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Neutrophil-derived, oxygen free radical-mediated cardiovascular dysfunction
Journal of Molecular and Cellular Cardiology
|November 1, 1984
Summary
Activated neutrophils generate oxygen free radicals that cause cardiovascular dysfunction. Inhibiting neutrophils or using antioxidants prevented these harmful effects, demonstrating a direct link.
Area of Science:
- Cardiovascular Physiology
- Immunology
- Oxidative Stress
Background:
- Neutrophil-derived oxygen free radicals are suspected contributors to cardiovascular dysfunction in various conditions.
- Previous studies lacked direct evidence linking neutrophil oxygen radicals to cardiovascular impairment.
Purpose of the Study:
- To directly demonstrate that activated neutrophils and their derived oxygen free radicals cause cardiovascular dysfunction in vivo.
- To investigate the role of neutrophil activation in mediating cardiac functional changes.
Main Methods:
- Activation of the canine neutrophil system in vivo.
- Measurement of cardiovascular parameters including mean arterial pressure and cardiac index.
- Assessment of effects following neutrophil depletion or administration of superoxide dismutase and catalase.
Main Results:
- Activated neutrophils in vivo generated oxygen free radicals.
- This generation led to significant decreases in mean arterial pressure and cardiac index.
- No significant effects were observed on the myocardial conduction system.
- Neutrophil depletion or antioxidant treatment (superoxide dismutase and catalase) abolished these cardiovascular effects.
Conclusions:
- Neutrophil-derived reduced oxygen intermediates directly induce severe cardiovascular dysfunction.
- These findings provide direct evidence for the role of neutrophil oxygen radicals in mediating cardiac impairment.
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