local insulation
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2021 ◽  
pp. 108418
Author(s):  
Yin Tang ◽  
Zixiong Su ◽  
Hang Yu ◽  
Kege Zhang ◽  
Chaoen Li ◽  
...  

2021 ◽  
Author(s):  
Abrar Aljahani ◽  
Peng Hua ◽  
Magdalena A. Karpinska ◽  
Kimberly Quililan ◽  
James O. J. Davies ◽  
...  

Enhancers and promoters predominantly interact within large-scale topologically associating domains (TADs), which are formed by loop extrusion mediated by cohesin and CTCF. However, it is unclear whether complex chromatin structures exist at sub-kilobase-scale and to what extent fine-scale regulatory interactions depend on loop extrusion. To address these questions, we present an MNase-based chromosome conformation capture (3C) approach, which has enabled us to generate the most detailed local interaction data to date and precisely investigate the effects of cohesin and CTCF depletion on chromatin architecture. Our data reveal that cis-regulatory elements have distinct internal nano-scale structures, within which local insulation is dependent on CTCF, but which are independent of cohesin. In contrast, we find that depletion of cohesin causes a subtle reduction in longer-range enhancer-promoter interactions and that CTCF depletion can cause rewiring of regulatory contacts. Together, our data show that loop extrusion is not essential for enhancer-promoter interactions, but contributes to their robustness and specificity and to precise regulation of gene expression.


2019 ◽  
Author(s):  
Ricardo Saldaña-Meyer ◽  
Javier Rodriguez-Hernaez ◽  
Mayilaadumveettil Nishana ◽  
Karina Jácome-López ◽  
Elphege P. Nora ◽  
...  

SummaryThe function of the CCCTC-binding factor (CTCF) in the organization of the genome has become an important area of investigation, but the mechanisms of how CTCF dynamically contributes to genome organization is not clear. We previously discovered that CTCF binds to large numbers of endogenous RNAs; promoting its oligomerization. Here we found that inhibition of transcription or interfering with CTCF ability to bind RNA through mutations of two of its 11 zinc fingers that are not involved with CTCF binding to its cognate site in vitro, zinc finger-1 (ZF1) or −10 (ZF10), disrupt CTCF association to chromatin. These mutations alter gene expression profiles as CTCF mutants lose their ability to promote local insulation. Our results highlight the importance of RNA as a structural component of the genome, in part by affecting the association of CTCF with chromatin and likely its interaction with other factors.Transcriptional inhibition disrupts CTCF binding to chromatinRNA-binding regions (RBR) in CTCF are found within ZF1 and ZF10Local insulation is markedly decreased in ZF1∆ and ZF10∆ mutant rescuesGene expression and chromatin organization are disrupted by RBR mutants


Cell ◽  
2017 ◽  
Vol 169 (5) ◽  
pp. 930-944.e22 ◽  
Author(s):  
Elphège P. Nora ◽  
Anton Goloborodko ◽  
Anne-Laure Valton ◽  
Johan H. Gibcus ◽  
Alec Uebersohn ◽  
...  

2016 ◽  
Author(s):  
Elphege P Nora ◽  
Anton Goloborodko ◽  
Anne-Laure Valton ◽  
Johan Harmen Gibcus ◽  
Alec Uebersohn ◽  
...  

The molecular mechanisms underlying folding of mammalian chromosomes remain poorly understood. The transcription factor CTCF is a candidate regulator of chromosomal structure. Using the auxin-inducible degron system in mouse embryonic stem cells, we show that CTCF is absolutely and dose-dependently required for looping between CTCF target sites and segmental organization into topologically associating domains (TADs). Restoring CTCF reinstates proper architecture on altered chromosomes, indicating a powerful instructive function for CTCF in chromatin folding, and CTCF remains essential for TAD organization in non-dividing cells. Surprisingly, active and inactive genome compartments remain properly segregated upon CTCF depletion, revealing that compartmentalization of mammalian chromosomes emerges independently of proper insulation of TADs. Further, our data supports that CTCF mediates transcriptional insulator function through enhancer-blocking but not direct chromatin barrier activity. These results define the functions of CTCF in chromosome folding, and provide new fundamental insights into the rules governing mammalian genome organization.


2016 ◽  
Vol 20 (11) ◽  
pp. 194-200
Author(s):  
Pavel Ivanov ◽  
◽  
Evgeniy Dulskiy ◽  
Anatoliy Khudonogov ◽  
◽  
...  

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