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Antioxidant Bioactive Agents for Neuroprotection Against Perinatal Brain Injury
Virginia Beretta1, Elena Scarpa1, Silvia Carloni2
1Neonatology Unit, Department of Medicine and Surgery, University of Parma, Pietro Barilla Children's Hospital, 43121 Parma, Italy.
Insights
Oxidative stress impacts neonatal brain development. While antioxidants show promise, challenges in delivery and trial design limit effectiveness, necessitating improved strategies for neuroprotection.
Area of Science:
- Neonatal neurology
- Biochemistry
- Pharmacology
Background:
- Physiological oxidative stress is crucial for development, but excessive reactive oxygen species (ROS) harm newborns.
- Neonatal central nervous system is vulnerable to oxidative damage, especially after hypoxic-ischemic events.
Purpose of the Study:
- To review emerging antioxidant strategies for neonatal brain injury.
- To explore mechanisms of oxidative stress and its impact on neonatal neurological outcomes.
Main Methods:
- Review of preclinical and clinical studies on antioxidant agents.
- Analysis of challenges in antioxidant delivery and clinical trial design.
Main Results:
- Antioxidants like melatonin and N-acetylcysteine show neuroprotective effects in preclinical studies.
- Clinical trials demonstrate antioxidant effects but face challenges with blood-brain barrier penetration and inconsistent protocols.
Conclusions:
- Developing effective delivery systems for antioxidants is crucial for treating neonatal brain injury.
- Standardized clinical trial protocols are needed to confirm the efficacy of neuroprotective agents.
Abstract:
Physiological oxidative stress plays a pivotal role in supporting proper growth and development. While moderate oxidative stress is essential for activating key metabolic pathways and maintaining normal cellular signaling, excessive production of reactive oxygen species (ROSs) can overwhelm the immature antioxidant systems of newborns, potentially leading to cellular damage and impaired physiological function. This vulnerability is particularly pronounced in the central nervous system, where limited detoxification capacity exacerbates the risk of oxidative damage, following hypoxic-ischemic events. Antioxidants agents-such as melatonin, erythropoietin, allopurinol, N-acetylcisteine, selenium, iminobiotin, taurine, and acetyl-L-carnitine-have demonstrated significant neuroprotective effects in preclinical experimental studies, reducing markers of oxidative injury and improving neurological outcomes. These neuroprotective agents have also been evaluated in clinical trials, demonstrating antioxidant effects. A major issue lies in the complexity of neurological damage, which is not associated with a single pathological pathway. Additionally, the inability of these agents to reach effective concentrations within the central nervous system, along with inconsistencies across clinical trials in terms of dosage and administration methods, hinders the ability to obtain robust results. Future efforts should therefore focus on the development of delivery systems capable of crossing the blood-brain barrier and on establishing standardized clinical trial protocols and study designs. This educational review aims to provide a comprehensive overview of emerging protective strategies, including antioxidant bioactive agents and nutritional interventions. It also explores the underlying mechanisms of oxidative stress and its impact on neonatal brain injury.

