Transcription shapes 3D chromatin organization by interacting with loop extrusion
Транскрипция формирует 3D‑организацию хроматина во взаимодействии с экструзией петель
2023-03-10
SCID: 54.1/bf2bpeea
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Hi-C chromatin contact patternsRNA polymerase (RNAP) as moving extrusion barriercohesinloop extrusionpolymer simulations of extrusion-transcription interactions
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Abstract (AI)
Cohesin folds mammalian interphase chromosomes by extruding the chromatin fiber into numerous loops. "Loop extrusion" can be impeded by chromatin-bound factors, such as CTCF, which generates characteristic and functional chromatin organization patterns. It has been proposed that transcription relocalizes or interferes with cohesin and that active promoters are cohesin loading sites. However, the effects of transcription on cohesin have not been reconciled with observations of active extrusion by cohesin. To determine how transcription modulates extrusion, we studied mouse cells in which we could alter cohesin abundance, dynamics, and localization by genetic "knockouts" of the cohesin regulators CTCF and Wapl. Through Hi-C experiments, we discovered intricate, cohesin-dependent contact patterns near active genes. Chromatin organization around active genes exhibited hallmarks of interactions between transcribing RNA polymerases (RNAPs) and extruding cohesins. These observations could be reproduced by polymer simulations in which RNAPs were moving barriers to extrusion that obstructed, slowed, and pushed cohesins. The simulations predicted that preferential loading of cohesin at promoters is inconsistent with our experimental data. Additional ChIP-seq experiments showed that the putative cohesin loader Nipbl is not predominantly enriched at promoters. Therefore, we propose that cohesin is not preferentially loaded at promoters and that the barrier function of RNAP accounts for cohesin accumulation at active promoters. Altogether, we find that RNAP is an extrusion barrier that is not stationary, but rather, translocates and relocalizes cohesin. Loop extrusion and transcription might interact to dynamically generate and maintain gene interactions with regulatory elements and shape functional genomic organization.
Key Findings
1
ChIP-seq shows Nipbl is not predominantly enriched at promoters, arguing against promoter-biased cohesin loading.
2
Hi-C experiments reveal intricate, cohesin-dependent chromatin contact patterns near active genes influenced by transcription.
3
Polymer simulations where transcribing RNA polymerases act as moving barriers that obstruct, slow, and push cohesins reproduce observed chromatin organization.
4
Preferential cohesin loading at promoters is inconsistent with experimental data and simulation predictions.
5
RNA polymerase functions as a non-stationary extrusion barrier that translocates and relocalizes cohesin, shaping gene-regulatory chromatin interactions.
Research Object
Cohesin-mediated chromatin loop extrusion in mouse interphase chromosomes (including cohesin, RNAP and active genes)
Research Subject
How transcription (translocating RNA polymerases) interacts with and acts as moving barriers to cohesin loop extrusion, affecting cohesin accumulation, localization, dynamics, and local 3D chromatin contact patterns around active promoters/genes
Publication Details
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2023-03-10
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