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DeepTACT: predicting 3D chromatin contacts via bootstrapping deep learning

机译:Deeptact:通过自动启动深度学习预测3D染色质触点

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摘要

Interactions between regulatory elements are of crucial importance for the understanding of transcriptional regulation and the interpretation of disease mechanisms. Hi-C technique has been developed for genome-wide detection of chromatin contacts. However, unless extremely deep sequencing is performed on a very large number of input cells, which is technically limited and expensive, current Hi-C experiments do not have high enough resolution to resolve contacts between regulatory elements. Here, we develop DeepTACT, a bootstrapping deep learning model, to integrate genome sequences and chromatin accessibility data for the prediction of chromatin contacts between regulatory elements. DeepTACT can infer not only promoter-enhancer interactions, but also promoter-promoter interactions. In tests based on promoter capture Hi-C data, DeepTACT shows better performance over existing methods. DeepTACT analysis also identifies a class of hub promoters, which are correlated with transcriptional activation across cell lines, enriched in housekeeping genes, functionally related to fundamental biological processes, and capable of reflecting cell similarity. Finally, the utility of chromatin contacts in the study of human diseases is illustrated by the association of IFNA2to coronary artery disease via an integrative analysis of GWAS data and interactions predicted by DeepTACT.
机译:监管要素之间的相互作用对于了解转录调控和疾病机制的解释至关重要。已经开发了Hi-C技术用于染色质触点的基因组检测。然而,除非对在技术上有限且昂贵的大量输入单元上进行极大的输入单元进行极深测序,否则电流的HI-C实验没有足够高的分辨率来解决调节元件之间的触点。在这里,我们开发Deeptact,一种自动深度学习模型,用于整合基因组序列和染色质可访问性数据,以预测调节元件之间的染色质触点。 Deeptact不能仅推断出促进剂 - 增强剂相互作用,也可以推动启动子 - 启动子相互作用。在基于启动子捕获Hi-C数据的测试中,Deeptact对现有方法显示出更好的性能。 Deeptact分析还识别一类轮毂启动子,其与细胞系的转录激活相关,富集在内心基因中,与基本生物过程有关,并且能够反映细胞相似性。最后,通过IFNA2至冠状动脉疾病的基准通过GWAS数据的一致性分析和Deeptact预测的相互作用,通过IFNA2至冠状动脉疾病的关联来说明了染色质触点的效用。

著录项

  • 来源
    《Nucleic Acids Research》 |2019年第10期|共14页
  • 作者单位

    Tsinghua Univ MOE Key Lab Bioinformat Bioinformat Div Beijing 100084 Peoples R China;

    Stanford Univ Dept Stat Stanford CA 94305 USA;

    Tsinghua Univ MOE Key Lab Bioinformat Bioinformat Div Beijing 100084 Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物化学;
  • 关键词

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