Cardiorespiratory interactions during the transitional period in extremely preterm infants: a narrative review

Gonzalo Solís-García1, María Carmen Bravo2,3, Adelina Pellicer2

  • 1Department of Neonatology, La Paz University Hospital and IdiPaz (La Paz Hospital Institute for Health Research), Madrid, Spain. Gonzalo.solis@salud.madrid.org.

Pediatric Research
|August 23, 2024
PubMed

Insights

Cardiorespiratory interactions are crucial for extremely preterm infants during circulatory transition. Understanding these connections aids in optimizing interventions like ventilation and medication for better outcomes.

Area of Science:

  • Neonatal Physiology
  • Cardiorespiratory Interactions
  • Transitional Circulation

Background:

  • Extremely preterm infants have fragile physiology, making cardiorespiratory transition critical.
  • Early haemodynamic changes are significantly influenced by cord clamping strategies.
  • Mechanical ventilation profoundly impacts transitional haemodynamics and cardiac loading conditions.

Purpose of the Study:

  • To review the physiology and evidence of cardiorespiratory interactions in preterm infants.
  • To propose a framework for future research in this vulnerable population.
  • To understand the effects of interventions on cardiorespiratory status.

Main Methods:

  • Review of existing physiological evidence and research.
  • Analysis of the impact of cord clamping and mechanical ventilation.
  • Evaluation of non-invasive monitoring tools like NIRS, echocardiography, and lung ultrasound.

Main Results:

  • Mechanical ventilation alters right and left heart loading conditions.
  • Optimizing lung volumes and using pulmonary vasodilators minimize pulmonary vascular resistance.
  • Cardiovascular drugs require understanding of both cardiac and respiratory effects.

Conclusions:

  • Haemodynamic and respiratory transitions are interconnected in preterm infants, impacting lung aeration and circulation.
  • Non-invasive bedside tools enable precise monitoring of cardiorespiratory interactions.
  • Further research using precision medicine is needed to optimize early neonatal interventions.

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