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首页> 外文期刊>Journal of biological inorganic chemistry: JBIC: a publication of the Society of Biological Inorganic Chemistry >The effect of iron to manganese substitution on microperoxidase 8 catalysed peroxidase and cytochrome P450 type of catalysis
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The effect of iron to manganese substitution on microperoxidase 8 catalysed peroxidase and cytochrome P450 type of catalysis

机译:铁锰取代对微过氧化物酶8催化的过氧化物酶和细胞色素P450型催化的影响

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摘要

This study describes the catalytic properties of manganese microperoxidase 8 [Mn(III)MP8] compared to iron microperoxidase 8 [Fe(III)MP8]. The mini-enzymes were tested for pH-dependent activity and operational stability in peroxidase-type conversions, using 2-methoxyphenol and 3,3'-dimethoxybenzidine, and in a cytochrome P450-like oxygen transfer reaction converting aniline to para-aminophenol. For the peroxidase type of conversions the Fe to Mn replacement resulted in a less than 10-fold decrease in the activity at optimal pH, whereas the aniline para-hydroxylation is reduced at least 30-fold. In addition it was observed that the peroxidase type of conversions are all fully blocked by ascorbate and that aniline para-hydroxylation by Fe(III)MP8 is increased by ascorbate whereas aniline para-hydroxylation by Mn(III)MP8 is inhibited by ascorbate. Altogether these results indicate that different types of reactive metal oxygen intermediates are involved in the various conversions. Compound I/II, scavenged by ascorbate, may be the reactive species responsible for the peroxidase reactions, the polymerization of aniline and (part of) the oxygen transfer to aniline in the absence of ascorbate. The para-hydroxylation of aniline by Fe(III)MP8, in the presence of ascorbate, must be mediated by another reactive iron-oxo species which could be the electrophilic metal(III) hydroperoxide anion of microperoxidase 8 [M(III)OOH MP8]. The lower oxidative potential of Mn, compared to Fe, may affect the reactivity of both compound I/II and the metal(III) hydroperoxide anion intermediate, explaining the differential effect of the Fe to Mn substitution on the pH-dependent behavior, the rate of catalysis and the operational stability of MP8.
机译:这项研究描述了锰微过氧化物酶8 [Mn(III)MP8]与铁微过氧化物酶8 [Fe(III)MP8]的催化性能。使用2-甲氧基苯酚和3,3'-二甲氧基联苯胺,以及在将苯胺转化为对氨基苯酚的细胞色素P450氧转移反应中,测试过氧化物在过氧化物酶类型转化中的pH依赖性活性和操作稳定性。对于过氧化物酶类型的转化,Fe到Mn的置换导致在最佳pH值下活性降低不到10倍,而苯胺对羟基化降低了至少30倍。另外,观察到过氧化物酶类型的转化全部被抗坏血酸完全阻断,并且Fe(III)MP8引起的苯胺对羟基化被抗坏血酸盐增加,而Mn(III)MP8引起的苯胺对羟基化被抗坏血酸抑制。总而言之,这些结果表明不同类型的反应性金属氧中间体参与了各种转化。被抗坏血酸清除的化合物I / II可能是负责过氧化物酶反应,苯胺聚合和在不存在抗坏血酸的情况下将氧的一部分转移至苯胺的反应性物种。在抗坏血酸存在下,Fe(III)MP8对苯胺的对羟基化反应必须由另一种反应性铁-氧离子介导,该反应可能是微过氧化物酶8 [M(III)OOH MP8的亲电子金属(III)氢过氧化物阴离子]。与Fe相比,Mn较低的氧化电位可能会影响化合物I / II和金属(III)氢过氧化物阴离子中间体的反应性,这说明了Fe取代Mn对pH依赖行为,速率的影响。 MP8的催化作用和操作稳定性。

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