Mechanisms of Mitochondrial Dysfunction in Alzheimer’s Disease

被引:0
作者
Chris Cadonic
Mohammad Golam Sabbir
Benedict C. Albensi
机构
[1] St. Boniface Hospital Research,Graduate Program in Biomedical Engineering, Faculties of Health Sciences, Engineering, and Science
[2] University of Manitoba,Department of Pharmacology & Therapeutics
[3] University of Manitoba,undefined
来源
Molecular Neurobiology | 2016年 / 53卷
关键词
Mitochondria; Alzheimer’s disease; Review; Electron transport chain; Mitochondrial dysfunction;
D O I
暂无
中图分类号
学科分类号
摘要
Mitochondria are the primary source for energy generation in the cell, which manifests itself in the form of the adenosine triphosphate (ATP). Nicotinamide dinucleotide (NADH) molecules are the first to enter the so-called electron transport chain or ETC of the mitochondria. The ETC represents a chain of reducing agents organized into four major protein-metal complexes (I-IV) that utilize the flow of electrons to drive the production of ATP. An additional integral protein that is related to oxidative phosphorylation is ATP synthase, referred to as complex V. Complex V carries out ATP synthesis as a result of the electron flow through the ETC. The coupling of electron flow from NADH to molecular oxygen to the production of ATP represents a process known as oxidative phosphorylation. In this review, we describe mainly the bioenergetic properties of mitochondria, such as those found in the ETC that may be altered in Alzheimer’s disease (AD). Increasing evidence points to several mitochondrial functions that are affected in AD. Furthermore, it is becoming apparent that mitochondria are a potential target for treatment in early-stage AD. With growing interest in the mitochondria as a target for AD, it has been hypothesized that deficit in this organelle may be at the heart of the progression of AD itself. The role of mitochondria in AD may be significant and is emerging as a main area of AD research.
引用
收藏
页码:6078 / 6090
页数:12
相关论文
共 147 条
  • [1] Mannella CA(2006)Structure and dynamics of the mitochondrial inner membrane cristae Biochim Biophys Acta 1763 542-548
  • [2] Zharova TV(1997)A competitive inhibition of the mitochondrial NADH-ubiquinone oxidoreductase (complex I) by ADP-ribose Biochim Biophys Acta 1320 256-264
  • [3] Vinogradov AD(2008)Mitochondrial complex I inhibitor rotenone inhibits and redistributes vesicular monoamine transporter 2 via nitration in human dopaminergic SH-SY5Y cells Mol Pharmacol 74 933-940
  • [4] Watabe M(2008)High rates of superoxide production in skeletal-muscle mitochondria respiring on both complex I- and complex II-linked substrates Biochem J 409 491-499
  • [5] Nakaki T(2004)Oligomycin and antimycin a prevent nitric oxide-induced apoptosis by blocking cytochrome C leakage J Lab Clin Med 143 143-151
  • [6] Muller FL(1995)Synthetic studies on oligomycins. Synthesis of the oligomycin B spiroketal and polypropionate portions Bull Chem Soc Jpn 68 967-989
  • [7] Liu Y(2003)Neuropsychological features of mild cognitive impairment and preclinical Alzheimer’s disease Acta Neurol Scand Suppl 179 34-41
  • [8] Abdul-Ghani MA(2006)Role of genes and environments for explaining Alzheimer disease Arch Gen Psychiatry 63 168-174
  • [9] Lustgarten MS(1991)Amyloid deposition as the central event in the aetiology of Alzheimer’s disease Trends Pharmacol Sci 12 383-388
  • [10] Bhattacharya A(2002)Alzheimer’s disease—do tauists and baptists finally shake hands? Trends Neurosci 25 22-26