Literature DB >> 25868872

Computational modeling analysis of mitochondrial superoxide production under varying substrate conditions and upon inhibition of different segments of the electron transport chain.

Nikolai I Markevich1, Jan B Hoek2.   

Abstract

A computational mechanistic model of superoxide (O2•-) formation in the mitochondrial electron transport chain (ETC) was developed to facilitate the quantitative analysis of factors controlling mitochondrial O2•- production and assist in the interpretation of experimental studies. The model takes into account all individual electron transfer reactions in Complexes I and III. The model accounts for multiple, often seemingly contradictory observations on the effects of ΔΨ and ΔpH, and for the effects of multiple substrate and inhibitor conditions, including differential effects of Complex III inhibitors antimycin A, myxothiazol and stigmatellin. Simulation results confirm that, in addition to O2•- formation in Complex III and at the flavin site of Complex I, the quinone binding site of Complex I is an additional superoxide generating site that accounts for experimental observations on O2•- production during reverse electron transfer. However, our simulation results predict that, when cytochrome c oxidase is inhibited during oxidation of succinate, ROS production at this site is eliminated and almost all superoxide in Complex I is generated by reduced FMN, even when the redox pressure for reverse electron transfer from succinate is strong. In addition, the model indicates that conflicting literature data on the kinetics of electron transfer in Complex III involving the iron-sulfur protein-cytochrome bL complex can be resolved in favor of a dissociation of the protein only after electron transfer to cytochrome bH. The model predictions can be helpful in understanding factors driving mitochondrial superoxide formation in intact cells and tissues.
Copyright © 2015 Elsevier B.V. All rights reserved.

Entities:  

Keywords:  Computational model; Inhibitory analysis; Membrane potential; Respiratory chain; Semiquinone; Superoxide

Mesh:

Substances:

Year:  2015        PMID: 25868872      PMCID: PMC4426091          DOI: 10.1016/j.bbabio.2015.04.005

Source DB:  PubMed          Journal:  Biochim Biophys Acta        ISSN: 0006-3002


  102 in total

1.  Protonmotive redox mechanism of the cytochrome b-c1 complex in the respiratory chain: protonmotive ubiquinone cycle.

Authors:  P Mitchell
Journal:  FEBS Lett       Date:  1975-08-01       Impact factor: 4.124

2.  Low complex I content explains the low hydrogen peroxide production rate of heart mitochondria from the long-lived pigeon, Columba livia.

Authors:  Adrian J Lambert; Julie A Buckingham; Helen M Boysen; Martin D Brand
Journal:  Aging Cell       Date:  2009-11-25       Impact factor: 9.304

3.  Inhibitor binding changes domain mobility in the iron-sulfur protein of the mitochondrial bc1 complex from bovine heart.

Authors:  H Kim; D Xia; C A Yu; J Z Xia; A M Kachurin; L Zhang; L Yu; J Deisenhofer
Journal:  Proc Natl Acad Sci U S A       Date:  1998-07-07       Impact factor: 11.205

Review 4.  The random collision model and a critical assessment of diffusion and collision in mitochondrial electron transport.

Authors:  C R Hackenbrock; B Chazotte; S S Gupte
Journal:  J Bioenerg Biomembr       Date:  1986-10       Impact factor: 2.945

5.  Ubisemiquinone is the electron donor for superoxide formation by complex III of heart mitochondria.

Authors:  J F Turrens; A Alexandre; A L Lehninger
Journal:  Arch Biochem Biophys       Date:  1985-03       Impact factor: 4.013

6.  From in silico to in spectro kinetics of respiratory complex I.

Authors:  Stéphane Ransac; Margit Heiske; Jean-Pierre Mazat
Journal:  Biochim Biophys Acta       Date:  2012-04-06

7.  Superoxide anion generation by the cytochrome bc1 complex.

Authors:  Jian Sun; Bernard L Trumpower
Journal:  Arch Biochem Biophys       Date:  2003-11-15       Impact factor: 4.013

8.  Kinetics of ubiquinone reduction by the resolved succinate: ubiquinone reductase.

Authors:  V G Grivennikova; A D Vinogradov
Journal:  Biochim Biophys Acta       Date:  1982-12-15

9.  Membrane potential greatly enhances superoxide generation by the cytochrome bc1 complex reconstituted into phospholipid vesicles.

Authors:  Hagai Rottenberg; Raul Covian; Bernard L Trumpower
Journal:  J Biol Chem       Date:  2009-05-28       Impact factor: 5.157

10.  A computational model of reactive oxygen species and redox balance in cardiac mitochondria.

Authors:  Laura D Gauthier; Joseph L Greenstein; Sonia Cortassa; Brian O'Rourke; Raimond L Winslow
Journal:  Biophys J       Date:  2013-08-20       Impact factor: 4.033

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  14 in total

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Journal:  Life Sci Space Res (Amst)       Date:  2016-05-21

Review 4.  Modelling mitochondrial ROS production by the respiratory chain.

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6.  Identifying Site-Specific Superoxide and Hydrogen Peroxide Production Rates From the Mitochondrial Electron Transport System Using a Computational Strategy.

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Review 7.  Modelling the molecular mechanisms of aging.

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Review 9.  Computational Modeling in Liver Surgery.

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