Your browser doesn't support javascript.
loading
Show: 20 | 50 | 100
Results 1 - 13 de 13
Filter
Add more filters











Publication year range
1.
EMBO J ; 42(23): e113104, 2023 Dec 01.
Article in English | MEDLINE | ID: mdl-37855233

ABSTRACT

R-loops represent a major source of replication stress, but the mechanism by which these structures impede fork progression remains unclear. To address this question, we monitored fork progression, arrest, and restart in Saccharomyces cerevisiae cells lacking RNase H1 and H2, two enzymes responsible for degrading RNA:DNA hybrids. We found that while RNase H-deficient cells could replicate their chromosomes normally under unchallenged growth conditions, their replication was impaired when exposed to hydroxyurea (HU) or methyl methanesulfonate (MMS). Treated cells exhibited increased levels of RNA:DNA hybrids at stalled forks and were unable to generate RPA-coated single-stranded (ssDNA), an important postreplicative intermediate in resuming replication. Similar impairments in nascent DNA resection and ssDNA formation at HU-arrested forks were observed in human cells lacking RNase H2. However, fork resection was fully restored by addition of triptolide, an inhibitor of transcription that induces RNA polymerase degradation. Taken together, these data indicate that RNA:DNA hybrids not only act as barriers to replication forks, but also interfere with postreplicative fork repair mechanisms if not promptly degraded by RNase H.


Subject(s)
DNA Replication , RNA , Humans , RNA/genetics , Ribonucleases/genetics , DNA/metabolism , Hydroxyurea/pharmacology , Ribonuclease H/genetics , Ribonuclease H/metabolism
2.
C R Biol ; 346: 95-105, 2023 Sep 22.
Article in English | MEDLINE | ID: mdl-37779381

ABSTRACT

Replication stress is an alteration in the progression of replication forks caused by a variety of events of endogenous or exogenous origin. In precancerous lesions, this stress is exacerbated by the deregulation of oncogenic pathways, which notably disrupts the coordination between replication and transcription, and leads to genetic instability and cancer development. It is now well established that transcription can interfere with genome replication in different ways, such as head-on collisions between polymerases, accumulation of positive DNA supercoils or formation of R-loops. These structures form during transcription when nascent RNA reanneals with DNA behind the RNA polymerase, forming a stable DNA:RNA hybrid. In this review, we discuss how these different cotranscriptional processes disrupt the progression of replication forks and how they contribute to genetic instability in cancer cells.


Le stress réplicatif correspond à une altération de la progression des fourches de réplication causé par une variété d'événements d'origine endogène ou exogène. Dans les lésions précancéreuses, ce stress est aggravé par la dérégulation de voies oncogéniques, qui perturbe notamment la coordination entre la réplication et la transcription du génome et entraine une instabilité génétique contribuant au développement du cancer. Il est maintenant bien établi que la transcription peut interférer avec la réplication du génome de différentes façons, telles que des collisions frontales entre polymérases, l'accumulation de supertours positifs de l'ADN ou la formation de R-loops. Ces structures se forment au cours de la transcription lorsque l'ARN naissant se réassocie avec l'ADN derrière l'ARN polymérase, formant un hybride ADN :ARN stable. Dans cette revue, nous discutons comment ces différents processus cotranscriptionnels perturbent la progression des fourches de réplication et comment ils contribuent à l'instabilité génétique des cellules cancéreuses.


Subject(s)
Neoplasms , Transcription, Genetic , R-Loop Structures , DNA Replication/genetics , DNA , Oncogenes/genetics , RNA , Neoplasms/genetics
3.
EMBO J ; 40(21): e108439, 2021 11 02.
Article in English | MEDLINE | ID: mdl-34569643

ABSTRACT

Upon replication stress, budding yeast checkpoint kinase Mec1ATR triggers the downregulation of transcription, thereby reducing the level of RNA polymerase (RNAP) on chromatin to facilitate replication fork progression. Here, we identify a hydroxyurea-induced phosphorylation site on Mec1, Mec1-S1991, that contributes to the eviction of RNAPII and RNAPIII during replication stress. The expression of the non-phosphorylatable mec1-S1991A mutant reduces replication fork progression genome-wide and compromises survival on hydroxyurea. This defect can be suppressed by destabilizing chromatin-bound RNAPII through a TAP fusion to its Rpb3 subunit, suggesting that lethality in mec1-S1991A mutants arises from replication-transcription conflicts. Coincident with a failure to repress gene expression on hydroxyurea in mec1-S1991A cells, highly transcribed genes such as GAL1 remain bound at nuclear pores. Consistently, we find that nuclear pore proteins and factors controlling RNAPII and RNAPIII are phosphorylated in a Mec1-dependent manner on hydroxyurea. Moreover, we show that Mec1 kinase also contributes to reduced RNAPII occupancy on chromatin during an unperturbed S phase by promoting degradation of the Rpb1 subunit.


Subject(s)
DNA Replication , Intracellular Signaling Peptides and Proteins/metabolism , Protein Processing, Post-Translational , Protein Serine-Threonine Kinases/metabolism , RNA Polymerase III/genetics , RNA Polymerase II/genetics , Saccharomyces cerevisiae Proteins/genetics , Saccharomyces cerevisiae Proteins/metabolism , Chromatin/chemistry , Chromatin/drug effects , Chromatin/metabolism , Galactokinase/genetics , Galactokinase/metabolism , Gene Expression Regulation, Fungal , Hydroxyurea/pharmacology , Intracellular Signaling Peptides and Proteins/genetics , Phosphoproteins , Phosphorylation , Protein Serine-Threonine Kinases/genetics , RNA Polymerase II/metabolism , RNA Polymerase III/metabolism , S Phase/drug effects , S Phase/genetics , Saccharomyces cerevisiae/genetics , Stress, Physiological/drug effects , Stress, Physiological/genetics , Transcription, Genetic
4.
DNA Repair (Amst) ; 107: 103199, 2021 11.
Article in English | MEDLINE | ID: mdl-34399314

ABSTRACT

Transcription-replication conflicts (TRCs) represent a potential source of endogenous replication stress (RS) and genomic instability in eukaryotic cells but the mechanisms that underlie this instability remain poorly understood. Part of the problem could come from non-B DNA structures called R-loops, which are formed of a RNA:DNA hybrid and a displaced ssDNA loop. In this review, we discuss different scenarios in which R-loops directly or indirectly interfere with DNA replication. We also present other types of TRCs that may not depend on R-loops to impede fork progression. Finally, we discuss alternative models in which toxic RNA:DNA hybrids form at stalled forks as a consequence - but not a cause - of replication stress and interfere with replication resumption.


Subject(s)
Genomic Instability
5.
STAR Protoc ; 2(2): 100525, 2021 06 18.
Article in English | MEDLINE | ID: mdl-34027483

ABSTRACT

This protocol describes how to culture, image, and determine the nuclear position of a fluorescently tagged DNA locus in the 3D nucleoplasm of fixed Saccharomyces cerevisiae cells. Here, we propose a manual scoring method based on widefield images and an automated method based on 3D-SIM images. Yeast culture conditions have to be followed meticulously to get the best biological response in a given environment. For complete details on the use and execution of this protocol, please refer to Forey et al. (2020).


Subject(s)
Cell Nucleus/chemistry , DNA , Imaging, Three-Dimensional/methods , Microscopy, Fluorescence/methods , Saccharomyces cerevisiae , DNA/analysis , DNA/chemistry , DNA/metabolism , Fluorescent Dyes/analysis , Fluorescent Dyes/chemistry , Fluorescent Dyes/metabolism , Molecular Probes/analysis , Molecular Probes/chemistry , Molecular Probes/metabolism , Saccharomyces cerevisiae/chemistry , Saccharomyces cerevisiae/cytology
6.
Mol Cell ; 81(1): 183-197.e6, 2021 01 07.
Article in English | MEDLINE | ID: mdl-33278361

ABSTRACT

Mre11-Rad50-Xrs2 (MRX) is a highly conserved complex with key roles in various aspects of DNA repair. Here, we report a new function for MRX in limiting transcription in budding yeast. We show that MRX interacts physically and colocalizes on chromatin with the transcriptional co-regulator Mediator. MRX restricts transcription of coding and noncoding DNA by a mechanism that does not require the nuclease activity of Mre11. MRX is required to tether transcriptionally active loci to the nuclear pore complex (NPC), and it also promotes large-scale gene-NPC interactions. Moreover, MRX-mediated chromatin anchoring to the NPC contributes to chromosome folding and helps to control gene expression. Together, these findings indicate that MRX has a role in transcription and chromosome organization that is distinct from its known function in DNA repair.


Subject(s)
Chromosomes, Fungal/metabolism , DNA-Binding Proteins/metabolism , Endodeoxyribonucleases/metabolism , Exodeoxyribonucleases/metabolism , Gene Expression Regulation, Fungal , Saccharomyces cerevisiae Proteins/metabolism , Saccharomyces cerevisiae/metabolism , Chromosomes, Fungal/genetics , DNA-Binding Proteins/genetics , Endodeoxyribonucleases/genetics , Exodeoxyribonucleases/genetics , Multiprotein Complexes/metabolism , Saccharomyces cerevisiae/genetics , Saccharomyces cerevisiae Proteins/genetics
7.
Philos Trans R Soc Lond B Biol Sci ; 372(1731)2017 Oct 05.
Article in English | MEDLINE | ID: mdl-28847827

ABSTRACT

The accessibility of eukaryotic genomes to the action of enzymes involved in transcription, replication and repair is maintained despite the organization of DNA into nucleosomes. This access is often regulated by the action of ATP-dependent nucleosome remodellers. The INO80 class of nucleosome remodellers has unique structural features and it is implicated in a diverse array of functions, including transcriptional regulation, DNA replication and DNA repair. Underlying these diverse functions is the catalytic activity of the main ATPase subunit, which in the context of a multisubunit complex can shift nucleosomes and carry out histone dimer exchange. In vitro studies showed that INO80 promotes replication fork progression on a chromatin template, while in vivo it was shown to facilitate replication fork restart after stalling and to help evict RNA polymerase II at transcribed genes following the collision of a replication fork with transcription. More recent work in yeast implicates INO80 in the general eviction and degradation of nucleosomes following high doses of oxidative DNA damage. Beyond these replication and repair functions, INO80 was shown to repress inappropriate transcription at promoters in the opposite direction to the coding sequence. Here we discuss the ways in which INO80's diverse functions help maintain genome integrity.This article is part of the themed issue 'Chromatin modifiers and remodellers in DNA repair and signalling'.


Subject(s)
DNA Repair , DNA Replication , Saccharomyces cerevisiae Proteins/genetics , Saccharomyces cerevisiae/genetics , Transcription Factors/genetics , Transcription, Genetic , Chromatin/genetics , Chromatin/metabolism , Chromatin Assembly and Disassembly , Gene Expression Regulation , Saccharomyces cerevisiae Proteins/metabolism , Transcription Factors/metabolism
8.
Mol Cell ; 64(5): 951-966, 2016 12 01.
Article in English | MEDLINE | ID: mdl-27889450

ABSTRACT

The Mre11-Rad50-Xrs2 (MRX) complex is related to SMC complexes that form rings capable of holding two distinct DNA strands together. MRX functions at stalled replication forks and double-strand breaks (DSBs). A mutation in the N-terminal OB fold of the 70 kDa subunit of yeast replication protein A, rfa1-t11, abrogates MRX recruitment to both types of DNA damage. The rfa1 mutation is functionally epistatic with loss of any of the MRX subunits for survival of replication fork stress or DSB recovery, although it does not compromise end-resection. High-resolution imaging shows that either the rfa1-t11 or the rad50Δ mutation lets stalled replication forks collapse and allows the separation not only of opposing ends but of sister chromatids at breaks. Given that cohesin loss does not provoke visible sister separation as long as the RPA-MRX contacts are intact, we conclude that MRX also serves as a structural linchpin holding sister chromatids together at breaks.


Subject(s)
DNA Breaks, Double-Stranded , DNA Repair , Multiprotein Complexes/metabolism , Animals , DNA Replication , DNA-Binding Proteins/genetics , DNA-Binding Proteins/metabolism , Endodeoxyribonucleases , Epistasis, Genetic , Exodeoxyribonucleases , Replication Protein A , Saccharomyces cerevisiae/cytology , Saccharomyces cerevisiae/genetics , Saccharomyces cerevisiae/metabolism , Saccharomyces cerevisiae Proteins
9.
Genes Dev ; 30(3): 337-54, 2016 Feb 01.
Article in English | MEDLINE | ID: mdl-26798134

ABSTRACT

Little is known about how cells ensure DNA replication in the face of RNA polymerase II (RNAPII)-mediated transcription, especially under conditions of replicative stress. Here we present genetic and proteomic analyses from budding yeast that uncover links between the DNA replication checkpoint sensor Mec1-Ddc2 (ATR-ATRIP), the chromatin remodeling complex INO80C (INO80 complex), and the transcription complex PAF1C (PAF1 complex). We found that a subset of chromatin-bound RNAPII is degraded in a manner dependent on Mec1, INO80, and PAF1 complexes in cells exposed to hydroxyurea (HU). On HU, Mec1 triggers the efficient removal of PAF1C and RNAPII from transcribed genes near early firing origins. Failure to evict RNAPII correlates inversely with recovery from replication stress: paf1Δ cells, like ino80 and mec1 mutants, fail to restart forks efficiently after stalling. Our data reveal unexpected synergies between INO80C, Mec1, and PAF1C in the maintenance of genome integrity and suggest a mechanism of RNAPII degradation that reduces transcription-replication fork collision.


Subject(s)
Gene Expression Regulation, Fungal/genetics , Intracellular Signaling Peptides and Proteins/metabolism , Nuclear Proteins/metabolism , Protein Serine-Threonine Kinases/metabolism , RNA Polymerase II/metabolism , Saccharomyces cerevisiae Proteins/metabolism , Saccharomyces cerevisiae/metabolism , DNA Replication/genetics , Intracellular Signaling Peptides and Proteins/genetics , Mutation , Nuclear Proteins/genetics , Protein Serine-Threonine Kinases/genetics , Saccharomyces cerevisiae Proteins/genetics , Stress, Physiological/genetics
10.
Cold Spring Harb Perspect Biol ; 5(5): a012815, 2013 May 01.
Article in English | MEDLINE | ID: mdl-23637285

ABSTRACT

In recent years, an increasing number of studies have shown that prokaryotes and eukaryotes are armed with sophisticated mechanisms to restart stalled or collapsed replication forks. Although these processes are better understood in bacteria, major breakthroughs have also been made to explain how fork restart mechanisms operate in eukaryotic cells. In particular, repriming on the leading strand and fork regression are now established as critical for the maintenance and recovery of stalled forks in both systems. Despite the lack of conservation between the factors involved, these mechanisms are strikingly similar in eukaryotes and prokaryotes. However, they differ in that fork restart occurs in the context of chromatin in eukaryotes and is controlled by multiple regulatory pathways.


Subject(s)
DNA Damage , DNA Replication/physiology , Models, Genetic , DNA Repair , Eukaryotic Cells , Recombination, Genetic
12.
Methods ; 57(2): 149-57, 2012 Jun.
Article in English | MEDLINE | ID: mdl-22579803

ABSTRACT

DNA combing is a powerful method developed by Bensimon and colleagues to stretch DNA molecules on silanized glass coverslips. This technique provides a unique way to monitor the activation of replication origins and the progression of replication forks at the level of single DNA molecules, after incorporation of thymidine analogs, such as 5-bromo-2'-deoxyuridine (BrdU), 5-iodo-2'-deoxyuridine (IdU) and 5-chloro-2'-deoxyuridine (CldU) in newly-synthesized DNA. Unlike microarray-based approaches, this assay gives access to the variability of replication profiles in individual cells. It can also be used to monitor the effect of DNA lesions on fork progression, arrest and restart. In this review, we propose standard DNA combing methods to analyze DNA replication in budding yeast and in human cells. We also show that 5-ethynyl-2'-deoxyuridine (EdU) can be used as a good alternative to BrdU for DNA combing analysis, as unlike halogenated nucleotides, it can be detected without prior denaturation of DNA.


Subject(s)
DNA Replication , DNA, Fungal/biosynthesis , Staining and Labeling , Animals , Bromodeoxyuridine/metabolism , Click Chemistry , DNA/biosynthesis , DNA/chemistry , DNA/isolation & purification , DNA, Fungal/chemistry , DNA, Fungal/isolation & purification , DNA, Single-Stranded/chemistry , Data Interpretation, Statistical , Fluorescent Antibody Technique, Indirect , Genome, Fungal , Genome, Human , HCT116 Cells , Humans , Hydroxyurea/pharmacology , Immobilized Nucleic Acids/chemistry , In Situ Hybridization, Fluorescence , Mammals , Nucleic Acid Synthesis Inhibitors/pharmacology , Saccharomyces cerevisiae/genetics , Statistics, Nonparametric
13.
EMBO J ; 31(4): 883-94, 2012 Feb 15.
Article in English | MEDLINE | ID: mdl-22234185

ABSTRACT

Intracellular deoxyribonucleoside triphosphate (dNTP) pools must be tightly regulated to preserve genome integrity. Indeed, alterations in dNTP pools are associated with increased mutagenesis, genomic instability and tumourigenesis. However, the mechanisms by which altered or imbalanced dNTP pools affect DNA synthesis remain poorly understood. Here, we show that changes in intracellular dNTP levels affect replication dynamics in budding yeast in different ways. Upregulation of the activity of ribonucleotide reductase (RNR) increases elongation, indicating that dNTP pools are limiting for normal DNA replication. In contrast, inhibition of RNR activity with hydroxyurea (HU) induces a sharp transition to a slow-replication mode within minutes after S-phase entry. Upregulation of RNR activity delays this transition and modulates both fork speed and origin usage under replication stress. Interestingly, we also observed that chromosomal instability (CIN) mutants have increased dNTP pools and show enhanced DNA synthesis in the presence of HU. Since upregulation of RNR promotes fork progression in the presence of DNA lesions, we propose that CIN mutants adapt to chronic replication stress by upregulating dNTP pools.


Subject(s)
DNA Replication , Deoxyribonucleosides/metabolism , Replication Origin , Saccharomyces cerevisiae/genetics , Bromodeoxyuridine , DNA Damage , DNA, Fungal/biosynthesis , DNA, Fungal/genetics , Hydroxyurea/pharmacology , Immunoprecipitation , Ribonucleotide Reductases/metabolism , S Phase , Saccharomyces cerevisiae/enzymology
SELECTION OF CITATIONS
SEARCH DETAIL