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组蛋白H3.3替换模式的全基因组规模分析

Genome-scale profiling of histone H3.3 replacement patterns.

作者信息

Mito Yoshiko, Henikoff Jorja G, Henikoff Steven

机构信息

Fred Hutchinson Cancer Research Center, 1100 Fairview Avenue North, Seattle, Washington 98109, USA.

出版信息

Nat Genet. 2005 Oct;37(10):1090-7. doi: 10.1038/ng1637. Epub 2005 Sep 11.

Abstract

Histones of multicellular organisms are assembled into chromatin primarily during DNA replication. When chromatin assembly occurs at other times, the histone H3.3 variant replaces canonical H3. Here we introduce a new strategy for profiling epigenetic patterns on the basis of H3.3 replacement, using microarrays covering roughly one-third of the Drosophila melanogaster genome at 100-bp resolution. We identified patterns of H3.3 replacement over active genes and transposons. H3.3 replacement occurred prominently at sites of abundant RNA polymerase II and methylated H3 Lys4 throughout the genome and was enhanced on the dosage-compensated male X chromosome. Active genes were depleted of histones at promoters and were enriched in H3.3 from upstream to downstream of transcription units. We propose that deposition and inheritance of actively modified H3.3 in regulatory regions maintains transcriptionally active chromatin.

摘要

多细胞生物的组蛋白主要在DNA复制过程中组装成染色质。当染色质组装在其他时间发生时,组蛋白H3.3变体取代了经典的H3。在这里,我们介绍了一种基于H3.3取代来分析表观遗传模式的新策略,使用覆盖约三分之一黑腹果蝇基因组的微阵列,分辨率为100碱基对。我们确定了H3.3在活跃基因和转座子上的取代模式。H3.3取代在整个基因组中丰富的RNA聚合酶II和甲基化的H3赖氨酸4位点显著发生,并在剂量补偿的雄性X染色体上增强。活跃基因在启动子处组蛋白缺失,并且从转录单元的上游到下游H3.3富集。我们提出,在调控区域中活性修饰的H3.3的沉积和遗传维持了转录活性染色质。

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