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Simultaneous Measurement of Superoxide/Hydrogen Peroxide and NADH Production by Flavin-containing Mitochondrial Dehydrogenases
Published on: February 24, 2018
Reactive oxygen species production in energized cardiac mitochondria during hypoxia/reoxygenation: modulation by
Paavo Korge1, Peipei Ping, James N Weiss
1Cardiovascular Research Laboratory, Department of Physiology, David Geffen School of Medicine at UCLA, Los Angeles, CA 90095, USA. pkorge@mednet.ucla.edu
Abstract:
Mitochondria are an important source of reactive oxygen species (ROS), implicated in ischemia/reperfusion injury. When isolated from ischemic myocardium, mitochondria demonstrate increased ROS production as a result of damage to electron transport complexes. To investigate the mechanisms, we studied effects of hypoxia/reoxygenation on ROS production by isolated energized heart mitochondria. ROS production, tracked using Fe(2+)-catalyzed, H(2)O(2)-dependent H(2)DCF oxidation or Amplex Red, was similar during normoxia and hypoxia but markedly increased during reoxygenation, in proportion to the duration of hypoxia. In contrast, if mitochondria were rapidly converted from normoxia to near-anoxia ([O(2)], <1 micromol/L), the increase in H(2)DCF oxidation rate during reoxygenation was markedly blunted. To elicit the robust increase in H(2)DCF oxidation rate during reoxygenation, hypoxia had to be severe enough to cause partial, but not complete, respiratory chain inhibition (as shown by partial dissipation of membrane potential and increased NADH autofluorescence). Consistent with its cardioprotective actions, nitric oxide ( O) abrogated increased H(2)DCF oxidation under these conditions, as well as attenuating ROS-induced increases in matrix [Fe(2+)] and aconitase inhibition caused by antimycin. Collectively, these results suggest that (1) hypoxia that is sufficient to cause partial respiratory inhibition is more damaging to mitochondria than near-anoxia; and (2) O suppresses ROS-induced damage to electron transport complexes, probably by forming O-Fe(2+) complexes in the presence of glutathione, which inhibit hydroxyl radical formation.
Insights
Severe hypoxia damages mitochondria by partially inhibiting respiratory chains, increasing reactive oxygen species (ROS) production during reoxygenation. Nitric oxide (NO) protects against this damage, mitigating ROS-induced mitochondrial dysfunction.
Area of Science:
- Mitochondrial biochemistry
- Cardiovascular physiology
- Oxidative stress research
Background:
- Mitochondria generate reactive oxygen species (ROS), contributing to ischemia/reperfusion injury.
- Ischemic myocardium mitochondria exhibit elevated ROS production due to electron transport chain complex damage.
Purpose of the Study:
- To investigate the mechanisms of hypoxia/reoxygenation-induced ROS production in isolated energized heart mitochondria.
- To determine the role of hypoxia severity and nitric oxide (NO) in mitochondrial ROS generation and damage.
Main Methods:
- Isolated energized heart mitochondria were subjected to varying durations of hypoxia followed by reoxygenation.
- ROS production was measured using H(2)DCF oxidation and Amplex Red assays.
- Mitochondrial membrane potential, NADH autofluorescence, matrix iron levels, and aconitase activity were assessed.
Main Results:
- ROS production increased significantly during reoxygenation after hypoxia, proportional to hypoxia duration.
- Near-anoxia ( <1 micromol/L O(2)) blunted the reoxygenation-induced ROS increase compared to severe hypoxia.
- Severe hypoxia causing partial respiratory chain inhibition elicited the robust ROS increase.
- Nitric oxide (NO) abrogated increased ROS production and attenuated ROS-induced matrix iron accumulation and aconitase inhibition.
Conclusions:
- Hypoxia causing partial respiratory inhibition is more detrimental to mitochondria than near-anoxia.
- Nitric oxide (NO) confers cardioprotection by suppressing ROS-induced damage to mitochondrial electron transport complexes, likely via formation of NO-Fe(2+) complexes.
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