Preterm growth restriction and bronchopulmonary dysplasia: the vascular hypothesis and related physiology

Arvind Sehgal1,2, Stella M Gwini3, Samuel Menahem4

  • 1Monash Newborn, Monash Children's Hospital, Melbourne, VIC, Australia.

Insights

Fetal growth restriction in preterm infants is linked to thicker pulmonary arteries and impaired heart function, increasing bronchopulmonary dysplasia risk. These findings suggest vascular development issues contribute to respiratory problems in growth-restricted newborns.

Area of Science:

  • Neonatal physiology
  • Pediatric cardiology
  • Respiratory medicine

Background:

  • Bronchopulmonary dysplasia (BPD) is a common respiratory complication in premature infants, characterized by abnormal pulmonary artery development.
  • Fetal growth restriction (FGR) is associated with an increased incidence of BPD in preterm infants.
  • The underlying mechanisms linking FGR to BPD, particularly concerning pulmonary vascular and cardiac function, require further elucidation.

Purpose of the Study:

  • To investigate pulmonary artery mechanics and cardiac function in preterm infants with FGR compared to those appropriate for gestational age (AGA).
  • To explore the relationship between altered pulmonary vascular structure and cardiac performance in the early neonatal period.
  • To identify potential mechanisms linking FGR to the increased risk of BPD.

Main Methods:

  • A prospective study involving 40 preterm infants (28-32 weeks gestational age), divided into FGR (<10th percentile birthweight) and AGA groups.
  • High-resolution echocardiography was used to measure right pulmonary artery and right ventricular (RV) indices.
  • Pulmonary artery wall thickness, pulsatility, and RV contractility (fractional area change, TAPSE, MPI) were assessed.

Main Results:

  • FGR infants exhibited significantly thicker right pulmonary artery walls and reduced pulsatility compared to AGA infants.
  • Impaired RV contractility was observed in FGR infants, indicated by reduced fractional area change, TAPSE, and increased myocardial performance index (MPI).
  • A significant correlation was found between RV contractility and RV afterload in FGR infants.

Conclusions:

  • Altered pulmonary vascular mechanics and cardiac performance in FGR infants suggest maladaptive changes in response to utero-placental insufficiency.
  • Impaired vasculogenesis may contribute to the higher incidence of BPD in preterm infants with FGR.
  • Further prospective studies are needed to determine if managing pulmonary vascular disease can improve clinical outcomes.

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