Determining cellular CTCF and cohesin abundances to constrain 3D genome models

Author:

Cattoglio Claudia12ORCID,Pustova Iryna12,Walther Nike3ORCID,Ho Jaclyn J12,Hantsche-Grininger Merle3,Inouye Carla J12,Hossain M Julius3ORCID,Dailey Gina M1,Ellenberg Jan3ORCID,Darzacq Xavier1ORCID,Tjian Robert12ORCID,Hansen Anders S12ORCID

Affiliation:

1. Department of Molecular and Cell Biology, Li Ka Shing Center for Biomedical and Health Sciences, CIRM Center of Excellence, University of California, Berkeley, Berkeley, United States

2. Howard Hughes Medical Institute, Berkeley, United States

3. Cell Biology and Biophysics Unit, European Molecular Biology Laboratory (EMBL), Heidelberg, Germany

Abstract

Achieving a quantitative and predictive understanding of 3D genome architecture remains a major challenge, as it requires quantitative measurements of the key proteins involved. Here, we report the quantification of CTCF and cohesin, two causal regulators of topologically associating domains (TADs) in mammalian cells. Extending our previous imaging studies (Hansen et al., 2017), we estimate bounds on the density of putatively DNA loop-extruding cohesin complexes and CTCF binding site occupancy. Furthermore, co-immunoprecipitation studies of an endogenously tagged subunit (Rad21) suggest the presence of cohesin dimers and/or oligomers. Finally, based on our cell lines with accurately measured protein abundances, we report a method to conveniently determine the number of molecules of any Halo-tagged protein in the cell. We anticipate that our results and the established tool for measuring cellular protein abundances will advance a more quantitative understanding of 3D genome organization, and facilitate protein quantification, key to comprehend diverse biological processes.

Funder

Siebel Stem Cell Institute

Howard Hughes Medical Institute

National Institutes of Health

California Institute of Regenerative Medicine

European Molecular Biology Laboratory

The Paul G Allen Frontiers Group

Horizon 2020 Framework Programme

Publisher

eLife Sciences Publications, Ltd

Subject

General Immunology and Microbiology,General Biochemistry, Genetics and Molecular Biology,General Medicine,General Neuroscience

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