| Literature DB >> 32075757 |
Andrea M Chiariello1, Simona Bianco2, A Marieke Oudelaar3, Andrea Esposito4, Carlo Annunziatella2, Luca Fiorillo2, Mattia Conte2, Alfonso Corrado2, Antonella Prisco5, Martin S C Larke3, Jelena M Telenius3, Renato Sciarretta2, Francesco Musella2, Veronica J Buckle6, Douglas R Higgs6, Jim R Hughes3, Mario Nicodemi7.
Abstract
We investigate the three-dimensional (3D) conformations of the α-globin locus at the single-allele level in murine embryonic stem cells (ESCs) and erythroid cells, combining polymer physics models and high-resolution Capture-C data. Model predictions are validated against independent fluorescence in situ hybridization (FISH) data measuring pairwise distances, and Tri-C data identifying three-way contacts. The architecture is rearranged during the transition from ESCs to erythroid cells, associated with the activation of the globin genes. We find that in ESCs, the spatial organization conforms to a highly intermingled 3D structure involving non-specific contacts, whereas in erythroid cells the α-globin genes and their enhancers form a self-contained domain, arranged in a folded hairpin conformation, separated from intermingling flanking regions by a thermodynamic mechanism of micro-phase separation. The flanking regions are rich in convergent CTCF sites, which only marginally participate in the erythroid-specific gene-enhancer contacts, suggesting that beyond the interaction of CTCF sites, multiple molecular mechanisms cooperate to form an interacting domain.Entities:
Keywords: gene regulation; globin loci; higher-order chromatin organization; polymer physics
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Year: 2020 PMID: 32075757 DOI: 10.1016/j.celrep.2020.01.044
Source DB: PubMed Journal: Cell Rep Impact factor: 9.423