- PC Schwalie, MC Ward, CE Cain, AJ Faure, Y Gilad, DT Odom, P Flicek. Co-binding by YY1 identifies the transcriptionally active, highly conserved set of CTCF-bound regions in primate genomes. Genome Biol 2013;14(12):R148. doi:10.1186/gb-2013-14-12-r148
[BibTeX] [Abstract]
\textbf{BACKGROUND:} The genomic binding of CTCF is highly conserved across mammals, but the mechanisms that underlie its stability are poorly understood. One transcription factor known to functionally interact with CTCF in the context of X-chromosome inactivation is the ubiquitously expressed YY1. Because combinatorial transcription factor binding can contribute to the evolutionary stabilization of regulatory regions, we tested whether YY1 and CTCF co-binding could in part account for conservation of CTCF binding.
\textbf{RESULTS:} Combined analysis of CTCF and YY1 binding in lymphoblastoid cell lines from seven primates, as well as in mouse and human livers, reveals extensive genome-wide co-localization specifically at evolutionarily stable CTCF-bound regions. CTCF-YY1 co-bound regions resemble regions bound by YY1 alone, as they enrich for co-bound transcription factors, RNA polymerase II and active histone marks. Although these highly conserved, transcriptionally active CTCF-YY1 co-bound regions are often promoter-proximal, gene-distal sites show similar molecular features.
\textbf{CONCLUSIONS:} Our results reveal that these two ubiquitously expressed, multi-functional zinc-finger proteins collaborate in functionally active regions to stabilize one another’s genome-wide binding across primate evolution@Article{24380390, author = {Schwalie PC and Ward MC and Cain CE and Faure AJ and Gilad Y and Odom DT and Flicek P}, title = {Co-binding by YY1 identifies the transcriptionally active, highly conserved set of CTCF-bound regions in primate genomes}, journal = {Genome Biol}, volume = {14}, number = {12}, pages = {R148}, year = {2013}, doi = {10.1186/gb-2013-14-12-r148}, abstract = {\textbf{BACKGROUND:} The genomic binding of CTCF is highly conserved across mammals, but the mechanisms that underlie its stability are poorly understood. One transcription factor known to functionally interact with CTCF in the context of X-chromosome inactivation is the ubiquitously expressed YY1. Because combinatorial transcription factor binding can contribute to the evolutionary stabilization of regulatory regions, we tested whether YY1 and CTCF co-binding could in part account for conservation of CTCF binding.
\textbf{RESULTS:} Combined analysis of CTCF and YY1 binding in lymphoblastoid cell lines from seven primates, as well as in mouse and human livers, reveals extensive genome-wide co-localization specifically at evolutionarily stable CTCF-bound regions. CTCF-YY1 co-bound regions resemble regions bound by YY1 alone, as they enrich for co-bound transcription factors, RNA polymerase II and active histone marks. Although these highly conserved, transcriptionally active CTCF-YY1 co-bound regions are often promoter-proximal, gene-distal sites show similar molecular features.
\textbf{CONCLUSIONS:} Our results reveal that these two ubiquitously expressed, multi-functional zinc-finger proteins collaborate in functionally active regions to stabilize one another's genome-wide binding across primate evolution},}
Description
Abstract
The genomic binding of CTCF is highly conserved across mammals, but the mechanisms that underlie its stability are poorly understood. One transcription factor known to functionally interact with CTCF in the context of X-chromosome inactivation is the ubiquitously expressed YY1. Because combinatorial transcription factor binding can contribute to the evolutionary stabilization of regulatory regions, we tested whether YY1 and CTCF co-binding could in part account for conservation of CTCF binding.
Combined analysis of CTCF and YY1 binding in lymphoblastoid cell lines from seven primates, as well as in mouse and human livers, reveals extensive genome-wide co-localization specifically at evolutionarily stable CTCF-bound regions. CTCF-YY1 co-bound regions resemble regions bound by YY1 alone, as they enrich for co-bound transcription factors, RNA polymerase II and active histone marks. Although these highly conserved, transcriptionally active CTCF-YY1 co-bound regions are often promoter-proximal, gene-distal sites show similar molecular features.
Our results reveal that these two ubiquitously expressed, multi-functional zinc-finger proteins collaborate in functionally active regions to stabilize one another’s genome-wide binding across primate evolution.
Full details published in Genome Biology .
Raw Data
The multi-species CTCF and YY1 ChIP-seq reads can be found in ArrayExpress with the accession number E-MTAB-1511. ChIP-seq fastq data : E-MTAB-1511
The multi-species gene expression data can be found in Arrayexpress with the accession number E-MTAB-424. RNA-seq fastq data: E-MTAB-424.
Peak calls
Peaks calls made using CCAT 3.0 can be found in ArrayExpress with the accession number E-MTAB-1511 , along with the raw data and are also provided below as gff files (chr, peakCaller, TF-species-tissue, start, end, CCATScore, +, ., chr:peakStartEnd).
CTCF peak calls in LCL and Liver
YY1 peak calls in LCL and Liver
CTCF peaks overlapping (or not) YY1 (GRCh37/hg19 and GRCm38/mm10)
CTCF peaks shared with all primates (GRCh37/hg19)
CTCF and YY1 peaks overlapping enriched repetitive elements (LTR13, LTR41, LTR50 and MLTs)
Human peak calls shared in other species
For each human peak call, the sharing status in other species is listed in both LCLs and liver tissue. Primate specific and mammalian EPO alignments were used in the analysis. Columns are labelled in each file.
Format of primate EPO alignment column: (0 not present, 1 shared); species order hsa, ptr, ggo, ppy, mml, pha, cja (soed); all zeros: region not in alignment.
Format of mammal EPO alignment column: (0 not present, 1 shared); species order hsa, mml, cja, mmu; all zeros: region not in alignment.
Human coordinates from GRCh37/hp19 assembly.