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Updated: May 27, 2026

Oxygen-Glucose Deprivation and Reoxygenation as an In Vitro Ischemia-Reperfusion Injury Model for Studying Blood-Brain Barrier Dysfunction
Published on: May 7, 2015
Reactive oxygen species and ischemic cerebrovascular disease
1Vanderbilt University, Department of Neurology, Nashville, TN 37232, USA. inan.olmez@vanderbilt.edu
Insights
Natural compounds show promise in combating stroke by reducing oxidative stress caused by excessive reactive oxygen species (ROS). Further research may lead to new treatments and preventative strategies for stroke.
Area of Science:
- Neuroscience
- Cardiovascular Science
- Biochemistry
Background:
- Stroke is a significant health issue leading to death and disability.
- Risk factors include hyperlipidemia, hypertension, and diabetes, all linked to endothelial dysfunction.
- Endothelial dysfunction involves reduced nitric oxide (NO) and increased reactive oxygen species (ROS), driving atherogenesis and ischemic injury.
Purpose of the Study:
- To explore the role of oxidative stress in stroke pathology.
- To investigate the potential of natural compounds as antioxidants for stroke treatment and prevention.
Main Methods:
- Review of clinical trials and animal studies on oxidative stress and stroke.
- Analysis of the mechanisms linking endothelial dysfunction, ROS, and cellular damage.
- Evaluation of the antioxidant properties of natural compounds.
Main Results:
- Elevated ROS levels contribute to cellular injury (lipid peroxidation, protein/DNA damage) in the central nervous system.
- CNS cells are particularly vulnerable to ROS toxicity.
- ROS levels peak during reperfusion following ischemic stroke, potentially causing apoptosis or necrosis.
Conclusions:
- Natural compounds possess antioxidant properties that can mitigate oxidative stress from excessive ROS.
- These compounds may offer potential therapeutic and preventative benefits for stroke.
- Further research is warranted to integrate these natural compounds into clinical practice.
Abstract:
Stroke is an emerging major health problem often resulting in death or disability. Hyperlipidemia, high blood pressure and diabetes are well established risk factors. Endothelial dysfunction associated with these risk factors underlies pathological processes leading to atherogenesis and cerebral ischemic injury. While mechanisms of disease are complex, endothelial dysfunction involves decreased nitric oxide (NO) and elevated levels of reactive oxygen species (ROS). At physiological levels, ROS participate in regulation of cellular metabolism. However, when ROS increase to toxic levels through imbalance of production and neutralization by antioxidant enzymes, they cause cellular injury in the form of lipid peroxidation, protein oxidation and DNA damage. Central nervous system cells are more vulnerable to ROS toxicity due to their inherent higher oxidative metabolism and less antioxidant enzymes, as well as higher content of membranous fatty acids. During ischemic stroke, ROS concentration rises from normal low levels to a peak point during reperfusion possibly underlying apoptosis or cellular necrosis. Clinical trials and animal studies have shown that natural compounds can reduce oxidative stress due to excessive ROS through their antioxidant properties. With further study, we may be able to incorporate these compounds into clinical use with potential efficacy for both the treatment and prevention of stroke.
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