4.8 Article

The Energetics and Physiological Impact of Cohesin Extrusion

Journal

CELL
Volume 173, Issue 5, Pages 1165-+

Publisher

CELL PRESS
DOI: 10.1016/j.cell.2018.03.072

Keywords

-

Funding

  1. NIAMS
  2. NCI
  3. NIAID funding
  4. NIH Helix Systems
  5. Paul and Daisy Soros Fellowship
  6. Fannie and John Hertz Foundation Fellowship
  7. Cornelia de Lange Syndrome Foundation
  8. NIH New Innovator Award [1DP2OD008540-01]
  9. NSF Physics Frontiers Center Award [PHY-1427654]
  10. NHGRI Center for Excellence for Genomic Sciences [HG006193]
  11. Welch Foundation [Q-1866, C-1792]
  12. NVIDIA Research Center Award
  13. IBM University Challenge Award
  14. Google Research Award
  15. Cancer Prevention Research Institute of Texas Scholar Award [R1304]
  16. USDA Agriculture and Food Research Initiative Grant [2017-05741]
  17. McNair Medical Institute Scholar Award
  18. NIH Encyclopedia of DNA Elements Mapping Center Award [UM1HG009375]
  19. President's Early Career Award in Science and Engineering
  20. NSF [PHY-1427654, CHE-1614101]
  21. Div Of Molecular and Cellular Bioscience
  22. Direct For Biological Sciences [1614101] Funding Source: National Science Foundation

Ask authors/readers for more resources

Cohesin extrusion is thought to play a central role in establishing the architecture of mammalian genomes. However, extrusion has not been visualized in vivo, and thus, its functional impact and energetics are unknown. Using ultra-deep Hi-C, we show that loop domains form by a process that requires cohesin ATPases. Once formed, however, loops and compartments are maintained for hours without energy input. Strikingly, without ATP, we observe the emergence of hundreds of CTCF-independent loops that link regulatory DNA. We also identify architectural stripes,'' where a loop anchor interacts with entire domains at high frequency. Stripes often tether super-enhancers to cognate promoters, and in B cells, they facilitate Igh transcription and recombination. Stripe anchors represent major hotspots for topoisomerase-mediated lesions, which promote chromosomal translocations and cancer. In plasmacytomas, stripes can deregulate Igh-translocated oncogenes. We propose that higher organisms have coopted cohesin extrusion to enhance transcription and recombination, with implications for tumor development.

Authors

I am an author on this paper
Click your name to claim this paper and add it to your profile.

Reviews

Primary Rating

4.8
Not enough ratings

Secondary Ratings

Novelty
-
Significance
-
Scientific rigor
-
Rate this paper

Recommended

No Data Available
No Data Available