» Articles » PMID: 21708945

The Mechanism of Superoxide Production by the Antimycin-inhibited Mitochondrial Q-cycle

Overview
Journal J Biol Chem
Specialty Biochemistry
Date 2011 Jun 29
PMID 21708945
Citations 90
Authors
Affiliations
Soon will be listed here.
Abstract

Superoxide production from antimycin-inhibited complex III in isolated mitochondria first increased to a maximum then decreased as substrate supply was modulated in three different ways. In each case, superoxide production had a similar bell-shaped relationship to the reduction state of cytochrome b(566), suggesting that superoxide production peaks at intermediate Q-reduction state because it comes from a semiquinone in the outer quinone-binding site in complex III (Q(o)). Imposition of a membrane potential changed the relationships between superoxide production and b(566) reduction and between b(562) and b(566) redox states, suggesting that b(562) reduction also affects semiquinone concentration and superoxide production. To assess whether this behavior was consistent with the Q-cycle mechanism of complex III, we generated a kinetic model of the antimycin-inhibited Q(o) site. Using published rate constants (determined without antimycin), with unknown rate constants allowed to vary, the model failed to fit the data. However, when we allowed the rate constant for quinol oxidation to decrease 1000-fold and the rate constant for semiquinone oxidation by b(566) to depend on the b(562) redox state, the model fit the energized and de-energized data well. In such fits, quinol oxidation was much slower than literature values and slowed further when b(566) was reduced, and reduction of b(562) stabilized the semiquinone when b(566) was oxidized. Thus, superoxide production at Q(o) depends on the reduction states of b(566) and b(562) and fits the Q-cycle only if particular rate constants are altered when b oxidation is prevented by antimycin. These mechanisms limit superoxide production and short circuiting of the Q-cycle when electron transfer slows.

Citing Articles

810-nm Photobiomodulation Evokes Glutamate Release in Normal and Rotenone-Dysfunctional Cortical Nerve Terminals by Modulating Mitochondrial Energy Metabolism.

Ravera S, Farsetti E, Maura G, Marcoli M, Bozzo M, Cervetto C Cells. 2025; 14(2).

PMID: 39851493 PMC: 11764165. DOI: 10.3390/cells14020067.


Transcriptional regulation in the absence of inositol trisphosphate receptor calcium signaling.

Young M, Booth D, Smith D, Tigano M, Hajnoczky G, Joseph S Front Cell Dev Biol. 2024; 12:1473210.

PMID: 39712573 PMC: 11659226. DOI: 10.3389/fcell.2024.1473210.


NEK10 kinase ablation affects mitochondrial morphology, function and protein phosphorylation status.

Peres de Oliveira A, Navarro C, Dias P, Arguello T, Walker B, Bacman S Proteome Sci. 2024; 22(1):8.

PMID: 39379991 PMC: 11460017. DOI: 10.1186/s12953-024-00234-z.


Mitochondrial complex III-derived ROS amplify immunometabolic changes in astrocytes and promote dementia pathology.

Barnett D, Zimmer T, Booraem C, Palaguachi F, Meadows S, Xiao H bioRxiv. 2024; .

PMID: 39229090 PMC: 11370371. DOI: 10.1101/2024.08.19.608708.


Understanding coenzyme Q.

Wang Y, Lilienfeldt N, Hekimi S Physiol Rev. 2024; 104(4):1533-1610.

PMID: 38722242 PMC: 11495197. DOI: 10.1152/physrev.00040.2023.


References
1.
Hoffman D, Brookes P . Oxygen sensitivity of mitochondrial reactive oxygen species generation depends on metabolic conditions. J Biol Chem. 2009; 284(24):16236-16245. PMC: 2713566. DOI: 10.1074/jbc.M809512200. View

2.
Cooley J, Ohnishi T, Daldal F . Binding dynamics at the quinone reduction (Qi) site influence the equilibrium interactions of the iron sulfur protein and hydroquinone oxidation (Qo) site of the cytochrome bc1 complex. Biochemistry. 2005; 44(31):10520-32. PMC: 1360200. DOI: 10.1021/bi050571+. View

3.
Mulkidjanian A . Ubiquinol oxidation in the cytochrome bc1 complex: reaction mechanism and prevention of short-circuiting. Biochim Biophys Acta. 2005; 1709(1):5-34. DOI: 10.1016/j.bbabio.2005.03.009. View

4.
Muller F, Liu Y, Van Remmen H . Complex III releases superoxide to both sides of the inner mitochondrial membrane. J Biol Chem. 2004; 279(47):49064-73. DOI: 10.1074/jbc.M407715200. View

5.
Funahashi A, Jouraku A, Matsuoka Y, Kitano H . Integration of CellDesigner and SABIO-RK. In Silico Biol. 2007; 7(2 Suppl):S81-90. View