Literature DB >> 23022379

Df31 protein and snoRNAs maintain accessible higher-order structures of chromatin.

Thomas Schubert1, Miriam Caroline Pusch, Sarah Diermeier, Vladimir Benes, Elisabeth Kremmer, Axel Imhof, Gernot Längst.   

Abstract

Packaging of DNA into nucleosomes and the formation of higher-order chromatin structures determine DNA accessibility and activity of genome domains. We identified an RNA-dependent mechanism maintaining the open chromatin structure within euchromatic regions in Drosophila cells. The mechanism of reversible chromatin opening, reconstituted in vitro, depends on the Drosophila decondensation factor 31 (Df31) that specifically binds to RNA and localizes to euchromatic regions. Df31 is capable to tether a heterogeneous pool of short, single-stranded RNAs to chromatin. This class of chromatin-associated RNA (caRNA) is stably linked to chromatin and is largely composed of snoRNAs, which are preferentially bound by Df31. We suggest that the Df31-mediated linkage of snoRNAs and chromatin, forms a RNA-chromatin network resulting in the establishment of open chromatin domains. Analysis of caRNAs in human cells also reveals a strong enrichment of snoRNAs, implying a conserved role for these molecules in higher-order structures of chromatin.
Copyright © 2012 Elsevier Inc. All rights reserved.

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Year:  2012        PMID: 23022379     DOI: 10.1016/j.molcel.2012.08.021

Source DB:  PubMed          Journal:  Mol Cell        ISSN: 1097-2765            Impact factor:   17.970


  51 in total

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9.  Changes in higher order structures of chromatin by RNP complexes.

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10.  Computational Identification of Genomic Features That Influence 3D Chromatin Domain Formation.

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