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Updated: Jan 27, 2026

Determination of Mitochondrial Membrane Potential and Reactive Oxygen Species in Live Rat Cortical Neurons
Published on: May 23, 2011
Mitochondrial Reactive Oxygen Species Generated at the Complex-II Matrix or Intermembrane Space Microdomain Have
Adam J Trewin1, Laura L Bahr1, Anmol Almast1
11Department of Anesthesiology and Perioperative Medicine, University of Rochester Medical Center, Rochester, New York.
Abstract:
How mitochondrial reactive oxygen species (ROS) impact physiological function may depend on the quantity of ROS generated or removed, and the subcellular microdomain in which this occurs. However, pharmacological tools currently available to alter ROS production in vivo lack precise spatial and temporal control. We used CRISPR/Cas9 to fuse the light-sensitive ROS-generating protein, SuperNova to the C-terminus of mitochondrial complex II succinate dehydrogenase subunits B (SDHB-1::SuperNova) and C (SDHC-1::SuperNova) in Caenorhabditis elegans to localize SuperNova to the matrix-side of the inner mitochondrial membrane, and to the intermembrane space (IMS), respectively. The presence of the SuperNova protein did not impact complex II activity, mitochondrial respiration, or C. elegans development rate under dark conditions. ROS production by SuperNova protein in vitro in the form of superoxide (O2˙-) was both specific and proportional to total light irradiance in the 540-590 nm spectra, and was unaffected by varying the buffer pH to resemble the mitochondrial matrix or IMS environments. We then determined using SuperNova whether stoichiometric ROS generation in the mitochondrial matrix or IMS had distinct effects on redox signaling in vivo. Phosphorylation of PMK-1 (a p38 MAPK homolog) and transcriptional activity of SKN-1 (an Nrf2 homolog) were each dependent on both the site and duration of ROS production, with matrix-generated ROS having more prominent effects. Furthermore, matrix- but not IMS-generated ROS attenuated susceptibility to simulated ischemia reperfusion injury in C. elegans. Overall, these data demonstrate that the physiological output of ROS depends on the microdomain in which it is produced. Antioxid. Redox Signal. 31, 594-607.
Insights
Mitochondrial reactive oxygen species (ROS) impact physiology based on location. This study used a light-activated protein in C. elegans to show that ROS produced in the mitochondrial matrix, versus the intermembrane space, has distinct physiological effects.
Area of Science:
- Mitochondrial biology
- Redox signaling
- Molecular genetics
Background:
- Mitochondrial reactive oxygen species (ROS) are crucial signaling molecules.
- Physiological impact of ROS depends on quantity, location, and removal.
- Existing tools for ROS manipulation lack spatial and temporal control.
Purpose of the Study:
- To develop a light-inducible system for localized ROS generation in mitochondria.
- To investigate the distinct physiological effects of ROS produced in the mitochondrial matrix versus the intermembrane space (IMS).
Main Methods:
- CRISPR/Cas9 gene editing in C. elegans to fuse the SuperNova protein to mitochondrial complex II subunits (SDHB and SDHC).
- Localized SuperNova to the mitochondrial matrix or IMS.
- Assessed ROS production specificity and proportionality to light irradiance.
- Evaluated effects on redox signaling pathways (PMK-1, SKN-1) and ischemia-reperfusion injury.
Main Results:
- SuperNova fusion proteins localized correctly without affecting mitochondrial function or C. elegans development.
- Light-induced superoxide production was specific and proportional to irradiance.
- ROS generation site (matrix vs. IMS) and duration differentially impacted PMK-1 phosphorylation and SKN-1 transcriptional activity.
- Matrix-generated ROS, but not IMS-generated ROS, attenuated susceptibility to simulated ischemia-reperfusion injury.
Conclusions:
- The microdomain of ROS production is critical for its physiological output.
- Light-activated SuperNova provides a tool for spatiotemporal control of mitochondrial ROS generation.
- Matrix-localized ROS has more pronounced effects on redox signaling and confers protection against injury.
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