Abnormal placental DNA methylation variation in spontaneous preterm birth

Xi-Meng Wang1,2, Fu-Ying Tian1,3, Chuan-Bo Xie4

  • 1Department of Epidemiology, Guangzhou Key Laboratory of Environmental Pollution and Health Assessment, Guangdong Provincial Key Laboratory of Food, Nutrition and Health, School of Public Health, Sun Yat-sen University, Guangzhou, China.

Insights

Preterm birth (PTB) is linked to distinct placental DNA methylation changes. These epigenetic alterations at birth may predict long-term health issues in children, highlighting PTB

Area of Science:

  • Epigenetics
  • Perinatal Medicine
  • Genomics

Background:

  • Preterm birth (PTB) is a leading cause of neonatal mortality and associated with long-term health problems.
  • The etiology of PTB is poorly understood, but DNA methylation is increasingly implicated.
  • Advanced genomic tools like the Infinium EPIC BeadChip enable detailed investigation of DNA methylation.

Purpose of the Study:

  • To investigate DNA methylation differences in placentas from spontaneous preterm births compared to term births.
  • To identify specific differentially methylated positions (DMPs) and regions associated with PTB and gestational age (GA).
  • To explore the functional implications of these methylation patterns in PTB.

Main Methods:

  • A case-control study involving 32 spontaneous preterm births and 16 term births in South China.
  • Placental DNA methylation profiling using the Infinium EPIC BeadChip.
  • Statistical analysis using limma regression and seqlm for DMPs and differentially methylated regions (DMRs), followed by gene ontology analysis.

Main Results:

  • Identified 8 DMPs significantly associated with PTB and 15 DMPs associated with GA (FDR < 0.1).
  • One DMR in the SLC23A1 gene was identified and overlapped with a PTB-associated CpG site.
  • PTB-associated DMPs were mapped to genes involved in neurodevelopment, inflammation regulation, and metabolism.

Conclusions:

  • Placentas from preterm births exhibit distinct DNA methylation alterations.
  • These epigenetic patterns established at birth may offer insights into the long-term health consequences of PTB.
  • Further research into placental epigenetics could improve understanding and management of PTB-related outcomes.
Abstract

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