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MEME-ChIP: motif analysis of large DNA datasets

机译:MEME-ChIP:大型DNA数据集的基序分析

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Motivation: Advances in high-throughput sequencing have resulted in rapid growth in large, high-quality datasets including those arising from transcription factor (TF) ChIP-seq experiments. While there are many existing tools for discovering TF binding site motifs in such datasets, most web-based tools cannot directly process such large datasets.Results: The MEME-ChIP web service is designed to analyze ChIP-seq 'peak regions'-short genomic regions surrounding declared ChIP-seq 'peaks'. Given a set of genomic regions, it performs (i) ab initio motif discovery, (ii) motif enrichment analysis, (iii) motif visualization, (iv) binding affinity analysis and (v) motif identification. It runs two complementary motif discovery algorithms on the input data-MEME and DREME-and uses the motifs they discover in subsequent visualization, binding affinity and identification steps. MEME-ChIP also performs motif enrichment analysis using the AME algorithm, which can detect very low levels of enrichment of binding sites for TFs with known DNA-binding motifs. Importantly, unlike with the MEME web service, there is no restriction on the size or number of uploaded sequences, allowing very large ChIP-seq datasets to be analyzed. The analyses performed by MEME-ChIP provide the user with a varied view of the binding and regulatory activity of the ChIP-ed TF, as well as the possible involvement of other DNA-binding TFs.
机译:动机:高通量测序的发展已导致大型高质量数据集的快速增长,包括转录因子(TF)ChIP-seq实验产生的数据集。尽管有很多现有的工具可以在此类数据集中发现TF结合位点,但大多数基于Web的工具无法直接处理如此大的数据集。结果:MEME-ChIP Web服务旨在分析ChIP-seq的``峰区''-短基因组已声明的ChIP-seq“峰值”周围的区域。给定一组基因组区域,它执行(i)从头算起基序发现,(ii)基序富集分析,(iii)基序可视化,(iv)结合亲和力分析和(v)基序识别。它在输入数据MEME和DREME上运行两种互补的基元发现算法,并在随后的可视化,绑定亲和力和识别步骤中使用它们发现的基元。 MEME-ChIP还使用AME算法执行基序富集分析,该算法可以检测到具有已知DNA结合基序的TF的结合位点的富集程度非常低。重要的是,与MEME Web服务不同,对上载序列的大小或数量没有限制,从而可以分析非常大的ChIP-seq数据集。 MEME-ChIP进行的分析为用户提供了ChIP-ed TF的结合和调节活性以及其他与DNA结合的TF可能参与的不同观点。

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