Study / S25RSXQ5I2014-04-08

Dissection of thousands of cell type-specific enhancers identifies dinucleotide repeat motifs as general enhancer features

J. Omar Yáñez-Cuna, Cosmas D. Arnold, Gerald Stampfel, Łukasz M. Boryń, Daniel Gerlach et al.

About this study

Gene expression is determined by genomic elements called enhancers, which contain short motifs bound by different transcription factors (TFs). However, how enhancer sequences and TF motifs relate to enhancer activity is unknown, and general sequence requirements for enhancers or comprehensive sets of important enhancer sequence elements have remained elusive. Here, we computationally dissect thousands of functional enhancer sequences from three different Drosophila cell lines. We find that the enhancers display distinct cis-regulatory sequence signatures, which are predictive of the enhancers’ cell type-specific or broad activities. These signatures contain transcription factor motifs and a novel class of enhancer sequence elements, dinucleotide repeat motifs (DRMs). DRMs are highly enriched in enhancers, particularly in enhancers that are broadly active across different cell types. We experimentally validate the importance of the identified TF motifs and DRMs for enhancer function and show that they can be sufficient to create an active enhancer de novo from a nonfunctional sequence. The function of DRMs as a novel class of general enhancer features that are also enriched in human regulatory regions might explain their implication in several diseases and provides important insights into gene regulation.

Full author list & citation

J. Omar Yáñez-Cuna, Cosmas D. Arnold, Gerald Stampfel, Łukasz M. Boryń, Daniel Gerlach, Martina Rath, Alexander Stark. Dissection of thousands of cell type-specific enhancers identifies dinucleotide repeat motifs as general enhancer features. 2014-04-08. https://doi.org/10.1101/gr.169243.113

Experiments 3

E2V3I2S4H

Ovarian somatic cell genome-wide STARR-seq enhancer activity screen

A genome-wide approximately 500-bp Drosophila melanogaster genomic-fragment library was assayed episomally in ovarian somatic cells using the self-transcribing active regulatory region reporter. The processed table contains final STARR-seq peak calls, log2 cDNA/input enrichment, and the paper's stringent enhancer-class membership.

Standard STARR-seqFruit flydm3
Explore data
E7ARAPGP0

S2-cell genome-wide STARR-seq enhancer activity screen

A genome-wide approximately 500-bp Drosophila melanogaster genomic-fragment library was assayed episomally in Schneider 2 cells using the self-transcribing active regulatory region reporter. The processed table contains final STARR-seq peak calls, log2 cDNA/input enrichment, and the paper's stringent enhancer-class membership.

Standard STARR-seqFruit flydm3
Explore data
E9P4YTJ6K

BG3-cell genome-wide STARR-seq enhancer activity screen

A genome-wide approximately 500-bp Drosophila melanogaster genomic-fragment library was assayed episomally in neuronal ML-DmBG3-c2 cells using the self-transcribing active regulatory region reporter. The processed table contains final STARR-seq peak calls, GEO peak P-values, log2 cDNA/input enrichment, and the paper's stringent enhancer-class membership.

Standard STARR-seqFruit flydm3
Explore data

Raw source data 16 files

Original supplemental and deposited inputs retained for this study. Download files individually or together as a ZIP; nested folders are preserved. Source reuse terms apply, and sequencing reads may be omitted.

Download all 16 files (ZIP)BG3-spec.txtBG3_peakSummits.txtBroad.txtGSE40739_family.soft.gzGSE49809_BG3_Dmel_DSCP_500bp.peaks.txt.gzGSE49809_family.soft.gzGSM1000400_S2_STARRseq_rep1.peaks.txt.gzGSM1000401_S2_STARRseq_rep2.peaks.txt.gzGSM1000402_OSC_STARRseq_rep1.peaks.txt.gzGSM1000403_OSC_STARRseq_rep2.peaks.txt.gzmotifs_Yanez-Cuna_2014.mxOSC-spec.txtOSC_peakSummits.txtREADME.txtS2-spec.txtS2_peakSummits.txt

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