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本文引用的文献

1
Reevaluating the relationship between EPR spectra and enzyme structure for the iron sulfur clusters in NADH:quinone oxidoreductase.重新评估NADH:醌氧化还原酶中铁硫簇的电子顺磁共振光谱(EPR光谱)与酶结构之间的关系。
Proc Natl Acad Sci U S A. 2007 Jul 31;104(31):12720-5. doi: 10.1073/pnas.0705593104. Epub 2007 Jul 19.
2
Iron-sulfur cluster N7 of the NADH:ubiquinone oxidoreductase (complex I) is essential for stability but not involved in electron transfer.烟酰胺腺嘌呤二核苷酸(NADH):泛醌氧化还原酶(复合体I)的铁硫簇N7对其稳定性至关重要,但不参与电子传递。
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3
Role of the conserved arginine 274 and histidine 224 and 228 residues in the NuoCD subunit of complex I from Escherichia coli.保守精氨酸274以及组氨酸224和228残基在大肠杆菌复合体I的NuoCD亚基中的作用。
Biochemistry. 2007 Jan 16;46(2):526-33. doi: 10.1021/bi062062t.
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Electron tunneling chains of mitochondria.线粒体的电子隧穿链
Biochim Biophys Acta. 2006 Sep-Oct;1757(9-10):1096-109. doi: 10.1016/j.bbabio.2006.04.015. Epub 2006 May 5.
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Energy converting NADH:quinone oxidoreductase (complex I).能量转换型NADH:醌氧化还原酶(复合体I)。
Annu Rev Biochem. 2006;75:69-92. doi: 10.1146/annurev.biochem.75.103004.142539.
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The mechanism of superoxide production by NADH:ubiquinone oxidoreductase (complex I) from bovine heart mitochondria.牛心线粒体中NADH:泛醌氧化还原酶(复合体I)产生超氧化物的机制。
Proc Natl Acad Sci U S A. 2006 May 16;103(20):7607-12. doi: 10.1073/pnas.0510977103. Epub 2006 May 8.
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Structure of the hydrophilic domain of respiratory complex I from Thermus thermophilus.嗜热栖热菌呼吸链复合体I亲水结构域的结构
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Conformation-driven and semiquinone-gated proton-pump mechanism in the NADH-ubiquinone oxidoreductase (complex I).NADH-泛醌氧化还原酶(复合体I)中由构象驱动且受半醌门控的质子泵机制。
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Activation of isolated NADH:ubiquinone reductase I (complex I) from Escherichia coli by detergent and phospholipids. Recovery of ubiquinone reductase activity and changes in EPR signals of iron-sulfur clusters.去污剂和磷脂对大肠杆菌分离的NADH:泛醌还原酶I(复合体I)的激活作用。泛醌还原酶活性的恢复以及铁硫簇EPR信号的变化。
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Characterization of the delta muH+-sensitive ubisemiquinone species (SQ(Nf)) and the interaction with cluster N2: new insight into the energy-coupled electron transfer in complex I.δμH⁺敏感的半醌类物质(SQ(Nf))的表征及其与N2簇的相互作用:对复合物I中能量耦合电子转移的新见解。
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呼吸复合体I中的实时电子转移

Real-time electron transfer in respiratory complex I.

作者信息

Verkhovskaya Marina L, Belevich Nikolai, Euro Liliya, Wikström Mårten, Verkhovsky Michael I

机构信息

Helsinki Bioenergetics Group, Structural Biology and Biophysics Program, Institute of Biotechnology, University of Helsinki, 00014 Helsinki, Finland.

出版信息

Proc Natl Acad Sci U S A. 2008 Mar 11;105(10):3763-7. doi: 10.1073/pnas.0711249105. Epub 2008 Mar 3.

DOI:10.1073/pnas.0711249105
PMID:18316732
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2268814/
Abstract

Electron transfer in complex I from Escherichia coli was investigated by an ultrafast freeze-quench approach. The reaction of complex I with NADH was stopped in the time domain from 90 mus to 8 ms and analyzed by electron paramagnetic resonance (EPR) spectroscopy at low temperatures. The data show that after binding of the first molecule of NADH, two electrons move via the FMN cofactor to the iron-sulfur (Fe/S) centers N1a and N2 with an apparent time constant of approximately 90 mus, implying that these two centers should have the highest redox potential in the enzyme. The rate of reduction of center N2 (the last center in the electron transfer sequence) is close to that predicted by electron transfer theory, which argues for the absence of coupled proton transfer or conformational changes during electron transfer from FMN to N2. After fast reduction of N1a and N2, we observe a slow, approximately 1-ms component of reduction of other Fe/S clusters. Because all elementary electron transfer rates between clusters are several orders of magnitude higher than this observed rate, we conclude that the millisecond component is limited by a single process corresponding to dissociation of the oxidized NAD(+) molecule from its binding site, where it prevents entry of the next NADH molecule. Despite the presence of approximately one ubiquinone per enzyme molecule, no transient semiquinone formation was observed, which has mechanistic implications, suggesting a high thermodynamic barrier for ubiquinone reduction to the semiquinone radical. Possible consequences of these findings for the proton translocation mechanism are discussed.

摘要

采用超快冷冻淬灭方法研究了大肠杆菌中复合物I的电子转移。复合物I与NADH的反应在90微秒至8毫秒的时间范围内终止,并在低温下通过电子顺磁共振(EPR)光谱进行分析。数据表明,在第一个NADH分子结合后,两个电子通过FMN辅因子转移到铁硫(Fe/S)中心N1a和N2,表观时间常数约为90微秒,这意味着这两个中心在该酶中应具有最高的氧化还原电位。中心N2(电子转移序列中的最后一个中心)的还原速率接近电子转移理论预测的值,这表明在从FMN到N2的电子转移过程中不存在耦合质子转移或构象变化。在N1a和N2快速还原后,我们观察到其他Fe/S簇的还原存在一个缓慢的、约1毫秒的成分。由于簇之间的所有基本电子转移速率都比观察到的速率高几个数量级,我们得出结论,毫秒级成分受一个单一过程限制,该过程对应于氧化型NAD(+)分子从其结合位点解离,在该位点它会阻止下一个NADH分子进入。尽管每个酶分子中大约存在一个泛醌,但未观察到瞬态半醌的形成,这具有机制上的意义,表明泛醌还原为半醌自由基存在很高的热力学屏障。讨论了这些发现对质子转运机制的可能影响。