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Superoxide dismutases: Dual roles in controlling ROS damage and regulating ROS signaling

The Journal of Cell Biology · 2018 · Vol. 217(6) · pp. 1915–1928
Ying WangRobyn BranickyAlycia NoëSiegfried Hekimi

Abstract

Superoxide dismutases (SODs) are universal enzymes of organisms that live in the presence of oxygen. They catalyze the conversion of superoxide into oxygen and hydrogen peroxide. Superoxide anions are the intended product of dedicated signaling enzymes as well as the byproduct of several metabolic processes including mitochondrial respiration. Through their activity, SOD enzymes control the levels of a variety of reactive oxygen species (ROS) and reactive nitrogen species, thus both limiting the potential toxicity of these molecules and controlling broad aspects of cellular life that are regulated by their signaling functions. All aerobic organisms have multiple SOD proteins targeted to different cellular and subcellular locations, reflecting the slow diffusion and multiple sources of their substrate superoxide. This compartmentalization also points to the need for fine local control of ROS signaling and to the possibility for ROS to signal between compartments. In this review, we discuss studies in model organisms and humans, which reveal the dual roles of SOD enzymes in controlling damage and regulating signaling.

Glutathione Transferases and PolymorphismsMitochondrial Function and PathologyRedox biology and oxidative stressReactive oxygen speciesSuperoxide dismutaseCompartmentalization (fire protection)SuperoxideCell biologyBiochemistryCell signalingEnzymeHydrogen peroxideChemistry

MeSH terms

AnimalsDiseaseHumansOxidation-ReductionSuperoxide DismutaseSignal TransductionReactive Oxygen SpeciesModels, Animal

Funding

  • McGill University
  • Canadian Institutes of Health Research
Citations
2,039
FWCI
44.27
field-weighted impact
References
215
Percentile
100%
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Citations per year
References
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