» Articles » PMID: 36117989

CTCF DNA-binding Domain Undergoes Dynamic and Selective Protein-protein Interactions

Overview
Journal iScience
Publisher Cell Press
Date 2022 Sep 19
PMID 36117989
Authors
Affiliations
Soon will be listed here.
Abstract

CTCF is a predominant insulator protein required for three-dimensional chromatin organization. However, the roles of its insulation of enhancers in a 3D nuclear organization have not been fully explained. Here, we found that the CTCF DNA-binding domain (DBD) forms dynamic self-interacting clusters. Strikingly, CTCF DBD clusters were found to incorporate other insulator proteins but are not coenriched with transcriptional activators in the nucleus. This property is not observed in other domains of CTCF or the DBDs of other transcription factors. Moreover, endogenous CTCF shows a phenotype consistent with the DBD by forming small protein clusters and interacting with CTCF motif arrays that have fewer transcriptional activators bound. Our results reveal an interesting phenomenon in which CTCF DBD interacts with insulator proteins and selectively localizes to nuclear positions with lower concentrations of transcriptional activators, providing insights into the insulation function of CTCF.

Citing Articles

Nuclear ANLN regulates transcription initiation related Pol II clustering and target gene expression.

Cao Y, Wang H, Sun Y, Tong B, Shi W, Peng L Nat Commun. 2025; 16(1):1271.

PMID: 39894879 PMC: 11788435. DOI: 10.1038/s41467-025-56645-9.


Precision epigenetic editing: Technological advances, enduring challenges, and therapeutic applications.

Roth G, Gengaro I, Qi L Cell Chem Biol. 2024; .

PMID: 39137782 PMC: 11799355. DOI: 10.1016/j.chembiol.2024.07.007.


Single-molecule imaging reveals a direct role of CTCF's zinc fingers in SA interaction and cluster-dependent RNA recruitment.

Huber J, Tanasie N, Zernia S, Stigler J Nucleic Acids Res. 2024; 52(11):6490-6506.

PMID: 38742641 PMC: 11194110. DOI: 10.1093/nar/gkae391.


Mechanism of phase condensation for chromosome architecture and function.

Park J, Kim J, Ryu J Exp Mol Med. 2024; 56(4):809-819.

PMID: 38658703 PMC: 11059216. DOI: 10.1038/s12276-024-01226-x.


Analysis of long-range chromatin contacts, compartments and looping between mouse embryonic stem cells, lens epithelium and lens fibers.

Camerino M, Chang W, Cvekl A Epigenetics Chromatin. 2024; 17(1):10.

PMID: 38643244 PMC: 11031936. DOI: 10.1186/s13072-024-00533-x.


References
1.
Khan A, Fornes O, Stigliani A, Gheorghe M, Castro-Mondragon J, van der Lee R . JASPAR 2018: update of the open-access database of transcription factor binding profiles and its web framework. Nucleic Acids Res. 2017; 46(D1):D1284. PMC: 5753202. DOI: 10.1093/nar/gkx1188. View

2.
Zhao H, Dean A . An insulator blocks spreading of histone acetylation and interferes with RNA polymerase II transfer between an enhancer and gene. Nucleic Acids Res. 2004; 32(16):4903-19. PMC: 519119. DOI: 10.1093/nar/gkh832. View

3.
Holzmann J, Politi A, Nagasaka K, Hantsche-Grininger M, Walther N, Koch B . Absolute quantification of cohesin, CTCF and their regulators in human cells. Elife. 2019; 8. PMC: 6606026. DOI: 10.7554/eLife.46269. View

4.
Hansen A, Hsieh T, Cattoglio C, Pustova I, Saldana-Meyer R, Reinberg D . Distinct Classes of Chromatin Loops Revealed by Deletion of an RNA-Binding Region in CTCF. Mol Cell. 2019; 76(3):395-411.e13. PMC: 7251926. DOI: 10.1016/j.molcel.2019.07.039. View

5.
Chernukhin I, Shamsuddin S, Kang S, Bergstrom R, Kwon Y, Yu W . CTCF interacts with and recruits the largest subunit of RNA polymerase II to CTCF target sites genome-wide. Mol Cell Biol. 2007; 27(5):1631-48. PMC: 1820452. DOI: 10.1128/MCB.01993-06. View