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1.
Mol Cell ; 84(9): 1699-1710.e6, 2024 May 02.
Article in English | MEDLINE | ID: mdl-38604172

ABSTRACT

The transition from transcription initiation to elongation is highly regulated in human cells but remains incompletely understood at the structural level. In particular, it is unclear how interactions between RNA polymerase II (RNA Pol II) and initiation factors are broken to enable promoter escape. Here, we reconstitute RNA Pol II promoter escape in vitro and determine high-resolution structures of initially transcribing complexes containing 8-, 10-, and 12-nt ordered RNAs and two elongation complexes containing 14-nt RNAs. We suggest that promoter escape occurs in three major steps. First, the growing RNA displaces the B-reader element of the initiation factor TFIIB without evicting TFIIB. Second, the rewinding of the transcription bubble coincides with the eviction of TFIIA, TFIIB, and TBP. Third, the binding of DSIF and NELF facilitates TFIIE and TFIIH dissociation, establishing the paused elongation complex. This three-step model for promoter escape fills a gap in our understanding of the initiation-elongation transition of RNA Pol II transcription.


Subject(s)
Phosphoproteins , Promoter Regions, Genetic , RNA Polymerase II , TATA-Box Binding Protein , Transcription Factor TFIIB , Transcription Factors , RNA Polymerase II/metabolism , RNA Polymerase II/genetics , Humans , Transcription Factor TFIIB/metabolism , Transcription Factor TFIIB/genetics , TATA-Box Binding Protein/metabolism , TATA-Box Binding Protein/genetics , Transcription Factors/metabolism , Transcription Factors/genetics , Transcription Initiation, Genetic , Transcription Factor TFIIH/metabolism , Transcription Factor TFIIH/genetics , Transcription Factor TFIIH/chemistry , Nuclear Proteins/metabolism , Nuclear Proteins/genetics , Protein Binding , Transcription Factor TFIIA/metabolism , Transcription Factor TFIIA/genetics , Transcription, Genetic , Transcription Elongation, Genetic , RNA/metabolism , RNA/genetics , Transcription Factors, TFII/metabolism , Transcription Factors, TFII/genetics
2.
Biochem Soc Trans ; 52(2): 793-802, 2024 Apr 24.
Article in English | MEDLINE | ID: mdl-38451192

ABSTRACT

Eukaryotic genomes are compacted and organized into distinct three-dimensional (3D) structures, which range from small-scale nucleosome arrays to large-scale chromatin domains. These chromatin structures play an important role in the regulation of transcription and other nuclear processes. The molecular mechanisms that drive the formation of chromatin structures across scales and the relationship between chromatin structure and function remain incompletely understood. Because the processes involved are complex and interconnected, it is often challenging to dissect the underlying principles in the nuclear environment. Therefore, in vitro reconstitution systems provide a valuable approach to gain insight into the molecular mechanisms by which chromatin structures are formed and to determine the cause-consequence relationships between the processes involved. In this review, we give an overview of in vitro approaches that have been used to study chromatin structures across scales and how they have increased our understanding of the formation and function of these structures. We start by discussing in vitro studies that have given insight into the mechanisms of nucleosome positioning. Next, we discuss recent efforts to reconstitute larger-scale chromatin domains and loops and the resulting insights into the principles of genome organization. We conclude with an outlook on potential future applications of chromatin reconstitution systems and how they may contribute to answering open questions concerning chromatin architecture.


Subject(s)
Chromatin Assembly and Disassembly , Chromatin , Genome , Nucleosomes , Nucleosomes/metabolism , Chromatin/metabolism , Chromatin/genetics , Chromatin/chemistry , Humans , Animals
3.
Nat Genet ; 56(3): 483-492, 2024 Mar.
Article in English | MEDLINE | ID: mdl-38291333

ABSTRACT

Eukaryotic genomes are organized into chromatin domains. The molecular mechanisms driving the formation of these domains are difficult to dissect in vivo and remain poorly understood. Here we reconstitute Saccharomyces cerevisiae chromatin in vitro and determine its 3D organization at subnucleosome resolution by micrococcal nuclease-based chromosome conformation capture and molecular dynamics simulations. We show that regularly spaced and phased nucleosome arrays form chromatin domains in vitro that resemble domains in vivo. This demonstrates that neither loop extrusion nor transcription is required for basic domain formation in yeast. In addition, we find that the boundaries of reconstituted domains correspond to nucleosome-free regions and that insulation strength scales with their width. Finally, we show that domain compaction depends on nucleosome linker length, with longer linkers forming more compact structures. Together, our results demonstrate that regular nucleosome positioning is important for the formation of chromatin domains and provide a proof-of-principle for bottom-up 3D genome studies.


Subject(s)
Chromatin , Nucleosomes , Nucleosomes/genetics , Chromatin/genetics , DNA , Saccharomyces cerevisiae/genetics
4.
Nucleic Acids Res ; 52(1): 166-185, 2024 Jan 11.
Article in English | MEDLINE | ID: mdl-37994698

ABSTRACT

Eukaryotic cells are thought to arrange nucleosomes into extended arrays with evenly spaced nucleosomes phased at genomic landmarks. Here we tested to what extent this stereotypic organization describes the nucleosome organization in Saccharomyces cerevisiae using Fiber-Seq, a long-read sequencing technique that maps entire nucleosome arrays on individual chromatin fibers in a high throughput manner. With each fiber coming from a different cell, Fiber-Seq uncovers cell-to-cell heterogeneity. The long reads reveal the nucleosome architecture even over repetitive DNA such as the ribosomal DNA repeats. The absolute nucleosome occupancy, a parameter that is difficult to obtain with conventional sequencing approaches, is a direct readout of Fiber-Seq. We document substantial deviations from the stereotypical nucleosome organization with unexpectedly long linker DNAs between nucleosomes, gene bodies missing entire nucleosomes, cell-to-cell heterogeneity in nucleosome occupancy, heterogeneous phasing of arrays and irregular nucleosome spacing. Nucleosome array structures are indistinguishable throughout the gene body and with respect to the direction of transcription arguing against transcription promoting array formation. Acute nucleosome depletion destroyed most of the array organization indicating that nucleosome remodelers cannot efficiently pack nucleosomes under those conditions. Given that nucleosomes are cis-regulatory elements, the cell-to-cell heterogeneity uncovered by Fiber-Seq provides much needed information to understand chromatin structure and function.


Subject(s)
Chromatin , Nucleosomes , Chromatin/genetics , Nucleosomes/genetics , DNA/genetics , Genome , Saccharomyces cerevisiae/genetics
5.
Methods Mol Biol ; 2611: 121-152, 2023.
Article in English | MEDLINE | ID: mdl-36807068

ABSTRACT

Digestion with restriction enzymes is a classical approach for probing DNA accessibility in chromatin. It allows to monitor both the cut and the uncut fraction and thereby the determination of accessibility or occupancy (= 1 - accessibility) in absolute terms as the percentage of cut or uncut molecules, respectively, out of all molecules. The protocol presented here takes this classical approach to the genome-wide level. After exhaustive restriction enzyme digestion of chromatin, DNA is purified, sheared, and converted into libraries for high-throughput sequencing. Bioinformatic analysis counts uncut DNA fragments as well as DNA ends generated by restriction enzyme digest and derives thereof the fraction of accessible DNA. This straightforward principle is technically challenged as preparation and sequencing of the libraries leads to biased scoring of DNA fragments. Our protocol includes two orthogonal approaches to correct for this bias, the "corrected cut-uncut" and the "cut-all cut" method, so that accurate measurements of absolute accessibility or occupancy at restriction sites throughout a genome are possible. The protocol is presented for the example of S. cerevisiae chromatin but may be adapted for any other species.


Subject(s)
Chromatin , Saccharomyces cerevisiae , Saccharomyces cerevisiae/genetics , DNA/genetics , Genome , DNA Restriction Enzymes/genetics , Sequence Analysis, DNA/methods , High-Throughput Nucleotide Sequencing/methods
6.
Nat Commun ; 12(1): 3232, 2021 05 28.
Article in English | MEDLINE | ID: mdl-34050140

ABSTRACT

Arrays of regularly spaced nucleosomes dominate chromatin and are often phased by alignment to reference sites like active promoters. How the distances between nucleosomes (spacing), and between phasing sites and nucleosomes are determined remains unclear, and specifically, how ATP-dependent chromatin remodelers impact these features. Here, we used genome-wide reconstitution to probe how Saccharomyces cerevisiae ATP-dependent remodelers generate phased arrays of regularly spaced nucleosomes. We find that remodelers bear a functional element named the 'ruler' that determines spacing and phasing in a remodeler-specific way. We use structure-based mutagenesis to identify and tune the ruler element residing in the Nhp10 and Arp8 modules of the INO80 remodeler complex. Generally, we propose that a remodeler ruler regulates nucleosome sliding direction bias in response to (epi)genetic information. This finally conceptualizes how remodeler-mediated nucleosome dynamics determine stable steady-state nucleosome positioning relative to other nucleosomes, DNA bound factors, DNA ends and DNA sequence elements.


Subject(s)
Chromatin Assembly and Disassembly , Nucleosomes/metabolism , Regulatory Sequences, Nucleic Acid/genetics , Animals , Drosophila Proteins/genetics , Drosophila Proteins/isolation & purification , Drosophila Proteins/metabolism , Drosophila melanogaster , Epigenesis, Genetic , Genome, Fungal/genetics , High Mobility Group Proteins/genetics , High Mobility Group Proteins/isolation & purification , High Mobility Group Proteins/metabolism , Histones/genetics , Histones/metabolism , Larva/genetics , Larva/metabolism , Microfilament Proteins/genetics , Microfilament Proteins/isolation & purification , Microfilament Proteins/metabolism , Mutagenesis , Nucleosomes/genetics , Recombinant Proteins/genetics , Recombinant Proteins/isolation & purification , Recombinant Proteins/metabolism , Saccharomyces cerevisiae/genetics , Saccharomyces cerevisiae/metabolism , Saccharomyces cerevisiae Proteins/genetics , Saccharomyces cerevisiae Proteins/isolation & purification , Saccharomyces cerevisiae Proteins/metabolism , Whole Genome Sequencing
7.
Nat Commun ; 12(1): 3231, 2021 05 28.
Article in English | MEDLINE | ID: mdl-34050142

ABSTRACT

The fundamental molecular determinants by which ATP-dependent chromatin remodelers organize nucleosomes across eukaryotic genomes remain largely elusive. Here, chromatin reconstitutions on physiological, whole-genome templates reveal how remodelers read and translate genomic information into nucleosome positions. Using the yeast genome and the multi-subunit INO80 remodeler as a paradigm, we identify DNA shape/mechanics encoded signature motifs as sufficient for nucleosome positioning and distinct from known DNA sequence preferences of histones. INO80 processes such information through an allosteric interplay between its core- and Arp8-modules that probes mechanical properties of nucleosomal and linker DNA. At promoters, INO80 integrates this readout of DNA shape/mechanics with a readout of co-evolved sequence motifs via interaction with general regulatory factors bound to these motifs. Our findings establish a molecular mechanism for robust and yet adjustable +1 nucleosome positioning and, more generally, remodelers as information processing hubs that enable active organization and allosteric regulation of the first level of chromatin.


Subject(s)
Chromatin Assembly and Disassembly , Gene Expression Regulation , Histones/metabolism , Nucleosomes/metabolism , Saccharomyces cerevisiae Proteins/metabolism , Allosteric Regulation/genetics , Animals , DNA, Fungal/chemistry , DNA, Fungal/genetics , DNA, Fungal/metabolism , Drosophila Proteins/metabolism , Drosophila melanogaster/genetics , Drosophila melanogaster/metabolism , Genome, Fungal , Histones/genetics , Histones/isolation & purification , Humans , Larva/genetics , Larva/metabolism , Nucleic Acid Conformation , Promoter Regions, Genetic/genetics , Recombinant Proteins/genetics , Recombinant Proteins/isolation & purification , Recombinant Proteins/metabolism , Saccharomyces cerevisiae/genetics , Saccharomyces cerevisiae/metabolism , Saccharomyces cerevisiae Proteins/genetics , Saccharomyces cerevisiae Proteins/isolation & purification
8.
Genome Res ; 29(12): 1996-2009, 2019 12.
Article in English | MEDLINE | ID: mdl-31694866

ABSTRACT

Mapping of nucleosomes, the basic DNA packaging unit in eukaryotes, is fundamental for understanding genome regulation because nucleosomes modulate DNA access by their positioning along the genome. A cell-population nucleosome map requires two observables: nucleosome positions along the DNA ("Where?") and nucleosome occupancies across the population ("In how many cells?"). All available genome-wide nucleosome mapping techniques are yield methods because they score either nucleosomal (e.g., MNase-seq, chemical cleavage-seq) or nonnucleosomal (e.g., ATAC-seq) DNA but lose track of the total DNA population for each genomic region. Therefore, they only provide nucleosome positions and maybe compare relative occupancies between positions, but cannot measure absolute nucleosome occupancy, which is the fraction of all DNA molecules occupied at a given position and time by a nucleosome. Here, we established two orthogonal and thereby cross-validating approaches to measure absolute nucleosome occupancy across the Saccharomyces cerevisiae genome via restriction enzymes and DNA methyltransferases. The resulting high-resolution (9-bp) map shows uniform absolute occupancies. Most nucleosome positions are occupied in most cells: 97% of all nucleosomes called by chemical cleavage-seq have a mean absolute occupancy of 90 ± 6% (±SD). Depending on nucleosome position calling procedures, there are 57,000 to 60,000 nucleosomes per yeast cell. The few low absolute occupancy nucleosomes do not correlate with highly transcribed gene bodies, but correlate with increased presence of the nucleosome-evicting chromatin structure remodeling (RSC) complex, and are enriched upstream of highly transcribed or regulated genes. Our work provides a quantitative method and reference frame in absolute terms for future chromatin studies.


Subject(s)
Chromosome Mapping , DNA, Fungal/genetics , Genome, Fungal , Nucleosomes/genetics , Saccharomyces cerevisiae/genetics , DNA, Fungal/metabolism , Nucleosomes/metabolism , Saccharomyces cerevisiae/metabolism
9.
Nat Struct Mol Biol ; 25(9): 823-832, 2018 09.
Article in English | MEDLINE | ID: mdl-30177756

ABSTRACT

Nuclear actin (N-actin) and actin-related proteins (Arps) are critical components of several chromatin modulating complexes, including the chromatin remodeler INO80, but their function is largely elusive. Here, we report the crystal structure of the 180-kDa Arp8 module of Saccharomyces cerevisiae INO80 and establish its role in recognition of extranucleosomal linker DNA. Arp8 engages N-actin in a manner distinct from that of other actin-fold proteins and thereby specifies recruitment of the Arp4-N-actin heterodimer to a segmented scaffold of the helicase-SANT-associated (HSA) domain of Ino80. The helical HSA domain spans over 120 Å and provides an extended binding platform for extranucleosomal entry DNA that is required for nucleosome sliding and genome-wide nucleosome positioning. Together with the recent cryo-electron microscopy structure of INO80Core-nucleosome complex, our findings suggest an allosteric mechanism by which INO80 senses 40-bp linker DNA to conduct highly processive chromatin remodeling.


Subject(s)
Cell Nucleus/metabolism , Chromatin Assembly and Disassembly , DNA, Fungal/metabolism , Microfilament Proteins/metabolism , Saccharomyces cerevisiae Proteins/metabolism , Saccharomyces cerevisiae/metabolism , Amino Acid Sequence , Microfilament Proteins/chemistry , Protein Conformation , Saccharomyces cerevisiae/genetics , Saccharomyces cerevisiae Proteins/chemistry , Sequence Homology, Amino Acid
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