High-resolution CTCF footprinting reveals impact of chromatin state on cohesin extrusion

C Corriene E. Sept Y Y. Esther Tak V Viraat Goel M Mital S. Bhakta C Christian G. Cerda-Smith H Haley M. Hutchinson (Department of Pharmacology and Cancer Biology, Duke University School of Medicine) M Marco Blanchette C Christine E. Eyler S Sarah E. Johnstone J J. Keith Joung (Krantz Family Center for Cancer Research, Massachusetts General Hospital Cancer Center and Harvard Medical School) A Anders S. Hansen M Martin J. Aryee

Abstract

Abstract Cohesin-mediated DNA loop extrusion enables gene regulation by distal enhancers through the establishment of chromosome structure and long-range enhancer-promoter interactions. The best characterized cohesin-related structures, such as topologically associating domains (TADs) anchored at convergent CTCF binding sites, represent static conformations. Consequently, loop extrusion dynamics remain poorly understood. To better characterize static and dynamically extruding chromatin loop structures, we use MNase-based 3D genome assays to simultaneously determine CTCF and cohesin localization as well as the 3D contacts they mediate. Here we present CTCF Analyzer (with) Multinomial Estimation (CAMEL), a tool that identifies CTCF footprints at near base-pair resolution in CTCF MNase HiChiP. We also use Region Capture Micro-C to identify a CTCF-adjacent footprint that is attributed to cohesin occupancy. We leverage this substantial advance in resolution to determine that the fully extruded (CTCF-CTCF loop) state is rare genome-wide with locus-specific variation from ~1–10%. We further investigate the impact of chromatin state on loop extrusion dynamics and find that active regulatory elements impede cohesin extrusion. These findings support a model of topological regulation whereby the transient, partially extruded state facilitates enhancer-promoter contacts that can regulate transcription.

Article Details

Volume / Issue Vol. 16, Issue 1
Published May 15, 2025
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (12)

C

Corriene E. Sept

Y

Y. Esther Tak

V

Viraat Goel

M

Mital S. Bhakta

C

Christian G. Cerda-Smith

H

Haley M. Hutchinson

Department of Pharmacology and Cancer Biology, Duke University School of Medicine

M

Marco Blanchette

C

Christine E. Eyler

S

Sarah E. Johnstone

J

J. Keith Joung

Krantz Family Center for Cancer Research, Massachusetts General Hospital Cancer Center and Harvard Medical School

A

Anders S. Hansen

M

Martin J. Aryee