Transcription can be sufficient, but is not necessary, to advance replication timing
Vouzas, A.; Sasaki, T.; Rivera-Mulia, J. C.; Turner, J. L.; Brown, A. N.; Alexander, K. E.; Brueckner, L.; van Steensel, B.; Gilbert, D. M.
Show abstract
DNA replication timing (RT) is correlated with transcription during cell fate changes but there are many exceptions and our understanding of this relationship suffers from a paucity of reductionist approaches. Here, we manipulated length and strength of transcription in hybrid-genome mouse embryonic stem cells (mESCs) at a single locus upstream of the silent, late replicating, Pleiotrophin (Ptn) gene, directly comparing RT to nascent transcription rates at engineered vs. wild-type alleles. First, we inserted four reporter genes that differ only in their promoter. Two promoters transcribed the reporter gene at high rates and advanced RT. The other two transcribed at lower rates and did not advance RT. Since these promoters may prove useful in applications where effects on RT are undesirable, we confirmed the inability of one of them to advance RT at numerous ectopic sites. We next juxtaposed these same four promoters upstream of the Ptn transcription start site where they all transcribed the 96kb Ptn gene and advanced RT to different extents correlated with transcription rates. Indeed, a doxycycline-responsive promoter, which could not advance RT when induced as a small reporter gene, elicited a rapid and reversible RT advance proportional to the rate of transcription, providing direct evidence that transcription itself can advance RT. However, deletion of the Ptn promoter and enhancer, followed by directed differentiation to neural precursors, eliminated induction of transcription throughout the entire Ptn replication domain, without preventing the switch to early replication. Our results provide a solid empirical base with which to re-evaluate many decades of literature, demonstrating that length and strength of transcription is sufficient but not necessary to advance RT. Our results also provide a robust system in which to rapidly effect an RT change, permitting mechanistic studies of the role of transcription in RT and the consequences of RT changes to epigenomic remodeling.
Matching journals
The top 7 journals account for 50% of the predicted probability mass.
Similar papers in this journal
Similar papers in this journal
- Two promoters integrate multiple enhancer inputs to drive wild-type knirps expression in the D. melanogaster embryo 95%
- Insights Into Ribosomal DNA (rDNA) Dominance and Magnification Through Characterization of Isogenic Deletion Alleles 94%
- Genetic dissection of transcription start site selection by RNA polymerase II in Saccharomyces cerevisiae 94%
Similar papers in this journal
- Clusters of deep intronic RbFox motifs embedded in large assembly of splicing regulators sequences regulate alternative splicing 94%
- The anterior Hox gene ceh-13 and elt-1/GATA activate the posterior Hox genes nob-1 and php-3 to specify posterior lineages in the C. elegans embryo 94%
- Chromatin interaction maps identify Wnt responsive cis-regulatory elements coordinating Paupar-Pax6 expression in neuronal cells 94%
Similar papers in this journal
- Retinoblastoma protein activity revealed by CRISPRi study of divergent Rbf1 and Rbf2 paralogs 95%
- Transcriptional repression and enhancer decommissioning silence cell cycle genes in postmitotic tissues. 94%
- Identification of different classes of genome instability suppressor genes through analysis of DNA damage response markers 93%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.