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Functional dissection of the Sox9–Kcnj2 locus identifies nonessential and instructive roles of TAD architecture
Article de revue   Open Access   Avec comité de lecture

Functional dissection of the Sox9–Kcnj2 locus identifies nonessential and instructive roles of TAD architecture

Alexandra Despang, Robert Schöpflin, Martin Franke, Salaheddine Ali, Ivana Jerković, Christina Paliou, Wing-Lee Chan, Bernd Timmermann, Lars Wittler, Martin Vingron, …
Nature Genetics, Vol.51(8), pp.1263-1271
29/07/2019

Résumé

Animals CCCTC-Binding Factor / genetics Female Gene Expression Regulation, Developmental* Male Mice Mice, Inbred C57BL Potassium Channels, Inwardly Rectifying / genetics Potassium Channels, Inwardly Rectifying / metabolism* Promoter Regions, Genetic SOX9 Transcription Factor / genetics SOX9 Transcription Factor / metabolism* CCCTC-Binding Factor / metabolism* Cell Cycle Proteins / genetics Cell Cycle Proteins / metabolism* Chromatin Assembly and Disassembly* Chromosomal Proteins, Non-Histone / genetics Chromosomal Proteins, Non-Histone / metabolism* Cohesins Enhancer Elements, Genetic*
The genome is organized in three-dimensional units called topologically associating domains (TADs), through a process dependent on the cooperative action of cohesin and the DNA-binding factor CTCF. Genomic rearrangements of TADs have been shown to cause gene misexpression and disease, but genome-wide depletion of CTCF has no drastic effects on transcription. Here, we investigate TAD function in vivo in mouse limb buds at the Sox9-Kcnj2 locus. We show that the removal of all major CTCF sites at the boundary and within the TAD resulted in a fusion of neighboring TADs, without major effects on gene expression. Gene misexpression and disease phenotypes, however, were achieved by redirecting regulatory activity through inversions and/or the repositioning of boundaries. Thus, TAD structures provide robustness and precision but are not essential for developmental gene regulation. Aberrant disease-related gene activation is not induced by a mere loss of insulation but requires CTCF-dependent redirection of enhancer-promoter contacts.

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