916 resultados para DNA-REPAIR
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Oxidative damage to DNA is thought to play a role in carcinogenesis by causing Mutations, and indeed accumulation of oxidized DNA bases has been observed in samples obtained from tumors but not from surrounding tissue within the same patient. Base excision repair (BER) is the main pathway for the repair of oxidized modifications both in nuclear and mitochondrial, DNA. In order to ascertain whether diminished BER capacity might account for increased levels of oxidative DNA damage in cancer cells, the activities of BER enzymes in three different lung cancer cell lines and their non-cancerous counterparts were measured using oligonucleotide substrates with single DNA lesions to assess specific BER enzymes. The activities of four BER enzymes, OGG1, NTH1, UDG and APE1, were compared in mitochondrial and nuclear extracts. For each specific lesion, the repair activities were similar among the three cell lines used. However, the specific activities and cancer versus control comparison differed significantly between the nuclear and mitochondrial compartments. OGG1 activity, as measured by 8-oxodA incision, was upregulated in cancer cell mitochondria but down-regulated in the nucleus when compared to control cells. Similarly, NTH1 activity was also up-regulated in mitochondrial extracts from cancer cells but did not change significantly in the nucleus. Together, these results support the idea that alterations in BER capacity are associated with carcinogenesis.
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Mitochondrial transcription factor A (TFAM) is an essential component of mitochondrial nucleoids TFAM plays an important role in mitochondrial transcription and replication TFAM has been previously reported to inhibit nucleotide excision repair (NER) in vitro but NER has not yet been detected in mitochondria, whereas base excision repair (BER) has been comprehensively characterized in these organelles The BER proteins are associated with the inner membrane in mitochondria and thus with the mitochondrial nucleoid, where TFAM is also situated However, a function for TFAM in BER has not yet been investigated This study examines the role of TFAM in BER In vitro studies with purified recombinant TFAM indicate that it preferentially binds to DNA containing 8-oxoguanines, but not to abasic sites, uracils, or a gap in the sequence TFAM inhibited the in vitro incision activity of 8-oxoguanine DNA glycosylase (OGG1), uracil-DNA glycosylase (UDG), apurinic endonuclease 1 (APE1), and nucleotide incorporation by DNA polymerase gamma (pol gamma) On the other hand, a DNA binding-defective TFAM mutant, L58A, showed less inhibition of BER in vitro Characterization of TFAM knockdown (KD) cells revealed that these lysates had higher 8oxoG incision activity without changes in alpha OGG1 protein levels TFAM KD cells had mild resistance to menadione and increased damage accumulation in the mtDNA when compared to the control cells In addition, we found that the tumor suppressor p53, which has been shown to interact with and alter the DNA binding activity of TFAM, alleviates TFAM-Induced inhibition of BER proteins Together, the results suggest that TFAM modulates BER in mitochondria by virtue of its DNA binding activity and protein interactions Published by Elsevier B V
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In vitro and in animal models, APE1, OGG1, and PARP-1 have been proposed as being involved with inflammatory response. In this work, we have investigated if the SNPs APE1 Asn148Glu, OGG1 Ser326Cys, and PARP-1 Val762Ala are associated to meningitis and also developed a system to enable the functional analysis of polymorphic proteins. Patients with bacterial meningitis (BM), aseptic meningitis (AM) and controls (non-infected) genotypes were investigated by PIRA-PCR or PCR-RFLP. DNA damages were detected in genomic DNA by Fpg treatment. IgG and IgA were measured from plasma and the cytokines and chemokines were measured from cerebrospinal fluid samples using Bio-Plex assays. The levels of NF-κB and c-Jun were measured in CSF by dot blot assays. A significant (P<0.05) increase in the frequency of APE1 148Glu allele in BM and AM patients was observed. A significant increase in the genotypes Asn/Asn in control group and Asn/Glu in BM group was also found. For the SNP OGG1 Ser326Cys, the genotype Cys/Cys was more frequent (P<0.05) in BM group. The frequency of PARP-1 Val/Val genotype was higher in control group (P<0.05). The occurrence of combined SNPs increased significantly in BM patients, indicating that these SNPs may be associated to the disease. Increasing in sensitive sites to Fpg was observed in carriers of APE1 148Glu allele or OGG1 326Cys allele, suggesting that SNPs affect DNA repair activity. Alterations in IgG production were observed in the presence of SNPs APE1Asn148Glu, OGG1Ser326Cys or PARP-1Val762Ala. Reductions in the levels ofIL-6, IL-1Ra, MCP-1/CCL2and IL-8/CXCL8 were observed in the presence of APE1148Glu allele in BM patients, however no differences were observed in the levels of NF-κB and c-Jun considering genotypes and analyzed groups. Using APE1 as model, a system to enable the analysis of cellular effects and functional characterization of polymorphic proteins was developed using strategies of cloning APE1 cDNA in pIRES2-EGFP vector, cellular transfection of the construction obtained, siRNA for endogenous APE1 and cellular cultures genotyping. In conclusion, we obtained evidences of an effect of SNPs in DNA repair genes on the regulation of immune response. This is a pioneering work in the field that shows association of BER variant enzymes with an infectious disease in human patients, suggesting that the SNPs analyzed may affect immune response and damage by oxidative stress level during brain infection. Considering these data, new approaches of functional characterization must be developed to better analysis and interactions of polymorphic proteins in response to this context
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Despite advances in vaccine development and therapy, bacterial meningitis (BM) remains a major cause of death and long-term neurological disabilities. As part of the host inflammatory response to the invading pathogen, factors such as reactive oxygen species are generated, which may damage DNA and trigger the overactivation of DNA repair mechanisms. It is conceivable that the individual susceptibility and outcome of BM may be in part determined by non synonymous polymorphisms that may alter the function of crucial BER DNA repair enzymes as PARP-1, OGG-1 and APE-1. These enzymes, in addition to their important DNA repair function, also perform role of inflammatory regulators. In this work was investigated the non synonymous SNPs APE-1 Asn148Glu, OGG-1 Ser326Cys,PARP-1 Val762Ala, PARP-1 Pro882Leu and PARP-1 Cys908Tyr in patients with bacterial meningitis (BM), chronic meningitis (CM), aseptic meningitis (AM) and not infected (controls). As results we found increased frequency of variant alleles of PARP-1 Val762Ala (P = 0.005) and APE-1 Asn148Glu (P=0.018) in BM patients, APE-1 Asn148Glu in AM patients (P = 0.012) and decrease in the frequency of the variant allele OGG-1 Ser326Cys in patients with CM (P = 0.013), regarding the allelic frequencies in the controls. A major incidence of individuals heterozygous and/ or polymorphic homozygous in BM for PARP-1 Val762Ala (P= 0.0399, OD 4.2, 95% IC 1.213 -14.545) and PARP-1 Val762Ala/ APE-1 Asn148Glu (P = 0.0238, OD 11.111, 95% IC 1.274 - 96.914) was observed related to what was expected in a not infected population. It was also observed a major incidence of combined SNPs in the BM patients compared with the control group (P=0.0281), giving evidences that SNPs can cause some susceptibility to the disease. This combined effect of SNPs seems to regulate the principal cytokines and other factors related to BM inflammatory response and point the importance of DNA repair not only to repair activity when DNA is damaged, but to others essential functions to human organism balance.
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Fundação de Amparo à Pesquisa do Estado de São Paulo (FAPESP)
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Fundação de Amparo à Pesquisa do Estado de São Paulo (FAPESP)
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In addition to the known diterpene casearin G (1), two new clerodane diterpene casearins type, casearin S (2) and casearin T (3), were isolated from an acetylated bioactive CH2Cl2/MeOH extract from leaves of Casealia sylvestris. The diterpenes 1-3 exhibited moderate but selective activity towards the DNA-repair deficient yeast Saccharomyces cerevisiae mutants RAD 52YK and RS 321. The structures of 1-3 were established on the basis of NMR spectroscopic experiments (C) 1998 Elsevier B.V. Ltd. All rights reserved.
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Background: The capacity for DNA repair is essential in maintaining cellular functions and homeostasis; however, this capacity can be altered based on DNA sequence variations in DNA repair genes, which may contribute to the onset of cancer. Many single-nucleotide polymorphisms (SNPs) in repair genes have been found to be associated with oral cancer. The aim of this study was to investigate the relationship between the presence of allelic variants Arg194Trp (rs:1799782) and Arg399Gln (rs: 25487) of XRCC1 gene and Thr241Met (rs: 861539) of XRCC3 gene and susceptibility to oral cancer. We also attempted to correlate the frequencies obtained for each of the SNPs to histopathological parameters. Methods: A case-control study was conducted with genomic DNA from 150 patients with oral squamous cell carcinomas and 150 controls. SNPs were genotyped by RFLP-PCR. Results: The presence of the polymorphic variants of the XRCC1 gene within codon 194 (OR 0.82, 95% CI: 0.44-1.51) and codon 399 (OR 0.94, 95% CI: 0.59-1.50) and within the XRCC3 gene (OR 0.72; 95% CI: 0.45-1.16) were not associated with an increased risk of oral cancer. A combinational analysis of SNPs in both genes indicated no association. The presence of the allelic variants of these two genes had no statistically significant effect on tumor differentiation, lymph node invasion or tumor size. Conclusions: These results suggest that allelic variants of XRCC1 and XRCC3 are not suitable markers for susceptibility to carcinomas of the oral cavity and are also not related to the later stages of such tumors. © 2012 John Wiley & Sons A/S.
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Tumor response to antineoplastic drugs is not always predictable. This is also true for bladder carcinoma, a highly recurrent neoplasia. Currently, the combination of cisplatin and gemcitabine is well accepted as a standard protocol for treating bladder carcinoma. However, in some cases, this treatment protocol causes harmful side effects. Therefore, we investigated the roles of the genes TP53, RASSF1A (a tumor suppressor gene) and hMLH1 (a gene involved in the mismatch repair pathway) in cell susceptibility to cisplatin/gemcitabine treatment. Two bladder transitional carcinoma cell (TCC) lines, RT4 (wild-type TP53) and 5637 (mutated TP53), were used in this study. First, we evaluated whether the genotoxic potential of cisplatin/gemcitabine was dependent on TP53 status. Then, we evaluated whether the two antineoplastic drugs modulated RASSF1A and hMLH1 expression in the two cell lines. Increased DNA damage was observed in both cell lines after treatment with cisplatin or gemcitabine and with the two drugs simultaneously, as depicted by the comet assay. A lack of RASSF1A expression and hypermethylation of its promoter were observed before and after treatment in both cell lines. On the other hand, hMLH1 downregulation, unrelated to methylation status, was observed in RT4 cells after treatment with cisplatin or with cisplatin and gemcitabine simultaneously (wild-type TP53); in 5637 cells, hMLH1 was upregulated only after treatment with gemcitabine. In conclusion, the three treatment protocols were genotoxic, independent of TP53 status. However, cisplatin was the most effective, causing the highest level of DNA damage in both wild-type and mutated TP53 cells. Gemcitabine was the least genotoxic agent in both cell lines. Furthermore, no relationship was observed between the amount of DNA damage and the level of hMLH1 and RASSF1A expression. Therefore, other alternative pathways might be involved in cisplatin and gemcitabine genotoxicity in these two bladder cancer cell lines.
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Fundação de Amparo à Pesquisa do Estado de São Paulo (FAPESP)
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Pós-graduação em Biociências e Biotecnologia Aplicadas à Farmácia - FCFAR
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Despite growing knowledge on the biological effects of ultraviolet (UV) radiation on human health and ecosystems, it is still difficult to predict the negative impacts of the increasing incidence of solar UV radiation in a scenario of global warming and climate changes. Hence, the development and application of DNA-based biological sensors to monitor the solar UV radiation under different environmental conditions is of increasing importance. With a mind to rendering a molecular view-point of the genotoxic impact of sunlight, field experiments were undertaken with a DNA-dosimeter system in parallel with physical photometry of solar UVB/UVA radiation, at various latitudes in South America. Onapplying biochemical and immunological approaches based on specific DNA-repair enzymes and antibodies, for evaluating sunlight-induced DNA damage profiles, it became clear that the genotoxic potential of sunlight does indeed vary according to latitude. Notwithstanding, while induction of oxidized DNA bases is directly dependent on an increase in latitude, the generation of 6-4PPs is inversely so, whereby the latter can be regarded as a biomolecular marker of UVB incidence. This molecular DNA lesion-pattern largely reflects the relative incidence of UVA and UVB energy at any specific latitude. Hereby is demonstrated the applicability of this DNA-based biosensor for additional, continuous field experiments, as a means of registering variations in the genotoxic impact of solar UV radiation. Environ. Mol. Mutagen. 2012. (c) 2012 Wiley Periodicals, Inc.
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Background: Due to the increase of solar ultraviolet radiation (UV) incidence over the last few decades, the use of sunscreen has been widely adopted for skin protection. However, considering the high efficiency of sunlight-induced DNA lesions, it is critical to improve upon the current approaches that are used to evaluate protection factors. An alternative approach to evaluate the photoprotection provided by sunscreens against daily UV radiation-induced DNA damage is provided by the systematic use of a DNA dosimeter. Methodology/Principal Findings: The Sun Protection Factor for DNA (DNA-SPF) is calculated by using specific DNA repair enzymes, and it is defined as the capacity for inhibiting the generation of cyclobutane pyrimidine dimers (CPD) and oxidised DNA bases compared with unprotected control samples. Five different commercial brands of sunscreen were initially evaluated, and further studies extended the analysis to include 17 other products representing various formulations and Sun Protection Factors (SPF). Overall, all of the commercial brands of SPF 30 sunscreens provided sufficient protection against simulated sunlight genotoxicity. In addition, this DNA biosensor was useful for rapidly screening the biological protection properties of the various sunscreen formulations. Conclusions/Significance: The application of the DNA dosimeter is demonstrated as an alternative, complementary, and reliable method for the quantification of sunscreen photoprotection at the level of DNA damage.
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Generierung und Prozessierung oxidativer DNA Schäden --- Ziel dieser Arbeit war es, adaptive Antworten der Zellen auf einen DNA Schädigung zu untersuchen. Hierzu wurden Experimente zur Reparatur oxidierter Basen (Substrate der Basen Exzisions Reparatur (BER)) oder von Pyrimidindimeren (Substrate der Nukleotid Exzisions Reparatur (NER)) nach einer Vorbehandlung mit DNA-schädigender Agenzien durchgeführt. Die Ergebnisse zeigten, dass sowohl eine Vorbehandlung mit einer alkylierenden als auch mit einer oxidierenden Substanz zu einer adaptiven Erhöhung des zellulären Glutathionspiegels führte, die 16 h nach der Schädigung ihr Maximum erreichte. Jedoch waren die 8-oxoG Glykosylaseaktivitäten über einen Zeitraum von 18 h konstant. Diese Effekte waren unabhängig davon, ob Maus Embryofibroblasten, primäre oder p53 profiziente menschliche Zellen verwendet wurden. Die BER war ebenfalls in keiner der verschiedenen Zelllinien signifikant verbessert. Die adaptive Antwort bezüglich der Glutathionspiegel war also nicht mit einer entsprechenden Veränderung bei der DNA-Reparatur verbunden. Folglich ist die Reparatur von oxidativen DNA-Schäden durch eine vorausgehende Schädigung nicht induzierbar. Der zweite Teil der Untersuchungen zu der Reparatur beschäftigte sich mit der NER. Hierzu wurde die Reaktivierung eines mit UVB-Strahlung geschädigten Plasmids untersucht. Als Wirtszellen fungierten primäre menschliche Fibroblasten und Keratinozyten, die entweder mit UVB vorbehandelt oder ungeschädigt waren. Auch für die NER konnte keine signifikante Beschleunigung der Reparatur von Pyrimidindimeren durch eine Vorbehandlung festgestellt werden. Die Reaktivierung erfolgte ferner unabhängig vom p53-Status der Zellen, wie Versuche mit p53-siRNA zeigten. Neben der Prozessierung war die Generierung oxidativer DNA Schäden Gegenstand der Arbeit. Die verwendete Substanz Tirapazamin (TPZ) ist ein für hypoxische Zellen selektives, neues Zytostatikum und befindet sich momentan in Phase 2/3 der klinischen Prüfung. Ziel war es die von TPZ verursachten DNA Modifikationen zu charakterisieren, sowie die Toxizität und Genotoxizität zu untersuchen. Da es Hinweise auf eine Aktivierung von TPZ über eine Oxidoreduktase (OR) gab, wurden die Experimente in Wildtyp und hOR überexprimierenden Zellen durchgeführt. Die Quantifizierung der verursachten DNA-Modifikationen zeigte, dass der von TPZ verursachte Schaden in Zellen mit hOR erhöht war. Das erhaltene Schadensprofil der durch TPZ verursachten DNA-Modifikationen war dem Schadensprofil von durch Gamma-Strahlung intrazellulär verursachten Hydroxylradikalen sehr ähnlich. Da es nach der Aktivierung von TPZ durch eine OR zu einer Abspaltung von Hydroxylradikalen kommt, bestätigte dies den vermuteten Mechanismus. Weitere Untersuchungen mit t-Butanol, einem Hydroxylradikal Fänger, ergaben eine verminderte DNA-Schädigung, was ebenfalls für eine DNA-Schädigung durch Hydroxylradikale spricht. Untersuchungen zur Mutagenität zeigten das die Mutationsrate in Zellen mit hOR um das 4 fache erhöht ist. Erstaunlich war jedoch, dass der im gleichen Ausmaß von Gamma-Strahlung verursachte DNA-Schaden für die beobachtete Toxizität dieser verantwortlich war, während bei TPZ unter den gleichen Bedingungen keine Toxizität vorlag. Erklärt werden könnte die erhöhte Toxizität und Mutagenität durch so genannte geclusterte DNA-Schäden, die von Gamma-Strahlen, nicht jedoch von TPZ gebildet werden. Nach einer verlängerten Inkubation wurde sowohl für die Toxizität als auch für die Genotoxizität erneut ein verstärkender Effekt durch die OR bestätigt. Überraschend war weiterhin die von der OR unabhängige Generierung von Doppelstrangbrüchen, für die demnach ein grundsätzlich anderer Mechanismus, wie zum Beispiel eine direkte Interaktion mit der Topoisomerase II, angenommen werden muss.
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Wie im Rahmen dieser Arbeit bestätigt werden konnte, eignet sich die Quantifizierung von γ-H2AX-Foci mittels Immunfluoreszenz zur Quantifizierung von DNA-Doppelstrangbrüchen, welche durch ionisierende Strahlung erzeugt werden. Dabei erzeugt ein Gy Strahlung der verwendeten 60Co-Quelle 33,8 ± 2,1 DNA-Doppelstrangbrüche. Durch UV-Strahlung sowie alkylierende Substanzen wie MMS und MNNG werden in CHO-Zellen γ-H2AX-Foci induziert. Die Anzahl der induzierten γ-H2AX-Foci ist Dosis- und replikationsabhängig. Die im Rahmen dieser Arbeit erhobenen Daten sprechen für eine Phosphorylierung von H2AX an Läsionen, welche die DNA-Replikation beeinträchtigen und insbesondere aktive Replikationsgabeln blockieren. Diese Läsionen können zu DNA-Doppelstrangbrüchen an blockierten Replikationsgabeln führen H2AX wird in der unmittelbaren Umgebung von DNA-Doppelstrangbrüchen zu γ-H2AX phosphoryliert und eignet sich damit zur Quantifizierung dieser Läsionen. Ob γ-H2AX ausschließlich an DNA-Doppelstrangbrüchen phosphoryliert wird, oder auch an anderen Läsionen ist in der Literatur umstritten. Die bis dato publizierte Literatur geht mehrheitlich davon aus, dass γ-H2AX einen ausschließlichen Marker von DNA-Doppelstrangbrüchen darstellt (Burma et al., 2001; Fernandez-Capetillo et al., 2004; Foster und Downs, 2005; Furuta et al., 2003; Halicka et al., 2005; Huang et al., 2005; Paull et al., 2000; Redon et al., 2002; Stucki und Jackson, 2006; Takahashi und Ohnishi, 2005; Ward und Chen, 2001). Neuere Arbeiten postulieren jedoch, dass H2AX auch durch andere, bisher nicht genau klassifizierte, Störungen der Chromatinstruktur phosphoryliert wird (Marti et al., 2006; Stojic et al., 2004). Die im Rahmen dieser Arbeit dargestellten Ergebnisse mit UV-Strahlung und den Alkylantien MMS und MNNG lassen sich gut durch die teils direkte, größtenteils jedoch replikationsabhängige Bildung von DNA-Doppelstrangbrüchen an blockierten Replikationsgabeln erklären. Ausschließen lässt sich die Hypothese, dass die beobachteten γ-H2AX-Foci auch aufgrund anderer Läsionen entstehen, auf Grundlage der erhaltenen Daten nicht. Die Quantifizierung von γ-H2AX eignet sich zur Darstellung von durch ionisierende Strahlung, UV-Strahlung sowie Alkylantien erzeugten Effekten. Eine abschließende Klärung, ob durch die hier angewandte Methode selektiv DNA-Doppelstrangbrüche detektiert werden, steht aber weiterhin aus.