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首页> 外文期刊>PLoS Computational Biology >Microarray Analysis of LTR Retrotransposon Silencing Identifies Hdac1 as a Regulator of Retrotransposon Expression in Mouse Embryonic Stem Cells
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Microarray Analysis of LTR Retrotransposon Silencing Identifies Hdac1 as a Regulator of Retrotransposon Expression in Mouse Embryonic Stem Cells

机译:LTR反转录转座子沉默的微阵列分析确定Hdac1作为小鼠胚胎干细胞中反转录转座子表达的调节剂。

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Retrotransposons are highly prevalent in mammalian genomes due to their ability to amplify in pluripotent cells or developing germ cells. Host mechanisms that silence retrotransposons in germ cells and pluripotent cells are important for limiting the accumulation of the repetitive elements in the genome during evolution. However, although silencing of selected individual retrotransposons can be relatively well-studied, many mammalian retrotransposons are seldom analysed and their silencing in germ cells, pluripotent cells or somatic cells remains poorly understood. Here we show, and experimentally verify, that cryptic repetitive element probes present in Illumina and Affymetrix gene expression microarray platforms can accurately and sensitively monitor repetitive element expression data. This computational approach to genome-wide retrotransposon expression has allowed us to identify the histone deacetylase Hdac1 as a component of the retrotransposon silencing machinery in mouse embryonic stem cells, and to determine the retrotransposon targets of Hdac1 in these cells. We also identify retrotransposons that are targets of other retrotransposon silencing mechanisms such as DNA methylation, Eset-mediated histone modification, and Ring1B/Eed-containing polycomb repressive complexes in mouse embryonic stem cells. Furthermore, our computational analysis of retrotransposon silencing suggests that multiple silencing mechanisms are independently targeted to retrotransposons in embryonic stem cells, that different genomic copies of the same retrotransposon can be differentially sensitive to these silencing mechanisms, and helps define retrotransposon sequence elements that are targeted by silencing machineries. Thus repeat annotation of gene expression microarray data suggests that a complex interplay between silencing mechanisms represses retrotransposon loci in germ cells and embryonic stem cells.
机译:逆转座子因其在多能细胞或发育生殖细胞中扩增的能力而在哺乳动物基因组中高度流行。沉默生殖细胞和多能细胞中逆转座子的宿主机制对于限制进化过程中基因组中重复元件的积累非常重要。然而,尽管可以相对充分地研究选定的单个逆转录转座子的沉默,但是很少分析许多哺乳动物逆转录转座子,并且它们在生殖细胞,多能细胞或体细胞中的沉默仍然知之甚少。在这里,我们显示并实验验证,Illumina和Affymetrix基因表达微阵列平台中存在的隐性重复元件探针可以准确而灵敏地监测重复元件表达数据。这种用于全基因组逆转录转座子表达的计算方法,使我们能够鉴定组蛋白脱乙酰基酶Hdac1作为小鼠胚胎干细胞中逆转座子沉默机制的组成部分,并确定这些细胞中Hdac1的逆转座子目标。我们还确定了反转录转座子,这些转座子是其他逆转座子沉默机制的靶标,例如DNA甲基化,Eset介导的组蛋白修饰和小鼠胚胎干细胞中含有Ring1B / Eed的多梳抑制复合物。此外,我们对反转录转座子沉默的计算分析表明,多种沉默机制独立地靶向于胚胎干细胞中的反转录转座子,同一反转录转座子的不同基因组拷贝对这些沉默机制可能具有不同的敏感性,并有助于定义被靶向的反转录转座子序列元件静音设备。因此,基因表达微阵列数据的重复注释表明沉默机制之间的复杂相互作用会抑制生殖细胞和胚胎干细胞中的反转录转座子基因座。

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