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1.
Mol Cell ; 81(4): 649-658, 2021 02 18.
Artigo em Inglês | MEDLINE | ID: mdl-33515486

RESUMO

Accurate DNA replication is constantly threatened by DNA lesions arising from endogenous and exogenous sources. Specialized DNA replication stress response pathways ensure replication fork progression in the presence of DNA lesions with minimal delay in fork elongation. These pathways broadly include translesion DNA synthesis, template switching, and replication fork repriming. Here, we discuss recent advances toward our understanding of the mechanisms that regulate the fine-tuned balance between these different replication stress response pathways. We also discuss the molecular pathways required to fill single-stranded DNA gaps that accumulate throughout the genome after repriming and the biological consequences of using repriming instead of other DNA damage tolerance pathways on genome integrity and cell fitness.


Assuntos
Quebras de DNA de Cadeia Simples , Reparo do DNA , Replicação do DNA , DNA de Cadeia Simples/metabolismo , Instabilidade Genômica , Animais , DNA de Cadeia Simples/genética , Humanos
2.
Mol Cell ; 81(19): 4026-4040.e8, 2021 10 07.
Artigo em Inglês | MEDLINE | ID: mdl-34624216

RESUMO

PRIMPOL repriming allows DNA replication to skip DNA lesions, leading to ssDNA gaps. These gaps must be filled to preserve genome stability. Using a DNA fiber approach to directly monitor gap filling, we studied the post-replicative mechanisms that fill the ssDNA gaps generated in cisplatin-treated cells upon increased PRIMPOL expression or when replication fork reversal is defective because of SMARCAL1 inactivation or PARP inhibition. We found that a mechanism dependent on the E3 ubiquitin ligase RAD18, PCNA monoubiquitination, and the REV1 and POLζ translesion synthesis polymerases promotes gap filling in G2. The E2-conjugating enzyme UBC13, the RAD51 recombinase, and REV1-POLζ are instead responsible for gap filling in S, suggesting that temporally distinct pathways of gap filling operate throughout the cell cycle. Furthermore, we found that BRCA1 and BRCA2 promote gap filling by limiting MRE11 activity and that simultaneously targeting fork reversal and gap filling enhances chemosensitivity in BRCA-deficient cells.


Assuntos
Quebras de DNA de Cadeia Simples , DNA Primase/metabolismo , Reparo do DNA , Replicação do DNA , DNA de Neoplasias/biossíntese , DNA Polimerase Dirigida por DNA/metabolismo , Fase G2 , Enzimas Multifuncionais/metabolismo , Neoplasias/metabolismo , Fase S , Antineoplásicos/farmacologia , Proteína BRCA1/genética , Proteína BRCA1/metabolismo , Proteína BRCA2/metabolismo , Linhagem Celular Tumoral , DNA Helicases/genética , DNA Helicases/metabolismo , DNA Primase/genética , DNA de Neoplasias/genética , Proteínas de Ligação a DNA/genética , Proteínas de Ligação a DNA/metabolismo , DNA Polimerase Dirigida por DNA/genética , Instabilidade Genômica , Células HEK293 , Humanos , Proteína Homóloga a MRE11/genética , Proteína Homóloga a MRE11/metabolismo , Enzimas Multifuncionais/genética , Neoplasias/tratamento farmacológico , Neoplasias/genética , Neoplasias/patologia , Nucleotidiltransferases/genética , Nucleotidiltransferases/metabolismo , Antígeno Nuclear de Célula em Proliferação/genética , Antígeno Nuclear de Célula em Proliferação/metabolismo , Fatores de Tempo , Enzimas de Conjugação de Ubiquitina/genética , Enzimas de Conjugação de Ubiquitina/metabolismo , Ubiquitina-Proteína Ligases/genética , Ubiquitina-Proteína Ligases/metabolismo , Ubiquitinação
3.
Mol Cell ; 77(3): 461-474.e9, 2020 02 06.
Artigo em Inglês | MEDLINE | ID: mdl-31676232

RESUMO

Acute treatment with replication-stalling chemotherapeutics causes reversal of replication forks. BRCA proteins protect reversed forks from nucleolytic degradation, and their loss leads to chemosensitivity. Here, we show that fork degradation is no longer detectable in BRCA1-deficient cancer cells exposed to multiple cisplatin doses, mimicking a clinical treatment regimen. This effect depends on increased expression and chromatin loading of PRIMPOL and is regulated by ATR activity. Electron microscopy and single-molecule DNA fiber analyses reveal that PRIMPOL rescues fork degradation by reinitiating DNA synthesis past DNA lesions. PRIMPOL repriming leads to accumulation of ssDNA gaps while suppressing fork reversal. We propose that cells adapt to repeated cisplatin doses by activating PRIMPOL repriming under conditions that would otherwise promote pathological reversed fork degradation. This effect is generalizable to other conditions of impaired fork reversal (e.g., SMARCAL1 loss or PARP inhibition) and suggests a new strategy to modulate cisplatin chemosensitivity by targeting the PRIMPOL pathway.


Assuntos
DNA Primase/metabolismo , Replicação do DNA/efeitos dos fármacos , DNA Polimerase Dirigida por DNA/metabolismo , Enzimas Multifuncionais/metabolismo , Ubiquitina-Proteína Ligases/metabolismo , Linhagem Celular Tumoral , DNA/genética , Dano ao DNA/genética , Dano ao DNA/fisiologia , DNA Helicases/genética , DNA Helicases/metabolismo , DNA Primase/fisiologia , Replicação do DNA/genética , Replicação do DNA/fisiologia , DNA de Cadeia Simples/genética , DNA de Cadeia Simples/metabolismo , Proteínas de Ligação a DNA/metabolismo , DNA Polimerase Dirigida por DNA/fisiologia , Células HEK293 , Humanos , Enzimas Multifuncionais/fisiologia , Ubiquitina-Proteína Ligases/genética
4.
Nucleic Acids Res ; 2024 Jun 29.
Artigo em Inglês | MEDLINE | ID: mdl-38943334

RESUMO

BRCA1/2 proteins function in genome stability by promoting repair of double-stranded DNA breaks through homologous recombination and by protecting stalled replication forks from nucleolytic degradation. In BRCA1/2-deficient cancer cells, extensively degraded replication forks can be rescued through distinct fork recovery mechanisms that also promote cell survival. Here, we identified a novel pathway mediated by the E3 ubiquitin ligase RAD18, the E2-conjugating enzyme UBC13, the recombination factor PALB2, the E3 ubiquitin ligase RNF168 and PCNA ubiquitination that promotes fork recovery in BRCA1- but not BRCA2-deficient cells. We show that this pathway does not promote fork recovery by preventing replication fork reversal and degradation in BRCA1-deficient cells. We propose a mechanism whereby the RAD18-UBC13-PALB2-RNF168 axis facilitates resumption of DNA synthesis by promoting re-annealing of the complementary single-stranded template strands of the extensively degraded forks, thereby allowing re-establishment of a functional replication fork. We also provide preliminary evidence for the potential clinical relevance of this novel fork recovery pathway in BRCA1-mutated cancers, as RAD18 is over-expressed in BRCA1-deficient cancers, and RAD18 loss compromises cell viability in BRCA1-deficient cancer cells.

5.
Mol Cell ; 68(5): 830-833, 2017 Dec 07.
Artigo em Inglês | MEDLINE | ID: mdl-29220651

RESUMO

Replication fork reversal is a rapidly emerging and remarkably frequent mechanism of fork stabilization in response to genotoxic insults. Here, we summarize recent findings that uncover key molecular determinants for reversed fork formation and describe how the homologous recombination factors BRCA1, BRCA2, and RAD51 protect these structures from extended nucleolytic degradation.


Assuntos
Proteína BRCA1/metabolismo , Proteína BRCA2/metabolismo , Dano ao DNA , Replicação do DNA , DNA/biossíntese , Rad51 Recombinase/metabolismo , Reparo de DNA por Recombinação , Animais , Proteína BRCA1/genética , Proteína BRCA2/genética , DNA/genética , Humanos , Rad51 Recombinase/genética
6.
Crit Rev Biochem Mol Biol ; 56(1): 17-30, 2021 02.
Artigo em Inglês | MEDLINE | ID: mdl-33179522

RESUMO

DNA replication forks are constantly challenged by DNA lesions induced by endogenous and exogenous sources. DNA damage tolerance mechanisms ensure that DNA replication continues with minimal effects on replication fork elongation either by using specialized DNA polymerases, which have the ability to replicate through the damaged template, or by skipping the damaged DNA, leaving it to be repaired after replication. These mechanisms are evolutionarily conserved in bacteria, yeast, and higher eukaryotes, and are paramount to ensure timely and faithful duplication of the genome. The Primase and DNA-directed Polymerase (PRIMPOL) is a recently discovered enzyme that possesses both primase and polymerase activities. PRIMPOL is emerging as a key player in DNA damage tolerance, particularly in vertebrate and human cells. Here, we review our current understanding of the function of PRIMPOL in DNA damage tolerance by focusing on the structural aspects that define its dual enzymatic activity, as well as on the mechanisms that control its chromatin recruitment and expression levels. We also focus on the latest findings on the mitochondrial and nuclear functions of PRIMPOL and on the impact of loss of these functions on genome stability and cell survival. Defining the function of PRIMPOL in DNA damage tolerance is becoming increasingly important in the context of human disease. In particular, we discuss recent evidence pointing at the PRIMPOL pathway as a novel molecular target to improve cancer cell response to DNA-damaging chemotherapy and as a predictive parameter to stratify patients in personalized cancer therapy.


Assuntos
Dano ao DNA/genética , DNA Primase/genética , DNA Primase/metabolismo , Replicação do DNA/genética , DNA Polimerase Dirigida por DNA/genética , DNA Polimerase Dirigida por DNA/metabolismo , Enzimas Multifuncionais/genética , Enzimas Multifuncionais/metabolismo , Núcleo Celular/metabolismo , Sobrevivência Celular/genética , Cromatina/metabolismo , DNA/genética , DNA/metabolismo , DNA Primase/química , DNA Polimerase Dirigida por DNA/química , Técnicas de Silenciamento de Genes , Instabilidade Genômica , Humanos , Mitocôndrias/metabolismo , Enzimas Multifuncionais/química
7.
J Cell Sci ; 133(20)2020 10 30.
Artigo em Inglês | MEDLINE | ID: mdl-32989039

RESUMO

TAR DNA-binding protein 43 (TDP-43; also known as TARDBP) is an RNA-binding protein whose aggregation is a hallmark of the neurodegenerative disorders amyotrophic lateral sclerosis and frontotemporal dementia. TDP-43 loss increases DNA damage and compromises cell viability, but the actual function of TDP-43 in preventing genome instability remains unclear. Here, we show that loss of TDP-43 increases R-loop formation in a transcription-dependent manner and results in DNA replication stress. TDP-43 nucleic-acid-binding and self-assembly activities are important in inhibiting R-loop accumulation and preserving normal DNA replication. We also found that TDP-43 cytoplasmic aggregation impairs TDP-43 function in R-loop regulation. Furthermore, increased R-loop accumulation and DNA damage is observed in neurons upon loss of TDP-43. Together, our findings indicate that TDP-43 function and normal protein homeostasis are crucial in maintaining genomic stability through a co-transcriptional process that prevents aberrant R-loop accumulation. We propose that the increased R-loop formation and genomic instability associated with TDP-43 loss are linked to the pathogenesis of TDP-43 proteinopathies.This article has an associated First Person interview with the first author of the paper.


Assuntos
Esclerose Lateral Amiotrófica , Demência Frontotemporal , Replicação do DNA/genética , Proteínas de Ligação a DNA/genética , Proteínas de Ligação a DNA/metabolismo , Humanos , Estruturas R-Loop
8.
Nucleic Acids Res ; 47(3): 1294-1310, 2019 02 20.
Artigo em Inglês | MEDLINE | ID: mdl-29917110

RESUMO

Pds5 is required for sister chromatid cohesion, and somewhat paradoxically, to remove cohesin from chromosomes. We found that Pds5 plays a critical role during DNA replication that is distinct from its previously known functions. Loss of Pds5 hinders replication fork progression in unperturbed human and mouse cells. Inhibition of MRE11 nuclease activity restores fork progression, suggesting that Pds5 protects forks from MRE11-activity. Loss of Pds5 also leads to double-strand breaks, which are again reduced by MRE11 inhibition. The replication function of Pds5 is independent of its previously reported interaction with BRCA2. Unlike Pds5, BRCA2 protects forks from nucleolytic degradation only in the presence of genotoxic stress. Moreover, our iPOND analysis shows that the loading of Pds5 and other cohesion factors on replication forks is not affected by the BRCA2 status. Pds5 role in DNA replication is shared by the other cohesin-removal factor Wapl, but not by the cohesin complex component Rad21. Interestingly, depletion of Rad21 in a Pds5-deficient background rescues the phenotype observed upon Pds5 depletion alone. These findings support a model where loss of either component of the cohesin releasin complex perturbs cohesin dynamics on replication forks, hindering fork progression and promoting MRE11-dependent fork slowing.


Assuntos
Replicação do DNA/genética , Proteína Homóloga a MRE11/genética , Proteínas Nucleares/genética , Fosfoproteínas/genética , Proteína BRCA2/genética , Proteínas de Ciclo Celular/genética , Linhagem Celular Tumoral , Cromátides/genética , Proteínas Cromossômicas não Histona/genética , Dano ao DNA/genética , Proteínas de Ligação a DNA , Desoxirribonucleases/genética , Humanos , Troca de Cromátide Irmã/genética , Coesinas
10.
Nucleic Acids Res ; 45(3): 1270-1280, 2017 02 17.
Artigo em Inglês | MEDLINE | ID: mdl-28180309

RESUMO

Genome lesions trigger biological responses that help cells manage damaged DNA, improving cell survival. Pol eta is a translesion synthesis (TLS) polymerase that bypasses lesions that block replicative polymerases, avoiding continued stalling of replication forks, which could lead to cell death. p53 also plays an important role in preventing cell death after ultraviolet (UV) light exposure. Intriguingly, we show that p53 does so by favoring translesion DNA synthesis by pol eta. In fact, the p53-dependent induction of pol eta in normal and DNA repair-deficient XP-C human cells after UV exposure has a protective effect on cell survival after challenging UV exposures, which was absent in p53- and Pol H-silenced cells. Viability increase was associated with improved elongation of nascent DNA, indicating the protective effect was due to more efficient lesion bypass by pol eta. This protection was observed in cells proficient or deficient in nucleotide excision repair, suggesting that, from a cell survival perspective, proper bypass of DNA damage can be as relevant as removal. These results indicate p53 controls the induction of pol eta in DNA damaged human cells, resulting in improved TLS and enhancing cell tolerance to DNA damage, which parallels SOS responses in bacteria.


Assuntos
DNA Polimerase Dirigida por DNA/metabolismo , DNA/biossíntese , Proteína Supressora de Tumor p53/metabolismo , Linhagem Celular , Sobrevivência Celular , Cromatina/metabolismo , Reparo do DNA/genética , Reparo do DNA/efeitos da radiação , Replicação do DNA/efeitos da radiação , DNA Polimerase Dirigida por DNA/genética , Relação Dose-Resposta à Radiação , Fibroblastos/efeitos da radiação , Regulação da Expressão Gênica/efeitos da radiação , Humanos , Raios Ultravioleta
11.
Hum Mol Genet ; 25(7): 1271-80, 2016 Apr 01.
Artigo em Inglês | MEDLINE | ID: mdl-26755826

RESUMO

Cockayne syndrome (CS) is a rare genetic disorder in which 80% of cases are caused by mutations in the Excision Repair Cross-Complementation group 6 gene (ERCC6). The encoded ERCC6 protein is more commonly referred to as Cockayne Syndrome B protein (CSB). Classical symptoms of CS patients include failure to thrive and a severe neuropathology characterized by microcephaly, hypomyelination, calcification and neuronal loss. Modeling the neurological aspect of this disease has proven difficult since murine models fail to mirror classical neurological symptoms. Therefore, a robust human in vitro cellular model would advance our fundamental understanding of the disease and reveal potential therapeutic targets. Herein, we successfully derived functional CS neural networks from human CS induced pluripotent stem cells (iPSCs) providing a new tool to facilitate studying this devastating disease. We identified dysregulation of the Growth Hormone/Insulin-like Growth Factor-1 (GH/IGF-1) pathway as well as pathways related to synapse formation, maintenance and neuronal differentiation in CSB neurons using unbiased RNA-seq gene expression analyses. Moreover, when compared to unaffected controls, CSB-deficient neural networks displayed altered electrophysiological activity, including decreased synchrony, and reduced synapse density. Collectively, our work reveals that CSB is required for normal neuronal function and we have established an alternative to previously available models to further study neural-specific aspects of CS.


Assuntos
Síndrome de Cockayne/fisiopatologia , DNA Helicases/metabolismo , Enzimas Reparadoras do DNA/metabolismo , Fenômenos Eletrofisiológicos , Mutação , Rede Nervosa/fisiopatologia , Neurônios/fisiologia , Adolescente , Adulto , Diferenciação Celular , Linhagem Celular , Criança , Pré-Escolar , Síndrome de Cockayne/genética , Síndrome de Cockayne/metabolismo , DNA Helicases/genética , Reparo do DNA , Enzimas Reparadoras do DNA/genética , Feminino , Hormônio do Crescimento , Humanos , Células-Tronco Pluripotentes Induzidas/fisiologia , Fator de Crescimento Insulin-Like I , Masculino , Rede Nervosa/metabolismo , Neurônios/metabolismo , Proteínas de Ligação a Poli-ADP-Ribose , Transdução de Sinais , Sinapses/metabolismo , Sinapses/fisiologia
12.
Nucleic Acids Res ; 44(12): 5717-31, 2016 07 08.
Artigo em Inglês | MEDLINE | ID: mdl-27095204

RESUMO

Ultraviolet-induced 6-4 photoproducts (6-4PP) and cyclobutane pyrimidine dimers (CPD) can be tolerated by translesion DNA polymerases (TLS Pols) at stalled replication forks or by gap-filling. Here, we investigated the involvement of Polη, Rev1 and Rev3L (Polζ catalytic subunit) in the specific bypass of 6-4PP and CPD in repair-deficient XP-C human cells. We combined DNA fiber assay and novel methodologies for detection and quantification of single-stranded DNA (ssDNA) gaps on ongoing replication forks and postreplication repair (PRR) tracts in the human genome. We demonstrated that Rev3L, but not Rev1, is required for postreplicative gap-filling, while Polη and Rev1 are responsible for TLS at stalled replication forks. Moreover, specific photolyases were employed to show that in XP-C cells, CPD arrest replication forks, while 6-4PP are responsible for the generation of ssDNA gaps and PRR tracts. On the other hand, in the absence of Polη or Rev1, both types of lesion block replication forks progression. Altogether, the data directly show that, in the human genome, Polη and Rev1 bypass CPD and 6-4PP at replication forks, while only 6-4PP are also tolerated by a Polζ-dependent gap-filling mechanism, independent of S phase.


Assuntos
Reparo do DNA , Replicação do DNA , DNA de Cadeia Simples/metabolismo , Proteínas de Ligação a DNA/genética , DNA Polimerase Dirigida por DNA/genética , Proteínas Nucleares/genética , Nucleotidiltransferases/genética , Adenoviridae/genética , Adenoviridae/metabolismo , Linhagem Celular Transformada , Dano ao DNA , Proteínas de Ligação a DNA/metabolismo , DNA Polimerase Dirigida por DNA/metabolismo , Desoxirribodipirimidina Fotoliase , Fibroblastos/citologia , Fibroblastos/metabolismo , Vetores Genéticos/química , Vetores Genéticos/metabolismo , Genoma Humano , Humanos , Proteínas Nucleares/metabolismo , Nucleotidiltransferases/metabolismo , Dímeros de Pirimidina/metabolismo , Fase S/genética , Transdução Genética , Raios Ultravioleta
13.
Photochem Photobiol ; 100(1): 4-18, 2024.
Artigo em Inglês | MEDLINE | ID: mdl-37926965

RESUMO

Xeroderma pigmentosum (XP) variant cells are deficient in the translesion synthesis (TLS) DNA polymerase Polη (eta). This protein contributes to DNA damage tolerance, bypassing unrepaired UV photoproducts and allowing S-phase progression with minimal delay. In the absence of Polη, backup polymerases perform TLS of UV lesions. However, which polymerase plays this role in human cells remains an open question. Here, we investigated the potential role of Polι (iota) in bypassing ultraviolet (UV) induced photoproducts in the absence of Polη, using NER-deficient (XP-C) cells knocked down for Polι and/or Polη genes. Our results indicate that cells lacking either Polι or Polη have increased sensitivity to UVC radiation. The lack of both TLS polymerases led to increased cell death and defects in proliferation and migration. Loss of both polymerases induces a significant replication fork arrest and G1/S-phase blockage, compared to the lack of Polη alone. In conclusion, we propose that Polι acts as a bona fide backup for Polη in the TLS of UV-photoproducts.


Assuntos
DNA Polimerase iota , Xeroderma Pigmentoso , Humanos , Dano ao DNA , Síntese de DNA Translesão , Replicação do DNA , Xeroderma Pigmentoso/genética , Raios Ultravioleta , Reparo do DNA
14.
Photochem Photobiol Sci ; 12(8): 1483-95, 2013 Aug.
Artigo em Inglês | MEDLINE | ID: mdl-23824260

RESUMO

UVA light (320-400 nm) represents approximately 95% of the total solar UV radiation that reaches the Earth's surface. UVA light induces oxidative stress and the formation of DNA photoproducts in skin cells. These photoproducts such as pyrimidine dimers (cyclobutane pyrimidine dimers, CPDs, and pyrimidine (6-4) pyrimidone photoproducts, 6-4PPs) are removed by nucleotide excision repair (NER). In this repair pathway, the XPA protein is recruited to the damage removal site; therefore, cells deficient in this protein are unable to repair the photoproducts. The aim of this study was to investigate the involvement of oxidative stress and the formation of DNA photoproducts in UVA-induced cell death. In fact, similar levels of oxidative stress and oxidised bases were detected in XP-A and NER-proficient cells exposed to UVA light. Interestingly, CPDs were detected in both cell lines; however, 6-4PPs were detected only in DNA repair-deficient cells. XP-A cells were also observed to be significantly more sensitive to UVA light compared to NER-proficient cells, with an increased induction of apoptosis, while necrosis was similarly observed in both cell lines. The induction of apoptosis and necrosis in XP-A cells using adenovirus-mediated transduction of specific photolyases was investigated and we confirm that both types of photoproducts are the primary lesions responsible for inducing cell death in XP-A cells and may trigger the skin-damaging effects of UVA light, particularly skin ageing and carcinogenesis.


Assuntos
Morte Celular/efeitos da radiação , Dano ao DNA/efeitos da radiação , DNA/química , Estresse Oxidativo/efeitos da radiação , Linhagem Celular , DNA/genética , Reparo do DNA/efeitos da radiação , Desoxirribodipirimidina Fotoliase/genética , Expressão Gênica , Humanos , Carbonilação Proteica/efeitos da radiação , Raios Ultravioleta
15.
Sci Adv ; 9(15): eade7997, 2023 04 14.
Artigo em Inglês | MEDLINE | ID: mdl-37058556

RESUMO

Recent studies have described a DNA damage tolerance pathway choice that involves a competition between PrimPol-mediated repriming and fork reversal. Screening different translesion DNA synthesis (TLS) polymerases by the use of tools for their depletion, we identified a unique role of Pol ι in regulating such a pathway choice. Pol ι deficiency unleashes PrimPol-dependent repriming, which accelerates DNA replication in a pathway that is epistatic with ZRANB3 knockdown. In Pol ι-depleted cells, the excess participation of PrimPol in nascent DNA elongation reduces replication stress signals, but thereby also checkpoint activation in S phase, triggering chromosome instability in M phase. This TLS-independent function of Pol ι requires its PCNA-interacting but not its polymerase domain. Our findings unravel an unanticipated role of Pol ι in protecting the genome stability of cells from detrimental changes in DNA replication dynamics caused by PrimPol.


Assuntos
Replicação do DNA , DNA Polimerase Dirigida por DNA , Humanos , DNA Polimerase Dirigida por DNA/genética , DNA Polimerase Dirigida por DNA/metabolismo , DNA/genética , DNA/metabolismo , Reparo do DNA , Dano ao DNA , Instabilidade Cromossômica , DNA Primase/genética , DNA Primase/metabolismo , Enzimas Multifuncionais/genética , Enzimas Multifuncionais/metabolismo
16.
J Vis Exp ; (180)2022 02 03.
Artigo em Inglês | MEDLINE | ID: mdl-35188138

RESUMO

The DNA fiber assay is a simple and robust method for the analysis of replication fork dynamics, based on the immunodetection of nucleotide analogs that are incorporated during DNA synthesis in human cells. However, this technique has a limited resolution of a few thousand kilobases. Consequently, post-replicative single-stranded DNA (ssDNA) gaps as small as a few hundred bases are not detectable by the standard assay. Here, we describe a modified version of the DNA fiber assay that utilizes the S1 nuclease, an enzyme that specifically cleaves ssDNA. In the presence of post-replicative ssDNA gaps, the S1 nuclease will target and cleave the gaps, generating shorter tracts that can be used as a read-out for ssDNA gaps on ongoing forks. These post-replicative ssDNA gaps are formed when damaged DNA is replicated discontinuously. They can be repaired via mechanisms uncoupled from genome replication, in a process known as gap-filling or post-replicative repair. Because gap-filling mechanisms involve DNA synthesis independent of the S phase, alterations in the DNA fiber labeling scheme can also be employed to monitor gap-filling events. Altogether, these modifications of the DNA fiber assay are powerful strategies to understand how post-replicative gaps are formed and filled in the genome of human cells.


Assuntos
Reparo do DNA , Replicação do DNA , DNA/genética , DNA de Cadeia Simples , Humanos , Fase S
17.
Nat Commun ; 13(1): 6531, 2022 11 01.
Artigo em Inglês | MEDLINE | ID: mdl-36319634

RESUMO

DNA replication forks are tightly controlled by a large protein network consisting of well-known core regulators and many accessory factors which remain functionally undefined. In this study, we report previously unknown nuclear functions of the actin-binding factor profilin-1 (PFN1) in DNA replication, which occur in a context-dependent fashion and require its binding to poly-L-proline (PLP)-containing proteins instead of actin. In unperturbed cells, PFN1 increases DNA replication initiation and accelerates fork progression by binding and stimulating the PLP-containing nucleosome remodeler SNF2H. Under replication stress, PFN1/SNF2H increases fork stalling and functionally collaborates with fork reversal enzymes to enable the over-resection of unprotected forks. In addition, PFN1 binds and functionally attenuates the PLP-containing fork protector BODL1 to increase the resection of a subset of stressed forks. Accordingly, raising nuclear PFN1 level decreases genome stability and cell survival during replication stress. Thus, PFN1 is a multi-functional regulator of DNA replication with exploitable anticancer potential.


Assuntos
Actinas , Profilinas , Humanos , Actinas/metabolismo , DNA Helicases/metabolismo , Replicação do DNA , Instabilidade Genômica , Profilinas/metabolismo , Adenosina Trifosfatases/metabolismo , Proteínas Cromossômicas não Histona/metabolismo
18.
J Cell Biol ; 220(6)2021 06 07.
Artigo em Inglês | MEDLINE | ID: mdl-33851958

RESUMO

It is well established that short telomeres activate an ATM-driven DNA damage response that leads to senescence in terminally differentiated cells. However, technical limitations have hampered our understanding of how telomere shortening is signaled in human stem cells. Here, we show that telomere attrition induces ssDNA accumulation (G-strand) at telomeres in human pluripotent stem cells (hPSCs), but not in their differentiated progeny. This led to a unique role for ATR in the response of hPSCs to telomere shortening that culminated in an extended S/G2 cell cycle phase and a longer period of mitosis, which was associated with aneuploidy and mitotic catastrophe. Loss of p53 increased resistance to death, at the expense of increased mitotic abnormalities in hPSCs. Taken together, our data reveal an unexpected dominant role of ATR in hPSCs, combined with unique cell cycle abnormalities and, ultimately, consequences distinct from those observed in their isogenic differentiated counterparts.


Assuntos
Proteínas Mutadas de Ataxia Telangiectasia/metabolismo , Proteínas de Ciclo Celular/metabolismo , Ciclo Celular , Mitose , Células-Tronco Pluripotentes/patologia , Telômero/fisiologia , Proteína Supressora de Tumor p53/metabolismo , Aneuploidia , Proteínas Mutadas de Ataxia Telangiectasia/genética , Proteínas de Ciclo Celular/genética , Dano ao DNA , Humanos , Células-Tronco Pluripotentes/metabolismo , Proteína Supressora de Tumor p53/genética
19.
J Cell Biol ; 218(7): 2113-2123, 2019 07 01.
Artigo em Inglês | MEDLINE | ID: mdl-31123184

RESUMO

XRCC4-like factor (XLF) is a non-homologous end joining (NHEJ) DNA double strand break repair protein. However, XLF deficiency leads to phenotypes in mice and humans that are not necessarily consistent with an isolated defect in NHEJ. Here we show that XLF functions during DNA replication. XLF undergoes cell division cycle 7-dependent phosphorylation; associates with the replication factor C complex, a critical component of the replisome; and is found at replication forks. XLF deficiency leads to defects in replication fork progression and an increase in fork reversal. The additional loss of H2AX, which protects DNA ends from resection, leads to a requirement for ATR to prevent an MRE11-dependent loss of newly synthesized DNA and activation of DNA damage response. Moreover, H2ax-/-:Xlf-/- cells exhibit a marked dependence on the ATR kinase for survival. We propose that XLF and H2AX function in series to prevent replication stress induced by the MRE11-dependent resection of regressed arms at reversed replication forks.


Assuntos
Proteínas de Ligação a DNA/genética , Histonas/genética , Proteína Homóloga a MRE11/genética , Animais , Proteínas Mutadas de Ataxia Telangiectasia/genética , Divisão Celular/genética , Quebras de DNA de Cadeia Dupla , Dano ao DNA/genética , Reparo do DNA por Junção de Extremidades/genética , Reparo do DNA/genética , Replicação do DNA/genética , Fibroblastos/metabolismo , Camundongos , Fosforilação/genética
20.
Mutat Res Genet Toxicol Environ Mutagen ; 836(Pt B): 127-142, 2018 Dec.
Artigo em Inglês | MEDLINE | ID: mdl-30442338

RESUMO

During DNA replication, forks may encounter unrepaired lesions that hamper DNA synthesis. Cells have universal strategies to promote damage bypass allowing cells to survive. DNA damage tolerance can be performed upon template switch or by specialized DNA polymerases, known as translesion (TLS) polymerases. Human cells count on more than eleven TLS polymerases and this work reviews the functions of some of these enzymes: Rev1, Pol η, Pol ι, Pol κ, Pol θ and Pol ζ. The mechanisms of damage bypass vary according to the lesion, as well as to the TLS polymerases available, and may occur directly at the fork during replication. Alternatively, the lesion may be skipped, leaving a single-stranded DNA gap that will be replicated later. Details of the participation of these enzymes are revised for the replication of damaged template. TLS polymerases also have functions in other cellular processes. These include involvement in somatic hypermutation in immunoglobulin genes, direct participation in recombination and repair processes, and contributing to replicating noncanonical DNA structures. The importance of DNA damage replication to cell survival is supported by recent discoveries that certain genes encoding TLS polymerases are induced in response to DNA damaging agents, protecting cells from a subsequent challenge to DNA replication. We retrace the findings on these genotoxic (adaptive) responses of human cells and show the common aspects with the SOS responses in bacteria. Paradoxically, although TLS of DNA damage is normally an error prone mechanism, in general it protects from carcinogenesis, as evidenced by increased tumorigenesis in xeroderma pigmentosum variant patients, who are deficient in Pol η. As these TLS polymerases also promote cell survival, they constitute an important mechanism by which cancer cells acquire resistance to genotoxic chemotherapy. Therefore, the TLS polymerases are new potential targets for improving therapy against tumors.


Assuntos
Dano ao DNA , Reparo do DNA , Replicação do DNA , DNA Polimerase Dirigida por DNA/metabolismo , Humanos , Resposta SOS em Genética
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