Wilmer Eye Institute, Department of Ophthalmology, Johns Hopkins University School of Medicine, Baltimore, Maryland, USA.
PLoS Genet. 2011 Oct;7(10):e1002350. doi: 10.1371/journal.pgen.1002350. Epub 2011 Oct 27.
In eukaryotes, histone H3 lysine 9 methylation (H3K9me) mediates silencing of invasive sequences to prevent deleterious consequences including the expression of aberrant gene products and mobilization of transposons. In Arabidopsis thaliana, H3K9me maintained by SUVH histone methyltransferases (MTases) is associated with cytosine methylation (5meC) maintained by the CMT3 cytosine MTase. The SUVHs contain a 5meC binding domain and CMT3 contains an H3K9me binding domain, suggesting that the SUVH/CMT3 pathway involves an amplification loop between H3K9me and 5meC. However, at loci subject to read-through transcription, the stability of the H3K9me/5meC loop requires a mechanism to counteract transcription-coupled loss of H3K9me. Here we use the duplicated PAI genes, which stably maintain SUVH-dependent H3K9me and CMT3-dependent 5meC despite read-through transcription, to show that when PAI sRNAs are depleted by dicer ribonuclease mutations, PAI H3K9me and 5meC levels are reduced and remaining PAI 5meC is destabilized upon inbreeding. The dicer mutations confer weaker reductions in PAI 5meC levels but similar or stronger reductions in PAI H3K9me levels compared to a cmt3 mutation. This comparison indicates a connection between sRNAs and maintenance of H3K9me independent of CMT3 function. The dicer mutations reduce PAI H3K9me and 5meC levels through a distinct mechanism from the known role of dicer-dependent sRNAs in guiding the DRM2 cytosine MTase because the PAI genes maintain H3K9me and 5meC at levels similar to wild type in a drm2 mutant. Our results support a new role for sRNAs in plants to prevent transcription-coupled loss of H3K9me.
在真核生物中,组蛋白 H3 赖氨酸 9 甲基化 (H3K9me) 介导入侵序列的沉默,以防止有害后果,包括异常基因产物的表达和转座子的移动。在拟南芥中,SUVH 组蛋白甲基转移酶 (MTases) 维持的 H3K9me 与 CMT3 胞嘧啶 MTase 维持的胞嘧啶甲基化 (5meC) 相关。SUVHs 含有 5meC 结合结构域,CMT3 含有 H3K9me 结合结构域,这表明 SUVH/CMT3 途径涉及 H3K9me 和 5meC 之间的放大环。然而,在受通读转录影响的基因座上,H3K9me/5meC 环的稳定性需要一种机制来抵消转录偶联的 H3K9me 丢失。在这里,我们使用重复的 PAI 基因,这些基因尽管存在通读转录,但仍稳定地维持 SUVH 依赖性 H3K9me 和 CMT3 依赖性 5meC,以表明当 PAI sRNAs 因 Dicer 核糖核酸酶突变而耗尽时,PAI H3K9me 和 5meC 水平降低,并且剩余的 PAI 5meC 在近亲繁殖时不稳定。与 cmt3 突变相比,Dicer 突变赋予 PAI 5meC 水平的降低较弱,但赋予 PAI H3K9me 水平的降低相似或更强。这种比较表明,sRNAs 与 H3K9me 的维持之间存在联系,而与 CMT3 功能无关。Dicer 突变通过与 Dicer 依赖性 sRNAs 在指导 DRM2 胞嘧啶 MTase 中的已知作用不同的机制降低 PAI H3K9me 和 5meC 水平,因为 PAI 基因在 drm2 突变体中维持与野生型相似的 H3K9me 和 5meC 水平。我们的结果支持 sRNAs 在植物中防止转录偶联的 H3K9me 丢失的新作用。