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Published on: September 7, 2017
Sexually dimorphic methylation patterns characterize the placenta and blood from extremely preterm newborns
Hudson P Santos1, Adam E Enggasser2, Jeliyah Clark2,3
1School of Nursing and Health Studies, University of Miami, Coral Gables, FL, USA. hsantos@miami.edu.
Insights
Sex-specific DNA methylation patterns in extremely premature infants reveal distinct epigenetic differences in the placenta and blood, offering insights into sexually dimorphic health outcomes.
Area of Science:
- Epigenetics
- Neonatal Health
- Genomics
Background:
- Health outcomes in premature infants show sex differences, but the underlying mechanisms are unclear.
- CpG methylation in placenta and blood varies by sex and is linked to adverse health outcomes.
- The Extremely Low Gestational Age Newborn (ELGAN) cohort provided samples for this epigenome-wide association study.
Purpose of the Study:
- To investigate sex-specific CpG methylation patterns in the placenta and neonatal blood of extremely premature infants.
- To identify tissue-specific epigenetic differences between males and females.
- To explore the biological functions associated with sexually dimorphic methylation.
Main Methods:
- Epigenome-wide association study using the EPIC array on placental and blood samples (n=358).
- Sex-specific analyses were conducted independently for placenta and blood.
- Enrichment pathway analysis identified biological functions of differentially methylated genes.
Main Results:
- Over 11,500 CpG sites showed sex-differential methylation; most were tissue-specific.
- Placental CpG sites were predominantly hypermethylated in males (90%), while blood sites were hypermethylated in females (95%).
- Keratinocyte differentiation pathways were enriched in the placenta, but not in blood.
Conclusions:
- Distinct sex-specific DNA methylation patterns exist in extremely premature infants.
- Keratinocyte differentiation pathways are epigenetically influenced by sex in the placenta.
- These findings illuminate epigenetic mechanisms contributing to sex differences in premature infant health.
Background:
Health outcomes among children born prematurely are known to be sexually dimorphic, with male infants often more affected, yet the mechanism behind this observation is not clear. CpG methylation levels in the placenta and blood also differ by sex and are associated with adverse health outcomes. We contrasted CpG methylation levels in the placenta and neonatal blood (n = 358) from the Extremely Low Gestational Age Newborn (ELGAN) cohort based on the EPIC array, which assays over 850,000 CpG sites across the epigenome. Sex-specific epigenome-wide association analyses were conducted for the placenta and neonatal blood samples independently, and the results were compared to determine tissue-specific differences between the methylation patterns in males and females. All models were adjusted for cell type heterogeneity. Enrichment pathway analysis was performed to identify the biological functions of genes related to the sexually dimorphic CpG sites.
Results:
Approximately 11,500 CpG sites were differentially methylated in relation to sex. Of these, 5949 were placenta-specific and 5361 were blood-specific, with only 233 CpG sites overlapping in both tissues. For placenta-specific CpG sites, 90% were hypermethylated in males. For blood-specific CpG sites, 95% were hypermethylated in females. In the placenta, keratinocyte differentiation biological pathways were enriched among the differentially methylated genes. No enrichment pathways were observed for blood.
Conclusions:
Distinct methylation patterns were observed between male and female children born extremely premature, and keratinocyte differentiation pathways were enriched in the placenta. These findings provide new insights into the epigenetic mechanisms underlying sexually dimorphic health outcomes among extremely premature infants.
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