Literature DB >> 28977453

Enrichment of dynamic chromosomal crosslinks drive phase separation of the nucleolus.

Caitlin Hult1, David Adalsteinsson1, Paula A Vasquez2, Josh Lawrimore3,4, Maggie Bennett3, Alyssa York3, Diana Cook3, Elaine Yeh3, Mark Gregory Forest1,5, Kerry Bloom3.   

Abstract

Regions of highly repetitive DNA, such as those found in the nucleolus, show a self-organization that is marked by spatial segregation and frequent self-interaction. The mechanisms that underlie the sequestration of these sub-domains are largely unknown. Using a stochastic, bead-spring representation of chromatin in budding yeast, we find enrichment of protein-mediated, dynamic chromosomal cross-links recapitulates the segregation, morphology and self-interaction of the nucleolus. Rates and enrichment of dynamic crosslinking have profound consequences on domain morphology. Our model demonstrates the nucleolus is phase separated from other chromatin in the nucleus and predicts that multiple rDNA loci will form a single nucleolus independent of their location within the genome. Fluorescent labeling of budding yeast nucleoli with CDC14-GFP revealed that a split rDNA locus indeed forms a single nucleolus. We propose that nuclear sub-domains, such as the nucleolus, result from phase separations within the nucleus, which are driven by the enrichment of protein-mediated, dynamic chromosomal crosslinks.
© The Author(s) 2017. Published by Oxford University Press on behalf of Nucleic Acids Research.

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Year:  2017        PMID: 28977453      PMCID: PMC5737219          DOI: 10.1093/nar/gkx741

Source DB:  PubMed          Journal:  Nucleic Acids Res        ISSN: 0305-1048            Impact factor:   16.971


  59 in total

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Authors:  M Wachsmuth; W Waldeck; J Langowski
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Review 2.  Getting RNA and protein in phase.

Authors:  Stephanie C Weber; Clifford P Brangwynne
Journal:  Cell       Date:  2012-06-08       Impact factor: 41.582

3.  Chromosome positioning and the clustering of functionally related loci in yeast is driven by chromosomal interactions.

Authors:  Lutz R Gehlen; Gerd Gruenert; M Beatrix Jones; Chris D Rodley; Jörg Langowski; J M O'Sullivan
Journal:  Nucleus       Date:  2012-06-12       Impact factor: 4.197

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5.  High-resolution statistical mapping reveals gene territories in live yeast.

Authors:  Axel B Berger; Ghislain G Cabal; Emmanuelle Fabre; Tarn Duong; Henri Buc; Ulf Nehrbass; Jean-Christophe Olivo-Marin; Olivier Gadal; Christophe Zimmer
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Review 6.  Integrating the genomic architecture of human nucleolar organizer regions with the biophysical properties of nucleoli.

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Journal:  FEBS J       Date:  2017-06-02       Impact factor: 5.542

Review 7.  Principles of chromatin organization in yeast: relevance of polymer models to describe nuclear organization and dynamics.

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8.  Polymer models of meiotic and mitotic chromosomes.

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Authors:  Korie E Handwerger; Christine Murphy; Joseph G Gall
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10.  Effect of chromosome tethering on nuclear organization in yeast.

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Journal:  PLoS One       Date:  2014-07-14       Impact factor: 3.240

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  24 in total

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Review 2.  Gene regulation in the 3D genome.

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Review 4.  Computational methods for analyzing and modeling genome structure and organization.

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Journal:  Wiley Interdiscip Rev Syst Biol Med       Date:  2018-07-18

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6.  Three-dimensional genome organization via triplex-forming RNAs.

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7.  DNA damage reduces heterogeneity and coherence of chromatin motions.

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8.  The vacuole shapes the nucleus and the ribosomal DNA loop during mitotic delays.

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Review 9.  Polymer perspective of genome mobilization.

Authors:  Colleen J Lawrimore; Josh Lawrimore; Yunyan He; Sergio Chavez; Kerry Bloom
Journal:  Mutat Res       Date:  2020-05-26       Impact factor: 2.433

Review 10.  Genome 3D-architecture: Its plasticity in relation to function.

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