CTCF aligns single-cell TAD-like domain boundaries and stabilizes long-range active chromatin clusters

CCCTC-binding factor (CTCF) is a key architectural protein in the three-dimensional (3D) genome, yet how its loss reshapes chromatin structure and transcription at single-cell resolution remains unclear. Using HiRES, which jointly profiles chromatin contacts and RNA from the same nucleus, we examined genome-wide effects of CTCF depletion. Topologically associating domain (TAD)-like domains (TLDs) across single cells remained largely unchanged in number and size after CTCF loss, but their boundaries became more variably positioned, and pseudobulk analyses revealed reduced interactions within A compartments. We also developed SALTAFinder to identify Spatially Aggregated Long-distance TLD Assemblies (SALTAs), clusters of TLDs occupying shared 3D space within single cells. A subset of SALTAs is enriched for highly expressed genes and super-enhancers and declines upon CTCF depletion. This structural reorganization coincided with a global reduction in per-cell RNA output, as indicated by HiRES and orthogonal measurements. Together, these findings suggest that CTCF contributes to the coordinated regulation of chromatin organization and transcriptional capacity and is associated with stabilization of long-range active chromatin clusters.

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Publication Details

Journal
Science Advances
Published
2026-09-04
DOI
https://doi.org/10.1126/sciadv.aee2863
Primary Topic
Genomics and Chromatin Dynamics
Type
article
Field-Weighted Citation Impact
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article

CTCF aligns single-cell TAD-like domain boundaries and stabilizes long-range active chromatin clusters

Jian Yan, Yunpeng Dai, Yanxiao Zhang, Ziyin Chen et al.
Science Advances
Genomics and Chromatin Dynamics
article

CTCF aligns single-cell TAD-like domain boundaries and stabilizes long-range active chromatin clusters

Jian Yan, Yunpeng Dai, Yanxiao Zhang, Ziyin Chen, Nan Wu, Miao Yu, Haolun Sun, Xuan Li, Kaiwen Shao
article en

Abstract

CCCTC-binding factor (CTCF) is a key architectural protein in the three-dimensional (3D) genome, yet how its loss reshapes chromatin structure and transcription at single-cell resolution remains unclear. Using HiRES, which jointly profiles chromatin contacts and RNA from the same nucleus, we examined genome-wide effects of CTCF depletion. Topologically associating domain (TAD)-like domains (TLDs) across single cells remained largely unchanged in number and size after CTCF loss, but their boundaries became more variably positioned, and pseudobulk analyses revealed reduced interactions within A compartments. We also developed SALTAFinder to identify Spatially Aggregated Long-distance TLD Assemblies (SALTAs), clusters of TLDs occupying shared 3D space within single cells. A subset of SALTAs is enriched for highly expressed genes and super-enhancers and declines upon CTCF depletion. This structural reorganization coincided with a global reduction in per-cell RNA output, as indicated by HiRES and orthogonal measurements. Together, these findings suggest that CTCF contributes to the coordinated regulation of chromatin organization and transcriptional capacity and is associated with stabilization of long-range active chromatin clusters.

Science AdvancesVol. 12(36)
Tung Wah College (HK), City University of Hong Kong (HK), Fudan University (CN), Westlake University (CN), City University of Hong Kong, Shenzhen Research Institute (CN), First Affiliated Hospital of Xi'an Jiaotong University (CN)
National Natural Science Foundation of China, China Postdoctoral Science Foundation
Openalex Percentile: Top 18%
Genomics and Chromatin Dynamics
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