ESCO1 and CTCF enable formation of long chromatin loops by protecting cohesinSTAG1 from WAPL

  1. Gordana Wutz
  2. Rene Ladurner
  3. Brian Glenn St Hilaire
  4. Roman R Stocsits
  5. Kota Nagasaka
  6. Benoit Pignard
  7. Adrian Sanborn
  8. Wen Tang
  9. Csilla Várnai
  10. Miroslav P Ivanov
  11. Stefan Schoenfelder
  12. Petra van der Lelij
  13. Xingfan Huang
  14. Gerhard Dürnberger
  15. Elisabeth Roitinger
  16. Karl Mechtler
  17. Iain Finley Davidson
  18. Peter J Fraser
  19. Erez Lieberman-Aiden  Is a corresponding author
  20. Jan-Michael Peters  Is a corresponding author
  1. Research Institute of Molecular Pathology, Austria
  2. Baylor College of Medicine, United States
  3. Stanford University, United States
  4. University of Birmingham, United Kingdom
  5. The Francis Crick Institute, United Kingdom
  6. The Babraham Institute, United Kingdom
  7. University of Washington, United States
  8. Gregor Mendel Institute of Molecular Plant Biology, Austria
  9. Institute of Molecular Biotechnology, Austria
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  1. Gordana Wutz
  2. Rene Ladurner
  3. Brian Glenn St Hilaire
  4. Roman R Stocsits
  5. Kota Nagasaka
  6. Benoit Pignard
  7. Adrian Sanborn
  8. Wen Tang
  9. Csilla Várnai
  10. Miroslav P Ivanov
  11. Stefan Schoenfelder
  12. Petra van der Lelij
  13. Xingfan Huang
  14. Gerhard Dürnberger
  15. Elisabeth Roitinger
  16. Karl Mechtler
  17. Iain Finley Davidson
  18. Peter J Fraser
  19. Erez Lieberman-Aiden
  20. Jan-Michael Peters
(2020)
ESCO1 and CTCF enable formation of long chromatin loops by protecting cohesinSTAG1 from WAPL
eLife 9:e52091.
https://doi.org/10.7554/eLife.52091