XB-ART-52876
Elife
2016 Dec 29;5. doi: 10.7554/eLife.21356.
Show Gene links
Show Anatomy links
The Chd1 chromatin remodeler shifts hexasomes unidirectionally.
Levendosky RF
,
Sabantsev A
,
Deindl S
,
Bowman GD
.
???displayArticle.abstract???
Despite their canonical two-fold symmetry, nucleosomes in biological contexts are often asymmetric: functionalized with post-translational modifications (PTMs), substituted with histone variants, and even lacking H2A/H2B dimers. Here we show that the Widom 601 nucleosome positioning sequence can produce hexasomes in a specific orientation on DNA, providing a useful tool for interrogating chromatin enzymes and allowing for the generation of nucleosomes with precisely defined asymmetry. Using this methodology, we demonstrate that the Chd1 chromatin remodeler from Saccharomyces cerevisiae requires H2A/H2B on the entry side for sliding, and thus, unlike the back-and-forth sliding observed for nucleosomes, Chd1 shifts hexasomes unidirectionally. Chd1 takes part in chromatin reorganization surrounding transcribing RNA polymerase II (Pol II), and using asymmetric nucleosomes we show that ubiquitin-conjugated H2B on the entry side stimulates nucleosome sliding by Chd1. We speculate that biased nucleosome and hexasome sliding due to asymmetry contributes to the packing of arrays observed in vivo.
???displayArticle.pubmedLink??? 28032848
???displayArticle.pmcLink??? PMC5226652
???displayArticle.link??? Elife
???displayArticle.grants??? [+]
Species referenced: Xenopus laevis
Genes referenced: chd1 h2bc21
???attribute.lit??? ???displayArticles.show???
References [+] :
Arimura,
Structural analysis of the hexasome, lacking one histone H2A/H2B dimer from the conventional nucleosome.
2012, Pubmed
Arimura, Structural analysis of the hexasome, lacking one histone H2A/H2B dimer from the conventional nucleosome. 2012, Pubmed
Armache, Structural basis of silencing: Sir3 BAH domain in complex with a nucleosome at 3.0 Å resolution. 2011, Pubmed
Bao, Nucleosomes containing the histone variant H2A.Bbd organize only 118 base pairs of DNA. 2004, Pubmed
Barbera, The nucleosomal surface as a docking station for Kaposi's sarcoma herpesvirus LANA. 2006, Pubmed , Xenbase
Blosser, Dynamics of nucleosome remodelling by individual ACF complexes. 2009, Pubmed
Bondarenko, Nucleosomes can form a polar barrier to transcript elongation by RNA polymerase II. 2006, Pubmed
Cheung, Chromatin- and transcription-related factors repress transcription from within coding regions throughout the Saccharomyces cerevisiae genome. 2008, Pubmed
Chua, The mechanics behind DNA sequence-dependent properties of the nucleosome. 2012, Pubmed , Xenbase
Davey, Solvent mediated interactions in the structure of the nucleosome core particle at 1.9 a resolution. 2002, Pubmed , Xenbase
Deindl, ISWI remodelers slide nucleosomes with coordinated multi-base-pair entry steps and single-base-pair exit steps. 2013, Pubmed
Dyer, Reconstitution of nucleosome core particles from recombinant histones and DNA. 2004, Pubmed
Eberharter, A nucleosome sliding assay for chromatin remodeling factors. 2004, Pubmed
Fleming, H2B ubiquitylation plays a role in nucleosome dynamics during transcription elongation. 2008, Pubmed
Gkikopoulos, A role for Snf2-related nucleosome-spacing enzymes in genome-wide nucleosome organization. 2011, Pubmed
Hall, High-resolution dynamic mapping of histone-DNA interactions in a nucleosome. 2009, Pubmed
Hauk, The chromodomains of the Chd1 chromatin remodeler regulate DNA access to the ATPase motor. 2010, Pubmed
Hong, The catalytic subunit of the SWR1 remodeler is a histone chaperone for the H2A.Z-H2B dimer. 2014, Pubmed
Hsieh, Histone chaperone FACT action during transcription through chromatin by RNA polymerase II. 2013, Pubmed
Kalashnikova, The role of the nucleosome acidic patch in modulating higher order chromatin structure. 2013, Pubmed
Kang, GAL4 directs nucleosome sliding induced by NURF. 2002, Pubmed
Kassabov, High-resolution mapping of changes in histone-DNA contacts of nucleosomes remodeled by ISW2. 2002, Pubmed
Kassabov, Site-directed histone-DNA contact mapping for analysis of nucleosome dynamics. 2004, Pubmed
Kelley, CHD1 interacts with SSRP1 and depends on both its chromodomain and its ATPase/helicase-like domain for proper association with chromatin. 1999, Pubmed
Kemble, FACT Disrupts Nucleosome Structure by Binding H2A-H2B with Conserved Peptide Motifs. 2015, Pubmed
Kireeva, Nucleosome remodeling induced by RNA polymerase II: loss of the H2A/H2B dimer during transcription. 2002, Pubmed
Kireeva, Nature of the nucleosomal barrier to RNA polymerase II. 2005, Pubmed
Krogan, RNA polymerase II elongation factors of Saccharomyces cerevisiae: a targeted proteomics approach. 2002, Pubmed
Kulaeva, Mechanism of chromatin remodeling and recovery during passage of RNA polymerase II. 2009, Pubmed
Kuryan, Histone density is maintained during transcription mediated by the chromatin remodeler RSC and histone chaperone NAP1 in vitro. 2012, Pubmed
Lechner, Traceless Synthesis of Asymmetrically Modified Bivalent Nucleosomes. 2016, Pubmed
Lee, Codependency of H2B monoubiquitination and nucleosome reassembly on Chd1. 2012, Pubmed
Li, Dynamic regulation of transcription factors by nucleosome remodeling. 2015, Pubmed
Li, Nucleosomes facilitate their own invasion. 2004, Pubmed , Xenbase
Lin, Mediator coordinates PIC assembly with recruitment of CHD1. 2011, Pubmed
Liokatis, Differentially Isotope-Labeled Nucleosomes To Study Asymmetric Histone Modification Crosstalk by Time-Resolved NMR Spectroscopy. 2016, Pubmed
Long, Generation of nonhydrolyzable ubiquitin-histone mimics. 2014, Pubmed
Lowary, New DNA sequence rules for high affinity binding to histone octamer and sequence-directed nucleosome positioning. 1998, Pubmed
Luger, Preparation of nucleosome core particle from recombinant histones. 1999, Pubmed , Xenbase
Lusser, Distinct activities of CHD1 and ACF in ATP-dependent chromatin assembly. 2005, Pubmed
Makde, Structure of RCC1 chromatin factor bound to the nucleosome core particle. 2010, Pubmed , Xenbase
Margueron, Role of the polycomb protein EED in the propagation of repressive histone marks. 2009, Pubmed
Mazurkiewicz, On the mechanism of nucleosome assembly by histone chaperone NAP1. 2006, Pubmed
McGinty, Crystal structure of the PRC1 ubiquitylation module bound to the nucleosome. 2014, Pubmed
McKnight, Sequence-targeted nucleosome sliding in vivo by a hybrid Chd1 chromatin remodeler. 2016, Pubmed
McKnight, Extranucleosomal DNA binding directs nucleosome sliding by Chd1. 2011, Pubmed
Morgan, Structural basis for histone H2B deubiquitination by the SAGA DUB module. 2016, Pubmed , Xenbase
Ngo, Asymmetric unwrapping of nucleosomes under tension directed by DNA local flexibility. 2015, Pubmed , Xenbase
Nodelman, The Chd1 chromatin remodeler can sense both entry and exit sides of the nucleosome. 2016, Pubmed , Xenbase
Nodelman, Interdomain Communication of the Chd1 Chromatin Remodeler across the DNA Gyres of the Nucleosome. 2017, Pubmed , Xenbase
North, Regulation of the nucleosome unwrapping rate controls DNA accessibility. 2012, Pubmed , Xenbase
Patel, Identification of residues in chromodomain helicase DNA-binding protein 1 (Chd1) required for coupling ATP hydrolysis to nucleosome sliding. 2011, Pubmed
Patel, Decoupling nucleosome recognition from DNA binding dramatically alters the properties of the Chd1 chromatin remodeler. 2013, Pubmed
Pavri, Histone H2B monoubiquitination functions cooperatively with FACT to regulate elongation by RNA polymerase II. 2006, Pubmed
Pennings, Mobility of positioned nucleosomes on 5 S rDNA. 1991, Pubmed
Pointner, CHD1 remodelers regulate nucleosome spacing in vitro and align nucleosomal arrays over gene coding regions in S. pombe. 2012, Pubmed
Radman-Livaja, A key role for Chd1 in histone H3 dynamics at the 3' ends of long genes in yeast. 2012, Pubmed
Ramachandran, Asymmetric nucleosomes flank promoters in the budding yeast genome. 2015, Pubmed
Rasnik, Nonblinking and long-lasting single-molecule fluorescence imaging. 2006, Pubmed
Rhee, Subnucleosomal structures and nucleosome asymmetry across a genome. 2014, Pubmed
Ruthenburg, Multivalent engagement of chromatin modifications by linked binding modules. 2007, Pubmed
Saha, Chromatin remodeling through directional DNA translocation from an internal nucleosomal site. 2005, Pubmed , Xenbase
Schwanbeck, Spatial contacts and nucleosome step movements induced by the NURF chromatin remodeling complex. 2004, Pubmed
Shahian, Analysis of changes in nucleosome conformation using fluorescence resonance energy transfer. 2012, Pubmed
Simic, Chromatin remodeling protein Chd1 interacts with transcription elongation factors and localizes to transcribed genes. 2003, Pubmed
Smolle, Chromatin remodelers Isw1 and Chd1 maintain chromatin structure during transcription by preventing histone exchange. 2012, Pubmed
Stockdale, Analysis of nucleosome repositioning by yeast ISWI and Chd1 chromatin remodeling complexes. 2006, Pubmed , Xenbase
Tee, Chromatin features and the epigenetic regulation of pluripotency states in ESCs. 2014, Pubmed
Tsukiyama, Characterization of the imitation switch subfamily of ATP-dependent chromatin-remodeling factors in Saccharomyces cerevisiae. 1999, Pubmed
Venkatesh, Histone exchange, chromatin structure and the regulation of transcription. 2015, Pubmed
Vogler, Histone H2A C-terminus regulates chromatin dynamics, remodeling, and histone H1 binding. 2010, Pubmed
Voigt, Asymmetrically modified nucleosomes. 2012, Pubmed
Voigt, A double take on bivalent promoters. 2013, Pubmed
Weiner, High-resolution nucleosome mapping reveals transcription-dependent promoter packaging. 2010, Pubmed
Wiechens, The Chromatin Remodelling Enzymes SNF2H and SNF2L Position Nucleosomes adjacent to CTCF and Other Transcription Factors. 2016, Pubmed
Xiao, Histone H2B ubiquitylation is associated with elongating RNA polymerase II. 2005, Pubmed
Yang, The chromatin-remodeling enzyme ACF is an ATP-dependent DNA length sensor that regulates nucleosome spacing. 2006, Pubmed
Yen, Genome-wide nucleosome specificity and directionality of chromatin remodelers. 2012, Pubmed
Zhang, A packing mechanism for nucleosome organization reconstituted across a eukaryotic genome. 2011, Pubmed
Zofall, Chromatin remodeling by ISW2 and SWI/SNF requires DNA translocation inside the nucleosome. 2006, Pubmed