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Updated: Jan 22, 2026

Genome-Wide Analysis of DNA Methylation in Gastrointestinal Cancer
Published on: September 18, 2020
Effect of prematurity on genome wide methylation in the placenta
Jessica Schuster1, Alper Uzun2, Joan Stablia1
1Pediatrics, Women & Infants Hospital, Providence, Rhode Island, 02905, USA.
Insights
Preterm birth epigenetics reveals significant placental DNA methylation differences. These findings advance understanding of fetal programming and environmental impacts on preterm birth risks.
Area of Science:
- Reproductive Biology
- Epigenetics
- Genomics
Background:
- Preterm birth affects 1 in 8 newborns, posing significant clinical and societal challenges.
- The molecular mechanisms of preterm birth remain largely unknown, despite associations with later-life health risks.
- The fetal origins hypothesis links adverse intrauterine exposures to later disease susceptibility.
Purpose of the Study:
- To investigate genome-wide placental DNA methylation patterns across a range of gestational ages.
- To identify differentially methylated regions (DMRs) associated with preterm birth.
- To explore the epigenetic basis of preterm birth and its potential link to fetal programming.
Main Methods:
- Applied methylation-dependent immunoprecipitation/DNA sequencing (MeDIP-seq) to 9 placentas.
- Analyzed placentas from 25 weeks gestation to term.
- Utilized enrichment analysis and Ingenuity Pathway Analysis (IPA) for DMRs.
Main Results:
- Identified 427 nominally significant and 21 statistically significant DMRs between preterm and term placentas.
- Found 62% of significant DMRs were hypomethylated in preterm placentas.
- Enriched pathways included the Citrulline-Nitric Oxide Cycle and Fcy Receptor Mediated Phagocytosis.
Conclusions:
- These placental epigenome findings provide a foundation for future research into preterm birth.
- The study highlights the role of epigenetics in fetal programming and environmental influences.
- Further investigation is needed to understand the long-term impact of these epigenetic changes.
Background:
Preterm birth is a significant clinical problem and an enormous burden on society, affecting one in eight pregnant women and their newborns. Despite decades of research, the molecular mechanism underlying its pathogenesis remains unclear. Many studies have shown that preterm birth is associated with health risks across the later life course. The "fetal origins" hypothesis postulates that adverse intrauterine exposures are associated with later disease susceptibility. Our recent studies have focused on the placental epigenome at term. We extended these studies to genome-wide placental DNA methylation across a wide range of gestational ages. We applied methylation dependent immunoprecipitation/DNA sequencing (MeDIP-seq) to 9 placentas with gestational age from 25 weeks to term to identify differentially methylated regions (DMRs).
Results:
Enrichment analysis revealed 427 DMRs with nominally significant differences in methylation between preterm and term placentas (p < 0.01) and 21 statistically significant DMRs after multiple comparison correction (FDR p < 0.05), of which 62% were hypo-methylated in preterm placentas vs term placentas. The majority of DMRs were in distal intergenic regions and introns. Significantly enriched pathways identified by Ingenuity Pathway Analysis (IPA) included Citrulline-Nitric Oxide Cycle and Fcy Receptor Mediated Phagocytosis in macrophages. The DMR gene set overlapped placental gene expression data, genes and pathways associated evolutionarily with preterm birth.
Conclusion:
These studies form the basis for future studies on the epigenetics of preterm birth, "fetal programming" and the impact of environment exposures on this important clinical challenge.
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