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Updated: May 16, 2026

Simultaneous Measurement of Superoxide/Hydrogen Peroxide and NADH Production by Flavin-containing Mitochondrial Dehydrogenases
Published on: February 24, 2018
Reversible inactivation of dihydrolipoamide dehydrogenase by mitochondrial hydrogen peroxide
Liang-Jun Yan1, Nathalie Sumien, Nopporn Thangthaeng
1Department of Pharmacology and Neuroscience and Institute for Aging and Alzheimer's Disease Research, University of North Texas Health Science Center, Fort Worth, TX 76107, USA. liang-jun.yan@unthsc.edu
Abstract:
Under oxidative stress conditions, mitochondria are the major site for cellular production of reactive oxygen species (ROS) such as superoxide anion and H2O2 that can attack numerous mitochondrial proteins including dihydrolipoamide dehydrogenase (DLDH). While DLDH is known to be vulnerable to oxidative inactivation, the mechanisms have not been clearly elucidated. The present study was therefore designed to investigate the mechanisms of DLDH oxidative inactivation by mitochondrial reactive oxygen species (ROS). Mitochondria, isolated from rat brain, were incubated with mitochondrial respiratory substrates such as pyruvate/malate or succinate in the presence of electron transport chain inhibitors such as rotenone or antimycin A. This is followed by enzyme activity assay and gel-based proteomic analysis. The present study also examined whether ROS-induced DLDH oxidative inactivation could be reversed by reducing reagents such as DTT, cysteine, and glutathione. Results show that DLDH could only be inactivated by complex III- but not complex I-derived ROS; and the accompanying loss of activity due to the inactivation could be restored by cysteine and glutathione, indicating that DLDH oxidative inactivation by complex III-derived ROS was a reversible process. Further studies using catalase indicate that it was H2O2 instead of superoxide anion that was responsible for DLDH inactivation. Moreover, using sulfenic acid-specific labeling techniques in conjunction with two-dimensional Western blot analysis, we show that protein sulfenic acid formation (also known as sulfenation) was associated with the loss of DLDH enzymatic activity observed under our experimental conditions. Additionally, such oxidative modification was shown to be associated with preventing DLDH from further inactivation by the thiol-reactive reagent N-ethylmaleimide. Taken together, the present study provides insights into the mechanisms of DLDH oxidative inactivation by mitochondrial H2O2.
Insights
Mitochondrial hydrogen peroxide (H2O2) reversibly inactivates dihydrolipoamide dehydrogenase (DLDH) via sulfenation. This oxidative modification protects DLDH from further damage, offering insights into mitochondrial oxidative stress mechanisms.
Area of Science:
- Mitochondrial biochemistry
- Oxidative stress research
- Enzyme kinetics
Background:
- Mitochondria generate reactive oxygen species (ROS) under oxidative stress.
- Dihydrolipoamide dehydrogenase (DLDH) is a mitochondrial enzyme susceptible to oxidative inactivation.
- The precise mechanisms of DLDH oxidative inactivation remain unclear.
Purpose of the Study:
- To investigate the mechanisms of DLDH oxidative inactivation by mitochondrial ROS.
- To determine the specific ROS responsible for DLDH inactivation.
- To explore the reversibility and molecular basis of DLDH oxidative inactivation.
Main Methods:
- Isolation of rat brain mitochondria.
- Incubation with respiratory substrates and electron transport chain inhibitors.
- Enzyme activity assays and gel-based proteomic analysis.
- Sulfenic acid-specific labeling and 2D Western blot analysis.
Main Results:
- DLDH inactivation was mediated by Complex III-derived ROS, specifically H2O2, not superoxide anion.
- Inactivation was reversible by reducing agents like cysteine and glutathione.
- Sulfenation (protein sulfenic acid formation) correlated with DLDH activity loss.
- Sulfenation protected DLDH from further inactivation by thiol-reactive agents.
Conclusions:
- Mitochondrial H2O2 reversibly inactivates DLDH through sulfenation.
- This reversible sulfenation is a protective mechanism against further oxidative damage.
- The findings elucidate key mechanisms of DLDH oxidative inactivation in mitochondria.
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