线粒体复合体I:结构、功能及其在神经退行性变中的意义。

The Italian journal of biochemistry Pub Date : 2006-09-01
Giorgio Lenaz, Alessandra Baracca, Romana Fato, Maria Luisa Genova, Giancarlo Solaini
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引用次数: 0

摘要

线粒体复合体I (NADH辅酶Q氧化还原酶)是最不为人所知的呼吸复合体。在这篇综述中,我们强调了一些与神经退行性疾病发病机制相关的酶的新发现。除了辅酶Q (CoQ)外,氧也可能是该酶的电子受体,在线粒体基质中产生超氧自由基。超氧化物产生的位置是有争议的:我们提出了基于合理使用几种抑制剂的证据,证明氧的单电子供体是铁硫簇,可能是N2。基于这一假设,我们提出了一种新的电子向受体CoQ转移的机制。越来越多的有力证据表明,电子通过CoQ从络合物I转移到络合物III不是通过CoQ池的操作完成的,而是通过包括络合物I、络合物III和结合CoQ在内的超络合物内的直接通道完成的。除了通过天然电泳获得复合物I -复合物III聚集体的结构证据外,我们还获得了基于代谢通量分析的动力学证据,表明复合物I和III表现为单个酶。磷脂的定量和定性变化,包括过氧化作用,都可能影响超络合物的形成。复合体I与病理变化密切相关,包括神经退行性变。编码复合体I亚基的线粒体DNA基因的母系遗传突变是Leber遗传性视神经病变的基础;由于突变,复合物中电子转移的减少本身不足以解释临床表型,其他因素包括质子易位和氧自由基的产生被认为是重要的。复合体I的改变也与成人和老年人更常见的神经系统疾病有关。在这篇综述中,我们讨论了帕金森病,其中复合体I的致病作用得到了更好的理解;从疾病的病因和发病机制方面讨论了复合物I抑制剂的作用方式及其对氧自由基产生的影响的积累证据。
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Mitochondrial Complex I: structure, function, and implications in neurodegeneration.

Mitochondrial Complex I (NADH Coenzyme Q oxidoreductase) is the least understood of respiratory complexes. In this review we emphasize some novel findings on this enzyme that are of relevance to the pathogenesis of neurodegenerative diseases. Besides Coenzyme Q (CoQ), also oxygen may be an electron acceptor from the enzyme, with generation of superoxide radical in the mitochondrial matrix. The site of superoxide generation is debated: we present evidence based on the rational use of several inhibitors that the one-electron donor to oxygen is an iron-sulphur cluster, presumably N2. On this assumption we present a novel mechanism of electron transfer to the acceptor, CoQ. Strong evidence is accumulating that electron transfer from Complex I to Complex III via CoQ is not performed by operation of the CoQ pool but by direct channelling within a super-complex including Complex I, Complex III and bound CoQ. Besides structural evidence of a Complex I -Complex III aggregate obtained by native electrophoresis, we have obtained kinetic evidence based on metabolic flux analysis, demonstrating that Complexes I and III behave as an individual enzyme. Quantitative and qualitative changes of phospholipids, including peroxidation, may affect the supercomplex formation. Complex I is deeply involved in pathological changes, including neurodegeneration. Maternally inherited mutations in mitochondrial DNA genes encoding for Complex I subunits are at the basis of Leber's Hereditary Optic Neuropathy; a decrease of electron transfer in the complex, due to the mutations, is not sufficient per se to explain the clinical phenotype, and other factors including proton translocation and oxygen radical generation have been considered of importance. Complex I changes are also involved in more common neurological diseases of the adult and old ages. In this review we discuss Parkinson's disease, where the pathogenic involvement of Complex I is better understood; the accumulated evidence on the mode of action of Complex I inhibitors and their effect on oxygen radical generation is discussed in terms of the aetiology and pathogenesis of the disease.

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