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Published on: May 4, 2021
Early inhaled nitric oxide improves oxidative balance in very preterm infants
Isabelle Hamon1, Jeanne Fresson, Marie-Benedicte Nicolas
1Neonatology Division, Maternite Regionale Universitaire de Nancy, Nancy 54045, France. i.hamon@maternite.chu-nancy.fr
Insights
Low-dose inhaled nitric oxide (iNO) in premature infants with hypoxemic respiratory failure improved oxidative balance. This intervention showed potential clinical benefits by day 28 of life.
Area of Science:
- Neonatal medicine
- Pediatric respiratory research
- Oxidative stress and antioxidant defense mechanisms
Background:
- Inhaled nitric oxide (iNO) is used to improve oxygenation in premature infants.
- Concerns exist regarding iNO's potential oxidative toxicity in this vulnerable population.
Purpose of the Study:
- To evaluate the oxidative balance in premature infants receiving low-dose iNO.
- To determine the relationship between oxidative balance and clinical outcomes at 28 days of life.
Main Methods:
- 274 infants <32 weeks gestation were randomized.
- Hypoxemic infants received 5 ppm iNO; nonhypoxemic infants served as controls.
- Oxidative stress (MDA) and antioxidant defenses (GSH, GSH peroxidase, GSH reductase) were measured within the first 4 days of life.
Main Results:
- Malondialdehyde (MDA) increase was blunted in the iNO group compared to controls.
- Total plasmatic glutathione (GSH) remained more stable in the iNO group.
- Oxygen dependence and risk of death at day 28 were linked to higher MDA; intraventricular hemorrhage was associated with GSH drop.
Conclusions:
- Early low-dose iNO in hypoxemic preterm infants appears to improve oxidative balance.
- The findings suggest a potential clinical benefit of iNO up to day 28 of life.
Abstract:
Inhaled nitric oxide (iNO) improves oxygenation in premature infants, but concern has been raised about its potential oxidative toxicity. We designed this study to assess the oxidative balance in premature infants who were exposed to low dose iNO and the relationship with their clinical outcome on day 28 of life. A total of 274 infants who were <32 wk gestation were randomized at birth to receive 5 ppm of iNO if they presented with hypoxemic respiratory failure. Nonhypoxemic infants were studied as the reference group. Blood samples were withdrawn 24 h apart, within the first 4 d of life, to assess malondialdehyde (MDA) concentration as oxidative stress marker and total plasmatic glutathione (GSH), intraerythrocyte GSH peroxidase, and GSH reductase activities as antioxidant defenses. After 24 h, the rise in MDA was blunted in the iNO group compared with controls and was close to the reference infants. Conversely, GSH was more stable in the iNO group, when there was no difference for the GSH peroxidase and GSH reductase activities. On day 28, Oxygen dependence was linked with a higher increase in MDA as was the risk for death, whereas intraventricular hemorrhage was associated with a higher initial drop in GSH. Early low-dose iNO in hypoxemic preterm infants improves oxidative balance and seems to be clinically beneficial up to day 28 of life.
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