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Optimized Analysis of DNA Methylation and Gene Expression from Small, Anatomically-defined Areas of the Brain
Published on: July 12, 2012
Epigenomic profiling of preterm infants reveals DNA methylation differences at sites associated with neural function
S Sparrow1, J R Manning2, J Cartier3
1MRC Centre for Reproductive Health, University of Edinburgh, Queen's Medical Research Institute, Edinburgh, UK.
Insights
Preterm birth alters DNA methylation (DNAm) in infants, impacting neural development. Specific gene methylation changes are linked to brain structure and early life factors, offering insights into preterm brain injury.
Area of Science:
- Neuroscience
- Epigenetics
- Developmental Biology
Background:
- DNA methylation (DNAm) is crucial for neural cell fate and links early-life stress to neuropsychiatric conditions.
- Preterm birth is a significant environmental stressor associated with neural connectivity alterations and long-term neuropsychiatric issues.
Purpose of the Study:
- To investigate the relationship between preterm birth and DNA methylation patterns.
- To identify factors contributing to variations in DNA methylation in preterm infants.
Main Methods:
- Genome-wide DNA methylation analysis in preterm infants (<33 weeks gestation) and controls (>37 weeks).
- Diffusion magnetic resonance imaging (dMRI) to analyze major fasciculi (fractional anisotropy, mean diffusivity, tract shape).
- Principal Components (PC) analysis to correlate MRI features and clinical variables with DNAm variance.
Main Results:
- Differential methylation identified in gene bodies and promoters of protein-coding genes in preterm infants, including neural-function genes.
- Validation of array findings using pyrosequencing.
- 23 principal components explained 95% of DNAm variance; corticospinal tract shape, gender, and nutrition were associated with specific PCs.
Conclusions:
- Preterm birth is associated with significant alterations in the methylome, affecting neural development and function.
- Differential methylation analysis highlights candidate genes for understanding the epigenetic basis of preterm brain injury.
Abstract:
DNA methylation (DNAm) plays a determining role in neural cell fate and provides a molecular link between early-life stress and neuropsychiatric disease. Preterm birth is a profound environmental stressor that is closely associated with alterations in connectivity of neural systems and long-term neuropsychiatric impairment. The aims of this study were to examine the relationship between preterm birth and DNAm, and to investigate factors that contribute to variance in DNAm. DNA was collected from preterm infants (birth<33 weeks gestation) and healthy controls (birth>37 weeks), and a genome-wide analysis of DNAm was performed; diffusion magnetic resonance imaging (dMRI) data were acquired from the preterm group. The major fasciculi were segmented, and fractional anisotropy, mean diffusivity and tract shape were calculated. Principal components (PC) analysis was used to investigate the contribution of MRI features and clinical variables to variance in DNAm. Differential methylation was found within 25 gene bodies and 58 promoters of protein-coding genes in preterm infants compared with controls; 10 of these have neural functions. Differences detected in the array were validated with pyrosequencing. Ninety-five percent of the variance in DNAm in preterm infants was explained by 23 PCs; corticospinal tract shape associated with 6th PC, and gender and early nutritional exposure associated with the 7th PC. Preterm birth is associated with alterations in the methylome at sites that influence neural development and function. Differential methylation analysis has identified several promising candidate genes for understanding the genetic/epigenetic basis of preterm brain injury.
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