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Simultaneous Measurement of Superoxide/Hydrogen Peroxide and NADH Production by Flavin-containing Mitochondrial Dehydrogenases
Published on: February 24, 2018
Membrane potential and delta pH dependency of reverse electron transport-associated hydrogen peroxide production in
Tímea Komlódi1, Fanni F Geibl1,2, Matilde Sassani1,3
1Department of Medical Biochemistry, MTA-SE Laboratory for Neurobiochemistry, Semmelweis University, 37-47 Tűzoltó St, Budapest, 1094, Hungary.
Abstract:
Succinate-driven reverse electron transport (RET) is one of the main sources of mitochondrial reactive oxygen species (mtROS) in ischemia-reperfusion injury. RET is dependent on mitochondrial membrane potential (Δψm) and transmembrane pH difference (ΔpH), components of the proton motive force (pmf); a decrease in Δψm and/or ΔpH inhibits RET. In this study we aimed to determine which component of the pmf displays the more dominant effect on RET-provoked ROS generation in isolated guinea pig brain and heart mitochondria respiring on succinate or α-glycerophosphate (α-GP). Δψm was detected via safranin fluorescence and a TPP+ electrode, the rate of H2O2 formation was measured by Amplex UltraRed, the intramitochondrial pH (pHin) was assessed via BCECF fluorescence. Ionophores were used to dissect the effects of the two components of pmf. The K+/H+ exchanger, nigericin lowered pHin and ΔpH, followed by a compensatory increase in Δψm that led to an augmented H2O2 production. Valinomycin, a K+ ionophore, at low [K+] increased ΔpH and pHin, decreased Δψm, which resulted in a decline in H2O2 formation. It was concluded that Δψm is dominant over ∆pH in modulating the succinate- and α-GP-evoked RET. The elevation of extramitochondrial pH was accompanied by an enhanced H2O2 release and a decreased ∆pH. This phenomenon reveals that from the pH component not ∆pH, but rather absolute value of pH has higher impact on the rate of mtROS formation. Minor decrease of Δψm might be applied as a therapeutic strategy to attenuate RET-driven ROS generation in ischemia-reperfusion injury.
Insights
Mitochondrial membrane potential (Δψm) is more critical than pH difference (ΔpH) in controlling reactive oxygen species (ROS) during reverse electron transport (RET). Lowering Δψm may reduce ROS in ischemia-reperfusion injury.
Area of Science:
- Mitochondrial physiology
- Biochemistry
- Cellular respiration
Background:
- Succinate-driven reverse electron transport (RET) generates mitochondrial reactive oxygen species (mtROS), contributing to ischemia-reperfusion injury.
- RET is influenced by proton motive force (pmf) components: mitochondrial membrane potential (Δψm) and transmembrane pH difference (ΔpH).
Purpose of the Study:
- To determine whether Δψm or ΔpH has a dominant effect on RET-provoked ROS generation.
- To investigate the impact of pmf components on ROS production in isolated guinea pig brain and heart mitochondria.
Main Methods:
- Utilized safranin fluorescence and TPP+ electrode for Δψm measurement.
- Quantified H2O2 formation using Amplex UltraRed assay.
- Assessed intramitochondrial pH (pHin) via BCECF fluorescence and employed ionophores (nigericin, valinomycin) to manipulate pmf components.
Main Results:
- Nigericin lowered pHin and ΔpH, increasing Δψm and H2O2 production.
- Valinomycin decreased Δψm, reducing H2O2 formation.
- Δψm was found to be dominant over ΔpH in modulating RET-driven ROS generation; absolute extramitochondrial pH also impacts ROS formation.
Conclusions:
- Mitochondrial membrane potential (Δψm) plays a dominant role over transmembrane pH difference (ΔpH) in regulating succinate- and α-GP-evoked RET.
- Absolute extramitochondrial pH, rather than ΔpH, significantly influences mtROS production rate.
- A minor decrease in Δψm could be a therapeutic strategy to mitigate RET-driven ROS in ischemia-reperfusion injury.
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