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Comparing multiple ChIP-sequencing experiments.

机译:比较多个ChIP测序实验。

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摘要

New high-throughput sequencing technologies can generate millions of short sequences in a single experiment. As the size of the data increases, comparison of multiple experiments on different cell lines under different experimental conditions becomes a big challenge. In this paper, we investigate ways to compare multiple ChIP-sequencing experiments. We specifically studied epigenetic regulation of breast cancer and the effect of estrogen using 50 ChIP-sequencing data from Illumina Genome Analyzer II. First, we evaluate the correlation among different experiments focusing on the total number of reads in transcribed and promoter regions of the genome. Then, we adopt the method that is used to identify the most stable genes in RT-PCR experiments to understand background signal across all of the experiments and to identify the most variable transcribed and promoter regions of the genome. We observed that the most variable genes for transcribed regions and promoter regions are very distinct. Gene ontology and function enrichment analysis on these most variable genes demonstrate the biological relevance of the results. In this study, we present a method that can effectively select differential regions of the genome based on protein-binding profiles over multiple experiments using real data points without any normalization among the samples.
机译:新的高通量测序技术可在单个实验中生成数百万个短序列。随着数据量的增加,在不同实验条件下对不同细胞系进行多次实验的比较成为一个巨大的挑战。在本文中,我们研究了比较多个ChIP测序实验的方法。我们使用了来自Illumina Genome Analyzer II的50个ChIP测序数据,专门研究了乳腺癌的表观遗传调控和雌激素的作用。首先,我们评估不同实验之间的相关性,重点关注基因组转录和启动子区域的读取总数。然后,我们采用在RT-PCR实验中用于鉴定最稳定基因的方法,以了解所有实验中的背景信号,并鉴定基因组中转录和启动子区域变化最大的方法。我们观察到转录区和启动子区的最可变基因非常不同。这些可变基因的基因本体论和功能富集分析证明了结果的生物学相关性。在这项研究中,我们提出了一种方法,该方法可以在使用真实数据点的多个实验中基于蛋白质结合图谱有效选择基因组的差异区域,而无需在样本之间进行任何归一化处理。

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