Preterm birth is associated with epigenetic programming of transgenerational hypertension in mice

Laurence Dumeige1,2, Mélanie Nehlich1,2, Say Viengchareun1,2

  • 1Inserm U1185, Le Kremlin Bicêtre, 94276, France.

Insights

Prematurity alters kidney corticosteroid pathways, leading to hypertension in males and affecting subsequent generations. This epigenetic programming impacts blood pressure regulation across generations.

Area of Science:

  • Perinatal programming
  • Epigenetics
  • Renal physiology
  • Cardiovascular health

Background:

  • Prematurity is linked to adult hypertension, but molecular mechanisms are unclear.
  • Understanding these mechanisms is crucial for preventing long-term health issues.

Purpose of the Study:

  • Investigate prematurity's impact on renal corticosteroid pathways.
  • Evaluate implications for perinatal complications and adult hypertension.
  • Assess transgenerational effects on blood pressure and renal gene expression.

Main Methods:

  • Induced prematurity in mice using lipopolysaccharides at gestational day 18.
  • Analyzed pups at birth, 7 days, and 6 months.
  • Examined second (F2) and third (F3) generations.
  • Measured gene transcription, receptor expression, plasma corticosteroids, and DNA methylation.

Main Results:

  • Preterm males developed hypertension by 6 months.
  • Renal corticosteroid target genes (αENaC, Gilz) were upregulated at birth in preterm mice.
  • Hypertension and increased renal Gilz expression were observed in F2 and F3 generations.
  • Reduced Gilz promoter methylation correlated with increased expression, suggesting epigenetic regulation.

Conclusions:

  • Prematurity induces lasting alterations in renal corticosteroid signaling.
  • Blood pressure dysregulation and epigenetic Gilz regulation are inherited transgenerationally.
  • Perinatal epigenetic programming may contribute to essential hypertension across generations.

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