Mitochondrial ROS metabolism:: Modulation by uncoupling proteins

被引:132
作者
Casteilla, L
Rigoulet, M
Pénicaud, L
机构
[1] CHU Rangueil, CNRS, UPR 5018, UMR, F-31400 Toulouse, France
[2] CNRS, Inst Biochim & Genet Cellulaires, F-33077 Bordeaux, France
关键词
mitochondria; UCP; reactive oxygen species; metabolism;
D O I
10.1080/15216540152845984
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Most of the oxygen consumed by aerobic organisms is reduced to water by the enzyme cytochrome c oxidase in the terminal reaction of the mitochondrial respiratory chain. A significant proportion of the oxygen molecules are converted to superoxide anion radicals by complexes I and III via a nonenzymatic process. A cascade of enzymes, some of them inside the mitochondria themselves, scavenges superoxide anions in order to protect cells from oxidative damage induced by reactive oxygen species (ROS). Unfortunately, the quantification of the fluxes of mitochondrial ROS inside living cells is currently almost impossible, and this in turn limits our knowledge. Presently, the involvement of mitochondrial ROS can only be demonstrated by indirect strategies and among them knockout techniques are the most convincing. The yield of superoxide generation and subsequently ROS production depend mostly on oxygen concentration but can be efficiently modulated by mitochondrial uncoupling. This role could be assumed in part by one of the Uncoupling Proteins (UCPs). These proteins have coenzyme Q as an obligatory partner and we present here the hypothesis of UCPs as a crucial element of the respiratory chain. ROS have been mostly involved in degenerative processes including ageing. More recently, numerous studies point out the role of ROS as true intracellular second messengers. A putative role of mitochondrial ROS as the sensing element of energy metabolism is discussed here. We propose that UCPs could play a central role in modulation of ROS-dependent signalling pathways and metabolic sensing via the modulation of ROS generation.
引用
收藏
页码:181 / 188
页数:8
相关论文
共 78 条
  • [61] Motor neurons in Cu/Zn superoxide dismutase-deficient mice develop normally but exhibit enhanced cell death after axonal injury
    Reaume, AG
    Elliott, JL
    Hoffman, EK
    Kowall, NW
    Ferrante, RJ
    Siwek, DF
    Wilcox, HM
    Flood, DG
    Beal, MF
    Brown, RH
    Scott, RW
    Snider, WD
    [J]. NATURE GENETICS, 1996, 13 (01) : 43 - 47
  • [62] Quantitative analysis of some mechanisms affecting the yield of oxidative phosphorylation:: Dependence upon both fluxes and forces
    Rigoulet, M
    Leverve, X
    Fontaine, E
    Ouhabi, R
    Guérin, B
    [J]. MOLECULAR AND CELLULAR BIOCHEMISTRY, 1998, 184 (1-2) : 35 - 52
  • [63] UNCOUPLING OF OXIDATIVE-PHOSPHORYLATION IN RAT-LIVER MITOCHONDRIA BY GENERAL-ANESTHETICS
    ROTTENBERG, H
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA-BIOLOGICAL SCIENCES, 1983, 80 (11): : 3313 - 3317
  • [64] EVALUATION OF 2',7'-DICHLOROFLUORESCIN AND DIHYDRORHODAMINE 123 AS FLUORESCENT-PROBES FOR INTRACELLULAR H2O2 IN CULTURED ENDOTHELIAL-CELLS
    ROYALL, JA
    ISCHIROPOULOS, H
    [J]. ARCHIVES OF BIOCHEMISTRY AND BIOPHYSICS, 1993, 302 (02) : 348 - 355
  • [65] EVIDENCE FOR A PROTON-DEPENDENT REGULATION OF MITOCHONDRIAL NICOTINAMIDE-NUCLEOTIDE TRANSHYDROGENASE
    RYDSTROM, J
    [J]. EUROPEAN JOURNAL OF BIOCHEMISTRY, 1974, 45 (01): : 67 - 76
  • [66] Salonen JT, 2000, FREE RADICAL RES, V33, pS41
  • [67] Sastre J, 2000, IUBMB LIFE, V49, P427
  • [68] Mitochondria, oxidative stress and aging
    Sastre, J
    Pallardó, FV
    de la Asunción, JG
    Viña, J
    [J]. FREE RADICAL RESEARCH, 2000, 32 (03) : 189 - 198
  • [69] Uncoupling: new approaches to an old problem of bioenergetics
    Skulachev, VP
    [J]. BIOCHIMICA ET BIOPHYSICA ACTA-BIOENERGETICS, 1998, 1363 (02): : 100 - 124
  • [70] UBISEMIQUINONE IS THE ELECTRON-DONOR FOR SUPEROXIDE FORMATION BY COMPLEX III OF HEART-MITOCHONDRIA
    TURRENS, JF
    ALEXANDRE, A
    LEHNINGER, AL
    [J]. ARCHIVES OF BIOCHEMISTRY AND BIOPHYSICS, 1985, 237 (02) : 408 - 414