N-oxide (DMPO) to form a DMPO-OH adduct. Degradation of deoxyribose and benzoate and the hydroxylation of benzoate are substantially inhibited by superoxide dismutase and .OH-radical scavengers such as formate, thiourea and mannitol. Inhibition by the enzyme superoxide dismutase implies that the reduction of the ferric-EDTA complex for participation in the Fenton reaction is superoxide-(O2.-)-dependent, and not H2O2-dependent as frequently implied. When ferric-bipyridyl complex at a molar ratio of 1:4 is substituted for ferric-EDTA complex (molar ratio 1:1) and the same experiments are conducted, oxidant damage is low and deoxyribose and benzoate degradation were poorly if at all inhibited by superoxide dismutase and .OH-radical scavengers. Benzoate hydroxylation, although weak, was, however, more effectively inhibited by superoxide dismutase and .OH-radical scavengers, implicating some role for .OH. The iron-bipyridyl complex had available iron-binding capacity and therefore would not allow iron to remain bound to buffer or detector molecules. Most .OH radicals produced by the iron-bipyridyl complex and H2O2 are likely to damage the bipyridyl molecules first, with few reacting in free solution with the detector molecules. Deoxyribose and benzoate degradation appeared to be mediated by an oxidant species not typical of .OH, and species such as the ferryl ion-bipyridyl complex may have contributed to the damage observed.
机译:直接由FeCl3或氧化的亚铁盐制得的三价铁-EDTA络合物与H2O2反应形成羟基自由基(.OH),该自由基降解脱氧核糖和苯甲酸酯,并释放出硫代巴比妥酸反应性物质羟基化苯甲酸酯,形成荧光二羟基产物与5,5-二甲基吡咯烷N-氧化物(DMPO)反应形成DMPO-OH加合物。超氧歧化酶和.OH自由基清除剂(如甲酸盐,硫脲和甘露醇)基本上抑制了脱氧核糖和苯甲酸酯的降解以及苯甲酸酯的羟基化。酶超氧化物歧化酶的抑制作用意味着参与Fenton反应的铁-EDTA复合物的还原是超氧化物-(O2 .-)-依赖性的,而不是H2O2-依赖性的。当用摩尔比为1:4的铁-联吡啶基配合物代替EDTA铁配合物(摩尔比为1:1)并进行相同的实验时,氧化剂的破坏程度很低,而脱氧核糖和苯甲酸酯的降解则受抑制的程度很低。超氧化物歧化酶和.OH自由基清除剂。苯甲酸酯的羟基化虽然很弱,但是却被超氧化物歧化酶和.OH自由基清除剂更有效地抑制,暗示了.OH的某些作用。铁联吡啶基络合物具有可用的铁结合能力,因此不允许铁保持与缓冲液或检测器分子的结合。铁-联吡啶络合物和H2O2产生的大多数.OH自由基很可能首先破坏联吡啶分子,很少有游离溶液与检测器分子发生反应。脱氧核糖和苯甲酸酯的降解似乎是由非典型的.OH氧化剂所介导的,而诸如Ferryl离子-Bipyridyl配合物之类的物质可能导致了所观察到的破坏。

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