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1.
Cell ; 187(14): 3638-3651.e18, 2024 Jul 11.
Article in English | MEDLINE | ID: mdl-38838667

ABSTRACT

Telomere maintenance requires the extension of the G-rich telomeric repeat strand by telomerase and the fill-in synthesis of the C-rich strand by Polα/primase. At telomeres, Polα/primase is bound to Ctc1/Stn1/Ten1 (CST), a single-stranded DNA-binding complex. Like mutations in telomerase, mutations affecting CST-Polα/primase result in pathological telomere shortening and cause a telomere biology disorder, Coats plus (CP). We determined cryogenic electron microscopy structures of human CST bound to the shelterin heterodimer POT1/TPP1 that reveal how CST is recruited to telomeres by POT1. Our findings suggest that POT1 hinge phosphorylation is required for CST recruitment, and the complex is formed through conserved interactions involving several residues mutated in CP. Our structural and biochemical data suggest that phosphorylated POT1 holds CST-Polα/primase in an inactive, autoinhibited state until telomerase has extended the telomere ends. We propose that dephosphorylation of POT1 releases CST-Polα/primase into an active state that completes telomere replication through fill-in synthesis.


Subject(s)
DNA Polymerase I , DNA Primase , Shelterin Complex , Telomere-Binding Proteins , Telomere , Humans , Telomere-Binding Proteins/metabolism , Shelterin Complex/metabolism , Telomere/metabolism , Phosphorylation , DNA Primase/metabolism , DNA Primase/genetics , DNA Polymerase I/metabolism , Cryoelectron Microscopy , Telomerase/metabolism , Models, Molecular
2.
Cell ; 186(4): 837-849.e11, 2023 02 16.
Article in English | MEDLINE | ID: mdl-36693376

ABSTRACT

Concomitant with DNA replication, the chromosomal cohesin complex establishes cohesion between newly replicated sister chromatids. Cohesion establishment requires acetylation of conserved cohesin lysine residues by Eco1 acetyltransferase. Here, we explore how cohesin acetylation is linked to DNA replication. Biochemical reconstitution of replication-coupled cohesin acetylation reveals that transient DNA structures, which form during DNA replication, control the acetylation reaction. As polymerases complete lagging strand replication, strand displacement synthesis produces DNA flaps that are trimmed to result in nicked double-stranded DNA. Both flaps and nicks stimulate cohesin acetylation, while subsequent nick ligation to complete Okazaki fragment maturation terminates the acetylation reaction. A flapped or nicked DNA substrate constitutes a transient molecular clue that directs cohesin acetylation to a window behind the replication fork, next to where cohesin likely entraps both sister chromatids. Our results provide an explanation for how DNA replication is linked to sister chromatid cohesion establishment.


Subject(s)
Chromatids , Saccharomyces cerevisiae Proteins , Chromatids/metabolism , Nuclear Proteins/metabolism , Saccharomyces cerevisiae/genetics , Saccharomyces cerevisiae/metabolism , Saccharomyces cerevisiae Proteins/genetics , Saccharomyces cerevisiae Proteins/metabolism , DNA Replication , Cell Cycle Proteins/genetics , Cell Cycle Proteins/metabolism , DNA , Acetyltransferases/genetics , Acetyltransferases/metabolism
3.
Cell ; 186(1): 98-111.e21, 2023 01 05.
Article in English | MEDLINE | ID: mdl-36608662

ABSTRACT

In eukaryotes, DNA replication initiation requires assembly and activation of the minichromosome maintenance (MCM) 2-7 double hexamer (DH) to melt origin DNA strands. However, the mechanism for this initial melting is unknown. Here, we report a 2.59-Å cryo-electron microscopy structure of the human MCM-DH (hMCM-DH), also known as the pre-replication complex. In this structure, the hMCM-DH with a constricted central channel untwists and stretches the DNA strands such that almost a half turn of the bound duplex DNA is distorted with 1 base pair completely separated, generating an initial open structure (IOS) at the hexamer junction. Disturbing the IOS inhibits DH formation and replication initiation. Mapping of hMCM-DH footprints indicates that IOSs are distributed across the genome in large clusters aligning well with initiation zones designed for stochastic origin firing. This work unravels an intrinsic mechanism that couples DH formation with initial DNA melting to license replication initiation in human cells.


Subject(s)
DNA Replication , Humans , Cell Cycle Proteins/metabolism , Cryoelectron Microscopy , DNA-Binding Proteins/metabolism , Minichromosome Maintenance Proteins/metabolism , Replication Origin
4.
Cell ; 186(3): 528-542.e14, 2023 02 02.
Article in English | MEDLINE | ID: mdl-36681079

ABSTRACT

Whole-genome duplication (WGD) is a frequent event in cancer evolution and an important driver of aneuploidy. The role of the p53 tumor suppressor in WGD has been enigmatic: p53 can block the proliferation of tetraploid cells, acting as a barrier to WGD, but can also promote mitotic bypass, a key step in WGD via endoreduplication. In wild-type (WT) p53 tumors, WGD is frequently associated with activation of the E2F pathway, especially amplification of CCNE1, encoding cyclin E1. Here, we show that elevated cyclin E1 expression causes replicative stress, which activates ATR- and Chk1-dependent G2 phase arrest. p53, via its downstream target p21, together with Wee1, then inhibits mitotic cyclin-dependent kinase activity sufficiently to activate APC/CCdh1 and promote mitotic bypass. Cyclin E expression suppresses p53-dependent senescence after mitotic bypass, allowing cells to complete endoreduplication. Our results indicate that p53 can contribute to cancer evolution through the promotion of WGD.


Subject(s)
Cyclin E , Gene Duplication , Neoplasms , Tumor Suppressor Protein p53 , Humans , Cell Line, Tumor , Cyclin E/genetics , Cyclin E/metabolism , Cyclin-Dependent Kinase Inhibitor p21/genetics , Mitosis , Neoplasms/genetics , Neoplasms/pathology , Tumor Suppressor Protein p53/metabolism
5.
Cell ; 186(5): 1050-1065.e19, 2023 03 02.
Article in English | MEDLINE | ID: mdl-36750094

ABSTRACT

Chromatin landscapes are disrupted during DNA replication and must be restored faithfully to maintain genome regulation and cell identity. The histone H3-H4 modification landscape is restored by parental histone recycling and modification of new histones. How DNA replication impacts on histone H2A-H2B is currently unknown. Here, we measure H2A-H2B modifications and H2A.Z during DNA replication and across the cell cycle using quantitative genomics. We show that H2AK119ub1, H2BK120ub1, and H2A.Z are recycled accurately during DNA replication. Modified H2A-H2B are segregated symmetrically to daughter strands via POLA1 on the lagging strand, but independent of H3-H4 recycling. Post-replication, H2A-H2B modification and variant landscapes are quickly restored, and H2AK119ub1 guides accurate restoration of H3K27me3. This work reveals epigenetic transmission of parental H2A-H2B during DNA replication and identifies cross talk between H3-H4 and H2A-H2B modifications in epigenome propagation. We propose that rapid short-term memory of recycled H2A-H2B modifications facilitates restoration of stable H3-H4 chromatin states.


Subject(s)
Chromatin , Memory, Short-Term , Cell Cycle , DNA Replication , Histones/metabolism , Nucleosomes , Animals , Mice , Rabbits
6.
Cell ; 186(19): 4100-4116.e15, 2023 09 14.
Article in English | MEDLINE | ID: mdl-37643610

ABSTRACT

Nucleosomes block access to DNA methyltransferase, unless they are remodeled by DECREASE in DNA METHYLATION 1 (DDM1LSH/HELLS), a Snf2-like master regulator of epigenetic inheritance. We show that DDM1 promotes replacement of histone variant H3.3 by H3.1. In ddm1 mutants, DNA methylation is partly restored by loss of the H3.3 chaperone HIRA, while the H3.1 chaperone CAF-1 becomes essential. The single-particle cryo-EM structure at 3.2 Å of DDM1 with a variant nucleosome reveals engagement with histone H3.3 near residues required for assembly and with the unmodified H4 tail. An N-terminal autoinhibitory domain inhibits activity, while a disulfide bond in the helicase domain supports activity. DDM1 co-localizes with H3.1 and H3.3 during the cell cycle, and with the DNA methyltransferase MET1Dnmt1, but is blocked by H4K16 acetylation. The male germline H3.3 variant MGH3/HTR10 is resistant to remodeling by DDM1 and acts as a placeholder nucleosome in sperm cells for epigenetic inheritance.


Subject(s)
Arabidopsis Proteins , Arabidopsis , DNA Methylation , Histones , Nucleosomes , Chromatin Assembly and Disassembly , DNA , DNA Modification Methylases , Epigenesis, Genetic , Histones/genetics , Nucleosomes/genetics , Semen , Arabidopsis/genetics , Arabidopsis/metabolism , Arabidopsis Proteins/genetics , Arabidopsis Proteins/metabolism
7.
Annu Rev Biochem ; 91: 107-131, 2022 06 21.
Article in English | MEDLINE | ID: mdl-35320688

ABSTRACT

DNA replication in eukaryotic cells initiates from large numbers of sites called replication origins. Initiation of replication from these origins must be tightly controlled to ensure the entire genome is precisely duplicated in each cell cycle. This is accomplished through the regulation of the first two steps in replication: loading and activation of the replicative DNA helicase. Here we describe what is known about the mechanism and regulation of these two reactions from a genetic, biochemical, and structural perspective, focusing on recent progress using proteins from budding yeast.


Subject(s)
Eukaryota , Eukaryotic Cells , Cell Cycle/genetics , DNA Replication , Eukaryota/genetics , Eukaryotic Cells/metabolism , Replication Origin
8.
Annu Rev Biochem ; 90: 57-76, 2021 06 20.
Article in English | MEDLINE | ID: mdl-34153218

ABSTRACT

I endeavor to share how various choices-some deliberate, some unconscious-and the unmistakable influence of many others shaped my scientific pursuits. I am fascinated by how two long-term, major streams of my research, DNA replication and purine biosynthesis, have merged with unexpected interconnections. If I have imparted to many of the talented individuals who have passed through my lab a degree of my passion for uncloaking the mysteries hidden in scientific research and an understanding of the honesty and rigor it demands and its impact on the world community, then my mentorship has been successful.


Subject(s)
Biochemistry/history , DNA Replication , Enzymes , Purines/biosynthesis , Anti-Infective Agents/chemistry , Anti-Infective Agents/pharmacology , Antibodies, Catalytic/chemistry , Antibodies, Catalytic/metabolism , Enzymes/chemistry , Enzymes/metabolism , History, 20th Century , History, 21st Century , Humans , Male , United States
9.
Annu Rev Biochem ; 90: 77-106, 2021 06 20.
Article in English | MEDLINE | ID: mdl-33784179

ABSTRACT

The faithful and timely copying of DNA by molecular machines known as replisomes depends on a disparate suite of enzymes and scaffolding factors working together in a highly orchestrated manner. Large, dynamic protein-nucleic acid assemblies that selectively morph between distinct conformations and compositional states underpin this critical cellular process. In this article, we discuss recent progress outlining the physical basis of replisome construction and progression in eukaryotes.


Subject(s)
DNA Replication , DNA/biosynthesis , Eukaryota/genetics , Origin Recognition Complex/metabolism , Animals , DNA/chemistry , DNA Polymerase III/chemistry , DNA Polymerase III/metabolism , Humans , Origin Recognition Complex/chemistry , Origin Recognition Complex/genetics , Proliferating Cell Nuclear Antigen/chemistry , Proliferating Cell Nuclear Antigen/metabolism
10.
Cell ; 184(16): 4251-4267.e20, 2021 08 05.
Article in English | MEDLINE | ID: mdl-34260899

ABSTRACT

Genetic recombination generates novel trait combinations, and understanding how recombination is distributed across the genome is key to modern genetics. The PRDM9 protein defines recombination hotspots; however, megabase-scale recombination patterning is independent of PRDM9. The single round of DNA replication, which precedes recombination in meiosis, may establish these patterns; therefore, we devised an approach to study meiotic replication that includes robust and sensitive mapping of replication origins. We find that meiotic DNA replication is distinct; reduced origin firing slows replication in meiosis, and a distinctive replication pattern in human males underlies the subtelomeric increase in recombination. We detected a robust correlation between replication and both contemporary and historical recombination and found that replication origin density coupled with chromosome size determines the recombination potential of individual chromosomes. Our findings and methods have implications for understanding the mechanisms underlying DNA replication, genetic recombination, and the landscape of mammalian germline variation.


Subject(s)
Germ Cells/cytology , Homologous Recombination , Meiosis , Animals , Base Composition/genetics , Chromosomes, Mammalian/genetics , DNA Breaks, Double-Stranded , DNA Replication , Genome , Germ Cells/metabolism , Humans , Male , Mammals/metabolism , Mice , Replication Origin , S Phase , Telomere/metabolism , Testis/cytology
11.
Cell ; 182(6): 1545-1559.e18, 2020 09 17.
Article in English | MEDLINE | ID: mdl-32846159

ABSTRACT

In many eukaryotes, Argonaute proteins, guided by short RNA sequences, defend cells against transposons and viruses. In the eubacterium Thermus thermophilus, the DNA-guided Argonaute TtAgo defends against transformation by DNA plasmids. Here, we report that TtAgo also participates in DNA replication. In vivo, TtAgo binds 15- to 18-nt DNA guides derived from the chromosomal region where replication terminates and associates with proteins known to act in DNA replication. When gyrase, the sole T. thermophilus type II topoisomerase, is inhibited, TtAgo allows the bacterium to finish replicating its circular genome. In contrast, loss of gyrase and TtAgo activity slows growth and produces long sausage-like filaments in which the individual bacteria are linked by DNA. Finally, wild-type T. thermophilus outcompetes an otherwise isogenic strain lacking TtAgo. We propose that the primary role of TtAgo is to help T. thermophilus disentangle the catenated circular chromosomes generated by DNA replication.


Subject(s)
Argonaute Proteins/metabolism , Bacterial Proteins/metabolism , DNA Gyrase/metabolism , DNA Replication/genetics , DNA/metabolism , Thermus thermophilus/metabolism , Argonaute Proteins/genetics , Bacterial Proteins/genetics , Cell Survival/drug effects , Cell Survival/genetics , Chromosomes/metabolism , Ciprofloxacin/pharmacology , DNA/genetics , DNA Replication/drug effects , Endonucleases/metabolism , Microscopy, Electron, Scanning , Microscopy, Electron, Transmission , Models, Molecular , Recombinant Proteins , Recombination, Genetic/drug effects , Recombination, Genetic/genetics , Single Molecule Imaging , Tandem Mass Spectrometry , Thermus thermophilus/genetics , Thermus thermophilus/growth & development , Thermus thermophilus/ultrastructure , Topoisomerase II Inhibitors/pharmacology
12.
Cell ; 179(4): 953-963.e11, 2019 10 31.
Article in English | MEDLINE | ID: mdl-31675501

ABSTRACT

Chromatin domains and their associated structures must be faithfully inherited through cellular division to maintain cellular identity. However, accessing the localized strategies preserving chromatin domain inheritance, specifically the transfer of parental, pre-existing nucleosomes with their associated post-translational modifications (PTMs) during DNA replication, is challenging in living cells. We devised an inducible, proximity-dependent labeling system to irreversibly mark replication-dependent H3.1 and H3.2 histone-containing nucleosomes at desired loci in mouse embryonic stem cells so that their fate after DNA replication could be followed. Strikingly, repressed chromatin domains are preserved through local re-deposition of parental nucleosomes. In contrast, nucleosomes decorating active chromatin domains do not exhibit such preservation. Notably, altering cell fate leads to an adjustment of the positional inheritance of parental nucleosomes that reflects the corresponding changes in chromatin structure. These findings point to important mechanisms that contribute to parental nucleosome segregation to preserve cellular identity.


Subject(s)
Chromatin Assembly and Disassembly/genetics , Chromatin/genetics , Epigenesis, Genetic , Nucleosomes/genetics , Animals , Cell Differentiation/genetics , Cell Division/genetics , Cell Lineage/genetics , DNA Replication/genetics , Histones/genetics , Mice , Mouse Embryonic Stem Cells/metabolism , Nucleosomes/metabolism , Protein Processing, Post-Translational/genetics
13.
Cell ; 178(3): 600-611.e16, 2019 07 25.
Article in English | MEDLINE | ID: mdl-31348887

ABSTRACT

The eukaryotic replicative helicase CMG is a closed ring around double-stranded (ds)DNA at origins yet must transition to single-stranded (ss)DNA for helicase action. CMG must also handle repair intermediates, such as reversed forks that lack ssDNA. Here, using correlative single-molecule fluorescence and force microscopy, we show that CMG harbors a ssDNA gate that enables transitions between ss and dsDNA. When coupled to DNA polymerase, CMG remains on ssDNA, but when uncoupled, CMG employs this gate to traverse forked junctions onto dsDNA. Surprisingly, CMG undergoes rapid diffusion on dsDNA and can transition back onto ssDNA to nucleate a functional replisome. The gate-distinct from that between Mcm2/5 used for origin loading-is intrinsic to CMG; however, Mcm10 promotes strand passage by enhancing the affinity of CMG to DNA. This gating process may explain the dsDNA-to-ssDNA transition of CMG at origins and help preserve CMG on dsDNA during fork repair.


Subject(s)
Chromosomal Proteins, Non-Histone/metabolism , DNA, Single-Stranded/metabolism , DNA-Binding Proteins/metabolism , Minichromosome Maintenance Proteins/metabolism , Nuclear Proteins/metabolism , Saccharomyces cerevisiae Proteins/metabolism , DNA/metabolism , DNA Replication , DNA, Single-Stranded/chemistry , Fluorescence Resonance Energy Transfer , Fluorescent Dyes/chemistry , Saccharomyces cerevisiae/genetics , Saccharomyces cerevisiae/metabolism
14.
Cell ; 177(4): 837-851.e28, 2019 05 02.
Article in English | MEDLINE | ID: mdl-30955886

ABSTRACT

L1 retrotransposon-derived sequences comprise approximately 17% of the human genome. Darwinian selective pressures alter L1 genomic distributions during evolution, confounding the ability to determine initial L1 integration preferences. Here, we generated high-confidence datasets of greater than 88,000 engineered L1 insertions in human cell lines that act as proxies for cells that accommodate retrotransposition in vivo. Comparing these insertions to a null model, in which L1 endonuclease activity is the sole determinant dictating L1 integration preferences, demonstrated that L1 insertions are not significantly enriched in genes, transcribed regions, or open chromatin. By comparison, we provide compelling evidence that the L1 endonuclease disproportionately cleaves predominant lagging strand DNA replication templates, while lagging strand 3'-hydroxyl groups may prime endonuclease-independent L1 retrotransposition in a Fanconi anemia cell line. Thus, acquisition of an endonuclease domain, in conjunction with the ability to integrate into replicating DNA, allowed L1 to become an autonomous, interspersed retrotransposon.


Subject(s)
Long Interspersed Nucleotide Elements/genetics , Retroelements/genetics , Cell Line , Endonucleases/genetics , Endonucleases/metabolism , Genome, Human/genetics , Genome-Wide Association Study/methods , Genomics , HeLa Cells , Humans , Mutagenesis, Insertional/genetics
15.
Cell ; 176(1-2): 144-153.e13, 2019 01 10.
Article in English | MEDLINE | ID: mdl-30554877

ABSTRACT

Abasic sites are one of the most common DNA lesions. All known abasic site repair mechanisms operate only when the damage is in double-stranded DNA. Here, we report the discovery of 5-hydroxymethylcytosine (5hmC) binding, ESC-specific (HMCES) as a sensor of abasic sites in single-stranded DNA. HMCES acts at replication forks, binds PCNA and single-stranded DNA, and generates a DNA-protein crosslink to shield abasic sites from error-prone processing. This unusual HMCES DNA-protein crosslink intermediate is resolved by proteasome-mediated degradation. Acting as a suicide enzyme, HMCES prevents translesion DNA synthesis and the action of endonucleases that would otherwise generate mutations and double-strand breaks. HMCES is evolutionarily conserved in all domains of life, and its biochemical properties are shared with its E. coli ortholog. Thus, HMCES is an ancient DNA lesion recognition protein that preserves genome integrity by promoting error-free repair of abasic sites in single-stranded DNA.


Subject(s)
5-Methylcytosine/analogs & derivatives , DNA Repair/physiology , DNA, Single-Stranded/physiology , 5-Methylcytosine/metabolism , Apurinic Acid/metabolism , DNA/metabolism , DNA Damage/physiology , DNA Replication/physiology , DNA, Single-Stranded/metabolism , DNA-Binding Proteins/genetics , DNA-Binding Proteins/metabolism , Endonucleases , Escherichia coli/metabolism , Polynucleotides/metabolism , Proliferating Cell Nuclear Antigen/metabolism
16.
Cell ; 176(1-2): 154-166.e13, 2019 01 10.
Article in English | MEDLINE | ID: mdl-30595448

ABSTRACT

Primases have a fundamental role in DNA replication. They synthesize a primer that is then extended by DNA polymerases. Archaeoeukaryotic primases require for synthesis a catalytic and an accessory domain, the exact contribution of the latter being unresolved. For the pRN1 archaeal primase, this domain is a 115-amino acid helix bundle domain (HBD). Our structural investigations of this small HBD by liquid- and solid-state nuclear magnetic resonance (NMR) revealed that only the HBD binds the DNA template. DNA binding becomes sequence-specific after a major allosteric change in the HBD, triggered by the binding of two nucleotide triphosphates. The spatial proximity of the two nucleotides and the DNA template in the quaternary structure of the HBD strongly suggests that this small domain brings together the substrates to prepare the first catalytic step of primer synthesis. This efficient mechanism is likely general for all archaeoeukaryotic primases.


Subject(s)
DNA Primase/metabolism , DNA Primase/physiology , DNA Primers/chemistry , Animals , Binding Sites , DNA , DNA Primase/ultrastructure , DNA Primers/metabolism , DNA Replication/physiology , DNA-Binding Proteins/metabolism , DNA-Directed DNA Polymerase/metabolism , Humans , Nucleotides , Protein Conformation , Protein Structural Elements/physiology
17.
Cell ; 176(1-2): 167-181.e21, 2019 01 10.
Article in English | MEDLINE | ID: mdl-30595447

ABSTRACT

Covalent DNA-protein cross-links (DPCs) impede replication fork progression and threaten genome integrity. Using Xenopus egg extracts, we previously showed that replication fork collision with DPCs causes their proteolysis, followed by translesion DNA synthesis. We show here that when DPC proteolysis is blocked, the replicative DNA helicase CMG (CDC45, MCM2-7, GINS), which travels on the leading strand template, bypasses an intact leading strand DPC. Single-molecule imaging reveals that GINS does not dissociate from CMG during bypass and that CMG slows dramatically after bypass, likely due to uncoupling from the stalled leading strand. The DNA helicase RTEL1 facilitates bypass, apparently by generating single-stranded DNA beyond the DPC. The absence of RTEL1 impairs DPC proteolysis, suggesting that CMG must bypass the DPC to enable proteolysis. Our results suggest a mechanism that prevents inadvertent CMG destruction by DPC proteases, and they reveal CMG's remarkable capacity to overcome obstacles on its translocation strand.


Subject(s)
DNA Helicases/metabolism , DNA Helicases/physiology , DNA Repair/physiology , Animals , Cell Cycle Proteins/metabolism , DNA/metabolism , DNA Replication , DNA, Single-Stranded , DNA-Binding Proteins/physiology , Female , Male , Proteolysis , Single Molecule Imaging/methods , Xenopus laevis/metabolism
18.
Cell ; 174(4): 818-830.e11, 2018 08 09.
Article in English | MEDLINE | ID: mdl-30057113

ABSTRACT

Rtt109 is a unique histone acetyltransferase acetylating histone H3 lysine 56 (H3K56), a modification critical for DNA replication-coupled nucleosome assembly and genome stability. In cells, histone chaperone Asf1 is essential for H3K56 acetylation, yet the mechanisms for H3K56 specificity and Asf1 requirement remain unknown. We have determined the crystal structure of the Rtt109-Asf1-H3-H4 complex and found that unwinding of histone H3 αN, where K56 is normally located, and stabilization of the very C-terminal ß strand of histone H4 by Asf1 are prerequisites for H3K56 acetylation. Unexpectedly, an interaction between Rtt109 and the central helix of histone H3 is also required. The observed multiprotein, multisite substrate recognition mechanism among histone modification enzymes provides mechanistic understandings of Rtt109 and Asf1 in H3K56 acetylation, as well as valuable insights into substrate recognition by histone modification enzymes in general.


Subject(s)
Aspergillus fumigatus/metabolism , Histone Acetyltransferases/metabolism , Histones/chemistry , Lysine/metabolism , Molecular Chaperones/metabolism , Acetylation , Amino Acid Sequence , Histone Acetyltransferases/chemistry , Histones/metabolism , Lysine/chemistry , Molecular Chaperones/chemistry , Protein Conformation , Saccharomyces cerevisiae/growth & development , Saccharomyces cerevisiae/metabolism , Sequence Homology , Substrate Specificity
19.
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
20.
Annu Rev Biochem ; 86: 439-460, 2017 06 20.
Article in English | MEDLINE | ID: mdl-28141967

ABSTRACT

Telomerase is the essential reverse transcriptase required for linear chromosome maintenance in most eukaryotes. Telomerase supplements the tandem array of simple-sequence repeats at chromosome ends to compensate for the DNA erosion inherent in genome replication. The template for telomerase reverse transcriptase is within the RNA subunit of the ribonucleoprotein complex, which in cells contains additional telomerase holoenzyme proteins that assemble the active ribonucleoprotein and promote its function at telomeres. Telomerase is distinct among polymerases in its reiterative reuse of an internal template. The template is precisely defined, processively copied, and regenerated by release of single-stranded product DNA. New specificities of nucleic acid handling that underlie the catalytic cycle of repeat synthesis derive from both active site specialization and new motif elaborations in protein and RNA subunits. Studies of telomerase provide unique insights into cellular requirements for genome stability, tissue renewal, and tumorigenesis as well as new perspectives on dynamic ribonucleoprotein machines.


Subject(s)
DNA Replication , DNA, Single-Stranded/metabolism , RNA/metabolism , Ribonucleoproteins/metabolism , Telomerase/metabolism , Telomere/enzymology , Animals , Catalytic Domain , DNA, Single-Stranded/genetics , Gene Expression Regulation , Humans , Microsatellite Repeats , Nucleic Acid Conformation , Oxytricha/genetics , Oxytricha/metabolism , RNA/genetics , Ribonucleoproteins/genetics , Saccharomyces cerevisiae/genetics , Saccharomyces cerevisiae/metabolism , Telomerase/genetics , Telomere/chemistry , Tetrahymena thermophila/genetics , Tetrahymena thermophila/metabolism
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