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在缺乏还原当量的情况下,分子氧会氧化血红素加氧酶中三价α-羟基血红素的卟啉环。

Molecular oxygen oxidizes the porphyrin ring of the ferric alpha-hydroxyheme in heme oxygenase in the absence of reducing equivalent.

作者信息

Migita C T, Fujii H, Mansfield Matera K, Takahashi S, Zhou H, Yoshida T

机构信息

Department of Physiology and Biophysics, Case Western Reserve University School of Medicine, Cleveland, OH 44106-4970, USA.

出版信息

Biochim Biophys Acta. 1999 Jul 13;1432(2):203-13. doi: 10.1016/s0167-4838(99)00097-7.

Abstract

Heme oxygenase catalyzes the regiospecific oxidative degradation of iron protoporphyrin IX (heme) to biliverdin, CO and Fe, utilizing molecular oxygen and electrons donated from the NADPH-cytochrome P-450 reductase. The catalytic conversion of heme proceeds through two known heme derivatives, alpha-hydroxyheme and verdoheme. In order to assess the requirement of reducing equivalents in the second stage of heme degradation, from alpha-hydroxyheme to verdoheme, we have prepared the alpha-hydroxyheme complex with rat heme oxygenase isoform-1 and examined its reactivity with molecular oxygen in the absence of added electrons. Upon reaction with oxygen, the majority of the alpha-hydroxyheme in heme oxygenase is altered to a species which exhibits an optical absorption spectrum with a broad Soret band, along with the minority which is converted to verdoheme. The major product species, which is electron paramagnetic resonace-silent, can be recovered to the original alpha-hydroxyheme by addition of sodium dithionite. We have also found that oxidation of the alpha-hydroxyheme-heme oxygenase complex by ferricyanide or iridium(IV) chloride yields a species which exhibits an optical absorption spectrum and reactivity similar to those of the main product of the oxygen reaction. We infer that the oxygen reaction with the ferric alpha-hydroxyheme-heme oxygenase complex forms a ferric-porphyrin cation radical. We conclude that in the absence of reducing agents, the oxygen molecule functions mainly as an oxidant for the porphyrin ring and has no role in the oxygenation of alpha-hydroxyheme. This result corroborates our previous conclusion that the catalytic conversion of alpha-hydroxyheme to verdoheme by heme oxygenase requires one reducing equivalent along with molecular oxygen.

摘要

血红素加氧酶利用分子氧和从NADPH-细胞色素P-450还原酶提供的电子,催化铁原卟啉IX(血红素)区域特异性氧化降解为胆绿素、一氧化碳和铁。血红素的催化转化通过两种已知的血红素衍生物,即α-羟基血红素和胆绿血红素进行。为了评估血红素降解第二阶段(从α-羟基血红素到胆绿血红素)对还原当量的需求,我们制备了大鼠血红素加氧酶同工型-1与α-羟基血红素的复合物,并在不添加电子的情况下研究了其与分子氧的反应活性。与氧反应后,血红素加氧酶中的大部分α-羟基血红素转变为一种具有宽Soret带的光吸收光谱的物质,少数则转化为胆绿血红素。主要产物物质不具有电子顺磁共振信号,通过添加连二亚硫酸钠可将其恢复为原始的α-羟基血红素。我们还发现,铁氰化物或氯化铱(IV)氧化α-羟基血红素-血红素加氧酶复合物会产生一种光吸收光谱和反应活性与氧反应主要产物相似的物质。我们推断,氧与铁α-羟基血红素-血红素加氧酶复合物的反应形成了铁卟啉阳离子自由基。我们得出结论,在没有还原剂的情况下,氧分子主要作为卟啉环的氧化剂,在α-羟基血红素的氧化反应中不起作用。这一结果证实了我们之前的结论,即血红素加氧酶将α-羟基血红素催化转化为胆绿血红素需要一个还原当量和分子氧。

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