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通过结合位点消融揭示的全基因组转录因子协同作用规则。

Genome-wide rules of transcription factor cooperativity revealed through binding site ablation.

作者信息

He Xuening, Einarsson Hjörleifur, Páleníková Petra, Rennie Sarah, Hu Dewei, Cui Ruining, Vaagensø Christian, Lage Kasper, Krautz Robert, Andersson Robin

机构信息

Section for Computational and RNA Biology, Department of Biology, University of Copenhagen, Denmark.

The Novo Nordisk Foundation Center for Genomic Mechanisms of Disease, Broad Institute of MIT and Harvard, USA.

出版信息

bioRxiv. 2025 Jun 24:2025.06.19.660093. doi: 10.1101/2025.06.19.660093.

Abstract

Transcription factor (TF) cooperativity plays a critical role in gene regulation. However, the underlying genomic rules remain unclear, calling for scalable methods to characterize the TF binding site (motif) syntax of regulatory elements. Here, we introduce DeepCompARE, a lightweight model paired with an ablation (ISA) framework for genome-wide analysis of regulatory sequences. Our framework enables precise interpretation of the motif syntax governing chromatin accessibility, enhancer activity, and promoter function. We find that most TF motifs are pairwise independent, indicating a default additive behavior of TFs, and define a cooperativity score to quantify deviations from this baseline. This reveals synergy and redundancy as opposite effects along the same cooperative spectrum. TF redundancy is linked to promoter activity and broad expression, whereas TF synergy is associated with enhancer activity, physical interactions, and cell-type specificity. Our framework provides a quantitative model for TF cooperativity, offering new insights into gene regulatory logic.

摘要

转录因子(TF)协同作用在基因调控中起着关键作用。然而,潜在的基因组规则仍不清楚,这就需要可扩展的方法来表征调控元件的TF结合位点(基序)语法。在这里,我们引入了DeepCompARE,这是一个与消融(ISA)框架配对的轻量级模型,用于全基因组调控序列分析。我们的框架能够精确解释控制染色质可及性、增强子活性和启动子功能的基序语法。我们发现,大多数TF基序是成对独立的,这表明TF具有默认的加性作用,并定义了一个协同分数来量化与该基线的偏差。这揭示了协同作用和冗余是同一协同谱上的相反效应。TF冗余与启动子活性和广泛表达相关,而TF协同作用与增强子活性、物理相互作用和细胞类型特异性相关。我们的框架为TF协同作用提供了一个定量模型,为基因调控逻辑提供了新的见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c7c9/12262439/1eb33d612236/nihpp-2025.06.19.660093v1-f0001.jpg

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