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Updated: Jun 12, 2026

Simultaneous Measurement of Superoxide/Hydrogen Peroxide and NADH Production by Flavin-containing Mitochondrial Dehydrogenases
Published on: February 24, 2018
Hydrogen peroxide efflux from muscle mitochondria underestimates matrix superoxide production--a correction using
Jason R Treberg1, Casey L Quinlan, Martin D Brand
1Buck Institute for Age Research, Novato, CA 94945, USA. jtreberg@mun.ca
Abstract:
The production of H(2)O(2) by isolated mitochondria is frequently used as a measure of mitochondrial superoxide formation. Matrix superoxide dismutase quantitatively converts matrix superoxide to H(2)O(2). However, matrix enzymes such as the glutathione peroxidases can consume H(2)O(2) and compete with efflux of H(2)O(2), causing an underestimation of superoxide production. To assess this underestimate, we depleted matrix glutathione in rat skeletal muscle mitochondria by more than 90% as a consequence of pretreatment with 1-chloro-2,4-dintrobenzene (CDNB). The pretreatment protocol strongly diminished the mitochondrial capacity to consume exogenous H(2)O(2), consistent with decreased peroxidase capacity, but avoided direct stimulation of superoxide production from complex I. It elevated the observed rates of H(2)O(2) formation from matrix-directed superoxide by up to two-fold from several sites of production, as defined by substrates and electron transport inhibitors, over a wide range of control rates, from 0.2-2.5 nmol H(2)O(2) min(-1) mg protein(-1). Similar results were obtained when glutathione was depleted using monochlorobimane or when soluble matrix peroxidase activity was removed by preparation of submitochondrial particles. The data indicate that the increased H(2)O(2) efflux observed with CDNB pretreatment was a result of glutathione depletion and compromised peroxidase activity. A hyperbolic correction curve was constructed, making H(2)O(2) efflux a more quantitative measure of matrix superoxide production. For rat muscle mitochondria, the correction equation was: CDNB-pretreated rate = control rate + [1.43 x (control rate)]/(0.55 + control rate). These results have significant ramifications for the rates and topology of superoxide production by isolated mitochondria.
Insights
Mitochondrial hydrogen peroxide (H2O2) production underestimates superoxide levels. Depleting glutathione in mitochondria corrects this, providing a more accurate measure of superoxide formation and mitochondrial function.
Area of Science:
- Mitochondrial biochemistry
- Cellular respiration
- Oxidative stress
Background:
- Mitochondrial hydrogen peroxide (H2O2) production is a common proxy for superoxide formation.
- Matrix enzymes, like glutathione peroxidases, consume H2O2, leading to underestimation of superoxide production.
- Accurate measurement of mitochondrial superoxide is crucial for understanding cellular processes.
Purpose of the Study:
- To quantify the underestimation of mitochondrial superoxide production caused by H2O2 consumption.
- To develop a correction method for H2O2 efflux measurements.
- To improve the accuracy of assessing mitochondrial superoxide production rates.
Main Methods:
- Rat skeletal muscle mitochondria were pretreated with 1-chloro-2,4-dintrobenzene (CDNB) to deplete matrix glutathione by over 90%.
- Mitochondrial capacity to consume exogenous H2O2 was assessed.
- Rates of H2O2 formation were measured from various sites of superoxide production.
- Alternative methods like monochlorobimane depletion and submitochondrial particle preparation were used.
Main Results:
- Glutathione depletion significantly diminished mitochondrial H2O2 consumption capacity.
- Observed H2O2 formation rates increased up to two-fold after glutathione depletion.
- A hyperbolic correction curve was established for H2O2 efflux measurements.
- The correction equation improved the quantitative assessment of matrix superoxide production.
Conclusions:
- Glutathione depletion and reduced peroxidase activity lead to underestimation of mitochondrial superoxide production.
- The developed correction method enhances the accuracy of H2O2 efflux as a measure of superoxide formation.
- These findings have significant implications for understanding superoxide production rates and localization in mitochondria.
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