bioRxiv · 10.64898/2026.01.05.696797
DNA sequence quantitatively encodes CTCF-binding affinity at genome scale
Abstract
CTCF is a central architectural protein that shapes 3D genome organization through sequence-specific DNA binding, but how DNA sequence quantitatively determines CTCF-binding strength remains poorly understood. Progress has been hampered by the lack of large, high-quality measurements of binding affinity. Here, we experimentally determine in vitro CTCF-binding affinity for 276,765 DNA sequences derived from the human genome, generating a comprehensive quantitative landscape of CTCF-DNA interactions. Leveraging these data, we develop DeepCTCF, a deep learning model that predicts CTCF-binding strength directly from DNA sequence and enables quantitative interpretation of CTCF motif grammar. Using this framework, we systematically dissect how specific sequence features modulate CTCF-binding affinity and generate quantitative predictions for disease-associated variants that alter CTCF binding. Together, this study defines general principles by which DNA sequence encodes CTCF-binding affinity and provides a quantitative framework for interpreting regulatory sequence variation. TeaserMapping how DNA encodes CTCF binding reveals quantitative rules across over 1{per thousand} of the human genome.
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Yin, Z., Wang, Y., Hou, G., Chen, Y., Feng, H., Zhu, J., Xie, Y., Wang, R., Zhang, Z., Wu, T., Huang, H., Xie, S., Wang, W., Gu, W., Wu, Q., Shen, N., Guo, Y.. 2026-01-05. DNA sequence quantitatively encodes CTCF-binding affinity at genome scale. https://doi.org/10.64898/2026.01.05.696797
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