bioRxiv · 10.1101/2025.11.25.690553
Ultrafast CTCF dynamics control cohesin barrier function
Abstract
Genomes are organized into chromatin loops through cohesin-mediated extrusion, with CTCF acting as a polar boundary element. As cohesin approaches CTCF at kilobase-per-second speeds, it must rapidly choose whether to stall or bypass. How CTCF encodes this probabilistic decision within a brief encounter window has remained unclear. Here we show that CTCF governs this probabilistic outcome by rapidly sampling a dynamic ensemble of conformations generated by spontaneous rearrangements of its DNA-binding zinc fingers. This ensemble is tuned by DNA sequence, CpG methylation, nearby nucleosomes, and the cohesin regulator PDS5A before cohesin engagement. Upon cohesin binding, PDS5A enhances loop-anchor mechanical stability, reinforcing orientation-dependent boundaries. These findings establish conformational ensemble tuning, rather than static occupancy, as a regulatory principle linking base pair-scale motions to megabase-scale genome organization. One sentence summaryChromatin boundary function is governed not by CTCF occupancy alone, but by a tunable ensemble of DNA-bound conformations that probabilistically gates cohesin capture.
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Rudnizky, S., Murray, P. J., Sorensen, E. W., Koenig, T. J. R., Pangeni, S., Merino-Urteaga, R., Chhabra, H., Caccianini, L., Davidson, I. F., Osorio-Valeriano, M., Hook, P. W., Meneses, P., Hao, J., Zarb, J. S., Hatzakis, N. S., Timp, W., Farnung, L., Vos, S. M., Peters, J.-M., Aksimentiev, A., Ha, T.. 2025-11-29. Ultrafast CTCF dynamics control cohesin barrier function. https://doi.org/10.1101/2025.11.25.690553
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