Abstract
Oxidation of semiquinone by O2 in the Q cycle is known to be one of the sources of superoxide anion (O2.-) in aerobic cells. In this paper, such a phenomenon was analyzed using the chemical kinetics model of electron transfer from succinate to cytochrome c, including coenzyme Q, the complex III non-heme iron protein FeSIII and cytochromes bl, bh and cl. Electron transfers from QH2 to FeSIII and cytochrome bl were assumed to occur according to direct transfer mechanism (dynamic channelling) involving the formation of FeS(red)III-Q.- and Q.--cytochrome bl complexes. For oxidation/reduction reactions involving cytochromes bh and bl, the dependence of the equilibrium and elementary rate constants on the membrane potential (deltapsi) was taken into consideration. The rate of O2.- generation was found to increase dramatically with increase in deltapsi above the values found in State 3. On the other hand, the rate of cytochrome c reduction decreased sharply at the same values of the membrane potential. This explains experimental data that the O2.- generation at State 4 appears to be very much faster than at State 3. A mild uncoupling in State 4 can markedly decrease the superoxide generation due to a decrease in deltapsi below the above mentioned critical level. DeltapH appears to be equally effective as deltapsi in stimulation of superoxide production which depends, in fact, upon the deltamuH+ level.
MeSH Terms
Benzoquinones/metabolism
Cytochrome b Group/metabolism
Electron Transport
Electron Transport Complex III/metabolism
Hydrogen-Ion Concentration
Kinetics
Membrane Potentials
Mitochondria/metabolism
Oxygen/metabolism
Reactive Oxygen Species/metabolism
Superoxides/metabolism
Ubiquinone/metabolism
Chemicals
Benzoquinones
Cytochrome b Group
Reactive Oxygen Species
Superoxides
Ubiquinone
semiquinone radicals
Electron Transport Complex III
Oxygen
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Demin O V
Department of Bioenergetics, A.N. Belozersky Institute of Physico-Chemical Biology, Moscow State University, Moscow, Russia.
Kholodenko B N
Skulachev V P
References (21)
21 references, click to expand
-
A linear steady-state treatment of enzymatic chains. General properties, control and effector strength.
Eur J Biochem. 1974 Feb 15;42(1):89-95
PMID: 4830198
-
Kinetics of ubiquinone reduction by the resolved succinate: ubiquinone reductase.
Biochim Biophys Acta. 1982 Dec 15;682(3):491-5
PMID: 7150582
-
The macroworld versus the microworld of biochemical regulation and control.
Trends Biochem Sci. 1995 Feb;20(2):52-4
PMID: 7701560
-
Role of uncoupled and non-coupled oxidations in maintenance of safely low levels of oxygen and its one-electron reductants.
Q Rev Biophys. 1996 May;29(2):169-202
PMID: 8870073
-
The protonmotive Q cycle. Energy transduction by coupling of proton translocation to electron transfer by the cytochrome bc1 complex.
J Biol Chem. 1990 Jul 15;265(20):11409-12
PMID: 2164001
-
The sum of the control coefficients of all enzymes on the flux through a group-transfer pathway can be as high as two.
Eur J Biochem. 1993 Mar 15;212(3):791-9
PMID: 8462550
-
The sum of flux control coefficients in the electron-transport chain of mitochondria.
Eur J Biochem. 1994 Dec 15;226(3):819-29
PMID: 7813471
-
Respiratory-chain characteristics of mutants of Azotobacter vinelandii negative to tetramethyl-p-phenylenediamine oxidase.
Eur J Biochem. 1979 Oct;100(1):19-27
PMID: 488089
-
Mathematical analysis of multienzyme systems. II. Steady state and transient control.
Biosystems. 1975 Jul;7(1):130-6
PMID: 125616
-
The mitochondrial generation of hydrogen peroxide. General properties and effect of hyperbaric oxygen.
Biochem J. 1973 Jul;134(3):707-16
PMID: 4749271
-
Control theory of one enzyme.
Biochim Biophys Acta. 1994 Oct 19;1208(2):294-305
PMID: 7947961
-
[Control of molecular transformations in polyenzyme systems: quantitative theory of the regulation of metabolism].
Mol Biol (Mosk). 1988 Sep-Oct;22(5):1238-56
PMID: 3221852
-
Incorporation of membrane potential into theoretical analysis of electrogenic ion pumps.
Proc Natl Acad Sci U S A. 1985 Oct;82(20):6869-73
PMID: 2413447
-
Metabolic channelling and control of the flux.
FEBS Lett. 1993 Mar 29;320(1):71-4
PMID: 8462680
-
Electron and proton transfers through quinones and cytochrome bc complexes.
Biochim Biophys Acta. 1984 Apr 9;768(1):53-79
PMID: 6322844
-
The influence of membrane potentials on reaction rates. Control in free-energy-transducing systems.
Biochim Biophys Acta. 1984 Nov 26;767(2):314-20
PMID: 6238629
-
Interaction of the membrane-bound succinate dehydrogenase with substrate and competitive inhibitors.
Biochim Biophys Acta. 1984 Jan 18;784(1):24-34
PMID: 6691982
-
Intracellular diffusion gradients of O2 and ATP.
Am J Physiol. 1986 May;250(5 Pt 1):C663-75
PMID: 3010727
-
Effect of channelling on the concentration of bulk-phase intermediates as cytosolic proteins become more concentrated.
Biochem J. 1996 Feb 1;313 ( Pt 3):921-6
PMID: 8611176
-
MOlecular democracy: who shares the controls?
Biochem Soc Trans. 1979 Oct;7(5):1149-60
PMID: 389705
-
STOICHIOMETRY OF THE FIXED OXIDATION-REDUCTION COMPONENTS OF THE ELECTRON TRANSFER CHAIN OF BEEF HEART MITOCHONDRIA.
Biochem Z. 1963;338:335-48
PMID: 14087305