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.

BMC Medical Genetics
|June 30, 2019
PubMed

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.
Abstract

Related Concept Videos

Genome-wide Association Studies-GWAS01:11

Genome-wide Association Studies-GWAS

Genome-wide association studies or GWAS are used to identify whether common SNPs are associated with certain diseases. Suppose specific SNPs are more frequently observed in individuals with a particular disease than those without the disease. In that case, those SNPs are said to be associated with the disease. Chi-square analysis is performed to check the probability of the allele likely to be associated with the disease.
GWAS does not require the identification of the target gene involved in...
15.4K
Genomic Imprinting and Inheritance02:30

Genomic Imprinting and Inheritance

Diploid organisms inherit genetic material through chromosomes from both parents. Copies of the same gene are known as alleles. In most cases, both alleles are simultaneously expressed and allow various cellular processes to function optimally. If one of the alleles is missing or mutated, the expression of the other allele can compensate; however, this is not true for all genes.
The expression of some genes depends on which parent passed the gene to the offspring, through a phenomenon known as...
36.9K
Genomics02:02

Genomics

Genomics is the science of genomes: it is the study of all the genetic material of an organism. In humans, the genome consists of information carried in 23 pairs of chromosomes in the nucleus, as well as mitochondrial DNA. In genomics, both coding and non-coding DNA is sequenced and analyzed. Genomics allows a better understanding of all living things, their evolution, and their diversity. It has a myriad of uses: for example, to build phylogenetic trees, to improve productivity and...
39.8K
Genome Size and the Evolution of New Genes03:21

Genome Size and the Evolution of New Genes

While every living organism has a genome of some kind (be it RNA, or DNA), there is considerable variation in the sizes of these blueprints. One major factor that impacts genome size is whether the organism is prokaryotic or eukaryotic. In prokaryotes, the genome contains little to no non-coding sequence, such that genes are tightly clustered in groups or operons sequentially along the chromosome. Conversely, the genes in eukaryotes are punctuated by long stretches of non-coding sequence.
9.0K
Comparing Mitochondrial, Chloroplast, and Prokaryotic Genomes02:16

Comparing Mitochondrial, Chloroplast, and Prokaryotic Genomes

The present-day mitochondrial and chloroplast genomes have retained some of the characteristics of their ancestral prokaryotes and also have acquired new attributes during their evolution within eukaryotic cells. Like prokaryotic genomes, mitochondrial and chloroplast genomes neither bind with histone-like proteins nor show complex packaging into chromosome-like structures, as observed in eukaryotes. Unlike mitotic cell divisions observed in eukaryotic cells, mitochondria and chloroplasts...
15.3K
Phase II Reactions: Methylation Reactions01:17

Phase II Reactions: Methylation Reactions

Methylation is a phase II biotransformation process involving the attachment of a methyl group to a substrate. Enzymes known as methyltransferases orchestrate this reaction.
The mechanism of methylation unfolds in two stages. The first stage sees a methyltransferase enzyme facilitating the transfer of a methyl group from S-adenosylmethionine (SAM) to the substrate, forming S-adenosylhomocysteine (SAH). The second stage involves further metabolism of SAH into homocysteine, which can be recycled...
694