Developmental programming in human umbilical cord vein endothelial cells following fetal growth restriction

Fieke Terstappen1,2, Jorg J A Calis3,4, Nina D Paauw5

  • 1Division Woman and Baby, Department of Obstetrics, Wilhelmina Children's Hospital, University Medical Center Utrecht, Postbus 85090, 3508 AB, Utrecht, The Netherlands. F.Terstappen@umcutrecht.nl.

Clinical Epigenetics
|December 1, 2020
PubMed

Insights

Fetal growth restriction (FGR) alters kidney and cardiovascular development pathways in umbilical cells. These changes, potentially linked to DNA methylation, may increase long-term disease risk.

Area of Science:

  • Developmental biology
  • Genomics
  • Cardiovascular science

Background:

  • Fetal growth restriction (FGR) is linked to adult noncommunicable diseases, including cardiovascular and renal conditions.
  • Reduced fetal supply during FGR may impact cardiovascular and renal programming.
  • This study investigates differences in developmental programming in FGR versus normal growth pregnancies.

Purpose of the Study:

  • To compare developmental programming profiles of the cardiovascular and renal systems in human umbilical vein endothelial cells (HUVECs) from FGR and control pregnancies.
  • To identify molecular targets associated with long-term cardiovascular and renal disease risk in FGR.

Main Methods:

  • Transcriptomic profiling using RNA-sequencing on HUVECs.
  • Gene set enrichment analysis focusing on cardiovascular and renal gene sets.
  • Targeted DNA methylation assays.

Main Results:

  • Upregulation of gene sets related to kidney development observed in FGR HUVECs.
  • Downregulation of gene sets associated with cardiovascular health and function in FGR.
  • Differential expression of LGALS1, FPR3, NRM, and lincRNA RP5-855F14.1 identified in FGR.
  • Sex-dependent alterations in DNA methylation for FPR3 and NRM noted in FGR.

Conclusions:

  • FGR is associated with altered renal and cardiovascular gene expression profiles in HUVECs.
  • Downregulated NRM and upregulated lincRNA RP5-855F14.1 in FGR may relate to cardiovascular implications.
  • Further research is needed to clarify the role of LGALS1 and FPR3 in FGR and their potential as biomarkers for cardiovascular risk.
Abstract