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Updated: Aug 17, 2026

Assessment of Submitochondrial Protein Localization in Budding Yeast Saccharomyces cerevisiae
Published on: July 19, 2021
Mitochondrial superoxide decreases yeast survival in stationary phase
V D Longo1, L L Liou, J S Valentine
1Department of Chemistry and Biochemistry, University of California at Los Angeles, Los Angeles, California 90095, USA.
Abstract:
Yeast lacking mitochondrial superoxide dismutase (MnSOD) display shortened stationary-phase survival and provide a good model system for studying mitochondrial oxidative damage. We observed a marked decrease in respiratory function preceding stationary-phase death of yeast lacking MnSOD (sod2Delta). Agents (mitochondrial inhibitors) that are known to increase or decrease superoxide production in submitochondrial particles affected stationary-phase survival in a manner inversely correlated with their effects on superoxide production, implicating superoxide in this mitochondrial disfunction. Similar but less-dramatic effects were observed in wild-type yeast. The activities of certain mitochondrial enzymes were particularly affected. In sod2Delta yeast the activity of aconitase, a 4Fe-4S-cluster-containing enzyme located in the matrix, was greatly and progressively decreased as the cells established stationary phase. Succinate dehydrogenase activity also decreased in MnSOD mutants; cytochrome oxidase and ATPase activities did not. Aconitase could be reactivated by addition of materials required for cluster assembly (Fe3+ and a sulfur source), both in extracts and in vivo, indicating that inactivation of the enzyme was by disassembly of the cluster. Our results support the conclusion that superoxide is generated in the mitochondria in vivo and under physiological conditions and that MnSOD is the primary defense against this toxicity. When the balance between superoxide generation and MnSOD activity is disrupted, superoxide mediates iron release from mitochondrial iron-sulfur clusters, leading first to loss of mitochondrial function and then to death, independently of mtDNA damage. These results raise the possibility that similar processes may occur in higher eukaryotes.
Insights
Yeast lacking mitochondrial superoxide dismutase (MnSOD) show reduced survival due to mitochondrial oxidative damage. Superoxide disrupts iron-sulfur clusters in key enzymes, leading to cell death.
Area of Science:
- Cellular Biology
- Biochemistry
- Mitochondrial Biology
Background:
- Yeast lacking mitochondrial superoxide dismutase (MnSOD) serve as a model for studying mitochondrial oxidative damage.
- Decreased respiratory function precedes stationary-phase death in these yeast mutants (sod2Δ).
Purpose of the Study:
- To investigate the role of superoxide in mitochondrial dysfunction and cell death in yeast lacking MnSOD.
- To identify specific mitochondrial enzymes affected by superoxide toxicity.
Main Methods:
- Utilized yeast lacking MnSOD (sod2Δ) as a model system.
- Assessed the impact of mitochondrial inhibitors on superoxide production and cell survival.
- Measured the activity of key mitochondrial enzymes, including aconitase, succinate dehydrogenase, cytochrome oxidase, and ATPase.
- Investigated the mechanism of enzyme inactivation and potential for reactivation.
Main Results:
- Superoxide production inversely correlated with stationary-phase survival, implicating superoxide in mitochondrial dysfunction.
- Aconitase activity, a 4Fe-4S-cluster enzyme, was significantly reduced in sod2Δ yeast.
- Enzyme inactivation was linked to iron-sulfur cluster disassembly, with potential for reactivation.
- MnSOD is identified as the primary defense against endogenous mitochondrial superoxide.
Conclusions:
- Superoxide generated in vivo under physiological conditions contributes to mitochondrial dysfunction and cell death.
- Disruption of the superoxide/MnSOD balance leads to iron release from clusters, causing loss of mitochondrial function.
- These findings suggest similar mechanisms may operate in higher eukaryotes, highlighting MnSOD's critical role.

