Autocatalytic differentiation of epigenetic modifications within the Arabidopsis genome.

Soichi Inagaki, Asuka Miura-Kamio, Yasukazu Nakamura, Falong Lu, Xia Cui, Xiaofeng Cao, Hiroshi Kimura, Hidetoshi Saze, Tetsuji Kakutani

Department of Integrated Genetics, National Institute of Genetics, Mishima, Shizuoka, Japan.

Journal Article: The EMBO Journal (impact factor: 8.99). 10/2010; 29(20):3496-506. DOI: 10.1038/emboj.2010.227

Abstract

In diverse eukaryotes, constitutively silent sequences, such as transposons and repeats, are marked by methylation at histone H3 lysine 9 (H3K9me). Although selective H3K9me is critical for maintaining genome integrity, mechanisms to exclude H3K9me from active genes remain largely unexplored. Here, we show in Arabidopsis that the exclusion depends on a histone demethylase gene, IBM1 (increase in BONSAI methylation). Loss-of-function ibm1 mutation results in ectopic H3K9me and non-CG methylation in thousands of genes. The ibm1-induced genic H3K9me depends on both histone methylase KYP/SUVH4 and DNA methylase CMT3, suggesting interdependence of two epigenetic marks--H3K9me and non-CG methylation. Notably, IBM1 enhances loss of H3K9me in transcriptionally de-repressed sequences. Furthermore, disruption of transcription in genes induces ectopic non-CG methylation, which mimics the loss of IBM1 function. We propose that active chromatin is stabilized by an autocatalytic loop of transcription and H3K9 demethylation. This process counteracts a similarly autocatalytic accumulation of silent epigenetic marks, H3K9me and non-CG methylation.

Source: PubMed

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Keywords

active chromatin
 
active genes
 
autocatalytic accumulation
 
autocatalytic loop
 
BONSAI methylation
 
ectopic H3K9me
 
genes induces ectopic non-CG methylation
 
H3K9 demethylation
 
histone demethylase gene
 
histone H3 lysine 9
 
histone methylase KYP/SUVH4
 
IBM1 enhances loss
 
IBM1 function
 
ibm1-induced genic H3K9me
 
Loss-of-function ibm1 mutation results
 
non-CG methylation
 
process counteracts
 
selective H3K9me
 
silent epigenetic marks
 
transcriptionally de-repressed sequences