Fetal programming of pulmonary vascular dysfunction in mice: role of epigenetic mechanisms

Emrush Rexhaj1, Jonathan Bloch, Pierre-Yves Jayet

  • 1Dept. of Internal Medicine, BH 10.640, 1011 Lausanne-CHUV, Switzerland.

Insights

Maternal undernutrition during pregnancy (RDP) programs offspring for pulmonary vascular dysfunction via epigenetic changes. Treating offspring with HDAC inhibitors or mothers with antioxidants prevented these effects.

Area of Science:

  • Cardiovascular Physiology
  • Developmental Biology
  • Epigenetics

Background:

  • Fetal insults can lead to adult cardiovascular disease, but pulmonary circulation effects are poorly understood.
  • Maternal undernutrition during pregnancy is linked to offspring systemic vascular dysfunction.
  • Oxidative stress from restrictive diet during pregnancy (RDP) may cause epigenetic alterations.

Purpose of the Study:

  • To investigate if RDP in mice induces pulmonary vascular dysfunction in offspring.
  • To determine if an epigenetic mechanism underlies this dysfunction.
  • To test if interventions can prevent or reverse RDP-induced pulmonary vascular issues.

Main Methods:

  • Offspring from RDP and control dams were exposed to hypoxia.
  • Pulmonary vascular function (vasodilation, hypertension, hypertrophy) and lung DNA methylation were assessed.
  • Offspring were treated with histone deacetylase inhibitors (butyrate, trichostatin A) or mothers with Tempol.

Main Results:

  • RDP offspring exhibited impaired pulmonary artery vasodilation and exaggerated hypoxia-induced pulmonary hypertension and right ventricular hypertrophy.
  • Pulmonary vascular dysfunction correlated with altered lung DNA methylation.
  • Treatments with HDAC inhibitors or maternal Tempol normalized DNA methylation and vascular function.

Conclusions:

  • Maternal undernutrition during gestation induces pulmonary vascular dysfunction in offspring through an epigenetic mechanism.
  • Epigenetic modifications in lung tissue appear central to this programming.
  • This mechanism may also contribute to fetal programming of vascular dysfunction in humans.