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PMID: 12372827 Published · ppublish English Journal Article

Superoxide activates mitochondrial uncoupling protein 2 from the matrix side. Studies using targeted antioxidants.

The Journal of biological chemistry ·Vol. 277 ·No. 49 ·2002-12-06 ·Pages 47129-35

Echtay KS, Murphy MP, Smith RA, Talbot DA, Brand MD

Abstract

Superoxide activates nucleotide-sensitive mitochondrial proton transport through the uncoupling proteins UCP1, UCP2, and UCP3 (Echtay, K. S., et al. (2002) Nature 415, 1482-1486). Two possible mechanisms were proposed: direct activation of the UCP proton transport mechanism by superoxide or its products and a cycle of hydroperoxyl radical entry coupled to UCP-catalyzed superoxide anion export. Here we provide evidence for the first mechanism and show that superoxide activates UCP2 in rat kidney mitochondria from the matrix side of the mitochondrial inner membrane: (i) Exogenous superoxide inhibited matrix aconitase, showing that external superoxide entered the matrix. (ii) Superoxide-induced uncoupling was abolished by low concentrations of the mitochondrially targeted antioxidants 10-(6'-ubiquinonyl)decyltriphenylphosphonium (mitoQ) or 2-[2-(triphenylphosphonio)ethyl]-3,4-dihydro-2,5,7,8-tetramethyl-2H-1-benzopyran-6-ol bromide (mitoVit E), which are ubiquinone (Q) or tocopherol derivatives targeted to the matrix by covalent attachment to triphenylphosphonium cation. However, superoxide-induced uncoupling was not affected by similar concentrations of the nontargeted antioxidants Q(o), Q(1), decylubiquinone, vitamin E, or 6-hydroxy-2,5,7,8-tetramethylchroman 2-carboxylic acid (TROLOX) or of the mitochondrially targeted but redox-inactive analogs decyltriphenylphosphonium or 4-chlorobutyltriphenylphosphonium. Thus matrix superoxide appears to be necessary for activation of UCP2 by exogenous superoxide. (iii) When the reduced to oxidized ratio of mitoQ accumulated by mitochondria was increased by inhibiting cytochrome oxidase, it induced nucleotide-sensitive uncoupling that was not inhibited by external superoxide dismutase. Under these conditions quinols are known to produce superoxide, and because mitoQ is localized within the mitochondrial matrix this suggests that production of superoxide in the matrix was sufficient to activate UCP2. Furthermore, the superoxide did not need to be exported or to cycle across the inner membrane to cause uncoupling. We conclude that superoxide (or its products) exerts its uncoupling effect by activating the proton transport mechanism of uncoupling proteins at the matrix side of the mitochondrial inner membrane.

MeSH Terms
Aconitate Hydratase/metabolism Animals Antioxidants/pharmacology Cations Cell Membrane/metabolism Chromans/pharmacology Cyanides/metabolism Female Ion Channels Kidney/metabolism Kinetics Membrane Potentials Membrane Transport Proteins Mice Mice, Knockout Mitochondria/metabolism Mitochondrial Proteins Models, Chemical Protein Binding Proteins/metabolism Protons Rats Rats, Wistar Reactive Oxygen Species Superoxides/metabolism Time Factors Ubiquinone/metabolism Uncoupling Protein 2 Vitamin E/pharmacology
Chemicals
Antioxidants Cations Chromans Cyanides Ion Channels Membrane Transport Proteins Mitochondrial Proteins Proteins Protons Reactive Oxygen Species UCP2 protein, human Ucp2 protein, mouse Ucp2 protein, rat Uncoupling Protein 2 Superoxides Ubiquinone Vitamin E Aconitate Hydratase 6-hydroxy-2,5,7,8-tetramethylchroman-2-carboxylic acid
Authors & Affiliations
5 authors, click to expand affiliations / ORCID
Echtay Karim S
Medical Research Council Dunn Human Nutrition Unit, Hills Road, Cambridge CB2 2XY, UK.
Murphy Michael P
Smith Robin A J
Talbot Darren A
Brand Martin D
Article Info
Journal
The Journal of biological chemistry
Abbr.
J Biol Chem
ISSN
0021-9258
Published
2002-12-06
Epub
2002-00-07
Pages
47129-35
Language
English
Region
United States
NLM ID
2985121R
Subset
IM
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