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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.
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.
Abstract:
We aimed to review the physiology and evidence behind cardiorespiratory interactions during the transitional circulation of extremely preterm infants with fragile physiology and to propose a framework for future research. Cord clamping strategies have a great impact on initial haemodynamic changes, and appropriate transition can be facilitated by establishing spontaneous ventilation before cord clamping. Mechanical ventilation modifies preterm transitional haemodynamics, with positive pressure ventilation affecting the right and left heart loading conditions. Pulmonary vascular resistances can be minimized by ventilating with optimal lung volumes at functional residual capacity, and other pulmonary vasodilator treatments such as inhaled nitric oxide can be used to improve ventilation/perfusion mismatch. Different cardiovascular drugs can be used to provide support during transition in this population, and it is important to understand both their cardiovascular and respiratory effects, in order to provide adequate support to vulnerable preterm infants and improve outcomes. Current available non-invasive bedside tools, such as near-infrared spectroscopy, targeted neonatal echocardiography, or lung ultrasound offer the opportunity to precisely monitor cardiorespiratory interactions in preterm infants. More research is needed in this field using precision medicine to strengthen the benefits and avoid the harms associated to early neonatal interventions. IMPACT: In extremely preterm infants, haemodynamic and respiratory transitions are deeply interconnected, and their changes have a key impact in the establishment of lung aireation and postnatal circulation. We describe how mechanical ventilation modifies heart loading conditions and pulmonary vascular resistances in preterm patients, and how hemodynamic interventions such as cord clamping strategies or cardiovascular drugs affect the infant respiratory status. Current available non-invasive bedside tools can help monitor cardiorespiratory interactions in preterm infants. We highlight the areas of research in which precision medicine can help strengthen the benefits and avoid the harms associated to early neonatal interventions.
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