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. 2023 Nov 15;14(11):953-967.e17.
doi: 10.1016/j.cels.2023.10.007. Epub 2023 Nov 8.

Millennia-long epigenetic fluctuations generate intragenic DNA methylation variance in Arabidopsis populations

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Millennia-long epigenetic fluctuations generate intragenic DNA methylation variance in Arabidopsis populations

Amy Briffa et al. Cell Syst. .
Free article

Abstract

Methylation of CG dinucleotides (mCGs), which regulates eukaryotic genome functions, is epigenetically propagated by Dnmt1/MET1 methyltransferases. How mCG is established and transmitted across generations despite imperfect enzyme fidelity is unclear. Whether mCG variation in natural populations is governed by genetic or epigenetic inheritance also remains mysterious. Here, we show that MET1 de novo activity, which is enhanced by existing proximate methylation, seeds and stabilizes mCG in Arabidopsis thaliana genes. MET1 activity is restricted by active demethylation and suppressed by histone variant H2A.Z, producing localized mCG patterns. Based on these observations, we develop a stochastic mathematical model that precisely recapitulates mCG inheritance dynamics and predicts intragenic mCG patterns and their population-scale variation given only CG site spacing. Our results demonstrate that intragenic mCG establishment, inheritance, and variance constitute a unified epigenetic process, revealing that intragenic mCG undergoes large, millennia-long epigenetic fluctuations and can therefore mediate evolution on this timescale.

Keywords: DNA methylation dynamics; MET1; epigenetic inheritance; gene body methylation; population genetics; stochastic mathematical model.

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Conflict of interest statement

Declaration of interests The authors declare no competing interests.

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