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Cellular identity is ultimately dictated by the interaction of transcription factors with regulatory elements (REs) to control gene expression. Advances in genome-wide epigenome profiling techniques have significantly increased our understanding of cell-specific utilization of REs. However, it remai...
ORGANISM(S): Mus musculus (Mouse) 
2020-12-14 | PXD022088 | Pride
We developed a novel epigenetic method termed TINC: TALE-mediated Isolation of Nuclear Chromatin. Using TINC we interrogated the protein complex formed at the Nanog promoter in embryonic stem cells (ESCs) and identified many known interactors as well as numerous previously unknown complex members, i...
ORGANISM(S): Mus musculus 
2020-11-05 | GSE160816 | GEO
TINC - a method to dissect transcriptional complexes at single locus resolution - reveals novel Nanog regulators in mouse embryonic stem cells
To analyse the transcriptome landscape of differentiating cardiomyocytes, GFP labeled cardiac cells were purified by fluorescent activated cell sorting using the TinC*>GFP transgenic line, and expression profile analysed by deep sequencing.
ORGANISM(S): Drosophila melanogaster 
RNA-seq of FACS purified cardiomyocytes from Drosophila melanogaster embryos at stage 13-16.
Here we improved BiTS-ChIP (Bonn et al, Nature Protocols 7, 978-994 (2012)) to identify active enhancer and promoter elements genome wide in the 104 cardiomyocytes that constitute the Drosophila heart tube and represents only ~0.5% of the total cell content of the embryo. A transgenic Drosophila str...
ORGANISM(S): Drosophila melanogaster 
Here we improved BiTS-ChIP (Bonn et al, Nature Protocols 7, 978-994 (2012)) to identify active enhancer and promoter elements genome wide in the 104 cardiomyocytes that constitute the Drosophila heart tube and represents only ~0.5% of the total cell content of the embryo. A transgenic Drosophila str...
ORGANISM(S): Drosophila melanogaster 
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