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A clustering approach for identification of enriched domains from histone modification ChIP-Seq data

机译:一种从组蛋白修饰ChIP-Seq数据中识别富集域的聚类方法

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摘要

>Motivation: Chromatin states are the key to gene regulation and cell identity. Chromatin immunoprecipitation (ChIP) coupled with high-throughput sequencing (ChIP-Seq) is increasingly being used to map epigenetic states across genomes of diverse species. Chromatin modification profiles are frequently noisy and diffuse, spanning regions ranging from several nucleosomes to large domains of multiple genes. Much of the early work on the identification of ChIP-enriched regions for ChIP-Seq data has focused on identifying localized regions, such as transcription factor binding sites. Bioinformatic tools to identify diffuse domains of ChIP-enriched regions have been lacking.>Results: Based on the biological observation that histone modifications tend to cluster to form domains, we present a method that identifies spatial clusters of signals unlikely to appear by chance. This method pools together enrichment information from neighboring nucleosomes to increase sensitivity and specificity. By using genomic-scale analysis, as well as the examination of loci with validated epigenetic states, we demonstrate that this method outperforms existing methods in the identification of ChIP-enriched signals for histone modification profiles. We demonstrate the application of this unbiased method in important issues in ChIP-Seq data analysis, such as data normalization for quantitative comparison of levels of epigenetic modifications across cell types and growth conditions.>Availability: >Contact: >Supplementary information: are available at Bioinformatics online.
机译:>动机:染色质状态是基因调节和细胞身份的关键。染色质免疫沉淀(ChIP)与高通量测序(ChIP-Seq)结合已越来越多地用于在不同物种的基因组之间绘制表观遗传状态。染色质修饰谱通常是嘈杂的且分散的,跨越从几个核小体到多个基因的大结构域的区域。关于为ChIP-Seq数据识别ChIP富集区域的许多早期工作都集中在识别局部区域,例如转录因子结合位点。 >结果:基于生物学观察发现,组蛋白修饰倾向于聚类以形成域,我们提出了一种识别信号空间簇的方法,该方法无法识别ChIP富集区域的扩散域。偶然出现。该方法将来自相邻核小体的富集信息汇集在一起​​,以提高敏感性和特异性。通过使用基因组规模的分析,以及对具有有效表观遗传状态的基因座的检查,我们证明了该方法在鉴定ChIP富集的组蛋白修饰信号方面优于现有方法。我们证明了该无偏方法在ChIP-Seq数据分析中的重要问题中的应用,例如数据归一化,用于定量比较细胞类型和生长条件下的表观遗传修饰水平。>可用性: >联系方式: >补充信息:可从在线生物信息学获得。

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