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A map of the cis-regulatory sequences in the mouse genome

机译:所述顺式调节序列在小鼠基因组中的地图

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摘要

The laboratory mouse is the most widely used mammalian model organism in biomedical research. The 2.6 × 10 bases of the mouse genome possess a high degree of conservation with the human genome, so a thorough annotation of the mouse genome will be of significant value to understanding the function of the human genome. So far, most of the functional sequences in the mouse genome have yet to be found, and the cis-regulatory sequences in particular are still poorly annotated. Comparative genomics has been a powerful tool for the discovery of these sequences, but on its own it cannot resolve their temporal and spatial functions. Recently, ChIP-Seq has been developed to identify cis-regulatory elements in the genomes of several organisms including humans, Drosophila melanogaster and Caenorhabditis elegans. Here we apply the same experimental approach to a diverse set of 19 tissues and cell types in the mouse to produce a map of nearly 300,000 murine cis-regulatory sequences. The annotated sequences add up to 11% of the mouse genome, and include more than 70% of conserved non-coding sequences. We define tissue-specific enhancers and identify potential transcription factors regulating gene expression in each tissue or cell type. Finally, we show that much of the mouse genome is organized in to domains of coordinately regulated enhancers and promoters. Our results provide a resource for the annotation of functional elements in the mammalian genome and for the study of mechanisms regulating tissue-specific gene expression.
机译:实验鼠是生物医学研究中使用最广泛的哺乳动物模型生物。小鼠基因组的2.6×10 碱基与人类基因组 具有高度的保守性,因此,对小鼠基因组进行彻底的注释对理解基因组具有重要价值。人类基因组的功能。到目前为止,尚未找到小鼠基因组中的大多数功能序列,尤其是顺式调控序列的注释仍很差。比较基因组学一直是发现这些序列的强大工具 ,但单靠它本身无法解决它们的时间和空间功能。最近,已经开发出ChIP-Seq来鉴定几种生物体(包括人类,果蝇和秀丽隐杆线虫)的基因组中的顺式调控元件-。在这里,我们将相同的实验方法应用于小鼠中19种组织和细胞类型的多样化集合,以产生将近300,000个小鼠顺式调控序列的图。带注释的序列总计占小鼠基因组的11%,包括超过70%的保守非编码序列。我们定义组织特异性增强子,并确定调节每种组织或细胞类型中基因表达的潜在转录因子。最后,我们表明,许多小鼠基因组都组织在协调调节的增强子和启动子的域中。我们的结果为哺乳动物基因组中功能元件的注释和调节组织特异性基因表达机制的研究提供了资源。

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