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Cavalheiro, G. R.

Publications and source records attributed to Cavalheiro, G. R..

2 recordsLinked to original sources

Heterotypic directional motifs contribute to TAD boundary function in Drosophila

While convergent CTCF binding sites are essential for topologically associating domain (TAD) formation in mammals, how TADs are formed in other species remains unclear. In Drosophila, TAD boundaries lack convergent CTCF sites and are occupied by different insulator protein combinations with no obvious pairing rules. To identify sequence features required for boundary pairing, we inserted different endogenous boundaries into two Drosophila TADs in both orientations, creating 53 ectopic insertions and measured their ability to form interactions with the endogenous boundaries to their left and right. 70% of inserted boundaries had context- and/or orientation-dependent effects, indicating specificity and directionality encoded in their sequence. Known insulator motifs or promoters could not explain boundary specificity. Instead, we identified heterotypic pairs of directional motifs that predict compatible boundary pairs. Our results indicate that directional motif pairs are a conserved property of boundaries from flies to mammals, but gained complexity in Drosophila through heterotypic combinations.

genomics↗

CTCF, BEAF-32 and CP190 are not required for the initial establishment of TADs in early Drosophila embryos, but have locus specific roles

The boundaries of Topologically-Associating Domains (TADs) are delimited by insulators and active promoters, however how they are initially established during embryogenesis remains unclear. Here, we examined this during the first hours of Drosophila embryogenesis. DNA-FISH on individual embryos indicates that domains form during zygotic genome activation (ZGA), but have extensive cell-to-cell heterogeneity compared to later stages. Most newly formed boundaries are occupied by combinations of CTCF, BEAF- 32 and/or CP190. Depleting each insulator from chromatin revealed that TADs can still establish during ZGA, although with lower insulation, with particular boundaries being more sensitive. Some weakened boundaries have aberrant gene expression, however the majority of mis-expressed genes have no obvious relationship to changes in domain-boundary insulation. Deletion of an active promoter (thereby blocking transcription) at one boundary had a greater impact compared to deleting the insulator-bound region itself. These results suggest cross-talk between insulators and transcription might reinforce domain formation during embryogenesis.

developmental biology↗