Author:
Sima Jiao,Chakraborty Abhijit,Dileep Vishnu,Michalski Marco,Rivera-Mulia Juan Carlos,Trevilla-Garcia Claudia,Klein Kyle N.,Bartlett Daniel,Washburn Brian K.,Paulsen Michelle T.,Vera Daniel,Nora Elphège P.,Kraft Katerina,Mundlos Stefan,Bruneau Benoit G.,Ljungman Mats,Fraser Peter,Ay Ferhat,Gilbert David M.
Abstract
SUMMARYThe temporal order of DNA replication (replication timing, RT) is highly coupled with genome architecture, butcis-elements regulating spatio-temporal control of replication have remained elusive. We performed an extensive series of CRISPR mediated deletions and inversions and high-resolution capture Hi-C of a pluripotency associated domain (DppA2/4) in mouse embryonic stem cells. Whereas CTCF mediated loops and chromatin domain boundaries were dispensable, deletion of three intra-domain prominent CTCF-independent 3D contact sites caused a domain-wide delay in RT, shift in sub-nuclear chromatin compartment and loss of transcriptional activity, These “early replication control elements” (ERCEs) display prominent chromatin features resembling enhancers/promoters and individual and pair-wise deletions of the ERCEs confirmed their partial redundancy and interdependency in controlling domain-wide RT and transcription. Our results demonstrate that discretecis-regulatory elements mediate domain-wide RT, chromatin compartmentalization, and transcription, representing a major advance in dissecting the relationship between genome structure and function.Highlightscis-elements (ERCEs) regulate large scale chromosome structure and functionMultiple ERCEs cooperatively control domain-wide replicationERCEs harbor prominent active chromatin features and form CTCF-independent loopsERCEs enable genetic dissection of large-scale chromosome structure-function.
Publisher
Cold Spring Harbor Laboratory