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细胞色素 bd 氧化酶中的氧合铁卟啉自由基催化中间体能保护细胞免受活性氧的形成。

Oxoferryl-porphyrin radical catalytic intermediate in cytochrome bd oxidases protects cells from formation of reactive oxygen species.

机构信息

Department of Biotechnology, Section Enzymology, Delft University of Technology, Delft, The Netherlands.

出版信息

J Biol Chem. 2012 Mar 16;287(12):8830-8. doi: 10.1074/jbc.M111.333542. Epub 2012 Jan 27.

Abstract

The quinol-linked cytochrome bd oxidases are terminal oxidases in respiration. These oxidases harbor a low spin heme b(558) that donates electrons to a binuclear heme b(595)/heme d center. The reaction with O(2) and subsequent catalytic steps of the Escherichia coli cytochrome bd-I oxidase were investigated by means of ultra-fast freeze-quench trapping followed by EPR and UV-visible spectroscopy. After the initial binding of O(2), the O-O bond is heterolytically cleaved to yield a kinetically competent heme d oxoferryl porphyrin π-cation radical intermediate (compound I) magnetically interacting with heme b(595). Compound I accumulates to 0.75-0.85 per enzyme in agreement with its much higher rate of formation (20,000 s(-1)) compared with its rate of decay (1,900 s(-1)). Compound I is next converted to a short lived heme d oxoferryl intermediate (compound II) in a phase kinetically matched to the oxidation of heme b(558) before completion of the reaction. The results indicate that cytochrome bd oxidases like the heme-copper oxidases break the O-O bond in a single four-electron transfer without a peroxide intermediate. However, in cytochrome bd oxidases, the fourth electron is donated by the porphyrin moiety rather than by a nearby amino acid. The production of reactive oxygen species by the cytochrome bd oxidase was below the detection level of 1 per 1000 turnovers. We propose that the two classes of terminal oxidases have mechanistically converged to enzymes in which the O-O bond is broken in a single four-electron transfer reaction to safeguard the cell from the formation of reactive oxygen species.

摘要

喹啉-linked 细胞色素 bd 氧化酶是呼吸作用中的末端氧化酶。这些氧化酶含有一个低自旋的血红素 b(558),它将电子传递给双核血红素 b(595)/血红素 d 中心。通过超快速冷冻-淬火捕获,随后进行 EPR 和 UV-可见光谱研究,研究了大肠杆菌细胞色素 bd-I 氧化酶与 O(2)的反应及其随后的催化步骤。在 O(2)的初始结合后,O-O 键发生异裂裂解,生成一个动力学上有效的血红素 d 氧合铁卟啉 π-阳离子自由基中间物(化合物 I),与血红素 b(595)磁相互作用。化合物 I 积累到 0.75-0.85 个酶/分子,与它的形成速率(20,000 s(-1))相比,其衰减速率(1,900 s(-1))高得多。化合物 I 接着在一个动力学上与血红素 b(558)氧化相匹配的阶段中转化为一个短寿命的血红素 d 氧合铁中间物(化合物 II),然后完成反应。结果表明,细胞色素 bd 氧化酶与血红素铜氧化酶一样,在没有过氧化物中间体的情况下,通过单次四电子转移打破 O-O 键。然而,在细胞色素 bd 氧化酶中,第四个电子是由卟啉部分而不是附近的氨基酸提供的。细胞色素 bd 氧化酶产生的活性氧物种低于每 1000 次周转检测到的 1 个。我们提出,这两类末端氧化酶在机制上已经趋同,形成了在单个四电子转移反应中打破 O-O 键的酶,以保护细胞免受活性氧物种的形成。

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