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1.
Annu Rev Biochem ; 93(1): 21-46, 2024 Aug.
Article in English | MEDLINE | ID: mdl-38594943

ABSTRACT

DNA replication and transcription occur in all living cells across all domains of life. Both essential processes occur simultaneously on the same template, leading to conflicts between the macromolecular machines that perform these functions. Numerous studies over the past few decades demonstrate that this is an inevitable problem in both prokaryotic and eukaryotic cells. We have learned that conflicts lead to replication fork reversal, breaks in the DNA, R-loop formation, topological stress, and mutagenesis and can ultimately impact evolution. Recent studies have also provided insight into the various mechanisms that mitigate, resolve, and allow tolerance of conflicts and how conflicts result in pathological consequences across divergent species. In this review, we summarize our current knowledge regarding the outcomes of the encounters between replication and transcription machineries and explore how these clashes are dealt with across species.


Subject(s)
DNA Replication , Transcription, Genetic , Humans , Animals , Chromosomes/metabolism , Chromosomes/genetics , Chromosomes/chemistry , R-Loop Structures , DNA/metabolism , DNA/genetics , DNA/chemistry
2.
Cell ; 175(2): 583-597.e23, 2018 10 04.
Article in English | MEDLINE | ID: mdl-30220456

ABSTRACT

When DNA is unwound during replication, it becomes overtwisted and forms positive supercoils in front of the translocating DNA polymerase. Unless removed or dissipated, this superhelical tension can impede replication elongation. Topoisomerases, including gyrase and topoisomerase IV in bacteria, are required to relax positive supercoils ahead of DNA polymerase but may not be sufficient for replication. Here, we find that GapR, a chromosome structuring protein in Caulobacter crescentus, is required to complete DNA replication. GapR associates in vivo with positively supercoiled chromosomal DNA, and our biochemical and structural studies demonstrate that GapR forms a dimer-of-dimers that fully encircles overtwisted DNA. Further, we show that GapR stimulates gyrase and topo IV to relax positive supercoils, thereby enabling DNA replication. Analogous chromosome structuring proteins that locate to the overtwisted DNA in front of replication forks may be present in other organisms, similarly helping to recruit and stimulate topoisomerases during DNA replication.


Subject(s)
Chromosomes, Bacterial/physiology , DNA, Bacterial/chemistry , DNA, Superhelical/metabolism , Bacterial Proteins/metabolism , Caulobacter crescentus/metabolism , Caulobacter crescentus/physiology , Chromosome Structures/physiology , Chromosomes, Bacterial/metabolism , DNA/physiology , DNA Replication/physiology , DNA Topoisomerases, Type I/metabolism , DNA Topoisomerases, Type II/metabolism , DNA Topoisomerases, Type II/physiology , DNA, Bacterial/physiology , Escherichia coli/metabolism , Gene Expression Regulation, Bacterial/genetics , Kinetics
3.
Mol Cell ; 83(19): 3533-3545.e5, 2023 Oct 05.
Article in English | MEDLINE | ID: mdl-37802026

ABSTRACT

CRISPR-Cas9 is a powerful gene-editing technology; however, off-target activity remains an important consideration for therapeutic applications. We have previously shown that force-stretching DNA induces off-target activity and hypothesized that distortions of the DNA topology in vivo, such as negative DNA supercoiling, could reduce Cas9 specificity. Using single-molecule optical-tweezers, we demonstrate that negative supercoiling λ-DNA induces sequence-specific Cas9 off-target binding at multiple sites, even at low forces. Using an adapted CIRCLE-seq approach, we detect over 10,000 negative-supercoiling-induced Cas9 off-target double-strand breaks genome-wide caused by increased mismatch tolerance. We further demonstrate in vivo that directed local DNA distortion increases off-target activity in cells and that induced off-target events can be detected during Cas9 genome editing. These data demonstrate that Cas9 off-target activity is regulated by DNA topology in vitro and in vivo, suggesting that cellular processes, such as transcription and replication, could induce off-target activity at previously overlooked sites.


Subject(s)
CRISPR-Cas Systems , Gene Editing , Genome , DNA/genetics , Optical Tweezers
4.
Mol Cell ; 82(1): 140-158.e12, 2022 01 06.
Article in English | MEDLINE | ID: mdl-34890565

ABSTRACT

High-intensity transcription and replication supercoil DNA to levels that can impede or halt these processes. As a potent transcription amplifier and replication accelerator, the proto-oncogene MYC must manage this interfering torsional stress. By comparing gene expression with the recruitment of topoisomerases and MYC to promoters, we surmised a direct association of MYC with topoisomerase 1 (TOP1) and TOP2 that was confirmed in vitro and in cells. Beyond recruiting topoisomerases, MYC directly stimulates their activities. We identify a MYC-nucleated "topoisome" complex that unites TOP1 and TOP2 and increases their levels and activities at promoters, gene bodies, and enhancers. Whether TOP2A or TOP2B is included in the topoisome is dictated by the presence of MYC versus MYCN, respectively. Thus, in vitro and in cells, MYC assembles tools that simplify DNA topology and promote genome function under high output conditions.


Subject(s)
DNA Topoisomerases, Type II/metabolism , Neoplasms/enzymology , Poly-ADP-Ribose Binding Proteins/metabolism , Proto-Oncogene Proteins c-myc/metabolism , Transcription, Genetic , Animals , DNA Replication , DNA Topoisomerases, Type I/genetics , DNA Topoisomerases, Type I/metabolism , DNA Topoisomerases, Type II/genetics , DNA, Neoplasm/biosynthesis , DNA, Neoplasm/genetics , DNA, Superhelical/biosynthesis , DNA, Superhelical/genetics , Enzyme Activation , Gene Expression Regulation, Neoplastic , HCT116 Cells , Humans , K562 Cells , Multienzyme Complexes , Neoplasms/genetics , Neoplasms/pathology , Poly-ADP-Ribose Binding Proteins/genetics , Promoter Regions, Genetic , Protein Binding , Proto-Oncogene Proteins c-myc/genetics , Rats
5.
Mol Cell ; 82(9): 1751-1767.e8, 2022 05 05.
Article in English | MEDLINE | ID: mdl-35320753

ABSTRACT

Chromosome inheritance depends on centromeres, epigenetically specified regions of chromosomes. While conventional human centromeres are known to be built of long tandem DNA repeats, much of their architecture remains unknown. Using single-molecule techniques such as AFM, nanopores, and optical tweezers, we find that human centromeric DNA exhibits complex DNA folds such as local hairpins. Upon binding to a specific sequence within centromeric regions, the DNA-binding protein CENP-B compacts centromeres by forming pronounced DNA loops between the repeats, which favor inter-chromosomal centromere compaction and clustering. This DNA-loop-mediated organization of centromeric chromatin participates in maintaining centromere position and integrity upon microtubule pulling during mitosis. Our findings emphasize the importance of DNA topology in centromeric regulation and stability.


Subject(s)
Centromere , Chromosomal Proteins, Non-Histone , Autoantigens/genetics , Autoantigens/metabolism , Centromere/genetics , Centromere/metabolism , Centromere Protein A/genetics , Centromere Protein A/metabolism , Chromatin , Chromosomal Proteins, Non-Histone/genetics , Chromosomal Proteins, Non-Histone/metabolism , DNA/genetics , Humans
6.
Mol Cell ; 82(21): 4160-4175.e6, 2022 11 03.
Article in English | MEDLINE | ID: mdl-36272409

ABSTRACT

CRISPR-Cas9-mediated genome editing depends on PAM recognition to initiate DNA unwinding. PAM mutations can abolish Cas9 binding and prohibit editing. Here, we identified a Cas9 from the thermophile Alicyclobacillus tengchongensis for which the PAM interaction can be robustly regulated by DNA topology. AtCas9 has a relaxed PAM of N4CNNN and N4RNNA (R = A/G) and is able to bind but not cleave targets with mutated PAMs. When PAM-mutated DNA was in underwound topology, AtCas9 exhibited enhanced binding affinity and high cleavage activity. Mechanistically, AtCas9 has a unique loop motif, which docked into the DNA major groove, and this interaction can be regulated by DNA topology. More importantly, AtCas9 showed near-PAMless editing of supercoiled plasmid in E. coli. In mammalian cells, AtCas9 exhibited broad PAM preference to edit plasmid with up to 72% efficiency and effective base editing at four endogenous loci, representing a potentially powerful tool for near-PAMless editing.


Subject(s)
CRISPR-Cas Systems , Escherichia coli , Animals , Escherichia coli/genetics , Escherichia coli/metabolism , Gene Editing , DNA/genetics , Plasmids , Mammals/metabolism
7.
Mol Cell ; 82(21): 4145-4159.e7, 2022 11 03.
Article in English | MEDLINE | ID: mdl-36206765

ABSTRACT

Self versus non-self discrimination is a key element of innate and adaptive immunity across life. In bacteria, CRISPR-Cas and restriction-modification systems recognize non-self nucleic acids through their sequence and their methylation state, respectively. Here, we show that the Wadjet defense system recognizes DNA topology to protect its host against plasmid transformation. By combining cryoelectron microscopy with cross-linking mass spectrometry, we show that Wadjet forms a complex similar to the bacterial condensin complex MukBEF, with a novel nuclease subunit similar to a type II DNA topoisomerase. Wadjet specifically cleaves closed-circular DNA in a reaction requiring ATP hydrolysis by the structural maintenance of chromosome (SMC) ATPase subunit JetC, suggesting that the complex could use DNA loop extrusion to sense its substrate's topology, then specifically activate the nuclease subunit JetD to cleave plasmid DNA. Overall, our data reveal how bacteria have co-opted a DNA maintenance machine to specifically recognize and destroy foreign DNAs through topology sensing.


Subject(s)
DNA, Circular , Multiprotein Complexes , Multiprotein Complexes/genetics , Multiprotein Complexes/chemistry , Cryoelectron Microscopy , DNA-Binding Proteins/metabolism , Chromosomes/metabolism , Plasmids/genetics , DNA/genetics , Bacteria/genetics
8.
Mol Cell ; 78(4): 739-751.e8, 2020 05 21.
Article in English | MEDLINE | ID: mdl-32259483

ABSTRACT

DNA topological stress inhibits DNA replication fork (RF) progression and contributes to DNA replication stress. In Saccharomyces cerevisiae, we demonstrate that centromeric DNA and the rDNA array are especially vulnerable to DNA topological stress during replication. The activity of the SMC complexes cohesin and condensin are linked to both the generation and repair of DNA topological-stress-linked damage in these regions. At cohesin-enriched centromeres, cohesin activity causes the accumulation of DNA damage, RF rotation, and pre-catenation, confirming that cohesin-dependent DNA topological stress impacts on normal replication progression. In contrast, at the rDNA, cohesin and condensin activity inhibit the repair of damage caused by DNA topological stress. We propose that, as well as generally acting to ensure faithful genetic inheritance, SMCs can disrupt genome stability by trapping DNA topological stress.


Subject(s)
Adenosine Triphosphatases/metabolism , Cell Cycle Proteins/metabolism , Chromosomal Proteins, Non-Histone/metabolism , Chromosomes, Fungal , DNA Damage , DNA Replication , DNA-Binding Proteins/metabolism , Multiprotein Complexes/metabolism , Saccharomyces cerevisiae Proteins/metabolism , Saccharomyces cerevisiae/genetics , Adenosine Triphosphatases/genetics , Cell Cycle Proteins/genetics , Chromosomal Proteins, Non-Histone/genetics , DNA Topoisomerases, Type II/genetics , DNA Topoisomerases, Type II/metabolism , DNA, Fungal/genetics , DNA, Fungal/metabolism , DNA, Ribosomal/genetics , DNA, Ribosomal/metabolism , DNA-Binding Proteins/genetics , Multiprotein Complexes/genetics , Saccharomyces cerevisiae/metabolism , Saccharomyces cerevisiae Proteins/genetics , Cohesins
9.
Mol Cell ; 79(3): 488-503.e11, 2020 08 06.
Article in English | MEDLINE | ID: mdl-32585128

ABSTRACT

Transcription elongation rates influence RNA processing, but sequence-specific regulation is poorly understood. We addressed this in vivo, analyzing RNAPI in S. cerevisiae. Mapping RNAPI by Miller chromatin spreads or UV crosslinking revealed 5' enrichment and strikingly uneven local polymerase occupancy along the rDNA, indicating substantial variation in transcription speed. Two features of the nascent transcript correlated with RNAPI distribution: folding energy and GC content in the transcription bubble. In vitro experiments confirmed that strong RNA structures close to the polymerase promote forward translocation and limit backtracking, whereas high GC in the transcription bubble slows elongation. A mathematical model for RNAPI elongation confirmed the importance of nascent RNA folding in transcription. RNAPI from S. pombe was similarly sensitive to transcript folding, as were S. cerevisiae RNAPII and RNAPIII. For RNAPII, unstructured RNA, which favors slowed elongation, was associated with faster cotranscriptional splicing and proximal splice site use, indicating regulatory significance for transcript folding.


Subject(s)
RNA Polymerase III/genetics , RNA Polymerase II/genetics , RNA Polymerase I/genetics , RNA, Fungal/chemistry , Saccharomyces cerevisiae/genetics , Transcription Elongation, Genetic , Base Composition , Base Sequence , Binding Sites , Chromatin/chemistry , Chromatin/metabolism , DNA, Ribosomal/genetics , DNA, Ribosomal/metabolism , Gene Expression Regulation, Fungal , Protein Binding , RNA Folding , RNA Polymerase I/metabolism , RNA Polymerase II/metabolism , RNA Polymerase III/metabolism , RNA Splice Sites , RNA Splicing , RNA, Fungal/genetics , RNA, Fungal/metabolism , Saccharomyces cerevisiae/metabolism , Schizosaccharomyces/genetics , Schizosaccharomyces/metabolism , Thermodynamics
10.
EMBO J ; 42(3): e111913, 2023 02 01.
Article in English | MEDLINE | ID: mdl-36533296

ABSTRACT

Condensin, an SMC (structural maintenance of chromosomes) protein complex, extrudes DNA loops using an ATP-dependent mechanism that remains to be elucidated. Here, we show how condensin activity alters the topology of the interacting DNA. High condensin concentrations restrain positive DNA supercoils. However, in experimental conditions of DNA loop extrusion, condensin restrains negative supercoils. Namely, following ATP-mediated loading onto DNA, each condensin complex constrains a DNA linking number difference (∆Lk) of -0.4. This ∆Lk increases to -0.8 during ATP binding and resets to -0.4 upon ATP hydrolysis. These changes in DNA topology do not involve DNA unwinding, do not spread outside the condensin-DNA complex and can occur in the absence of the condensin subunit Ycg1. These findings indicate that during ATP binding, a short DNA domain delimited by condensin is pinched into a negatively supercoiled loop. We propose that this loop is the feeding segment of DNA that is subsequently merged to enlarge an extruding loop. Such a "pinch and merge" mechanism implies that two DNA-binding sites produce the feeding loop, while a third site, plausibly involving Ycg1, might anchor the extruding loop.


Subject(s)
Chromosomes , DNA, Superhelical , DNA/metabolism , Adenosine Triphosphate/metabolism , Cell Cycle Proteins/metabolism
11.
Mol Cell ; 75(2): 267-283.e12, 2019 07 25.
Article in English | MEDLINE | ID: mdl-31202576

ABSTRACT

How spatial chromosome organization influences genome integrity is still poorly understood. Here, we show that DNA double-strand breaks (DSBs) mediated by topoisomerase 2 (TOP2) activities are enriched at chromatin loop anchors with high transcriptional activity. Recurrent DSBs occur at CCCTC-binding factor (CTCF) and cohesin-bound sites at the bases of chromatin loops, and their frequency positively correlates with transcriptional output and directionality. The physiological relevance of this preferential positioning is indicated by the finding that genes recurrently translocating to drive leukemias are highly transcribed and are enriched at loop anchors. These genes accumulate DSBs at recurrent hotspots that give rise to chromosomal fusions relying on the activity of both TOP2 isoforms and on transcriptional elongation. We propose that transcription and 3D chromosome folding jointly pose a threat to genomic stability and are key contributors to the occurrence of genome rearrangements that drive cancer.


Subject(s)
DNA Topoisomerases, Type II/genetics , Genomic Instability/genetics , Histone-Lysine N-Methyltransferase/genetics , Myeloid-Lymphoid Leukemia Protein/genetics , Poly-ADP-Ribose Binding Proteins/genetics , Translocation, Genetic/genetics , CCCTC-Binding Factor/genetics , Carcinogenesis/genetics , Cell Line, Tumor , Chromatin/chemistry , Chromatin/genetics , Chromosomes/chemistry , Chromosomes/genetics , DNA/genetics , DNA Breaks, Double-Stranded , Humans , Leukemia/genetics , Leukemia/pathology
12.
Genes Dev ; 33(21-22): 1539-1554, 2019 11 01.
Article in English | MEDLINE | ID: mdl-31624083

ABSTRACT

A universal feature of DNA damage and replication stress in eukaryotes is the activation of a checkpoint-kinase response. In S-phase, the checkpoint inhibits replication initiation, yet the function of this global block to origin firing remains unknown. To establish the physiological roles of this arm of the checkpoint, we analyzed separation of function mutants in the budding yeast Saccharomyces cerevisiae that allow global origin firing upon replication stress, despite an otherwise normal checkpoint response. Using genetic screens, we show that lack of the checkpoint-block to origin firing results in a dependence on pathways required for the resolution of topological problems. Failure to inhibit replication initiation indeed causes increased DNA catenation, resulting in DNA damage and chromosome loss. We further show that such topological stress is not only a consequence of a failed checkpoint response but also occurs in an unperturbed S-phase when too many origins fire simultaneously. Together we reveal that the role of limiting the number of replication initiation events is to prevent DNA topological problems, which may be relevant for the treatment of cancer with both topoisomerase and checkpoint inhibitors.


Subject(s)
Genes, cdc/genetics , Replication Origin/genetics , Saccharomyces cerevisiae Proteins/genetics , Saccharomyces cerevisiae/genetics , DNA Damage/genetics , DNA, Fungal/chemistry , DNA, Fungal/genetics , Gene Expression Regulation, Fungal , Mutation , S Phase , Saccharomyces cerevisiae/growth & development , Stress, Physiological/genetics
13.
Mol Cell ; 70(3): 449-461.e5, 2018 05 03.
Article in English | MEDLINE | ID: mdl-29727617

ABSTRACT

Hard-to-replicate regions of chromosomes (e.g., pericentromeres, centromeres, and telomeres) impede replication fork progression, eventually leading, in the event of replication stress, to chromosome fragility, aging, and cancer. Our knowledge of the mechanisms controlling the stability of these regions is essentially limited to telomeres, where fragility is counteracted by the shelterin proteins. Here we show that the shelterin subunit TRF2 ensures progression of the replication fork through pericentromeric heterochromatin, but not centromeric chromatin. In a process involving its N-terminal basic domain, TRF2 binds to pericentromeric Satellite III sequences during S phase, allowing the recruitment of the G-quadruplex-resolving helicase RTEL1 to facilitate fork progression. We also show that TRF2 is required for the stability of other heterochromatic regions localized throughout the genome, paving the way for future research on heterochromatic replication and its relationship with aging and cancer.


Subject(s)
DNA Replication/genetics , Genome/genetics , Heterochromatin/genetics , Telomere/genetics , Telomeric Repeat Binding Protein 2/genetics , Cell Line, Tumor , Centromere/genetics , Chromatin/genetics , DNA Helicases/genetics , G-Quadruplexes , HeLa Cells , Humans , S Phase/genetics
14.
EMBO J ; 40(1): e105393, 2021 01 04.
Article in English | MEDLINE | ID: mdl-33155682

ABSTRACT

The juxtaposition of intracellular DNA segments, together with the DNA-passage activity of topoisomerase II, leads to the formation of DNA knots and interlinks, which jeopardize chromatin structure and gene expression. Recent studies in budding yeast have shown that some mechanism minimizes the knotting probability of intracellular DNA. Here, we tested whether this is achieved via the intrinsic capacity of topoisomerase II for simplifying the equilibrium topology of DNA; or whether it is mediated by SMC (structural maintenance of chromosomes) protein complexes like condensin or cohesin, whose capacity to extrude DNA loops could enforce dissolution of DNA knots by topoisomerase II. We show that the low knotting probability of DNA does not depend on the simplification capacity of topoisomerase II nor on the activities of cohesin or Smc5/6 complexes. However, inactivation of condensin increases the occurrence of DNA knots throughout the cell cycle. These results suggest an in vivo role for the DNA loop extrusion activity of condensin and may explain why condensin disruption produces a variety of alterations in interphase chromatin, in addition to persistent sister chromatid interlinks in mitotic chromatin.


Subject(s)
Adenosine Triphosphatases/metabolism , Cell Cycle Proteins/metabolism , Chromosomal Proteins, Non-Histone/metabolism , DNA Topoisomerases, Type II/metabolism , DNA-Binding Proteins/metabolism , DNA/metabolism , Multiprotein Complexes/metabolism , Cell Cycle/physiology , Chromatids/metabolism , Chromatin/metabolism , Saccharomyces cerevisiae/metabolism , Cohesins
15.
RNA ; 29(11): 1691-1702, 2023 11.
Article in English | MEDLINE | ID: mdl-37536954

ABSTRACT

Double-stranded RNA (dsRNA) has aroused widespread interest due to its effects on immunity and applications based on RNAi. However, the in vitro preparation of dsRNA is costly and laborious. In this study, we have developed a novel and interesting method designated as pfRCT (promoter-free rolling-circle transcription) for direct, facile, and efficient dsRNA preparation. This method generates equal amounts of sense and antisense strands simultaneously from a single circular dsDNA template. To initiate transcription by T7 RNA polymerase without directional preference, a 9-15-bp bubble (mismatched duplex with strong sequence symmetry) is introduced into the template. During RCT, all the necessary reagents, including the template, NTPs, RNA polymerase, RNase H, and Helpers, are present in one pot; and the just-transcribed RNA is immediately truncated by RNase H to monomers with the desired size. The ends of the dsRNA product can also be simply sealed by T4 RNA ligase 1 after pfRCT. This new approach is expected to promote the applications of dsRNA.


Subject(s)
RNA, Double-Stranded , Ribonuclease H , Ribonuclease H/genetics , RNA Interference , RNA, Double-Stranded/genetics , Transcription, Genetic
16.
Proc Natl Acad Sci U S A ; 119(44): e2207728119, 2022 11.
Article in English | MEDLINE | ID: mdl-36279471

ABSTRACT

DNA recombination is a ubiquitous process that ensures genetic diversity. Contrary to textbook pictures, DNA recombination, as well as generic DNA translocations, occurs in a confined and highly entangled environment. Inspired by this observation, here, we investigate a solution of semiflexible polymer rings undergoing generic cutting and reconnection operations under spherical confinement. Our setup may be realized using engineered DNA in the presence of recombinase proteins or by considering micelle-like components able to form living (or reversibly breakable) polymer rings. We find that in such systems, there is a topological gelation transition, which can be triggered by increasing either the stiffness or the concentration of the rings. Flexible or dilute polymers break into an ensemble of short, unlinked, and segregated rings, whereas sufficiently stiff or dense polymers self-assemble into a network of long, linked, and mixed loops, many of which are knotted. We predict that the two phases should behave qualitatively differently in elution experiments monitoring the escape dynamics from a permeabilized container. Besides shedding some light on the biophysics and topology of genomes undergoing DNA reconnection in vivo, our findings could be leveraged in vitro to design polymeric complex fluids-e.g., DNA-based complex fluids or living polymer networks-with desired topologies.


Subject(s)
Micelles , Polymers , Polymers/metabolism , DNA/metabolism , Biophysics , Recombinases
17.
Proc Natl Acad Sci U S A ; 119(19): e2203967119, 2022 05 10.
Article in English | MEDLINE | ID: mdl-35503911

ABSTRACT

Certain DNA sequences, including mirror-symmetric polypyrimidine•polypurine runs, are capable of folding into a triple-helix­containing non­B-form DNA structure called H-DNA. Such H-DNA­forming sequences occur frequently in many eukaryotic genomes, including in mammals, and multiple lines of evidence indicate that these motifs are mutagenic and can impinge on DNA replication, transcription, and other aspects of genome function. In this study, we show that the triplex-forming potential of H-DNA motifs in the mouse genome can be evaluated using S1-sequencing (S1-seq), which uses the single-stranded DNA (ssDNA)­specific nuclease S1 to generate deep-sequencing libraries that report on the position of ssDNA throughout the genome. When S1-seq was applied to genomic DNA isolated from mouse testis cells and splenic B cells, we observed prominent clusters of S1-seq reads that appeared to be independent of endogenous double-strand breaks, that coincided with H-DNA motifs, and that correlated strongly with the triplex-forming potential of the motifs. Fine-scale patterns of S1-seq reads, including a pronounced strand asymmetry in favor of centrally positioned reads on the pyrimidine-containing strand, suggested that this S1-seq signal is specific for one of the four possible isomers of H-DNA (H-y5). By leveraging the abundance and complexity of naturally occurring H-DNA motifs across the mouse genome, we further defined how polypyrimidine repeat length and the presence of repeat-interrupting substitutions modify the structure of H-DNA. This study provides an approach for studying DNA secondary structure genome-wide at high spatial resolution.


Subject(s)
Genome , Nucleotide Motifs , Animals , Base Sequence , Genome/genetics , Mice , Nucleic Acid Conformation
18.
Genes Dev ; 31(21): 2151-2161, 2017 11 01.
Article in English | MEDLINE | ID: mdl-29208645

ABSTRACT

DNA replication of circular genomes generates physically interlinked or catenated sister DNAs. These are resolved through transient DNA fracture by type II topoisomerases to permit chromosome segregation during cell division. Topoisomerase II is similarly required for linear chromosome segregation, suggesting that linear chromosomes also remain intertwined following DNA replication. Indeed, chromosome resolution defects are a frequent cause of chromosome segregation failure and consequent aneuploidies. When and where intertwines arise and persist along linear chromosomes are not known, owing to the difficulty of demonstrating intertwining of linear DNAs. Here, we used excision of chromosomal regions as circular "loop outs" to convert sister chromatid intertwines into catenated circles. This revealed intertwining at replication termination and cohesin-binding sites, where intertwines are thought to arise and persist but not to a greater extent than elsewhere in the genome. Intertwining appears to spread evenly along chromosomes but is excluded from heterochromatin. We found that intertwines arise before replication termination, suggesting that replication forks rotate during replication elongation to dissipate torsion ahead of the forks. Our approach provides previously inaccessible insight into the topology of eukaryotic chromosomes and illuminates a process critical for successful chromosome segregation.


Subject(s)
Chromosomes, Fungal/metabolism , DNA Replication , DNA, Fungal/metabolism , Saccharomyces cerevisiae/genetics , Saccharomyces cerevisiae/metabolism , Cell Cycle Proteins/metabolism , Chromosomal Proteins, Non-Histone/metabolism , Chromosome Segregation , Genetic Structures , Genome, Fungal , Heterochromatin/metabolism , Replication Origin/genetics , Cohesins
19.
J Biol Chem ; 299(12): 105364, 2023 Dec.
Article in English | MEDLINE | ID: mdl-37865319

ABSTRACT

Nucleoid-associated proteins (NAPs) regulate multiple cellular processes such as gene expression, virulence, and dormancy throughout bacterial species. NAPs help in the survival and adaptation of Mycobacterium tuberculosis (Mtb) within the host. Fourteen NAPs have been identified in Escherichia coli; however, only seven NAPs are documented in Mtb. Given its complex lifestyle, it is reasonable to assume that Mtb would encode for more NAPs. Using bioinformatics tools and biochemical experiments, we have identified the heparin-binding hemagglutinin (HbhA) protein of Mtb as a novel sequence-independent DNA-binding protein which has previously been characterized as an adhesion molecule required for extrapulmonary dissemination. Deleting the carboxy-terminal domain of HbhA resulted in a complete loss of its DNA-binding activity. Atomic force microscopy showed HbhA-mediated architectural modulations in the DNA, which may play a regulatory role in transcription and genome organization. Our results showed that HbhA colocalizes with the nucleoid region of Mtb. Transcriptomics analyses of a hbhA KO strain revealed that it regulates the expression of ∼36% of total and ∼29% of essential genes. Deletion of hbhA resulted in the upregulation of ∼73% of all differentially expressed genes, belonging to multiple pathways suggesting it to be a global repressor. The results show that HbhA is a nonessential NAP regulating gene expression globally and acting as a plausible transcriptional repressor.


Subject(s)
Bacterial Proteins , Hemagglutinins , Mycobacterium tuberculosis , Bacterial Proteins/genetics , Bacterial Proteins/metabolism , DNA/chemistry , DNA/metabolism , Hemagglutinins/genetics , Hemagglutinins/metabolism , Mycobacterium tuberculosis/genetics , Mycobacterium tuberculosis/metabolism , Gene Expression Regulation, Bacterial/genetics , Gene Deletion , DNA-Binding Proteins/genetics , Protein Domains/genetics , Microscopy, Atomic Force
20.
Mol Cell ; 61(2): 274-86, 2016 Jan 21.
Article in English | MEDLINE | ID: mdl-26774283

ABSTRACT

The shelterin proteins protect telomeres against activation of the DNA damage checkpoints and recombinational repair. We show here that a dimer of the shelterin subunit TRF2 wraps ∼ 90 bp of DNA through several lysine and arginine residues localized around its homodimerization domain. The expression of a wrapping-deficient TRF2 mutant, named Top-less, alters telomeric DNA topology, decreases the number of terminal loops (t-loops), and triggers the ATM checkpoint, while still protecting telomeres against non-homologous end joining (NHEJ). In Top-less cells, the protection against NHEJ is alleviated if the expression of the TRF2-interacting protein RAP1 is reduced. We conclude that a distinctive topological state of telomeric DNA, controlled by the TRF2-dependent DNA wrapping and linked to t-loop formation, inhibits both ATM activation and NHEJ. The presence of RAP1 at telomeres appears as a backup mechanism to prevent NHEJ when topology-mediated telomere protection is impaired.


Subject(s)
DNA/chemistry , Nucleic Acid Conformation , Telomere/metabolism , Telomeric Repeat Binding Protein 2/metabolism , Ataxia Telangiectasia Mutated Proteins/metabolism , Base Pairing , DNA/metabolism , DNA Damage , DNA End-Joining Repair , HeLa Cells , Humans , Lysine/metabolism , Models, Molecular , Mutation , Protein Structure, Tertiary , Shelterin Complex , Signal Transduction , Telomere-Binding Proteins/metabolism , Telomeric Repeat Binding Protein 2/chemistry
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