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

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.

Related Concept Videos

Atelectasis II: Pathophysiology01:10

Atelectasis II: Pathophysiology

Atelectasis develops when alveoli lose their air and collapse inward. Because lung tissue is naturally elastic, these air sacs shrink rather than remaining open. Collapsed alveoli are no longer ventilated, reducing their role in gas exchange. Blood flow may continue in these regions, creating a ventilation–perfusion mismatch. Clinical findings include decreased breath sounds, dullness to percussion, reduced chest expansion, and decreased tactile fremitus as sound transmission through collapsed...
Antiasthma Drugs: Methylxanthines01:24

Antiasthma Drugs: Methylxanthines

Theophylline, a member of the methylxanthine class of bronchodilators, has long been used in asthma management. While its exact mechanism of action is not fully understood, it is believed to have multiple effects on various cellular processes.
Theophylline is thought to inhibit phosphodiesterase enzymes, increasing intracellular levels of cyclic adenosine monophosphate (cAMP) and cyclic guanosine monophosphate (cGMP). This rise in cAMP and cGMP concentrations stimulates cardiac function,...
Pulmonary Edema II: Pathophysiology01:18

Pulmonary Edema II: Pathophysiology

Pulmonary edema is the accumulation of fluid in the interstitial and alveolar spaces of the lungs, impairing gas exchange and oxygen delivery. It may be cardiogenic or noncardiogenic, but both reduce oxygenation and lung compliance.Cardiogenic Pulmonary EdemaCardiogenic edema results from increased hydrostatic pressure in pulmonary capillaries, usually due to left ventricular dysfunction from myocardial infarction, heart failure, or valvular disease. Ineffective cardiac pumping causes blood to...
Acute Respiratory Failure-II01:21

Acute Respiratory Failure-II

Type I Respiratory Failure, or hypoxemic respiratory failure, occurs when the partial pressure of oxygen (PaO2) in arterial blood falls below 60 mmHg while breathing room air without a corresponding increase in arterial carbon dioxide levels (PaCO2). This condition highlights a significant impairment in the lungs' capacity to oxygenate the blood.
The underlying physiological abnormalities that contribute to hypoxemic respiratory failure include:
Physical Properties of Amines01:26

Physical Properties of Amines

Amines with low molecular weight are usually gaseous at room temperature, while those with high molecular weight are liquid or solids in nature. Usually, low molecular weight amines have a rotten fish-like smell. Diamines typically have a pungent smell. For instance, cadaverine and putrescine, depicted in Figure 1, are two molecules responsible for decaying tissue.
Skeletal Muscle Relaxants: Adverse Effects01:21

Skeletal Muscle Relaxants: Adverse Effects

Skeletal muscle relaxants are widely used for muscle paralysis and relieving pain following any muscle injury or stiffness. However, depending on the drug type, they can have adverse effects that range from mild to severe. Usually, nondepolarizing neuromuscular blockers have minimal side effects. For example, drugs like d-tubocurarine, cisatracurium, and rocuronium cause hypotension, whereas drugs like baclofen, when stopped abruptly, can lead to the recurrence of spastic conditions.
Unlike...