4.5 Article

Tandem CTCF sites function as insulators to balance spatial chromatin contacts and topological enhancer-promoter selection

期刊

GENOME BIOLOGY
卷 21, 期 1, 页码 -

出版社

BMC
DOI: 10.1186/s13059-020-01984-7

关键词

CTCF; Insulator; Promoter; enhancer selection; 3D genome; Gene regulation; Loop extrusion; Cohesin; Chromatin polymer simulation; Bayesian networks; Topological spatial contacts

资金

  1. National Natural Science Foundation of China [31630039, 31700666]
  2. Ministry of Science and Technology of China [2017YFA0504203, 2018YFC1004504]
  3. Science and Technology Commission of Shanghai Municipality [19JC1412500]

向作者/读者索取更多资源

Background CTCF is a key insulator-binding protein, and mammalian genomes contain numerous CTCF sites, many of which are organized in tandem. Results Using CRISPR DNA-fragment editing, in conjunction with chromosome conformation capture, we find that CTCF sites, if located between enhancers and promoters in the protocadherin (Pcdh) and beta-globin clusters, function as an enhancer-blocking insulator by forming distinct directional chromatin loops, regardless whether enhancers contain CTCF sites or not. Moreover, computational simulation in silico and genetic deletions in vivo as well as dCas9 blocking in vitro revealed balanced promoter usage in cell populations and stochastic monoallelic expression in single cells by large arrays of tandem CTCF sites in the Pcdh and immunoglobulin heavy chain (Igh) clusters. Furthermore, CTCF insulators promote, counter-intuitively, long-range chromatin interactions with distal directional CTCF sites, consistent with the cohesin loop extrusion model. Finally, gene expression levels are negatively correlated with CTCF insulators located between enhancers and promoters on a genome-wide scale. Thus, single CTCF insulators ensure proper enhancer insulation and promoter activation while tandem CTCF topological insulators determine balanced spatial contacts and promoter choice. Conclusions These findings have interesting implications on the role of topological chromatin insulators in 3D genome folding and developmental gene regulation.

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