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Antioxidative effects of caffeine in a hyperoxia-based rat model of bronchopulmonary dysplasia
Stefanie Endesfelder1, Evelyn Strauß2, Till Scheuer2
1Department of Neonatology, Charité Universitätsmedizin Berlin, Augustenburger Platz 1, 13353, Berlin, Germany. stefanie.endesfelder@charite.de.
Insights
Caffeine demonstrates antioxidant properties, protecting newborn rat lungs from hyperoxia-induced oxidative stress and DNA damage. This suggests caffeine may offer protective benefits against bronchopulmonary dysplasia (BPD) by mitigating oxidative injury.
Area of Science:
- Neonatal Physiology
- Pulmonary Medicine
- Pharmacology
Background:
- Premature infants require supplemental oxygen, increasing risks of lung disease and poor outcomes.
- Caffeine treats apnea in neonates and may reduce bronchopulmonary dysplasia (BPD) incidence.
- Caffeine's pulmonary protective mechanisms, direct or indirect, require further elucidation.
Purpose of the Study:
- Investigate caffeine's effect on oxidative stress in pulmonary tissue.
- Utilize a hyperoxia-induced bronchopulmonary dysplasia model in newborn rats.
- Determine caffeine's role in modulating hyperoxia-induced pulmonary oxidative stress.
Main Methods:
- Newborn Wistar rats exposed to 80% oxygen for 3 or 5 days, with or without recovery.
- Caffeine treatment (10 mg/kg) administered every 48 hours from birth.
- Lung tissue analyzed for oxidative stress markers (DNA damage, antioxidant systems) via immunohistology, ELISA, and qPCR.
Main Results:
- Hyperoxia increased oxidative stress markers, including DNA damage and antioxidant system activation (SOD, HO-1, Nrf2/Keap1).
- Caffeine administration significantly reduced oxidative DNA damage in lung tissue.
- Caffeine demonstrated a protective effect by modulating the pulmonary oxidative stress response.
Conclusions:
- Caffeine acts as a potent antioxidant, beyond adenosine receptor antagonism.
- Caffeine modulates hyperoxia-induced pulmonary oxidative stress, offering protection in a BPD model.
- Antioxidative therapeutic strategies targeting free-radical damage are crucial for newborn diseases.
Background:
While additional oxygen supply is often required for the survival of very premature infants in intensive care, this also brings an increasing risk of progressive lung diseases and poor long-term lung outcomes. Caffeine is administered to neonates in neonatal intensive care for the prevention and treatment of apneas and has been shown to reduce BPD incidence and the need for mechanical ventilation, although it is still unclear whether this is due to a direct pulmonary action via antagonism of adenosine receptors and/or an indirect action. This experimental study aims to investigate the action of caffeine on the oxidative stress response in pulmonary tissue in a hyperoxia-based model of bronchopulmonary dysplasia in newborn rats.
Methods:
Newborn Wistar rats were exposed to 21% or 80% oxygen for 3 (P3) or 5 (P5) postnatal days with or without recovery on room air until postnatal day 15 (P15) and treated with vehicle or caffeine (10 mg/kg) every 48 h beginning on the day of birth. The lung tissue of the rat pups was examined for oxidative stress response at P3 and P5 immediately after oxygen exposure or after recovery in ambient air (P15) by immunohistological staining and analysis of lung homogenates by ELISA and qPCR.
Results:
Lungs of newborn rats, corresponding to the saccular stage of lung development and to the human lung developmental stage of preterms, showed increased rates of total glutathione and hydrogen peroxide, oxidative damage to DNA and lipids, and induction of second-phase mediators of antioxidative stress response (superoxide dismutase, heme oxygenase-1, and the Nrf2/Keap1 system) in response to hyperoxia. Caffeine reduced oxidative DNA damage and had a protective interference with the oxidative stress response.
Conclusion:
In addition to the pharmacological antagonism of adenosine receptors, caffeine appears to be a potent antioxidant and modulates the hyperoxia-induced pulmonary oxidative stress response and thus protective properties in the BPD-associated animal model. Free-radical-induced damage caused by oxidative stress seems to be a biological mechanism progress of newborn diseases. New aspects of antioxidative therapeutic strategies to passivate oxidative stress-related injury should be in focus of further investigations.
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