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Binless normalization of Hi-C data provides significant interaction and difference detection independent of resolution

机译:Hi-C数据的无框归一化提供了显着的交互作用和与分辨率无关的差异检测

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Chromosome conformation capture techniques, such as Hi-C, are fundamental in characterizing genome organization. These methods have revealed several genomic features, such as chromatin loops, whose disruption can have dramatic effects in gene regulation. Unfortunately, their detection is difficu current methods require that the users choose the resolution of interaction maps based on dataset quality and sequencing depth. Here, we introduce Binless, a resolution-agnostic method that adapts to the quality and quantity of available data, to detect both interactions and differences. Binless relies on an alternate representation of Hi-C data, which leads to a more detailed classification of paired-end reads. Using a large-scale benchmark, we demonstrate that Binless is able to call interactions with higher reproducibility than other existing methods. Binless, which is freely available, can thus reliably be used to identify chromatin loops as well as for differential analysis of chromatin interaction maps.
机译:染色体构象捕获技术,例如Hi-C,是表征基因组组织的基础。这些方法揭示了一些基因组特征,例如染色质环,其破坏可对基因调控产生巨大影响。不幸的是,它们的检测很困难。当前方法要求用户根据数据集质量和测序深度选择交互图的分辨率。在这里,我们介绍Binless,这是一种与分辨率无关的方法,可适应可用数据的质量和数量,以检测交互作用和差异。 Binless依赖于Hi-C数据的另一种表示形式,这导致配对末端读取的更详细分类。使用大规模基准测试,我们证明Binless能够以比其他现有方法更高的可重复性调用交互。可以免费获得的Binless可以可靠地用于识别染色质环,以及用于染色质相互作用图的差异分析。

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