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Rapid and Reversible Light-Mediated Chromatin Modifications of Arabidopsis Phytochrome A Locus

机译:快速和可逆的光介导的拟南芥植物色素A基因座的染色质修饰。

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Recent genome-wide surveys showed that acetylation of H3K9 and H3K27 is correlated with gene activation during deetiolation of Arabidopsis thaliana seedlings, but less is known regarding changes in the histone status of repressed genes. Phytochrome A (phyA) is the major photoreceptor of deetiolation, and phyA expression is reversibly repressed by light. We found that in adult Arabidopsis plants, phyA activation in darkness was accompanied by a significant enrichment in the phyA transcription and translation start sites of not only H3K9/14ac and H3K27ac but also H3K4me3, and there was also moderate enrichment of H4K5ac, H4K8ac, H4K12ac, and H4K16ac. Conversely, when phyA expression was repressed by light, H3K27me3 was enriched with a corresponding decline in H3K27ac; moreover, demethylation of H3K4me3 and deacetylation of H3K9/14 were also seen. These histone modifications, which were focused around the phyA transcription/translation start sites, were detected within 1 h of deetiolation. Mutant analysis showed that HDA19/HD1 mediated deacetylation of H3K9/14 and uncovered possible histone crosstalk between H3K9/14ac and H3K4me3. Neither small RNA pathways nor the circadian clock affected H3 modification status of the phyA locus, and DNA methylation was unchanged by light. The presence of activating and repressive histone marks suggests a mechanism for the rapid and reversible regulation of phyA by dark and light.
机译:最近的全基因组调查显示,H3K9和H3K27的乙酰化与拟南芥幼苗脱化过程中的基因激活有关,但对被抑制基因组蛋白状态的变化知之甚少。植物色素A(phyA)是去甲酰化作用的主要光感受器,并且phyA表达被光可逆地抑制。我们发现在成年拟南芥植物中,在黑暗中phyA激活伴随着不仅是H3K9 / 14ac和H3K27ac而且还有H3K4me3的phyA转录和翻译起始位点的大量富集,并且还有中等程度的H4K5ac,H4K8ac,H4K12ac富集和H4K16ac。相反,当光抑制phyA表达时,H3K27me3富集,而H3K27ac相应下降。此外,还观察到H3K4me3的去甲基化和H3K9 / 14的去乙酰化。这些组蛋白修饰集中在phyA转录/翻译起始位点附近,在去甲化1小时内被检测到。突变分析表明,HDA19 / HD1介导了H3K9 / 14的脱乙酰基作用,并揭示了H3K9 / 14ac与H3K4me3之间可能存在的组蛋白串扰。小RNA途径和昼夜节律时钟都不会影响phyA基因座的H3修饰状态,并且光照不会改变DNA甲基化。活化和抑制性组蛋白标记的存在提示了通过黑暗和光快速而可逆地调节phyA的机制。

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