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Mitochondrial Dysfunction in Neurodegenerative Diseases Associated with Copper Imbalance 总被引:6,自引:0,他引:6
Copper is an essential transition metal ion for the function of key metabolic enzymes, but its uncontrolled redox reactivity is source of reactive oxygen species. Therefore a network of transporters strictly controls the trafficking of copper in living systems. Deficit, excess, or aberrant coordination of copper are conditions that may be detrimental, especially for neuronal cells, which are particularly sensitive to oxidative stress. Indeed, the genetic disturbances of copper homeostasis, Menkes' and Wilson's diseases, are associated with neurodegeneration. Furthermore, copper interacts with the proteins that are the hallmarks of neurodegenerative disorders, such as Alzheimer's disease, Parkinson's disease, prion diseases, and familial amyotrophic lateral sclerosis. In all cases, copper-mediated oxidative stress is linked to mitochondrial dysfunction, which is a common feature of neurodegeneration. In particular we recently demonstrated that in copper deficiency, mitochondrial function is impaired due to decreased activity of cytochrome c oxidase, leading to production of reactive oxygen species, which in turn triggers mitochondria-mediated apoptotic neurodegeneration. 相似文献
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活性氧、线粒体通透性转换与细胞凋亡 总被引:2,自引:0,他引:2
线粒体是真核细胞中非常重要的细胞器,细胞中的活性氧等自由基主要来源于此,线粒体膜的通透性转换(mitochondrial permeability transition,MPT)及其孔道(mitochondrialpermeability transition pore,MPTP)更是在内源性细胞凋亡中发挥了关键作用。持续性的线粒体膜通透性转换在凋亡的效应阶段起决定性作用,可介导细胞色素c等促凋亡因子从线粒体释放到胞浆中,进一步激活下游的信号通路,导致细胞不可逆地走向凋亡。瞬时性的线粒体膜通透性转换及其偶联的线粒体局部的活性氧爆发同样具有促凋亡的作用。线粒体通透性孔道的开放释放出大量活性氧,这些活性氧又能够进一步激活该孔道,以正反馈的形式进一步加剧孔道的打开,放大凋亡信号。活性氧、线粒体通透性转换与细胞凋亡之间具有密不可分的联系,本文根据已知的研究结果集中讨论了这三者的关系,并着重论述了该领域中的最新发现和成果。 相似文献
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线粒体是一种处于高度运动状态的频繁地进行融合与分裂的细胞器.在生理状态下,线粒体的融合与分裂处于一种平衡的状态,这种平衡受线粒体融合蛋白1/2(Mfn1/2)、视神经萎缩蛋白1(OPA1)和动力相关蛋白1(Drp1)的调节. Mfn1/2介导线粒体外膜的融合,而OPA1则参与线粒体内膜的融合,这些蛋白受泛素化和蛋白水解的调控. Drp1参与线粒体的分裂过程,受多种翻译后修饰的调节,如磷酸化、泛素化、SUMO化和S 硝基化.对于神经元来说,线粒体融合分裂的动态平衡对保证神经元末梢长距离运输和能量平均分布是非常重要的.因此,线粒体融合分裂异常可能是许多神经变性疾病的致病因素之一.对线粒体融合而言,Mfn2错义突变将导致遗传性运动感觉神经病2型(CMT2A);OPA1错义突变将引起显性遗传性视神经萎缩(ADOA),而就线粒体分裂而言,Drp1突变与多系统功能障碍的新生儿致死性相关. 相似文献
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活性氧参与艾滋病发病的机理 总被引:2,自引:0,他引:2
HIV的长期感染, 使得患者体内活性氧大量积累, 形成了氧胁迫. 各种活性氧介导的氧胁迫, 能够激活转录因子NFκB, 从而刺激并促进HIV的基因表达. 同时氧胁迫还使得HIV感染者机体功能陷入紊乱, 表现为DNA严重损伤, Ca2+失去细胞内外的平衡, 酶系统遭到破坏, 能量代谢受阻等诸多方面. 应用抗氧化剂治疗艾滋病仍处于探索阶段. 相似文献
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Calabrese V Scapagnini G Giuffrida Stella AM Bates TE Clark JB 《Neurochemical research》2001,26(6):739-764
It is becoming increasingly evident that the mitochondrial genome may play a key role in neurodegenerative diseases. Mitochondrial dysfunction is characteristic of several neurodegenerative disorders, and evidence for mitochondria being a site of damage in neurodegenerative disorders is partially based on decreases in respiratory chain complex activities in Parkinson's disease, Alzheimer's disease, and Huntington's disease. Such defects in respiratory complex activities, possibly associated with oxidant/antioxidant balance perturbation, are thought to underlie defects in energy metabolism and induce cellular degeneration. Efficient functioning of maintenance and repair process seems to be crucial for both survival and physical quality of life. This is accomplished by a complex network of the so-called longevity assurance processes, which are composed of genes termed vitagenes. A promising approach for the identification of critical gerontogenic processes is represented by the hormesis-like positive effect of stress. In the present review, we discuss the role of energy thresholds in brain mitochondria and their implications in neurodegeneration. We then review the evidence for the role of oxidative stress in modulating the effects of mitochondrial DNA mutations on brain age-related disorders and also discuss new approaches for investigating the mechanisms of lifetime survival and longevity. 相似文献
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Mitochondrial Dysfunction in the Pathogenesis of Necrotic and Apoptotic Cell Death 总被引:18,自引:0,他引:18
Lemasters JJ Qian T Bradham CA Brenner DA Cascio WE Trost LC Nishimura Y Nieminen AL Herman B 《Journal of bioenergetics and biomembranes》1999,31(4):305-319
Mitochondria are frequently the target of injury after stresses leading to necrotic and apoptoticcell death. Inhibition of oxidative phosphorylation progresses to uncoupling when opening ofa high conductance permeability transition (PT) pore in the mitochondrial inner membraneabruptly increases the permeability of the mitochondrial inner membrane to solutes of molecularmass up to 1500 Da. Cyclosporin A (CsA) blocks this mitochondrial permeability transition(MPT) and prevents necrotic cell death from oxidative stress, Ca2+ ionophore toxicity,Reye-related drug toxicity, pH-dependent ischemia/reperfusion injury, and other models of cell injury.Confocal fluorescence microscopy directly visualizes onset of the MPT from the movementof green-fluorescing calcein into mitochondria and the simultaneous release from mitochondriaof red-fluorescing tetramethylrhodamine methylester, a membrane potential-indicatingfluorophore. In oxidative stress to hepatocytes induced by tert-butylhydroperoxide, NAD(P)Hoxidation, increased mitochondrial Ca2+, and mitochondrial generation of reactive oxygen speciesprecede and contribute to onset of the MPT. Confocal microscopy also shows directly thatthe MPT is a critical event in apoptosis of hepatocytes induced by tumor necrosis factor-.Progression to necrotic and apoptotic cell killing depends, at least in part, on the effect theMPT has on cellular ATP levels. If ATP levels fall profoundly, necrotic killing ensues. If ATPlevels are at least partially maintained, apoptosis follows the MPT. Cellular features of bothapoptosis and necrosis frequently occur together after death signals and toxic stresses. A newterm, necrapoptosis, describes such death processes that begin with a common stress or deathsignal, progress by shared pathways, but culminate in either cell lysis (necrosis) or programmedcellular resorption (apoptosis) depending on modifying factors such as ATP. 相似文献
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线粒体是细胞内制造能量的细胞器,它还负责各种细胞信号的整合,参与协调多种复杂的细胞功能.线粒体是动态变化的,连续不断地进行分裂与融合,这是其功能维持和增殖遗传的关键.在过去20年中,参与线粒体分裂与融合的核心因子陆续被发现,它们在进化上高度保守,但是在形成分裂与融合复合物中的详细分子机制还有待于深入研究.线粒体分裂与融合的动态变化,是线粒体质量控制的重要组成部分,其动态平衡在细胞发育和稳态维持中起重要作用.线粒体动态变化失衡和功能失调,则会导致多种神经退行性疾病的发生.这些研究的发现为探索线粒体生物学及与疾病的关系开拓了令人振奋的新方向. 相似文献
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神经退行性疾病(Neurodegenerative disease)是一类以神经元退行性病变为基础的慢性、进行性、不可逆的神经系统疾病的总称,主要包括阿尔茨海默病(Alzheimer's disease,AD)、帕金森病(Parkinson's disease,PD)、亨廷顿舞蹈病(Huntington disease,HD)、肌萎缩侧索硬化症(amyotrophic lateral sclerosis,ALS)、脊髓肌萎缩症(spinal muscular atrophy,SMA)、不同类型脊髓小脑共济失调(spinal cerebella ataxias,SCA)等。其病因和发病机制十分复杂,其中,氧化应激学说近年来受到了人们的广泛关注和普遍认可。而研究表明,Nrf2-ARE信号通路是体内抗氧化应答机制中最重要的通路之一,其能对氧化应激导致的神经细胞损伤产生保护作用,即阻止神经细胞的病变和凋亡,进而延缓神经退行性疾病的发生发展,因而有望成为神经退行性疾病的有效治疗靶标。本文就Nrf2-ARE信号通路结构特点及Nrf2-ARE信号通路在神经退行性疾病中的作用研究进展作一综述。 相似文献
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Takayuki Ozawa 《Bioscience reports》1997,17(3):237-250
The molecular genetics and bioenergetics of oxidative damage, fragmentation, and fragility of mitochondrial DNA in cellular apoptosis is reviewed in connection with the redox mechanism of ageing. 相似文献
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以往认为,线粒体的主要功能是提供能量,目前发现线粒体还是调节细胞氧化应激与凋亡的关键部位,并且与毗邻的细胞器-内质网保持密切联系。线粒体功能障碍时可通过加重机体氧化应激、炎症反应、细胞凋亡及胆固醇蓄积等病理过程影响动脉粥样硬化( atherosclerosis, AS)的发生发展。本综述首先简单介绍了线粒体的基本功能,然后重点分析线粒体功能障碍参与AS的最新证据及其分子机制。此方面研究提示线粒体可能是AS的潜在治疗靶点。 相似文献
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Antonio Macho Rocío Sancho Alberto Minassi Giovanni Appendino Alfons Lawen 《Free radical research》2013,47(6):611-619
Some varieties of sweet pepper accumulate non-pungent isosters of capsaicin, a type of compounds exemplified by capsiate. The only structural difference between capsaicin and capsiate is the link between the vanillyl and the acyl moieties, via an amide bond in the former and via an ester bond in the latter. By flow cytometry analyses we have determined that nor-dihydrocapsiate, a simplified analogue of capsiate, is a pro-oxidant compound that induces apoptosis in the Jurkat tumor cell line. The nuclear DNA fragmentation induced by nor-dihydrocapsiate is preceded by an increase in the production of reactive oxygen species and by a subsequent disruption of mitochondria transmembrane potential. Capsiate-induced apoptosis is initiated at the S phase of the cell cycle and is mediated by a caspase-3-dependent pathway. The accumulation of intracellular reactive oxygen species in capsiate-treated cells is greatly prevented by the presence of ferricyanide, suggesting that capsiates target a cellular redox system distinct from the one involved in the mitochondrial electron-chain transport. Methylation of the phenolic hydroxyl of nor-dihydrocapsiate completely abrogated the ability to induce reactive oxygen species and apoptosis, highlighting the relevance of the presence of a free phenolic hydroxyl for the pro-oxidant properties of capsaicinoids. 相似文献
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Anibal E. Vercesi Alicia J. Kowaltowski Mercedes T. Grijalba André R. Meinicke Roger F. Castilho 《Bioscience reports》1997,17(1):43-52
We have provided evidence that mitochondrial membrane permeability transition induced by inorganic phosphate, uncouplers or prooxidants such as t-butyl hydroperoxide and diamide is caused by a Ca2+-stimulated production of reactive oxygen species (ROS) by the respiratory chain, at the level of the coenzyme Q. The ROS attack to membrane protein thiols produces cross-linkage reactions, that may open membrane pores upon Ca2+ binding. Studies with submitochondrial particles have demonstrated that the binding of Ca2+ to these particles (possibly to cardiolipin) induces lipid lateral phase separation detected by electron paramagnetic resonance experiments exploying stearic acids spin labels. This condition leads to a disorganization of respiratory chain components, favoring ROS production and consequent protein and lipid oxidation. 相似文献
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《Journal of receptor and signal transduction research》2013,33(5):410-416
AbstractBackground: Despite the importance of oxidative stress and apoptosis through mitochondrial depolarization in neurodegenerative diseases, their roles in etiology of glaucoma are poorly understood. We aimed to investigate whether oxidative stress and apoptosis formation are altered in rat pheochromocytoma-derived cell line-12 (PC12) neuronal cell cultures exposed to elevated different hydrostatic pressures as a cell culture model of glaucoma. Materials: Cultured PC12 cells were subjected to 0, 15 and 70?mmHg hydrostatic pressure for 1 and 24?h. Then, the following values were analyzed: (a) cell viability; (b) lipid peroxidation and intracellular reactive oxygen species production; (c) mitochondrial membrane depolarization; (d) cell apoptosis; (e) caspase-3 and caspase-9 activities; (f) reduced glutathione (GSH) and glutathione peroxidase (GSH-Px). Results: The hydrostatic pressures (15 and 70?mmHg) increased oxidative cell damage through a decrease of GSH and GSH-Px values, and increasing mitochondrial membrane potential. Additionally, 70?mmHg hydrostatic pressure for 24?h indicated highest apoptotic effects, as demonstrated by plate reader analyses of apoptosis, caspase-3 and -9 values. Conclusion: The present data indicated oxidative stress, apoptosis and mitochondrial changes in PC12 cell line during different hydrostatic pressure as a cell culture model of glaucoma. This findings support the view that mitochondrial oxidative injury contributes early to glaucomatous optic neuropathy. 相似文献
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Mitochondrial Complex I [NADH Coenzyme Q (CoQ) 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
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. Complex I is deeply involved in pathological changes, including neurodegeneration.
Complex I changes are involved in common neurological diseases of the adult and old ages. Mitochondrial cytopathies due to
mutations of either nuclear or mitochondrial DNA may represent a useful model of neurodegeneration. 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.
Special issue article in honor of Dr. Anna Maria Giuffrida-Stella. 相似文献
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Brandon J. Berry Adam J. Trewin Andrea M. Amitrano Minsoo Kim Andrew P. Wojtovich 《Journal of molecular biology》2018,430(21):3873-3891
Mitochondrial respiration results in an electrochemical proton gradient, or protonmotive force (pmf), across the mitochondrial inner membrane. The pmf is a form of potential energy consisting of charge (?ψm) and chemical (?pH) components, that together drive ATP production. In a process called uncoupling, proton leak into the mitochondrial matrix independent of ATP production dissipates the pmf and energy is lost as heat. Other events can directly dissipate the pmf independent of ATP production as well, such as chemical exposure or mechanisms involving regulated mitochondrial membrane electrolyte transport. Uncoupling has defined roles in metabolic plasticity and can be linked through signal transduction to physiologic events. In the latter case, the pmf impacts mitochondrial reactive oxygen species (ROS) production. Although capable of molecular damage, ROS also have signaling properties that depend on the timing, location, and quantity of their production. In this review, we provide a general overview of mitochondrial ROS production, mechanisms of uncoupling, and how these work in tandem to affect physiology and pathologies, including obesity, cardiovascular disease, and immunity. Overall, we highlight that isolated bioenergetic models—mitochondria and cells—only partially recapitulate the complex link between the pmf and ROS signaling that occurs in vivo. 相似文献
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自噬广泛存在于真核细胞中,与机体生理和病理过程的发生发展密切联系.自噬主要参与长寿蛋白质的降解,以清除受损或多余的蛋白质和细胞器,是细胞自我降解的过程之一.自噬通常被分为三类:大自噬、分子伴侣介导的自噬和小自噬.自噬溶酶体途径(ALP)功能障碍导致蛋白质聚集,从而产生异常蛋白质和无效细胞器的积累,这些特征是阿尔茨海默病(Alzheimer disease,AD)、帕金森病(Parkinson disease,PD)和亨廷顿病等神经退行性疾病(Huntington disease,HD)的标志.自噬的过程受一系列复杂的信号分子的调控,其中一个主要调节因子是转录因子EB(TFEB),是转录因子MiT家族的成员之一.研究表明,TFEB可通过积极调节自噬体形成和自噬体-溶酶体融合参与自噬,此外它还通过溶酶体胞吐作用提高细胞内的清除作用.因此作为自噬溶酶体生物发生的主要调节因子,TFEB已被广泛证明激活后可以从病理方面改善这些疾病.我们回顾分析ALP和TFEB的调节及其对神经退行性疾病的影响,同时展望ALP和TFEB在疾病病理中的复杂作用及其治疗意义. 相似文献