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1.
Cell ; 184(12): 3267-3280.e18, 2021 06 10.
Artículo en Inglés | MEDLINE | ID: mdl-34043941

RESUMEN

Searching for factors to improve knockin efficiency for therapeutic applications, biotechnology, and generation of non-human primate models of disease, we found that the strand exchange protein RAD51 can significantly increase Cas9-mediated homozygous knockin in mouse embryos through an interhomolog repair (IHR) mechanism. IHR is a hallmark of meiosis but only occurs at low frequencies in somatic cells, and its occurrence in zygotes is controversial. Using multiple approaches, we provide evidence for an endogenous IHR mechanism in the early embryo that can be enhanced by RAD51. This process can be harnessed to generate homozygotes from wild-type zygotes using exogenous donors and to convert heterozygous alleles into homozygous alleles without exogenous templates. Furthermore, we identify additional IHR-promoting factors and describe features of IHR events. Together, our findings show conclusive evidence for IHR in mouse embryos and describe an efficient method for enhanced gene conversion.


Asunto(s)
Reparación del ADN/genética , Conversión Génica , Recombinasa Rad51/metabolismo , Alelos , Animales , Secuencia de Bases , Proteína 9 Asociada a CRISPR/metabolismo , Proteínas de Unión al Calcio/metabolismo , Proteínas de Ciclo Celular/metabolismo , Cromosomas de los Mamíferos/genética , Roturas del ADN de Doble Cadena , Embrión de Mamíferos , Femenino , Sitios Genéticos , Recombinación Homóloga/genética , Homocigoto , Humanos , Mutación INDEL/genética , Ratones Endogámicos C57BL , Mosaicismo , Proteínas Nucleares/metabolismo , Polimorfismo de Nucleótido Simple/genética , Ribonucleoproteínas/metabolismo , Cigoto/metabolismo
2.
Cell ; 181(6): 1380-1394.e18, 2020 06 11.
Artículo en Inglés | MEDLINE | ID: mdl-32502392

RESUMEN

Homologous recombination (HR) helps maintain genome integrity, and HR defects give rise to disease, especially cancer. During HR, damaged DNA must be aligned with an undamaged template through a process referred to as the homology search. Despite decades of study, key aspects of this search remain undefined. Here, we use single-molecule imaging to demonstrate that Rad54, a conserved Snf2-like protein found in all eukaryotes, switches the search from the diffusion-based pathways characteristic of the basal HR machinery to an active process in which DNA sequences are aligned via an ATP-dependent molecular motor-driven mechanism. We further demonstrate that Rad54 disrupts the donor template strands, enabling the search to take place within a migrating DNA bubble-like structure that is bound by replication protein A (RPA). Our results reveal that Rad54, working together with RPA, fundamentally alters how DNA sequences are aligned during HR.


Asunto(s)
Adenosina Trifosfato/genética , ADN Helicasas/genética , Enzimas Reparadoras del ADN/genética , ADN/genética , Recombinación Homóloga/genética , Proteínas de Saccharomyces cerevisiae/genética , Adenosina Trifosfatasas/genética , Daño del ADN/genética , Reparación del ADN/genética , Proteínas de Unión al ADN/genética , Hidrólisis , Saccharomyces cerevisiae/genética , Alineación de Secuencia/métodos
3.
Cell ; 175(2): 558-570.e11, 2018 10 04.
Artículo en Inglés | MEDLINE | ID: mdl-30245011

RESUMEN

Given that genomic DNA exerts its function by being transcribed, it is critical for the maintenance of homeostasis that DNA damage, such as double-strand breaks (DSBs), within transcriptionally active regions undergoes accurate repair. However, it remains unclear how this is achieved. Here, we describe a mechanism for transcription-associated homologous recombination repair (TA-HRR) in human cells. The process is initiated by R-loops formed upon DSB induction. We identify Rad52, which is recruited to the DSB site in a DNA-RNA-hybrid-dependent manner, as playing pivotal roles in promoting XPG-mediated R-loop processing and initiating subsequent repair by HRR. Importantly, dysfunction of TA-HRR promotes DSB repair via non-homologous end joining, leading to a striking increase in genomic aberrations. Thus, our data suggest that the presence of R-loops around DSBs within transcriptionally active regions promotes accurate repair of DSBs via processing by Rad52 and XPG to protect genomic information in these critical regions from gene alterations.


Asunto(s)
Proteínas de Unión al ADN/metabolismo , Endonucleasas/metabolismo , Proteínas Nucleares/metabolismo , Proteína Recombinante y Reparadora de ADN Rad52/metabolismo , Reparación del ADN por Recombinación/fisiología , Factores de Transcripción/metabolismo , Línea Celular , ADN/genética , Roturas del ADN de Doble Cadena , Daño del ADN , Reparación del ADN por Unión de Extremidades , Reparación del ADN , Proteínas de Unión al ADN/fisiología , Endonucleasas/fisiología , Recombinación Homóloga , Humanos , Proteínas Nucleares/genética , Proteínas Nucleares/fisiología , ARN/genética , Proteína Recombinante y Reparadora de ADN Rad52/genética , Factores de Transcripción/fisiología
4.
Cell ; 171(6): 1453-1467.e13, 2017 Nov 30.
Artículo en Inglés | MEDLINE | ID: mdl-29153834

RESUMEN

We describe a multiplex genome engineering technology in Saccharomyces cerevisiae based on annealing synthetic oligonucleotides at the lagging strand of DNA replication. The mechanism is independent of Rad51-directed homologous recombination and avoids the creation of double-strand DNA breaks, enabling precise chromosome modifications at single base-pair resolution with an efficiency of >40%, without unintended mutagenic changes at the targeted genetic loci. We observed the simultaneous incorporation of up to 12 oligonucleotides with as many as 60 targeted mutations in one transformation. Iterative transformations of a complex pool of oligonucleotides rapidly produced large combinatorial genomic diversity >105. This method was used to diversify a heterologous ß-carotene biosynthetic pathway that produced genetic variants with precise mutations in promoters, genes, and terminators, leading to altered carotenoid levels. Our approach of engineering the conserved processes of DNA replication, repair, and recombination could be automated and establishes a general strategy for multiplex combinatorial genome engineering in eukaryotes.


Asunto(s)
Ingeniería Genética/métodos , Saccharomyces cerevisiae/genética , Replicación del ADN , Escherichia coli/genética , Edición Génica , Oligonucleótidos/química
5.
Mol Cell ; 84(3): 447-462.e10, 2024 Feb 01.
Artículo en Inglés | MEDLINE | ID: mdl-38244544

RESUMEN

Tumor suppressor BRCA2 functions in homology-directed repair (HDR), the protection of stalled replication forks, and the suppression of replicative gaps, but their relative contributions to genome integrity and chemotherapy response are under scrutiny. Here, we report that mouse and human cells require a RAD51 filament stabilization motif in BRCA2 for fork protection and gap suppression but not HDR. In mice, the loss of fork protection/gap suppression does not compromise genome stability or shorten tumor latency. By contrast, HDR deficiency increases spontaneous and replication stress-induced chromosome aberrations and tumor predisposition. Unlike with HDR, fork protection/gap suppression defects are also observed in Brca2 heterozygous cells, likely due to reduced RAD51 stabilization at stalled forks/gaps. Gaps arise from PRIMPOL activity, which is associated with 5-hydroxymethyl-2'-deoxyuridine sensitivity due to the formation of SMUG1-generated abasic sites and is exacerbated by poly(ADP-ribose) polymerase (PARP) inhibition. However, HDR proficiency has the major role in mitigating sensitivity to chemotherapeutics, including PARP inhibitors.


Asunto(s)
Proteína BRCA2 , Replicación del ADN , Recombinasa Rad51 , Animales , Humanos , Ratones , Proteína BRCA2/metabolismo , Reparación del ADN , Inestabilidad Genómica , Genómica , Recombinasa Rad51/genética , Recombinasa Rad51/metabolismo , Reparación del ADN por Recombinación
6.
Mol Cell ; 84(5): 883-896.e7, 2024 Mar 07.
Artículo en Inglés | MEDLINE | ID: mdl-38309275

RESUMEN

DNA loop-extruding SMC complexes play crucial roles in chromosome folding and DNA immunity. Prokaryotic SMC Wadjet (JET) complexes limit the spread of plasmids through DNA cleavage, yet the mechanisms for plasmid recognition are unresolved. We show that artificial DNA circularization renders linear DNA susceptible to JET nuclease cleavage. Unlike free DNA, JET cleaves immobilized plasmid DNA at a specific site, the plasmid-anchoring point, showing that the anchor hinders DNA extrusion but not DNA cleavage. Structures of plasmid-bound JetABC reveal two presumably stalled SMC motor units that are drastically rearranged from the resting state, together entrapping a U-shaped DNA segment, which is further converted to kinked V-shaped cleavage substrate by JetD nuclease binding. Our findings uncover mechanical bending of residual unextruded DNA as molecular signature for plasmid recognition and non-self DNA elimination. We moreover elucidate key elements of SMC loop extrusion, including the motor direction and the structure of a DNA-holding state.


Asunto(s)
ADN , Endonucleasas , ADN/metabolismo , Plásmidos/genética , Células Procariotas , Proteínas de Ciclo Celular/metabolismo
7.
Annu Rev Biochem ; 85: 193-226, 2016 Jun 02.
Artículo en Inglés | MEDLINE | ID: mdl-27088880

RESUMEN

The repair of DNA by homologous recombination is an essential, efficient, and high-fidelity process that mends DNA lesions formed during cellular metabolism; these lesions include double-stranded DNA breaks, daughter-strand gaps, and DNA cross-links. Genetic defects in the homologous recombination pathway undermine genomic integrity and cause the accumulation of gross chromosomal abnormalities-including rearrangements, deletions, and aneuploidy-that contribute to cancer formation. Recombination proceeds through the formation of joint DNA molecules-homologously paired but metastable DNA intermediates that are processed by several alternative subpathways-making recombination a versatile and robust mechanism to repair damaged chromosomes. Modern biophysical methods make it possible to visualize, probe, and manipulate the individual molecules participating in the intermediate steps of recombination, revealing new details about the mechanics of genetic recombination. We review and discuss the individual stages of homologous recombination, focusing on common pathways in bacteria, yeast, and humans, and place particular emphasis on the molecular mechanisms illuminated by single-molecule methods.


Asunto(s)
ADN/genética , Escherichia coli/genética , Recombinación Genética , Reparación del ADN por Recombinación , Saccharomyces cerevisiae/genética , Aberraciones Cromosómicas , ADN/metabolismo , Daño del ADN , Proteínas de Unión al ADN/genética , Proteínas de Unión al ADN/metabolismo , Endodesoxirribonucleasas/genética , Endodesoxirribonucleasas/metabolismo , Escherichia coli/metabolismo , Exodesoxirribonucleasa V/genética , Exodesoxirribonucleasa V/metabolismo , Exodesoxirribonucleasas/genética , Exodesoxirribonucleasas/metabolismo , Regulación de la Expresión Génica , Inestabilidad Genómica , Humanos , Proteína Recombinante y Reparadora de ADN Rad52/genética , Proteína Recombinante y Reparadora de ADN Rad52/metabolismo , RecQ Helicasas/genética , RecQ Helicasas/metabolismo , Saccharomyces cerevisiae/metabolismo , Proteínas de Saccharomyces cerevisiae/genética , Proteínas de Saccharomyces cerevisiae/metabolismo , Imagen Individual de Molécula
8.
Mol Cell ; 83(4): 523-538.e7, 2023 02 16.
Artículo en Inglés | MEDLINE | ID: mdl-36702125

RESUMEN

Centromeres are essential for chromosome segregation in most animals and plants yet are among the most rapidly evolving genome elements. The mechanisms underlying this paradoxical phenomenon remain enigmatic. Here, we report that human centromeres innately harbor a striking enrichment of DNA breaks within functionally active centromere regions. Establishing a single-cell imaging strategy that enables comparative assessment of DNA breaks at repetitive regions, we show that centromeric DNA breaks are induced not only during active cellular proliferation but also de novo during quiescence. Markedly, centromere DNA breaks in quiescent cells are resolved enzymatically by the evolutionarily conserved RAD51 recombinase, which in turn safeguards the specification of functional centromeres. This study highlights the innate fragility of centromeres, which may have been co-opted over time to reinforce centromere specification while driving rapid evolution. The findings also provide insights into how fragile centromeres are likely to contribute to human disease.


Asunto(s)
Centrómero , ADN , Animales , Humanos , Centrómero/genética , Centrómero/metabolismo , Proteína A Centromérica , Recombinasa Rad51/genética , Recombinasa Rad51/metabolismo , Recombinación Genética
9.
Mol Cell ; 83(16): 2925-2940.e8, 2023 08 17.
Artículo en Inglés | MEDLINE | ID: mdl-37499663

RESUMEN

Homologous recombination (HR) is essential for error-free repair of DNA double-strand breaks, perturbed replication forks (RFs), and post-replicative single-stranded DNA (ssDNA) gaps. To initiate HR, the recombination mediator and tumor suppressor protein BRCA2 facilitates nucleation of RAD51 on ssDNA prior to stimulation of RAD51 filament growth by RAD51 paralogs. Although ssDNA binding by BRCA2 has been implicated in RAD51 nucleation, the function of double-stranded DNA (dsDNA) binding by BRCA2 remains unclear. Here, we exploit single-molecule (SM) imaging to visualize BRCA2-mediated RAD51 nucleation in real time using purified proteins. We report that BRCA2 nucleates and stabilizes RAD51 on ssDNA either directly or through an unappreciated diffusion-assisted delivery mechanism involving binding to and sliding along dsDNA, which requires the cooperative action of multiple dsDNA-binding modules in BRCA2. Collectively, our work reveals two distinct mechanisms of BRCA2-dependent RAD51 loading onto ssDNA, which we propose are critical for its diverse functions in maintaining genome stability and cancer suppression.


Asunto(s)
Proteína BRCA2 , Recombinasa Rad51 , Humanos , Proteína BRCA2/genética , Proteína BRCA2/metabolismo , Recombinasa Rad51/genética , Recombinasa Rad51/metabolismo , Proteínas de Unión al ADN/metabolismo , ADN de Cadena Simple/genética , ADN/metabolismo , Reparación del ADN , Unión Proteica
10.
Mol Cell ; 83(17): 3080-3094.e14, 2023 09 07.
Artículo en Inglés | MEDLINE | ID: mdl-37633270

RESUMEN

Histone H2B monoubiquitylation plays essential roles in chromatin-based transcriptional processes. A RING-type E3 ligase (yeast Bre1 or human RNF20/RNF40) and an E2 ubiquitin-conjugating enzyme (yeast Rad6 or human hRAD6A), together, precisely deposit ubiquitin on H2B K123 in yeast or K120 in humans. Here, we developed a chemical trapping strategy and successfully captured the transient structures of Bre1- or RNF20/RNF40-mediated ubiquitin transfer from Rad6 or hRAD6A to nucleosomal H2B. Our structures show that Bre1 and RNF40 directly bind nucleosomal DNA, exhibiting a conserved E3/E2/nucleosome interaction pattern from yeast to humans for H2B monoubiquitylation. We also find an uncanonical non-hydrophobic contact in the Bre1 RING-Rad6 interface, which positions Rad6 directly above the target H2B lysine residue. Our study provides mechanistic insights into the site-specific monoubiquitylation of H2B, reveals a critical role of nucleosomal DNA in mediating E3 ligase recognition, and provides a framework for understanding the cancer-driving mutations of RNF20/RNF40.


Asunto(s)
Nucleosomas , Proteínas de Saccharomyces cerevisiae , Humanos , Nucleosomas/genética , Histonas/genética , Saccharomyces cerevisiae/genética , Ubiquitina , Ubiquitina-Proteína Ligasas/genética , Proteínas de Saccharomyces cerevisiae/genética
11.
Mol Cell ; 82(11): 2132-2147.e6, 2022 06 02.
Artículo en Inglés | MEDLINE | ID: mdl-35447083

RESUMEN

Mouse pericentromeric DNA is composed of tandem major satellite repeats, which are heterochromatinized and cluster together to form chromocenters. These clusters are refractory to DNA repair through homologous recombination (HR). The mechanisms by which pericentromeric heterochromatin imposes a barrier on HR and the implications of repeat clustering are unknown. Here, we compare the spatial recruitment of HR factors upon double-stranded DNA breaks (DSBs) induced in human and mouse pericentromeric heterochromatin, which differ in their capacity to form clusters. We show that while DSBs increase the accessibility of human pericentromeric heterochromatin by disrupting HP1α dimerization, mouse pericentromeric heterochromatin repeat clustering imposes a physical barrier that requires many layers of de-compaction to be accessed. Our results support a model in which the 3D organization of heterochromatin dictates the spatial activation of DNA repair pathways and is key to preventing the activation of HR within clustered repeats and the onset of chromosomal translocations.


Asunto(s)
Heterocromatina , Translocación Genética , Animales , Análisis por Conglomerados , Roturas del ADN de Doble Cadena , Heterocromatina/genética , Recombinación Homóloga/genética , Ratones
12.
Mol Cell ; 82(21): 3985-4000.e4, 2022 11 03.
Artículo en Inglés | MEDLINE | ID: mdl-36265486

RESUMEN

Alternative lengthening of telomeres (ALT), a telomerase-independent process maintaining telomeres, is mediated by break-induced replication (BIR). RAD52 promotes ALT by facilitating D-loop formation, but ALT also occurs through a RAD52-independent BIR pathway. Here, we show that the telomere non-coding RNA TERRA forms dynamic telomeric R-loops and contributes to ALT activity in RAD52 knockout cells. TERRA forms R-loops in vitro and at telomeres in a RAD51AP1-dependent manner. The formation of R-loops by TERRA increases G-quadruplexes (G4s) at telomeres. G4 stabilization enhances ALT even when TERRA is depleted, suggesting that G4s act downstream of R-loops to promote BIR. In vitro, the telomeric R-loops assembled by TERRA and RAD51AP1 generate G4s, which persist after R-loop resolution and allow formation of telomeric D-loops without RAD52. Thus, the dynamic telomeric R-loops formed by TERRA and RAD51AP1 enable the RAD52-independent ALT pathway, and G4s orchestrate an R- to D-loop switch at telomeres to stimulate BIR.


Asunto(s)
ARN Largo no Codificante , Telomerasa , Homeostasis del Telómero , Telómero/genética , Telómero/metabolismo , Telomerasa/genética , Telomerasa/metabolismo , Estructuras R-Loop/genética , Reparación del ADN
13.
Mol Cell ; 82(21): 4001-4017.e7, 2022 11 03.
Artículo en Inglés | MEDLINE | ID: mdl-36265488

RESUMEN

Alternative lengthening of telomeres (ALT) is a homology-directed repair (HDR) mechanism of telomere elongation that controls proliferation in subsets of aggressive cancer. Recent studies have revealed that telomere repeat-containing RNA (TERRA) promotes ALT-associated HDR (ALT-HDR). Here, we report that RAD51AP1, a crucial ALT factor, interacts with TERRA and utilizes it to generate D- and R-loop HR intermediates. We also show that RAD51AP1 binds to and might stabilize TERRA-containing R-loops as RAD51AP1 depletion reduces R-loop formation at telomere DNA breaks. Proteomic analyses uncover a role for RAD51AP1-mediated TERRA R-loop homeostasis in a mechanism of chromatin-directed suppression of TERRA and prevention of transcription-replication collisions (TRCs) during ALT-HDR. Intriguingly, we find that both TERRA binding and this non-canonical function of RAD51AP1 require its intrinsic SUMO-SIM regulatory axis. These findings provide insights into the multi-contextual functions of RAD51AP1 within the ALT mechanism and regulation of TERRA.


Asunto(s)
ARN Largo no Codificante , Homeostasis del Telómero , Cromatina/genética , Proteómica , Telómero/genética , Telómero/metabolismo , ARN Largo no Codificante/genética , Homeostasis
14.
Mol Cell ; 82(18): 3513-3522.e6, 2022 09 15.
Artículo en Inglés | MEDLINE | ID: mdl-35987200

RESUMEN

DNA double-strand breaks (DSBs) threaten genome stability and are linked to tumorigenesis in humans. Repair of DSBs requires the removal of attached proteins and hairpins through a poorly understood but physiologically critical endonuclease activity by the Mre11-Rad50 complex. Here, we report cryoelectron microscopy (cryo-EM) structures of the bacterial Mre11-Rad50 homolog SbcCD bound to a protein-blocked DNA end and a DNA hairpin. The structures reveal that Mre11-Rad50 bends internal DNA for endonucleolytic cleavage and show how internal DNA, DNA ends, and hairpins are processed through a similar ATP-regulated conformational state. Furthermore, Mre11-Rad50 is loaded onto blocked DNA ends with Mre11 pointing away from the block, explaining the distinct biochemistries of 3' → 5' exonucleolytic and endonucleolytic incision through the way Mre11-Rad50 interacts with diverse DNA ends. In summary, our results unify Mre11-Rad50's enigmatic nuclease diversity within a single structural framework and reveal how blocked DNA ends and hairpins are processed.


Asunto(s)
Proteínas de Unión al ADN , ADN , Proteína Homóloga de MRE11/química , Ácido Anhídrido Hidrolasas/genética , Ácido Anhídrido Hidrolasas/metabolismo , Adenosina Trifosfato/metabolismo , Microscopía por Crioelectrón , ADN/metabolismo , Reparación del ADN , Proteínas de Unión al ADN/metabolismo , Endodesoxirribonucleasas/genética , Endodesoxirribonucleasas/metabolismo , Endonucleasas/genética , Exodesoxirribonucleasas/genética , Exodesoxirribonucleasas/metabolismo , Humanos , Conformación de Ácido Nucleico
15.
Mol Cell ; 82(14): 2571-2587.e9, 2022 07 21.
Artículo en Inglés | MEDLINE | ID: mdl-35597237

RESUMEN

The efficiency of homologous recombination (HR) in the repair of DNA double-strand breaks (DSBs) is closely associated with genome stability and tumor response to chemotherapy. While many factors have been functionally characterized in HR, such as TOPBP1, their precise regulation remains unclear. Here, we report that TOPBP1 interacts with the RNA-binding protein HTATSF1 in a cell-cycle- and phosphorylation-dependent manner. Mechanistically, CK2 phosphorylates HTATSF1 to facilitate binding to TOPBP1, which promotes S-phase-specific TOPBP1 recruitment to damaged chromatin and subsequent RPA/RAD51-dependent HR, genome integrity, and cancer-cell viability. The localization of HTATSF1-TOPBP1 to DSBs is potentially independent of the transcription-coupled RNA-binding and processing capacity of HTATSF1 but rather relies on the recognition of poly(ADP-ribosyl)ated RPA by HTATSF1, which can be blunted with PARP inhibitors. Together, our study provides a mechanistic insight into TOPBP1 loading at HR-prone DSB sites via HTATSF1 and reveals how RPA-RAD51 exchange is tuned by a PARylation-phosphorylation cascade.


Asunto(s)
Poli ADP Ribosilación , Recombinasa Rad51 , Roturas del ADN de Doble Cadena , Reparación del ADN , Recombinación Homóloga/genética , Fosforilación , Recombinasa Rad51/genética , Recombinasa Rad51/metabolismo
16.
Mol Cell ; 82(8): 1589-1602.e5, 2022 04 21.
Artículo en Inglés | MEDLINE | ID: mdl-35263628

RESUMEN

A polyubiquitin chain can adopt a variety of shapes, depending on how the ubiquitin monomers are joined. However, the relevance of linkage for the signaling functions of polyubiquitin chains is often poorly understood because of our inability to control or manipulate this parameter in vivo. Here, we present a strategy for reprogramming polyubiquitin chain linkage by means of tailor-made, linkage- and substrate-selective ubiquitin ligases. Using the polyubiquitylation of the budding yeast replication factor PCNA in response to DNA damage as a model case, we show that altering the features of a polyubiquitin chain in vivo can change the fate of the modified substrate. We also provide evidence for redundancy between distinct but structurally similar linkages, and we demonstrate by proof-of-principle experiments that the method can be generalized to targets beyond PCNA. Our study illustrates a promising approach toward the in vivo analysis of polyubiquitin signaling.


Asunto(s)
Poliubiquitina , Ubiquitina-Proteína Ligasas , ADN , Daño del ADN , Poliubiquitina/genética , Antígeno Nuclear de Célula en Proliferación/genética , Ubiquitina/genética , Ubiquitina-Proteína Ligasas/genética
17.
Mol Cell ; 82(22): 4218-4231.e8, 2022 11 17.
Artículo en Inglés | MEDLINE | ID: mdl-36400008

RESUMEN

POLθ promotes repair of DNA double-strand breaks (DSBs) resulting from collapsed forks in homologous recombination (HR) defective tumors. Inactivation of POLθ results in synthetic lethality with the loss of HR genes BRCA1/2, which induces under-replicated DNA accumulation. However, it is unclear whether POLθ-dependent DNA replication prevents HR-deficiency-associated lethality. Here, we isolated Xenopus laevis POLθ and showed that it processes stalled Okazaki fragments, directly visualized by electron microscopy, thereby suppressing ssDNA gaps accumulating on lagging strands in the absence of RAD51 and preventing fork reversal. Inhibition of POLθ DNA polymerase activity leaves fork gaps unprotected, enabling their cleavage by the MRE11-NBS1-CtIP endonuclease, which produces broken forks with asymmetric single-ended DSBs, hampering BRCA2-defective cell survival. These results reveal a POLθ-dependent genome protection function preventing stalled forks rupture and highlight possible resistance mechanisms to POLθ inhibitors.


Asunto(s)
Replicación del ADN , Proteínas de Unión al ADN , Proteína Homóloga de MRE11/genética , Proteína Homóloga de MRE11/metabolismo , Proteínas de Unión al ADN/genética , Recombinación Homóloga/genética , ADN
18.
Mol Cell ; 82(19): 3553-3565.e5, 2022 10 06.
Artículo en Inglés | MEDLINE | ID: mdl-36070766

RESUMEN

RAD51 and the breast cancer suppressor BRCA2 have critical functions in DNA double-strand (dsDNA) break repair by homologous recombination and the protection of newly replicated DNA from nucleolytic degradation. The recombination function of RAD51 requires its binding to single-stranded DNA (ssDNA), whereas binding to dsDNA is inhibitory. Using reconstituted MRE11-, EXO1-, and DNA2-dependent nuclease reactions, we show that the protective function of RAD51 unexpectedly depends on its binding to dsDNA. The BRC4 repeat of BRCA2 abrogates RAD51 binding to dsDNA and accordingly impairs the function of RAD51 in protection. The BRCA2 C-terminal RAD51-binding segment (TR2) acts in a dominant manner to overcome the effect of BRC4. Mechanistically, TR2 stabilizes RAD51 binding to dsDNA, even in the presence of BRC4, promoting DNA protection. Our data suggest that RAD51's dsDNA-binding capacity may have evolved together with its function in replication fork protection and provide a mechanistic basis for the DNA-protection function of BRCA2.


Asunto(s)
ADN de Cadena Simple , Recombinasa Rad51 , Proteína BRCA2/genética , Proteína BRCA2/metabolismo , ADN/genética , Roturas del ADN de Doble Cadena , Reparación del ADN , Replicación del ADN , ADN de Cadena Simple/genética , Recombinasa Rad51/genética , Recombinasa Rad51/metabolismo
19.
Annu Rev Genet ; 55: 285-307, 2021 11 23.
Artículo en Inglés | MEDLINE | ID: mdl-34813349

RESUMEN

DNA double-strand breaks (DSBs) are cytotoxic lesions that threaten genome integrity and cell viability. Typically, cells repair DSBs by either nonhomologous end joining (NHEJ) or homologous recombination (HR). The relative use of these two pathways depends on many factors, including cell cycle stage and the nature of the DNA ends. A critical determinant of repair pathway selection is the initiation of 5'→3' nucleolytic degradation of DNA ends, a process referred to as DNA end resection. End resection is essential to create single-stranded DNA overhangs, which serve as the substrate for the Rad51 recombinase to initiate HR and are refractory to NHEJ repair. Here, we review recent insights into the mechanisms of end resection, how it is regulated, and the pathological consequences of its dysregulation.


Asunto(s)
Roturas del ADN de Doble Cadena , Proteínas de Unión al ADN , ADN , Reparación del ADN por Unión de Extremidades/genética , Reparación del ADN/genética , Proteínas de Unión al ADN/metabolismo , Exodesoxirribonucleasas/genética , Exodesoxirribonucleasas/metabolismo , Recombinación Homóloga/genética
20.
Mol Cell ; 81(5): 1043-1057.e8, 2021 03 04.
Artículo en Inglés | MEDLINE | ID: mdl-33421364

RESUMEN

Homologous recombination (HR) is essential for maintenance of genome integrity. Rad51 paralogs fulfill a conserved but undefined role in HR, and their mutations are associated with increased cancer risk in humans. Here, we use single-molecule imaging to reveal that the Saccharomyces cerevisiae Rad51 paralog complex Rad55-Rad57 promotes assembly of Rad51 recombinase filament through transient interactions, providing evidence that it acts like a classical molecular chaperone. Srs2 is an ATP-dependent anti-recombinase that downregulates HR by actively dismantling Rad51 filaments. Contrary to the current model, we find that Rad55-Rad57 does not physically block the movement of Srs2. Instead, Rad55-Rad57 promotes rapid re-assembly of Rad51 filaments after their disruption by Srs2. Our findings support a model in which Rad51 is in flux between free and single-stranded DNA (ssDNA)-bound states, the rate of which is controlled dynamically though the opposing actions of Rad55-Rad57 and Srs2.


Asunto(s)
Adenosina Trifosfatasas/genética , ADN Helicasas/genética , Enzimas Reparadoras del ADN/genética , Proteínas de Unión al ADN/genética , Regulación Fúngica de la Expresión Génica , Recombinación Homóloga , Recombinasa Rad51/genética , Proteínas de Saccharomyces cerevisiae/genética , Saccharomyces cerevisiae/genética , Adenosina Trifosfatasas/metabolismo , Sitios de Unión , ADN Helicasas/metabolismo , Enzimas Reparadoras del ADN/metabolismo , ADN de Hongos/genética , ADN de Hongos/metabolismo , ADN de Cadena Simple/genética , ADN de Cadena Simple/metabolismo , Proteínas de Unión al ADN/metabolismo , Genes Reporteros , Proteínas Fluorescentes Verdes/genética , Proteínas Fluorescentes Verdes/metabolismo , Proteínas Luminiscentes/genética , Proteínas Luminiscentes/metabolismo , Chaperonas Moleculares/genética , Chaperonas Moleculares/metabolismo , Mutación , Unión Proteica , Recombinasa Rad51/metabolismo , Saccharomyces cerevisiae/metabolismo , Proteínas de Saccharomyces cerevisiae/metabolismo , Transducción de Señal , Imagen Individual de Molécula , Proteína Fluorescente Roja
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