Early pregnancy maternal and fetal angiogenic factors and fetal and childhood growth: the Generation R Study

N E Bergen1, M I Bouwland-Both2, R P M Steegers-Theunissen3

  • 1The Generation R Study Group, Erasmus MC, University Medical Centre, PO Box 2040, 3000 Rotterdam, CA, The Netherlands Division of Obstetrics and Prenatal Medicine, Department of Obstetrics and Gynaecology, Erasmus MC, University Medical Centre, PO Box 2040, 3000 Rotterdam, CA, The Netherlands n.bergen@erasmusmc.nl.

Insights

Maternal and fetal angiogenic factors, soluble fms-like tyrosine kinase 1 (sFlt-1) and placental growth factor (PlGF), impact fetal and childhood growth. Imbalances in these factors are linked to reduced growth patterns from gestation through age six.

Area of Science:

  • Reproductive biology and developmental origins of health and disease.
  • Maternal-fetal medicine and perinatal outcomes.
  • Endocrinology and angiogenic factor research.

Background:

  • Maternal and fetal imbalances in soluble fms-like tyrosine kinase 1 (sFlt-1) and placental growth factor (PlGF) are implicated in pregnancy complications.
  • The specific impact of these angiogenic factors on longitudinal fetal and childhood growth trajectories remains incompletely understood.

Purpose of the Study:

  • To investigate the association between maternal and fetal concentrations of sFlt-1 and PlGF and subsequent fetal and childhood growth patterns.
  • To determine how angiogenic profiles influence fetal growth, birth outcomes, and growth until age six.

Main Methods:

  • Prospective cohort study (Generation R Study) involving 5980 mothers and 4108 children in the Netherlands.
  • Maternal blood samples collected in early and mid-pregnancy; umbilical cord blood collected at delivery.
  • Repeated measurements of fetal and childhood growth (weight, length) via ultrasound and physical examinations; regression models used for analysis.

Main Results:

  • Higher early pregnancy maternal sFlt-1 concentrations correlated with increased fetal weight gain, higher birthweight, and reduced risk of small for gestational age (SGA).
  • Lower early pregnancy maternal PlGF concentrations were associated with reduced weight growth, smaller birthweight, and increased SGA risk.
  • Specific umbilical cord blood angiogenic profiles (high sFlt-1, low PlGF, or high sFlt-1:PlGF ratio) were linked to reduced fetal and childhood growth from 30 weeks gestation onwards.

Conclusions:

  • Maternal and fetal angiogenic factor imbalances significantly influence fetal and childhood growth trajectories.
  • Altered angiogenic profiles may mediate the link between fetal growth restriction and long-term vascular disease risk.
  • Observational nature precludes causal inference; findings highlight potential biological pathways.
Abstract

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