Chromatin extrusion explains key features of loop and domain formation in wild-type and engineered genomes
Экструзия хроматина объясняет ключевые особенности образования петель и доменов в дикого типа и модифицированных геномах
2015-10-23
SCID: 54.1/9t4gd6jk
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CTCFchromatin extrusioncohesinkilobase-resolution Hi-Cloop extrusion model
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Abstract (AI)
We recently used in situ Hi-C to create kilobase-resolution 3D maps of mammalian genomes. Here, we combine these maps with new Hi-C, microscopy, and genome-editing experiments to study the physical structure of chromatin fibers, domains, and loops. We find that the observed contact domains are inconsistent with the equilibrium state for an ordinary condensed polymer. Combining Hi-C data and novel mathematical theorems, we show that contact domains are also not consistent with a fractal globule. Instead, we use physical simulations to study two models of genome folding. In one, intermonomer attraction during polymer condensation leads to formation of an anisotropic "tension globule." In the other, CCCTC-binding factor (CTCF) and cohesin act together to extrude unknotted loops during interphase. Both models are consistent with the observed contact domains and with the observation that contact domains tend to form inside loops. However, the extrusion model explains a far wider array of observations, such as why loops tend not to overlap and why the CTCF-binding motifs at pairs of loop anchors lie in the convergent orientation. Finally, we perform 13 genome-editing experiments examining the effect of altering CTCF-binding sites on chromatin folding. The convergent rule correctly predicts the affected loops in every case. Moreover, the extrusion model accurately predicts in silico the 3D maps resulting from each experiment using only the location of CTCF-binding sites in the WT. Thus, we show that it is possible to disrupt, restore, and move loops and domains using targeted mutations as small as a single base pair.
Key Findings
1
A loop extrusion model, where CTCF and cohesin extrude unknotted loops, reproduces contact domains and explains domains forming inside loops.
2
A polymer condensation model with intermonomer attraction produces an anisotropic "tension globule" that can reproduce contact domains.
3
Contact domains are not consistent with a fractal globule, as shown by combining Hi-C data and mathematical theorems.
4
Observed contact domains are inconsistent with the equilibrium state of an ordinary condensed polymer.
5
Targeted mutations as small as a single base pair can disrupt, restore, or move loops and domains, confirming model predictions.
6
The extrusion model accurately predicts in silico the 3D Hi-C maps resulting from each genome-editing experiment using only wild-type CTCF site locations.
7
The extrusion model uniquely explains why loops seldom overlap and why CTCF-binding motifs at loop anchors are in the convergent orientation.
8
Thirteen genome-editing experiments altering CTCF-binding sites were performed, and the convergent rule correctly predicted affected loops in every case.
Research Object
Chromatin fibers/domains and chromatin loops in mammalian genomes (wild-type and engineered)
Research Subject
Mechanism of loop and domain formation mediated by chromatin extrusion (CTCF- and cohesin-driven loop extrusion) and its ability to explain contact-domain features, loop non-overlap, convergent CTCF orientation, and effects of targeted CTCF-site edits
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2015-10-23
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