A gene desert required for regulatory control of pleiotropic Shox2 expression and embryonic survival
Abassah-Oppong, S.; Mannion, B.; Tissieres, V.; Rodriguez-Carballo, E.; Ljubojevic, A.; Darbellay, F.; Festa, T. A.; Sullivan, C. S.; Kelman, G.; Hunter, R. D.; Novak, C. S.; Plajzer-Frick, I.; Tran, S.; Akiyama, J. A.; Barozzi, I.; Andrey, G.; Lopez-Rios, J.; Dickel, D. E.; Visel, A.; Pennacchio, L. A.; Cobb, J.; Osterwalder, M.
Show abstract
Gene deserts are defined as genomic regions devoid of protein coding genes and spanning more than 500 kilobases, collectively encompassing about 25% of the human genome. Approximately 30% of all gene deserts are enriched for conserved elements with cis-regulatory signatures. These are located predominantly near developmental transcription factors (TFs) but despite predicted critical functions, the transcriptional contributions and biological necessity of most gene deserts remain elusive. Here, we explore the cis-regulatory impact of a gene desert flanking the Shox2 gene, a TF indispensable for proximal limb, craniofacial and cardiac pacemaker development. Using a functional genomics approach in mouse embryos we identify the gene desert as a hub for numerous Shox2-overlapping enhancers arranged in a globular chromatin domain with tissue-specific features. In accordance, using endogenous CRISPR deletion, we demonstrate that the gene desert interval is essential for Shox2 transcriptional control in developing limbs, craniofacial compartments, and the heart. Phenotypically, gene desert ablation leads to pacemaker-related embryonic lethality due to Shox2 depletion in the cardiac sinus venosus. We show that this role is partially mediated through a distal gene desert enhancer, providing evidence for intra-gene desert regulatory robustness. Finally, we uncover a multi-layered functional role of the gene desert by revealing an additional requirement for stylopod morphogenesis, mediated through an array of proximal limb enhancers (PLEs). In summary, our study establishes the Shox2 gene desert as a fundamental genomic unit that controls pleiotropic gene expression through modular arrangement and coordinated dynamics of tissue-specific enhancers.
Matching journals
The top 2 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Single cell multi-omic analysis identifies a Tbx1-dependent multilineage primed population in the murine cardiopharyngeal mesoderm 97%
- The H2A.Z.1/PWWP2A/NuRD-associated protein HMG20A controls early head and heart developmental transcription programs 97%
- TAD Evolutionary and functional characterization reveals diversity in mammalian TAD boundary properties and function 97%
Similar papers in this journal
- Integrated annotation and analysis of genomic features reveal new types of functional elements and large-scale epigenetic phenomena in the developing zebrafish 97%
- Cell-specific chromatin landscape of human coronary artery resolves regulatory mechanisms of disease risk 96%
- Prioritization of autoimmune disease-associated genetic variants that perturb regulatory element activity in T cells 96%
Similar papers in this journal
Similar papers in this journal
- GATA4/5/6 family transcription factors are conserved determinants of cardiac versus pharyngeal mesoderm fate 96%
- L1 retrotransposons drive human neuronal transcriptome complexity and functional diversification 96%
- Parallel evolution of a splicing program controlling neuronal excitability in flies and mammals 96%
"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.