Interpreting regulatory mechanisms of Hippo signaling through a deep learning sequence model.

IF 11.1 Q1 CELL BIOLOGY Cell genomics Pub Date : 2025-04-09 Epub Date: 2025-04-01 DOI:10.1016/j.xgen.2025.100821
Khyati Dalal, Charles McAnany, Melanie Weilert, Mary Cathleen McKinney, Sabrina Krueger, Julia Zeitlinger
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Abstract

Signaling pathway components are well studied, but how they mediate cell-type-specific transcription responses is an unresolved problem. Using the Hippo pathway in mouse trophoblast stem cells as a model, we show that the DNA binding of signaling effectors is driven by cell-type-specific sequence rules that can be learned genome wide by deep learning models. Through model interpretation and experimental validation, we show that motifs for the cell-type-specific transcription factor TFAP2C enhance TEAD4/YAP1 binding in a nucleosome-range and distance-dependent manner, driving synergistic enhancer activation. We also discovered that Tead double motifs are widespread, highly active canonical response elements. Molecular dynamics simulations suggest that TEAD4 binds them cooperatively through surprisingly labile protein-protein interactions that depend on the DNA template. These results show that the response to signaling pathways is encoded in the cis-regulatory sequences and that interpreting the rules reveals insights into the mechanisms by which signaling effectors influence cell-type-specific enhancer activity.

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通过深度学习序列模型解释Hippo信号的调控机制。
信号通路成分研究得很好,但它们如何介导细胞类型特异性转录反应是一个未解决的问题。以小鼠滋养层干细胞中的Hippo通路为模型,我们发现信号效应物的DNA结合是由细胞类型特异性序列规则驱动的,可以通过深度学习模型在全基因组范围内学习。通过模型解释和实验验证,我们发现细胞类型特异性转录因子TFAP2C的基序以核小体范围和距离依赖的方式增强TEAD4/YAP1的结合,从而驱动协同增强子的激活。我们还发现Tead双基序是广泛存在的,高度活跃的规范响应元件。分子动力学模拟表明,TEAD4通过依赖于DNA模板的异常不稳定的蛋白质-蛋白质相互作用将它们结合在一起。这些结果表明,对信号通路的反应是在顺式调控序列中编码的,对这些规则的解释揭示了信号效应物影响细胞类型特异性增强子活性的机制。
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