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Series GSE164341 Query DataSets for GSE164341
Status Public on Mar 01, 2021
Title Mitotic bookmarking by H3K27 acetylation is critical for rapid transcriptional, but not architectural, resetting of stem cell-related genes and enhancers upon G1 entry [ChIP-seq]
Organism Mus musculus
Experiment type Genome binding/occupancy profiling by high throughput sequencing
Summary The identity of dividing cells is challenged during mitosis, as transcription is halted and chromatin architecture drastically altered. How cell type-specific gene expression and genomic organization are faithfully reset upon G1 entry in daughter cells remains elusive. To address this issue, we characterized at a genome-wide scale the dynamic transcriptional and architectural resetting of mouse pluripotent stem cells (PSCs) upon mitotic exit. This revealed distinct patterns of transcriptional reactivation with rapid induction of stem cell genes and their enhancers, a more gradual recovery of metabolic and cell cycle genes, and a weak and transient activation of lineage-specific genes only during G1. Topological reorganization at different hierarchical levels also occurred in an asynchronous manner and showed an overall weak coordination with transcriptional reactivation. Chromatin interactions around active promoters and enhancers, and particularly super enhancers, reformed at a faster rate than CTCF/Cohesin-bound structural loops. Interestingly, although regions with mitotic retention of the active histone mark H3K27ac associated both with faster transcriptional and architectural resetting, depletion of this mark specifically during mitosis perturbed transcriptional reactivation of H3K27ac-bookmarked genes without affecting chromatin topology. Our study provides an integrative map of the topological and transcriptional changes that lead to the resetting of pluripotent stem cell identity during mitotic exit, and reveals distinct patterns and features that balance the dual requirements for self-renewal and differentiation.
 
Overall design H3K27ac ChIP-seq of mouse iPSCs after p300 inhibition and recovery, both in asychronous and M-to-G1 cell cycle populations. DMSO treatment was used as a control, and two replicates per condition/time point were analyzed. Both H3K27ac ChIP and input samples are included.
 
Contributor(s) Polyzos A, Apostolou E
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Submission date Jan 06, 2021
Last update date Oct 10, 2023
Contact name Effie Apostolou
E-mail(s) [email protected]
Organization name Weill Cornell Medicine
Street address 1161 York Avenue, Apt 8A
City New York
State/province NY
ZIP/Postal code 10065
Country USA
 
Platforms (1)
GPL30172 NextSeq 2000 (Mus musculus)
Samples (32)
GSM5007842 Mit DMSO Rep A ChIP
GSM5007843 Mit DMSO Rep B ChIP
GSM5007844 Mit p300i Rep A ChIP
This SubSeries is part of SuperSeries:
GSE138965 The transcriptional and architectural resetting of stem cell identity during G1 entry
Relations
BioProject PRJNA690074
SRA SRP300629

Download family Format
SOFT formatted family file(s) SOFTHelp
MINiML formatted family file(s) MINiMLHelp
Series Matrix File(s) TXTHelp

Supplementary file Size Download File type/resource
GSE164341_RAW.tar 3.4 Gb (http)(custom) TAR (of BW)
SRA Run SelectorHelp
Raw data are available in SRA
Processed data provided as supplementary file

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