The evolutionary ancient MEIS transcription factors actuate lineage-specific transcription to establish cardiac fate
Bobola, N.; Darieva, Z.; Zarrineh, P.; Phillips, N.; Mallen, J.; Garcia Mora, A.; Donaldson, I.; Bridoux, L.; Douglas, M.; Dias Henriques, S.; Schulte, D.; Birket, M.
Show abstract
Control of gene expression is commonly mediated by distinct combinations of transcription factors (TFs). This cooperative action allows multiple biological signals to be integrated at specific regulatory elements, resulting in highly specific gene expression patterns in space and time. It is unclear whether combinatorial binding is also necessary to bring together TFs with distinct biochemical functions, which collaborate to effectively recruit and activate RNA polymerase II. Using a cardiac differentiation model, we find that the largely ubiquitous, evolutionary ancient homeodomain proteins MEIS are essential for activating a cardiac-specific gene expression program. MEIS TFs act as actuators, fully activating transcriptional programs selected by lineage-restricted TFs to drive the dynamic progression of cardiac differentiation. Combinatorial binding of MEIS with lineage-enriched TFs, GATA and HOX, provides selectivity, guiding MEIS to function at cardiac-specific enhancers. In turn, MEIS TFs promote accumulation of the methyltransferase KMT2D to initiate lineage-specific enhancer commissioning. MEIS combinatorial binding dynamics, dictated by the changing dosage of its partners, drive cells into progressive stages of cardiac differentiation. Our results uncover tissue-specific transcriptional activation as the result of ubiquitous actuator TFs harnessing general transcriptional coactivators at tissue-specific enhancers, to which they are directed by binding with lineage- and domain-specific TFs.
Matching journals
The top 6 journals account for 50% of the predicted probability mass.
Similar papers in this journal
Similar papers in this journal
- Spatiotemporal single-cell RNA sequencing of developing hearts reveals interplay between cellular differentiation and morphogenesis 95%
- Fine mapping spatiotemporal mechanisms of genetic variants underlying cardiac traits and disease 94%
- Spatiotemporal expression of regulatory kinases directs the transition from mitosis to cellular morphogenesis 93%
Similar papers in this journal
- A Foxf1-Wnt-Nr2f1 cascade promotes atrial cardiomyocyte differentiation in zebrafish 94%
- TFAP2 paralogs facilitate chromatin access for MITF at pigmentation genes but inhibit expression of cell-cell adhesion genes independently of MITF 92%
- Genomic features underlie the co-option of SVA transposons as cis-regulatory elements in human pluripotent stem cells 92%
Similar papers in this journal
- CHD-associated enhancers shape human cardiomyocyte lineage commitment 94%
- The long noncoding RNA Charme supervises cardiomyocyte maturation by controlling cell differentiation programs in the developing heart 94%
- Multiscale analysis of single and double maternal-zygotic Myh9 and Myh10 mutants during mouse preimplantation development 93%
Similar papers in this journal
"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.