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. 2014 Nov;24(11):1725-33.
doi: 10.1101/gr.176933.114. Epub 2014 Sep 23.

Genetic and environmental exposures constrain epigenetic drift over the human life course

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Genetic and environmental exposures constrain epigenetic drift over the human life course

Sonia Shah et al. Genome Res. 2014 Nov.

Abstract

Epigenetic mechanisms such as DNA methylation (DNAm) are essential for regulation of gene expression. DNAm is dynamic, influenced by both environmental and genetic factors. Epigenetic drift is the divergence of the epigenome as a function of age due to stochastic changes in methylation. Here we show that epigenetic drift may be constrained at many CpGs across the human genome by DNA sequence variation and by lifetime environmental exposures. We estimate repeatability of DNAm at 234,811 autosomal CpGs in whole blood using longitudinal data (2-3 repeated measurements) on 478 older people from two Scottish birth cohorts--the Lothian Birth Cohorts of 1921 and 1936. Median age was 79 yr and 70 yr, and the follow-up period was ∼10 yr and ∼6 yr, respectively. We compare this to methylation heritability estimated in the Brisbane Systems Genomics Study, a cross-sectional study of 117 families (offspring median age 13 yr; parent median age 46 yr). CpG repeatability in older people was highly correlated (0.68) with heritability estimated in younger people. Highly heritable sites had strong underlying cis-genetic effects. Thirty-seven and 1687 autosomal CpGs were associated with smoking and sex, respectively. Both sets were strongly enriched for high repeatability. Sex-associated CpGs were also strongly enriched for high heritability. Our results show that a large number of CpGs across the genome, as a result of environmental and/or genetic constraints, have stable DNAm variation over the human lifetime. Moreover, at a number of CpGs, most variation in the population is due to genetic factors, despite some sites being highly modifiable by the environment.

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Figures

Figure 1.
Figure 1.
Distribution of Rm for 234,811 autosomal CpG sites in the Lothian Birth Cohorts (LBC).
Figure 2.
Figure 2.
Correlation between Rm and h2. The distribution of Rm estimated in the LBC cohorts by bins of h2 estimated in the BSGS cohort. Correlation between the two measures was 0.68.
Figure 3.
Figure 3.
Distribution of Rm and h2 for smoking- and sex-associated CpG sites. (A) 37 smoking-associated autosomal probes. (B) 1687 sex-associated autosomal probes.

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