981 resultados para DNA end joining repair
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DNA-dependent protein kinase (DNA-PK) consists of a heterodimeric protein (Ku) and a large catalytic subunit (DNA-PKcs). The Ku protein has double-stranded DNA end-binding activity that serves to recruit the complex to DNA ends. Despite having serine/threonine protein kinase activity, DNA-PKcs falls into the phosphatidylinositol 3-kinase superfamily. DNA-PK functions in DNA double-strand break repair and V(D)J recombination, and recent evidence has shown that mouse scid cells are defective in DNA-PKcs. In this study we have cloned the cDNA for the carboxyl-terminal region of DNA-PKcs in rodent cells and identified the existence of two differently spliced products in human cells. We show that DNA-PKcs maps to the same chromosomal region as the mouse scid gene. scid cells contain approximately wild-type levels of DNA-PKcs transcripts, whereas the V-3 cell line, which is also defective in DNA-PKcs, contains very reduced transcript levels. Sequence comparison of the carboxyl-terminal region of scid and wild-type mouse cells enabled us to identify a nonsense mutation within a highly conserved region of the gene in mouse scid cells. This represents a strong candidate for the inactivating mutation in DNA-PKcs in the scid mouse.
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Au Canada, en 2015, il était estimé que 78 000 personnes allaient mourir d’un cancer, représentant 30 % de tous les décès et faisant de celui-ci la première cause de mortalité. De plus, 196 900 nouveaux cas de cancers seraient découverts au cours de cette même année (Canadian Cancer Society’s Advisory Committee on Cancer Statistics. Canadian Cancer Statistics 2015. Toronto, ON : Canadian Cancer Society; 2015). L’intégrité du génome est chaque jour menacée par des conditions environnementales qui endommagent l’ADN (ultraviolets, produits chimiques divers, etc.). Parmi les différents types de lésions, l’un des plus délétères et pouvant mener au cancer est la cassure double-brin (CDB). Celle-ci peut être réparée suivant deux mécanismes majeurs : la jonction des extrémités non homologues (Non-Homologous End-Joining ou NHEJ) ou la Recombinaison Homologue (RH). Cette dernière, prépondérante pendant les phases S/G2, consiste en la réparation d’une CDB grâce à l’utilisation d’une chromatide soeur comme modèle, permettant une réparation fidèle du dommage. La RH est sous la dépendance de diverses protéines, dont RAD51, PALB2 et BRCA2. Ces deux dernières sont connues pour être mutées dans les cancers du sein et des ovaires. Ainsi, la compréhension de l’implication de chaque acteur dans la RH est un objectif fondamental dans la lutte contre le cancer et constitue l’objectif général de cette thèse. En 2012, une étude a montré qu’une nouvelle protéine, APRIN (Androgen-induced PRoliferation INhibitor), appartenant au complexe cohésine, interagissait avec BRCA2 et jouait un rôle dans la RH. Les rôles précis d’APRIN dans ce mécanisme restaient toutefois à être définis. Le projet principal de cette thèse repose sur la caractérisation fonctionnelle d’APRIN dans la réparation par RH. Nous révélons qu’APRIN aurait un rôle spécifique et indépendant de celui de la cohésine dans la RH, et pourrait agir à diverses étapes cruciales de ce mécanisme. De plus, nos données montrent que le niveau d’expression d’APRIN pourrait être un marqueur de prédiction dans le cancer ovarien. Étant donné qu’APRIN interagit aussi avec PALB2, autre partenaire essentiel de BRCA2, nous avons également étudié et caractérisé les fonctions de divers mutants de PALB2. Nous faisons ainsi la découverte inattendue d’un nouveau phénotype induit par une troncation de cette protéine associée à certains cancers agressifs. Ainsi, cette thèse apporte des informations supplémentaires et indispensables à la compréhension de la réparation de l’ADN par RH et de la survenue de certains cancers.
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Exposure to DNA-damaging agents triggers signal transduction pathways that are thought to play a role in maintenance of genomic stability. A key protein in the cellular processes of nucleotide excision repair, DNA recombination, and DNA double-strand break repair is the single-stranded DNA binding protein, RPA. We showed previously that the p34 subunit of RPA becomes hyperphosphorylated as a delayed response (4-8 h) to UV radiation (10-30 J/m(2)). Here we show that UV-induced RPA-p34 hyperphosphorylation depends on expression of ATM, the product of the gene mutated in the human genetic disorder ataxia telangiectasia (A-T). UV-induced RPA-p34 hyperphosphorylation was not observed in A-T cells, but this response was restored by ATM expression. Furthermore, purified ATM kinase phosphorylates the p34 subunit of RPA complex in vitro at many of the same sites that are phosphorylated in vivo after UV radiation. Induction of this DNA damage response was also dependent on DNA replication; inhibition of DNA replication by aphidicolin prevented induction of RPA-p34 hyperphosphorylation by UV radiation. We postulate that this pathway is triggered by the accumulation of aberrant DNA replication intermediates, resulting from DNA replication fork blockage by UV photoproducts. Further, we suggest that RPA-p34 is hyperphosphorylated as a participant in the recombinational postreplication repair of these replication products. Successful resolution of these replication intermediates reduces the accumulation of chromosomal aberrations that would otherwise occur as a consequence of UV radiation.
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Spinocerebellar ataxia type 3 (SCA3), also known as Machado-Joseph disease (MJD), is an untreatable autosomal dominant neurodegenerative disease, and the most common such inherited ataxia worldwide. The mutation in SCA3 is the expansion of a polymorphic CAG tri-nucleotide repeat sequence in the C-terminal coding region of the ATXN3 gene at chromosomal locus 14q32.1. The mutant ATXN3 protein encoding expanded glutamine (polyQ) sequences interacts with multiple proteins in vivo, and is deposited as aggregates in the SCA3 brain. A large body of literature suggests that the loss of function of the native ATNX3-interacting proteins that are deposited in the polyQ aggregates contributes to cellular toxicity, systemic neurodegeneration and the pathogenic mechanism in SCA3. Nonetheless, a significant understanding of the disease etiology of SCA3, the molecular mechanism by which the polyQ expansions in the mutant ATXN3 induce neurodegeneration in SCA3 has remained elusive. In the present study, we show that the essential DNA strand break repair enzyme PNKP (polynucleotide kinase 3'-phosphatase) interacts with, and is inactivated by, the mutant ATXN3, resulting in inefficient DNA repair, persistent accumulation of DNA damage/strand breaks, and subsequent chronic activation of the DNA damage-response ataxia telangiectasia-mutated (ATM) signaling pathway in SCA3. We report that persistent accumulation of DNA damage/strand breaks and chronic activation of the serine/threonine kinase ATM and the downstream p53 and protein kinase C-d pro-apoptotic pathways trigger neuronal dysfunction and eventually neuronal death in SCA3. Either PNKP overexpression or pharmacological inhibition of ATM dramatically blocked mutant ATXN3-mediated cell death. Discovery of the mechanism by which mutant ATXN3 induces DNA damage and amplifies the pro-death signaling pathways provides a molecular basis for neurodegeneration due to PNKP inactivation in SCA3, and for the first time offers a possible approach to treatment.
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Dermatophytes cause the majority of superficial mycoses in humans and animals. However, little is known about the pathogenicity of this specialized group of filamentous fungi, for which molecular research has been limited thus far. During experimental infection of guinea pigs by the human pathogenic dermatophyte Arthroderma benhamiae, we recently detected the activation of the fungal gene encoding malate synthase AcuE, a key enzyme of the glyoxylate cycle. By the establishment of the first genetic system for A. benhamiae, specific ΔacuE mutants were constructed in a wild-type strain and, in addition, in a derivative in which we inactivated the nonhomologous end-joining pathway by deletion of the A. benhamiae KU70 gene. The absence of AbenKU70 resulted in an increased frequency of the targeted insertion of linear DNA by homologous recombination, without notably altering the monitored in vitro growth abilities of the fungus or its virulence in a guinea pig infection model. Phenotypic analyses of ΔacuE mutants and complemented strains depicted that malate synthase is required for the growth of A. benhamiae on lipids, major constituents of the skin. However, mutant analysis did not reveal a pathogenic role of the A. benhamiae enzyme in guinea pig dermatophytosis or during epidermal invasion of the fungus in an in vitro model of reconstituted human epidermis. The presented efficient system for targeted genetic manipulation in A. benhamiae, paired with the analyzed infection models, will advance the functional characterization of putative virulence determinants in medically important dermatophytes.
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Three phosphatidylinositol-3-kinase-related protein kinases implement cellular responses to DNA damage. DNA-dependent protein kinase catalytic subunit (DNA-PKcs) and ataxia-telangiectasia mutated respond primarily to DNA double-strand breaks (DSBs). Ataxia-telangiectasia and RAD3-related (ATR) signals the accumulation of replication protein A (RPA)-covered single-stranded DNA (ssDNA), which is caused by replication obstacles. Stalled replication intermediates can further degenerate and yield replication-associated DSBs. In this paper, we show that the juxtaposition of a double-stranded DNA end and a short ssDNA gap triggered robust activation of endogenous ATR and Chk1 in human cell-free extracts. This DNA damage signal depended on DNA-PKcs and ATR, which congregated onto gapped linear duplex DNA. DNA-PKcs primed ATR/Chk1 activation through DNA structure-specific phosphorylation of RPA32 and TopBP1. The synergistic activation of DNA-PKcs and ATR suggests that the two kinases combine to mount a prompt and specific response to replication-born DSBs.
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Gene transfer and expression in eukaryotes is often limited by a number of stably maintained gene copies and by epigenetic silencing effects. Silencing may be limited by the use of epigenetic regulatory sequences such as matrix attachment regions (MAR). Here, we show that successive transfections of MAR-containing vectors allow a synergistic increase of transgene expression. This finding is partly explained by an increased entry into the cell nuclei and genomic integration of the DNA, an effect that requires both the MAR element and iterative transfections. Fluorescence in situ hybridization analysis often showed single integration events, indicating that DNAs introduced in successive transfections could recombine. High expression was also linked to the cell division cycle, so that nuclear transport of the DNA occurs when homologous recombination is most active. Use of cells deficient in either non-homologous end-joining or homologous recombination suggested that efficient integration and expression may require homologous recombination-based genomic integration of MAR-containing plasmids and the lack of epigenetic silencing events associated with tandem gene copies. We conclude that MAR elements may promote homologous recombination, and that cells and vectors can be engineered to take advantage of this property to mediate highly efficient gene transfer and expression.
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The gibbon genome exhibits extensive karyotypic diversity with an increased rate of chromosomal rearrangements during evolution. In an effort to understand the mechanistic origin and implications of these rearrangement events, we sequenced 24 synteny breakpoint regions in the white-cheeked gibbon (Nomascus leucogenys, NLE) in the form of high-quality BAC insert sequences (4.2 Mbp). While there is a significant deficit of breakpoints in genes, we identified seven human gene structures involved in signaling pathways (DEPDC4, GNG10), phospholipid metabolism (ENPP5, PLSCR2), beta-oxidation (ECH1), cellular structure and transport (HEATR4), and transcription (ZNF461), that have been disrupted in the NLE gibbon lineage. Notably, only three of these genes show the expected evolutionary signatures of pseudogenization. Sequence analysis of the breakpoints suggested both nonclassical nonhomologous end-joining (NHEJ) and replication-based mechanisms of rearrangement. A substantial number (11/24) of human-NLE gibbon breakpoints showed new insertions of gibbon-specific repeats and mosaic structures formed from disparate sequences including segmental duplications, LINE, SINE, and LTR elements. Analysis of these sites provides a model for a replication-dependent repair mechanism for double-strand breaks (DSBs) at rearrangement sites and insights into the structure and formation of primate segmental duplications at sites of genomic rearrangements during evolution.
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Mitotic chromosome segregation requires the removal of physical connections between sister chromatids. In addition to cohesin and topological entrapments, sister chromatid separation can be prevented by the presence of chromosome junctions or ongoing DNA replication. We will collectively refer to them as DNA-mediated linkages. Although this type of structures has been documented in different DNA replication and repair mutants, there is no known essential mechanism ensuring their timely removal before mitosis. Here, we show that the dissolution of these connections is an active process that requires the Smc5/6 complex, together with Mms21, its associated SUMO-ligase. Failure to remove DNA-mediated linkages causes gross chromosome missegregation in anaphase. Moreover, we show that Smc5/6 is capable to dissolve them in metaphase-arrested cells, thus restoring chromosome resolution and segregation. We propose that Smc5/6 has an essential role in the removal of DNA-mediated linkages to prevent chromosome missegregation and aneuploidy.
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The antioxidant and free radical scavenger properties of melatonin have been well described in the literature. In this study, our objective was to determine the protective effect of the pineal gland hormone against the DNA damage induced by cyclophosphamide (CP), an anti-tumor agent that is widely applied in clinical practice. DNA damage was induced in rats by a single intraperitoneal injection of CP (20 or 50 mg/kg). Animals received melatonin during the dark period for 15 days (1 mg/kg in the drinking water). Rat bone marrow cells were used for the determination of chromosomal aberrations and of formamidopyrimidine DNA glycosylase enzyme (Fpg)-sensitive sites by the comet technique and ofXpf mRNA expression by qRT-PCR. The number (mean ± SE) of chromosomal aberrations in pinealectomized (PINX) animals treated with melatonin and CP (2.50 ± 0.50/100 cells) was lower than that obtained for PINX animals injected with CP (12 ± 1.8/100 cells), thus showing a reduction of 85.8% in the number of chromosomal aberrations. This melatonin-mediated protection was also observed when oxidative lesions were analyzed by the Fpg-sensitive assay, both 24 and 48 h after CP administration. The expression of Xpf mRNA, which is involved in the DNA nucleotide excision repair machinery, was up-regulated by melatonin. The results indicate that melatonin is able to protect bone marrow cells by completely blocking CP-induced chromosome aberrations. Therefore, melatonin administration could be an alternative and effective treatment during chemotherapy.
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Duplication at the Xq28 band including the MECP2 gene is one of the most common genomic rearrangements identified in neurodevelopmentally delayed males. Such duplications are non-recurrent and can be generated by a non-homologous end joining (NHEJ) mechanism. We investigated the potential mechanisms for MECP2 duplication and examined whether genomic architectural features may play a role in their origin using a custom designed 4-Mb tiling-path oligonucleotide array CGH assay. Each of the 30 patients analyzed showed a unique duplication varying in size from similar to 250 kb to similar to 2.6 Mb. Interestingly, in 77% of these non-recurrent duplications, the distal breakpoints grouped within a 215 kb genomic interval, located 47 kb telomeric to the MECP2 gene. The genomic architecture of this region contains both direct and inverted low-copy repeat (LCR) sequences; this same region undergoes polymorphic structural variation in the general population. Array CGH revealed complex rearrangements in eight patients; in six patients the duplication contained an embedded triplicated segment, and in the other two, stretches of non-duplicated sequences occurred within the duplicated region. Breakpoint junction sequencing was achieved in four duplications and identified an inversion in one patient, demonstrating further complexity. We propose that the presence of LCRs in the vicinity of the MECP2 gene may generate an unstable DNA structure that can induce DNA strand lesions, such as a collapsed fork, and facilitate a Fork Stalling and Template Switching event producing the complex rearrangements involving MECP2.
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Há cerca de 20 anos a vanilina vem sendo descrita como uma substância moduladora capaz de inibir eventos relacionados à indução e promoção do processo carcinogênico. Este comportamento associado ao seu consumo elevado despertou o nosso interesse científico - resultando na publicação do primeiro trabalho associando a VA a acréscimos expressivos em eventos recombinacionais mitóticos, acompanhados de decréscimos na freqüência de mutações pontuais e cromossômicas. Entretanto, quando a antimutagênese e a co-recombinogênese foram avaliadas simultaneamente, a ação final da VA refletiu-se não como proteção, mas sim como um efeito potencializador expresso como um aumento de cerca de 200 vezes na genotoxicidade total da MMC. Na procura de respostas adicionais concernentes à ação da VA como moduladora de diferentes espectros de lesões no DNA utilizamos o Teste para Detecção de Mutação e Recombinação Somática em Drosophila melanogaster (SMART) com o intuito de avaliar o comportamento deste flavorizante em relação à genotoxicidade dos agentes químicos: N-methyl-N-nitrosourea (MNU), N-ethyl-N-nitrosourea (ENU), ethylmethanesulphonate (EMS) e bleomicina (BLEO), em dois protocolos de administração do modulador – pós e co-tratamento. Pós-tratamento Os dados obtidos através do sistema de pós-tratamento evidenciaram que a VA não altera a mutagenicidade e a recombinogenicidade do ENU e MNU - o que sugere a não interferência deste flavorizante sobre os mecanismos envolvidos na correção das lesões induzidas por estes alquilantes. Ao contrário, a toxicidade genética do EMS foi significativamente aumentada em valores compreendidos entre 7,79 a 29,79%, representando a expressão final de dois efeitos antagônicos: (i) sinergismo em recombinação mitótica e (ii) proteção em relação à mutagênese. Tais achados sugerem que diferenças entre o espectro dos danos induzidos por estes agentes alquilantes, podem afetar os caminhos de reparação a serem priorizados. Como conseqüência, o efeito potencializador da VA sobre recombinação homóloga (HR) está restrito ao EMS – o único dos agentes alquilantes monofuncionais estudados cujas lesões são processadas, em Drosophila melanogaster, por ambos mecanismos de reparo: excisão de nucleotídeos e pós-replicativo. A VA também causou drásticos incrementos na genotoxicidade da BLEO - 120 a 178% - que estão limitados a aumentos em recombinação, uma vez que não foram observadas alterações na sua potência mutacional. Como a genotoxicidade da BLEO resulta basicamente da indução de quebras duplas corrigidas por mecanismos de reparação dependentes de recombinação - que podem ocorrer tanto entre cromossomos homólogos (HR) como não-homólogos (end joining -NHEJ) – e como o teste SMART privilegia a detecção de recombinação homóloga, os nossos dados indicam que a ação potencializadora de VA em relação a BLEO deve-se especificamente a incrementos em reparo dependente de HR. Ainda relevante é o fato de que estes acréscimos não estão associados a decréscimos em mutação, como anteriormente observado para a MMC.Todos estes dados indicam que a modulação da VA está restrita ao seu efeito sinérgico sobre recombinação somática – promovendo especificamente a recombinação homóloga em células proliferativas de Drosophila. Co-tratamento Através deste procedimento ficou claro que a VA diminui significativamente a toxicidade genética total dos alquilantes MNU e ENU e do agente intercalante bleomicina. Os decréscimos observados tanto para o MNU quanto para o ENU são basicamente atribuídos ao seu papel promotor sobre o processo de detoxificação - que leva a diminuição no número de metilações e etilações induzidas respectivamente pelo MNU e pelo ENU. Adicionalmente, a caracterização da VA como um potente captador de radicais livres, especialmente em função do seu efeito sobre os danos oxidativos induzidos pela BLEO – explica a sua ação desmutagênica em relação a este agente intercalante. Todos estes dados referentes ao efeito modulador da VA não permitem a quantificação da relação risco-benefício do seu consumo, especialmente pela dificuldade prática de se medir o quanto a sua presença concomitante com as genotoxinas – representado por efeito benéfico, via interferência no potencial genotóxico – ou a sua ação após a indução dos danos genéticos, através da promoção de reparo recombinacional e conseqüente aumento em HR, contribuem para a expressão final do seu efeito modulador. Entretanto, o papel fundamental da recombinação homóloga na gênese de inúmeras doenças genéticas, incluindo o câncer, e a preponderante ação recombinogênica da VA são um sinal de alerta.
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Conselho Nacional de Desenvolvimento Científico e Tecnológico (CNPq)
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Recently, it has become apparent that DNA repair mechanisms are involved in the malignant progression and resistance to therapy of gliomas. Many investigators have shown that increased levels of O6-methyl guanine DNA alkyltransferase, a DNA monoalkyl adduct repair enzyme, are correlated with resistance of malignant glioma cell lines to nitrosourea-based chemotherapy. Three important DNA excision repair genes ERCC1 (excision repair cross complementation group 1), ERCC2 (excision repair cross complementation group 2), and ERCC6 (excision repair cross complementation group 6) have been studied in human tumors. Gene copy number variation of ERCC1 and ERCC2 has been observed in primary glioma tissues. A number of reports describing a relationship between ERCC1 gene alterations and resistance to anti-cancer drugs have been also described. The levels of ERCC1 gene expression, however, have not been correlated with drug resistance in gliomas. The expression of ERCC6 gene transcribes has been shown to vary with tissue types and to be highest in the brain. There have been no comprehensive studies so far, however, of ERCC6 gene expression and molecular alterations in malignant glioma. This project examined the ERCC1 expression levels and correlated them with cisplatin resistance in malignant glioma cell lines. We also examined the molecular alterations of ERCC6 gene in primary glioma tissues and cells and analyzed whether these alterations are related to tumor progression and chemotherapy resistance. Our results indicate the presence of mutations and/or deletions in exons II and V of the ERCC6 gene, and these alterations are more frequent in exon II. Furthermore, the mutations and/or deletions in exon II were shown to be associated with increased malignant grade of gliomas. The results on the Levels of ERCC1 gene transcripts showed that expression levels correlate with cisplatin resistance. The increase in ERCC1 mRNA induced by cisplatin could be down-regulated by cyclosporin A and herbimycin A. The results of this study are likely to provide useful information for clinical treatment of human gliomas. ^
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Hereditary tyrosinemia type I (HT1) is an autosomal recessive inborn error of metabolism caused by the deficiency of fumarylacetoacetate hydrolase, the last enzyme in the tyrosine catabolism pathway. This defect results in accumulation of succinylacetone (SA) that reacts with amino acids and proteins to form stable adducts via Schiff base formation, lysine being the most reactive amino acid. HT1 patients surviving beyond infancy are at considerable risk for the development of hepatocellular carcinoma, and a high level of chromosomal breakage is observed in HT1 cells, suggesting a defect in the processing of DNA. In this paper we show that the overall DNA-ligase activity is low in HT1 cells (about 20% of the normal value) and that Okazaki fragments are rejoined at a reduced rate compared with normal fibroblasts. No mutation was found by sequencing the ligase I cDNA from HT1 cells, and the level of expression of the ligase I mRNA was similar in normal and HT1 fibroblasts, suggesting the presence of a ligase inhibitor. SA was shown to inhibit in vitro the overall DNA-ligase activity present in normal cell extracts. The activity of purified T4 DNA-ligase, whose active site is also a lysine residue, was inhibited by SA in a dose-dependent manner. These results suggest that accumulation of SA reduces the overall ligase activity in HT1 cells and indicate that metabolism errors may play a role in regulating enzymatic activities involved in DNA replication and repair.