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Updated: May 20, 2026

Protocol and Guidelines for Point-of-Care Lung Ultrasound in Diagnosing Neonatal Pulmonary Diseases Based on International Expert Consensus
Published on: March 6, 2019
Cardiovascular side effects of aminophylline in meconium-induced acute lung injury
D Mokra1, I Tonhajzerova, J Mokry
1Department of Physiology, Comenius University, Slovakia. mokra@jfmed.uniba.sk
Abstract:
As inflammation plays an important role in the pathogenesis of neonatal meconium aspiration syndrome (MAS), anti-inflammatory agents including inhibitors of phosphodiesterases (PDE) are increasingly used in the treatment. To evaluate side effects of PDE inhibitors, this study analyzed changes in blood pressure, heart rate (HR) and heart rate variability (HRV) during and after intravenous aminophylline in the animal model of MAS. Oxygen-ventilated rabbits were given meconium intratracheally (25 mg/ml, 4 ml/kg) or saline. Thirty minutes later, the animals were treated by intravenous aminophylline (Syntophyllin, 2 mg/kg) or saline (sham-treated controls). A second dose of the treatment was given 2 h later. During (5 min) and immediately after (5 min) the treatment, and during 5 h after the treatment, mean blood pressure in the femoral artery (MAP), HR and HRV were evaluated. In meconium-instilled animals, increases in MABP, HR, and HRV were observed already 5 min after aminophylline administration, while in saline-instilled animals aminophylline increased HR and caused inconsistant changes in HRV parameters compared to sham-treated animals. Within 5 h after the treatment administration, MAP, HR, and HRV parameters gradually returned to the initial values. Concluding, intravenous aminophylline may lead to acute cardiovascular changes. Thus, if aminophylline is used for treatment of MAS, its possible cardiovascular effects should be considered, particularly in patients with cardiovascular instability.
Insights
Intravenous aminophylline can cause acute cardiovascular changes, including increased blood pressure and heart rate, in neonatal meconium aspiration syndrome (MAS) models. Careful consideration of these effects is crucial, especially in patients with cardiovascular instability.
Area of Science:
- Neonatal Medicine
- Pharmacology
- Cardiovascular Physiology
Background:
- Inflammation is key in neonatal meconium aspiration syndrome (MAS) pathogenesis.
- Phosphodiesterase (PDE) inhibitors, like aminophylline, are used for their anti-inflammatory properties.
- Potential cardiovascular side effects of PDE inhibitors require thorough investigation.
Purpose of the Study:
- To evaluate the cardiovascular side effects of intravenous aminophylline in an animal model of MAS.
- To analyze changes in mean arterial blood pressure (MAP), heart rate (HR), and heart rate variability (HRV) following aminophylline administration.
Main Methods:
- Rabbits were instilled with meconium or saline intratracheally.
- Animals received intravenous aminophylline or saline (control) at two time points.
- MAP, HR, and HRV were monitored during and for 5 hours after treatment.
Main Results:
- Aminophylline administration in meconium-instilled rabbits led to rapid increases in MAP, HR, and HRV.
- In saline-instilled rabbits, aminophylline increased HR with inconsistent HRV changes.
- Cardiovascular parameters returned to baseline within 5 hours post-treatment.
Conclusions:
- Intravenous aminophylline can induce acute cardiovascular changes in the context of MAS.
- Clinicians should consider the potential cardiovascular effects of aminophylline, particularly in MAS patients with pre-existing cardiovascular instability.
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