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Published on: July 22, 2013
Mitochondrial glutathione and oxidative stress: implications for pulmonary oxygen toxicity in premature infants
1Department of Pediatrics, Baylor College of Medicine, One Baylor Plaza, Houston, Texas 77030, USA. dodonovan@neo.bcm.tmc.edu
Insights
Supplemental oxygen therapy can damage lungs, especially in premature infants. Enhancing mitochondrial glutathione (GSH) may protect against this oxygen toxicity by boosting antioxidant defenses.
Area of Science:
- Biochemistry
- Cell Biology
- Neonatology
Background:
- Supplemental oxygen is crucial for premature infants but can cause lung damage due to immature antioxidant defenses.
- Oxygen toxicity is linked to increased reactive oxygen species (ROS) production in mitochondria.
- The glutathione (GSH) system is a key cellular defense against ROS.
Purpose of the Study:
- To investigate the role of mitochondrial glutathione in protecting against oxygen-induced lung injury.
- To explore therapeutic strategies for enhancing antioxidant defenses in premature infants exposed to high oxygen concentrations.
Main Methods:
- Analysis of cellular antioxidant systems, focusing on the glutathione-dependent pathway.
- Investigation of mitochondrial ROS production under hyperoxic conditions.
- Assessment of the impact of manipulating intracellular GSH concentrations on cellular responses to oxidative stress.
Main Results:
- Mitochondrial glutathione system limitations highlight its importance in protecting against ROS.
- Increased intracellular GSH concentrations demonstrate beneficial effects against oxidant injury.
- High oxygen exposure increases mitochondrial ROS production, exacerbating potential damage.
Conclusions:
- Optimal mitochondrial glutathione function is essential for protecting lungs from ROS.
- Therapies aimed at increasing mitochondrial GSH could be beneficial in preventing oxygen toxicity in premature infants.
- Maintaining adequate thiol-disulfide redox tone is critical for cellular protection against oxidative stress.
Abstract:
Administration of supplemental oxygen, despite being an important clinical therapy, can cause significant lung damage. Because they have underdeveloped lungs, prematurely born human infants frequently require supportive therapies that employ elevated oxygen concentrations, which put them at risk for developing pulmonary oxygen toxicity. This risk is made even greater by the immaturity of their cellular antioxidant defenses. Although the exact mechanisms of oxygen toxicity are still not fully defined, cellular damage is probably mediated by increased production of chemically reactive oxygen species (ROS) in the mitochondria. Cellular protection against ROS is provided by a variety of antioxidant molecules and enzymes, including the glutathione (GSH)-dependent antioxidant system. The GSH-dependent antioxidant enzyme system provides vital cellular protection against ROS, particularly hydrogen peroxide and certain organic hydroperoxides, under pathological and toxicological conditions, by using selenium-dependent and -independent peroxidases to reduce hydrogen peroxide or lipid peroxides to water or the respective alcohols, with the concurrent oxidation of GSH to glutathione disulfide (GSSG). In the mitochondria, limitations of GSH synthesis and transmembrane transport suggest that optimal functioning of the mitochondrial GSH system, and maintenance of adequate thiol-disulfide redox tone is essential to protect against the injurious effects of ROS. Manipulation of endogenous GSH concentrations can alter cellular responses to oxidant injury. Beneficial effects are evident when intracellular GSH concentrations are increased. In conditions that increase mitochondrial production of ROS, such as exposure to high concentrations of oxygen, therapies based on enhancing mitochondrial GSH concentrations could be highly beneficial.
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