Cord blood hematopoietic cells from preterm infants display altered DNA methylation patterns

Olivia M de Goede1,2, Pascal M Lavoie1,3, Wendy P Robinson1,2

  • 1BC Children's Hospital Research Institute, Room 2082, 950W 28th Avenue, Vancouver, BC V5Z 4H4 Canada.

Clinical Epigenetics
|April 22, 2017
PubMed

Insights

Preterm birth epigenetically impacts hematopoietic cells, with nucleated red blood cells showing the most significant DNA methylation changes. These findings reveal insights into fetal immune system maturation and gene regulation.

Area of Science:

  • Epigenetics
  • Immunology
  • Developmental Biology

Background:

  • Premature infants exhibit heightened susceptibility to infections due to an immature immune system.
  • Differential DNA methylation (DNAm) is observed between preterm and term infants' cord blood, but interpretation is confounded by varying blood cell compositions.
  • This study isolates hematopoietic cell populations to investigate the epigenetic impact of preterm birth, mitigating cell composition biases.

Purpose of the Study:

  • To map genome-wide DNA methylation differences in isolated hematopoietic cell populations from preterm and term infants.
  • To understand the epigenetic maturation of fetal immune cells in the context of preterm birth.
  • To identify specific genes and pathways regulated by DNAm in preterm and term hematopoietic cells.

Main Methods:

  • Genome-wide DNA methylation was assessed using the Illumina 450K array in T cells, monocytes, granulocytes, and nucleated red blood cells (nRBCs).
  • Samples were obtained from cord blood of 5 preterm (<31 weeks gestational age) and 5 term newborns.
  • DNA methylation data were analyzed globally and through site-specific linear modeling.

Main Results:

  • Nucleated red blood cells (nRBCs) displayed the most substantial DNAm alterations between preterm and term infants, with 9258 differentially methylated sites identified.
  • DNAm patterns in term hematopoietic cells suggest greater epigenetic maturity compared to preterm counterparts, aligning with known hematopoietic differentiation trajectories.
  • Consistent DNAm shifts were observed in 25 CpG sites, particularly in genes related to growth, proliferation, hematopoietic lineage commitment, and cytoskeleton organization.

Conclusions:

  • This research provides the first genome-wide epigenetic map of hematopoietic cells in late gestation, highlighting DNAm's regulatory role.
  • Epigenetic differences in hematopoietic cells correlate with gestational age and cellular origin, reflecting developmental processes.
  • The findings illuminate gene regulatory mechanisms crucial for fetal immune system maturation and offer insights into cell-specific epigenetic regulation.
Abstract