916 resultados para dna repair


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Oxidized bases are common types of DNA modifications. Their accumulation in the genome is linked to aging and degenerative diseases. These modifications are commonly repaired by the base excision repair (BER) pathway. Oxoguanine DNA glycosylase (OGG1) initiates BER of oxidized purine bases. A small number of protein interactions have been identified for OGG1, while very few appear to have functional consequences. We report here that OGG1 interacts with the recombination protein RAD52 in vitro and in vivo. This interaction has reciprocal functional consequences as OGG1 inhibits RAD52 catalytic activities and RAD52 stimulates OGG1 incision activity, likely increasing its turnover rate. RAD52 colocalizes with OGG1 after oxidative stress to cultured cells, but not after the direct induction of double-strand breaks by ionizing radiation. Human cells depleted of RAD52 via small interfering RNA knockdown, and mouse cells lacking the protein via gene knockout showed increased sensitivity to oxidative stress. Moreover, cells depleted of RAD52 show higher accumulation of oxidized bases in their genome than cells with normal levels of RAD52. Our results indicate that RAD52 cooperates with OGG1 to repair oxidative DNA damage and enhances the cellular resistance to oxidative stress. Our observations suggest a coordinated action between these proteins that may be relevant when oxidative lesions positioned close to strand breaks impose a hindrance to RAD52 catalytic activities.

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Peroxiredoxins are receiving increasing attention as defenders against oxidative damage and sensors of hydrogen peroxide-mediated signaling events. In the yeast Saccharomyces cerevisiae, deletion of one or more isoforms of the peroxiredoxins is not lethal but compromises genome stability by mechanisms that remain under scrutiny. Here, we show that cytosolic peroxiredoxin-null cells (tsa1 Delta tsa2 Delta) are more resistant to hydrogen peroxide than wildtype (WT) cells and consume it faster under fermentative conditions. Also, tsa1 Delta tsa2 Delta cells produced higher yields of the 1-hydroxyethyl radical from oxidation of the glucose metabolite ethanol, as proved by spin-trapping experiments. A major role for Fenton chemistry in radical formation was excluded by comparing WT and tsa1 Delta tsa2 Delta cells with respect to their levels of total and chelatable metal ions and of radical produced in the presence of chelators. The main route for 1-hydroxyethyl radical formation was ascribed to the peroxidase activity of Cu, Zn-superoxide dismutase (Sod1), whose expression and activity increased similar to 5- and 2-fold, respectively, in tsa1 Delta tsa2 Delta compared with WT cells. Accordingly, overexpression of human Sod1 in WT yeasts led to increased 1-hydroxyethyl radical production. Relevantly, tsa1 Delta tsa2 Delta cells challenged with hydrogen peroxide contained higher levels of DNA-derived radicals and adducts as monitored by immuno-spin trapping and incorporation of (14)C from glucose into DNA, respectively. The results indicate that part of hydrogen peroxide consumption by tsa1 Delta tsa2 Delta cells is mediated by induced Sod1, which oxidizes ethanol to the 1-hydroxyethyl radical, which, in turn, leads to increased DNA damage. Overall, our studies provide a pathway to account for the hypermutability of peroxiredoxin-null strains.

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Cholesterol (Ch) can be oxidized by reactive oxygen species, forming oxidized products such as Ch hydroperoxides (ChOOH). These hydroperoxides can disseminate the peroxidative stress to other cell compartments. In this work, the ability of ChOOH to induce strand breaks and/or base modifications in a plasmid DNA model was evaluated. In addition, HPLC/MS/MS analyses were performed to investigate the formation of 8-oxo-7,8-dihydro-2`-deoxyguanosine (8-oxodGuo) after the incubation of 2`-deoxyguanosine (dGuo) with ChOOH and Cu(2+). In the presence of copper ions, ChOOH induced DNA strand breaks in time and concentration-dependent manners. Purine and pyrimidine base modifications were also observed, as assessed respectively by the treatment with Fpg and Endo III repair enzymes. The detection of 8-oxodGuo by HPLC/MS/MS is in agreement with the dGuo oxidation in plasmid DNA. ChOOH-derived DNA damage adds further support to the role of lipid peroxidation in inducing DNA modifications and mutation.

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Coordenação de Aperfeiçoamento de Pessoal de Nível Superior (CAPES)

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Immunohistochemical analysis of the p53 gene protein and cytometric assessment of nuclear DNA were performed in a series of 51 cases of intraductal breast proliferation. The series included 22 cases of intraductal hyperplasia without atypia, 6 cases of intraductal hyperplasia with atypia, and 23 cases of pure intraductal carcinoma. Expression of p53 protein was detected in one case of intraductal hyperplasia without atypia (4.5 per cent), one case of intraductal hyperplasia with atypia (16.6 per cent) and six cases of intraductal carcinoma (26.0 per cent). No significant correlation was observed between p53 expression and histological subtype of intraductal carcinoma. Aneuploidy was demonstrated in two cases of intraductal hyperplasia with atypia (33.3 per cent) and in 18 cases of intraductal carcinoma (78.2 per cent). All cases of intraductal hyperplasia without atypia were euploid. No significant association was observed between p53 protein expression and ploidy in intraductal hyperplasia. The only case of intraductal hyperplasia without atypia positive for p53 was euploid, whereas the only p53-positive case of intraductal hyperplasia with atypia was aneuploid. Among the intraductal carcinomas, only the aneuploid cases showed positivity for p53, regardless of histological subtype. The results suggest that some of the changes observed in invasive breast carcinoma, such as p53 expression and aneuploidy, are already present in breast intraductal proliferation, especially in areas with atypia and in intraductal carcinoma. The expression of p53 in breast intraductal proliferation may reflect the acquisition of p53 gene mutations in cells unable adequately to repair DNA damage, with genomic instability which would lead to clonal expansion and putative evolution to invasive disease.

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Conselho Nacional de Desenvolvimento Científico e Tecnológico (CNPq)

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Double-stranded pBS plasmid DNA was irradiated with gamma rays at doses ranging from 1 to 12 kGy and electron beams from 1 to 10 kGy. Fragment-size distributions were determined by direct visualization, using atomic force microscopy with nanometer-resolution operating in non-tapping mode, combined with an improved methodology. The fragment distributions from irradiation with gamma rays revealed discrete-like patterns at all doses, suggesting that these patterns are modulated by the base pair composition of the plasmid. Irradiation with electron beams, at very high dose rates, generated continuous distributions of highly shattered DNA fragments, similar to results at much lower dose rates found in the literature. Altogether, these results indicate that AFM could supplement traditional methods for high-resolution measurements of radiation damage to DNA, while providing new and relevant information.

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Alcohol and tobacco consumption are risk factors for head and neck squamous cell carcinoma (HNSCC). Aldehyde dehydrogenase 2 (ALDH2) and glutathione Stransferase pi 1 (GSTP1) are important enzymes for cellular detoxification and low efficiencies are implicated in cancer. We assessed the potential role of SET protein overexpression, a histone acetylation modulator accumulated in HNSCC, in gene regulation and protein activity of ALDH2 and GSTP1. SET was knocked down in HN13, HN12 and Cal27, and overexpressed in HEK293 cells; ethanol and cisplatin were the chemical agents. Cells with SET overexpression (HEK293/SET, HN13 and HN12) showed lower ALDH2 and GSTP1 mRNA levels and trichostatin A increased them (real-time PCR). Ethanol upregulated GSTP1 and ALDH2 mRNAs, whereas cisplatin upregulated GSTP1 in HEK293 cells. SET-chromatin binding revealed SET interaction with ALDH2 and GSTP1 promoters, specifically via SET NAP domain; ethanol and cisplatin abolished SET binding. ALDH2 and GSTP1 efficiency was assessed by enzymatic and comet assay. A lower ALDH2 activity was associated with greater DNA damage (tail intensity) in HEK293/SET compared with HEK293 cells, whereas HN13/siSET showed ALDH2 activity higher than HN13 cells. HN13/siSET cells showed increased tail intensity. Cisplatin-induced DNA damage response showed negative relationship between SET overexpression and BRCA2 recruitment. SET downregulated repair genes ATM, BRCA1 and CHEK2 and upregulated TP53. Cisplatin-induced cell-cycle arrest occurred in G0/G1 and S in HEK293 cells, whereas HEK293/SET showed G2/M stalling. Overall, cisplatin was more cytotoxic for HN13 than HN13/siSET cells. Our data suggest a role for SET in cellular detoxification, DNA damage response and genome integrity.

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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 repairdeficient 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.

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The nuclear signaling that is triggered in response to DNA damage entails the recruitment and assembly of repair proteins and the induction of genes involved in the activation of cell cycle checkpoint, apoptosis or senescence. The extensive changes in chromatin structure underlying these processes suggest that chromatin-modifying enzymes could be relevant targets of DNA damage-activated signaling. The acetyltransferases p300 and CBP participate in DNA damage-activated responses, including local histone hyperacetylation, cell cycle regulation, and co-activation of DNA damage activated proteins, such as p53, p73 and BRCA1. However, the link between DNA damage and p300/CBP activation has not been identified.We have detected p300 tyrosine phosphorylation in response to DNA damage. We show that the DNA damage-activated cAbl tyrosine kinase enters the nuclei of cells exposed to genotoxic agents and phosphorylates p300 on a tyrosine residue within the bromodomain that is conserved in p300, CBP and many other bromodomain-containing proteins. Antibodies against tyrosine phosphorylated p300/CBP show a DNA damage-inducible nuclear staining, suggesting that p300 tyrosine phosphorylation is an event linking DNA damage and chromatin modifications.

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Die endogene Bildung reaktiver Sauerstoffspezies (ROS) - wie beispielsweise Hydroxyl-Radikale, Superoxid-Radikalanionen, Wasserstoffperoxid und Singulett-Sauerstoff - bei essentiellen Stoffwechselreaktionen in allen aeroben Lebewesen stellt eine potentielle Gefahr für die Integrität der DNA in jeder Zelle dar. ROS generieren in der DNA unter anderem oxidative DNA-Modifikationen (zum größten Teil wahrscheinlich 8-Hydroxyguanin (8-oxoG)), welche wiederum zu einem Teil zu Mutationen führen.In dieser Arbeit wurden Untersuchungen vorgenommen, in welchem Ausmaß zum einen die Steady-State-Level oxidativer DNA-Schäden in Säugerzellen zum anderen die Reparaturgeschwindig-keiten solcher DNA-Modifikationen durch verschiedene endogene Faktoren beeinflußt werden.Im Mittelpunkt der Arbeit stand dabei die Charakterisierung der 8-Hydroxyguaninglykosylase der Säugerzellen. Sie ist das Produkt des OGG1-Gens, das erst 1997 kloniert wurde. In transfizierten Zellinien konnte durch eine konstitutive Überexpression des menschlichen OGG1-Gens demonstriert werden, daß die Reparatur von induzierten oxidativen Basenmodifikationen bis zu dreifach beschleunigt wird und daß eine Korrelation zwischen dem Grad der Überexpression und der Reparaturrate besteht. Dagegen waren die Steady-State-Level der oxidativen DNA-Schäden durch die Überexpression unbeeinflußt. Sowohl bei den spontanen Mutationsraten als auch bei den durch oxidative Schädigungen induzierten Mutationsfrequenzen konnte keine Erniedrigung bedingt durch die hOGG1-Überexpression beobachtet werden.Weitere Untersuchungen zur Bedeutung von Ogg1-Protein konnten in Mäusezellen durchgeführt werden, in denen das OGG1-homologe Mäusegen, mOGG1, homozygot inaktiviert (mOGG1(-/-)) worden war. Hierbei konnte gezeigt werden, daß in den mOGG1-defizienten Zellen im Vergleich zu den entsprechenden Wildtyp-Zellen (mOGG1(+/+)) eine Reparatur induzierter oxidativer Basenmodifikationen erst nach 8 h einsetzt, während in den Kontrollzellen schon nach 3-4 h 50 % der Modifikationen repariert waren. Die Steady-State-Level oxidativer Modifikationen in mOGG1(-/-)-Zellen waren in immortalisierten, schnell proliferierenden Mäusefibroblasten nur um den Faktor 1.4, in primären Mäusehepatocyten jedoch um den Faktor 2.5 gegenüber den Wildtyp-Zellen erhöht.Inwieweit das menschliche Reparaturprotein Xrcc1 (X-ray repair cross complementing group 1) auch an der Prozessierung oxidativer DNA-Modifikationen beteiligt ist, und ob dabei möglicherweise eine Interaktion mit Ogg1 vorliegt, wurde in der XRCC1-defizienten CHO-Zellinie EM9 untersucht. Dabei wurde ermittelt, daß weder die Steady-State-Level noch die Reparaturkinetiken der oxidativen Basenmodifikationen durch die XRCC1-Defizienz beeinflußt werden. Aufgrund weiterer Ergebnisse kann jedoch nicht ausgeschlossen werden, daß das Xrcc1-Protein zumindest am Ligationsschritt während der Reparatur oxidativer DNA-Schäden beteiligt ist.In einem weiteren Schwerpunkt der Arbeit wurde untersucht, ob Unterschiede im Steady-State-Level in Abhängigkeit von Organ-, Gewebe- und Zelltyp auftreten. Dazu wurden Untersuchungen in Bronchialkarzinom-Zellinien verschiedener Subtypen durchgeführt. Des weiteren wurde zur Frage der Zelltyp-Abhängigkeit in der menschlichen Zellinie HL60 der Einfluß des Zelldifferenzierungsstadiums auf die Steady-State-Level untersucht.

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DNA-Doppelstrangbrüche als zentrales Ereignis alkylierungsinduzierter Zytotoxizität Die vorliegende Arbeit befaßt sich mit der Entstehung von DNA-Doppelstrangbrüchen durch gentoxische Agenzien sowie den zytotoxischen Auswirkungen, die DNA-Doppelstrangbrüche für die Säuger-Zelle haben. Im ersten Teil der Arbeit wurden die molekularen Mechanismen untersucht, die am O6-Methylguanin (O6-MeG)-DNA-Schaden, hervorgerufen durch alkylierende Agenzien, ablaufen. Dabei konnte gezeigt werden, das O6-Methylguanin DNA-Methyltransferase (MGMT) O6-MeG/C und O6-MeG/T in vitro mit gleicher Effizienz repariert und daß die Reparatur von O6-MeG nach dem ersten Zellzyklus protektive Auswirkung auf das zelluläre Überleben hat. Im zweiten Teil der vorliegenden Arbeit stand die Induktion von DNA-Doppelstrangbrüchen durch gentoxische Agenzien in Mausfibroblasten und CHO-Zellen im Mittelpunkt. Mit Hilfe der Einzelzellgelelektrophorese (SCGE, Comet Assay) wurde gezeigt, daß alkylierende Substanzen und die durch Elektroporation in Zellen hineingebrachten Restriktionsenzyme PvuII und EcoRI DNA-Doppelstrangbrüche zu induzieren vermögen. Die Induktion und Reparatur von DNA-Doppelstrangbrüchen nach Elektroporation von PvuII war vom p53-Status der Zellen abhängig, da p53-defiziente Zellen im Gegensatz zu p53-profizienten Zellen höhere DNA-Doppelstrangbruchraten über einen längeren Zeitraum aufwiesen. Im dritten Teil wurden die physiologischen Auswirkungen einer Behandlung von Zellen mit Induktoren von DNA-Doppelstrangbrüchen untersucht. Es wurde gezeigt, daß Alkylanzien in Abhängigkeit vom Vorhandensein von MGMT Apoptose induzieren. Mit PvuII elektroporierte p53-knockout Mausfibroblasten zeigten infolgedessen und im Gegensatz zu p53-wildtyp Zellen hohe Apoptoseraten. Die Induktion der Apoptose nach Behandlung mit PvuII wie auch nach g-Bestrahlung ging einher mit einem Abfall der Proteinmenge des antiapoptotischen Bcl-2. Zusammengenommen weisen die Versuchsergebnisse dieser Arbeit darauf hin, daß nach Behandlung von Zellen mit O6-MeG-generierenden Agenzien wie auch nach g-Bestrahlung DNA-Doppelstrangbrüche das ultimative Signal darstellen können.

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Um Cytotoxizität und Gentoxizität nukleosidischer Antiherpes-Virustatika zu untersuchen, wurden stabile CHO-Klone etabliert, die Thymidinkinase (TK) des Herpes simplex-Virus Typ 1 (HSV-TK) oder des Varicella zoster-Virus (VZV-TK) exprimieren. In HSV-TK-exprimierenden Zellen wurde das Purinanalogon Ganciclovir (GCV) effizient in die genomische DNA eingebaut, worauf in den nächsten Replikationsrunden DNA-Strangbrüche und Aberrationen entstehen und Apoptose ausgelöst wird. GCV-induzierte Apoptose wird hauptsächlich über den mitochondrialen Weg vermittelt, wobei das anti-apoptotische Protein Bcl-2 im Mittelpunkt steht. Nach GCV-Behandlung konnte eine Caspase-9-vermittelte post-translationale Spaltung von Bcl-2 nachgewiesen werden. Das 23 kDa-großes Bcl-2-Fragment wirkt im Gegensatz zum intakten Bcl-2-Protein pro-apoptotisch und verstärkt die Cytochrom C-Freisetzung und damit die Aktivierung der Caspase-9, die Bcl-2 spaltet, was zu einem positiven 'Amplifikationsloop' des mitochondrialen apoptotischen Weges führt. In weiteren Experimenten wurde gezeigt, daß in die DNA inkorporiertes GCV durch Basenexzisionsreparatur repariert wird, wobei die DNA-Polymerase ß eine entscheidende Rolle spielt. Diese Reparatur führte zu einer signifikanten Reduktion der Apoptose und Klastogenität und damit zur Resistenzsteigerung gegenüber GCV. In VZV-TK-exprimierenden Zellen wurde gezeigt, daß Brivudin (BVDU), gleichermaßen Apoptose und Nekrose induzierte. Für die BVDU-induzierte Cytotoxizität konnte die Hemmung der Thymidylatsynthetase als Ursache identifiziert werden. Im Gegensatz zur GCV-induzierten Apoptose war für die BVDU-induzierte Apoptose der Rezeptor (Fas/CD95/APO-1)-vermittelte Weg von vorrangiger Bedeutung.

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Im Rahmen dieser Arbeit wurde untersucht über welche Mechanismen und unter welchen Bedingungen Stickstoffmonoxid (NO) und verwandte reaktive Spezies wie Peroxynitrit und Hydroxylradikale zur Krebsentstehung beitragen können. NO führte an zellfreier DNA kaum zu oxidativen DNA-Schäden. Peroxynitrit, generiert aus 3-Morpholinosydnonimin (SIN-1), induzierte neben Einzel-strangbrüchen und AP-Läsionen vor allem oxidierte Purinmodifikationen (50 % 8-Hydroxyguanin (8-oxoG)). Hydroxylradikale, freigesetzt aus 4-Hydroxypyridinthion, induzierten neben Einzelstrangbrüchen und AP-Läsionen oxidierte Pyrimidinmodifikationen in der DNA. Nach Transformation und Replikation der geschädigten DNA in E. coli DT-2 wurden überwiegend GC nach AT Transitionen (Hydroxylradikalschädigung), wahrscheinlich verursacht durch das in der DNA induzierte 5-Hydroxycytidin, bzw. GC nach TA Transversionen (Peroxynitrit), verursacht durch das induzierte 8-oxoG, detektiert. In Zellkulturexperimenten führte endogenes NO, freigesetzt von B6-INOS-Zellen (8µM) nicht zu einem Anstieg der Gleichgewichtsspiegel oxidativer DNA-Schäden, hatte keinen Einfluss auf deren Induzierbarkeit und Reparatur, die Zellpro-liferation und den Glutathionspiegel, schützte jedoch vor der Induktion von Einzelstrangbrüchen und Mikrokernen durch Wasserstoffperoxid. Exogenes NO, freigesetzt durch den Zerfall von Dipropylentriamin-NONOat, hemmte in Konzentrationen ab 0,5 mM spezifisch die Reparatur oxidativer DNA-Schäden, nicht jedoch die von Pyrimidindimeren, AP-Läsionen und Einzelstrangbrüchen,und führte in Konzentrationen > 1 mM zu einer Induktion von DNA-Schäden in den B6-Mausfibroblasten. Dabei ähnelte das induzierte Schadensprofil sehr dem von SIN-1.

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The DNA topology is an important modifier of DNA functions. Torsional stress is generated when right handed DNA is either over- or underwound, producing structural deformations which drive or are driven by processes such as replication, transcription, recombination and repair. DNA topoisomerases are molecular machines that regulate the topological state of the DNA in the cell. These enzymes accomplish this task by either passing one strand of the DNA through a break in the opposing strand or by passing a region of the duplex from the same or a different molecule through a double-stranded cut generated in the DNA. Because of their ability to cut one or two strands of DNA they are also target for some of the most successful anticancer drugs used in standard combination therapies of human cancers. An effective anticancer drug is Camptothecin (CPT) that specifically targets DNA topoisomerase 1 (TOP 1). The research project of the present thesis has been focused on the role of human TOP 1 during transcription and on the transcriptional consequences associated with TOP 1 inhibition by CPT in human cell lines. Previous findings demonstrate that TOP 1 inhibition by CPT perturbs RNA polymerase (RNAP II) density at promoters and along transcribed genes suggesting an involvement of TOP 1 in RNAP II promoter proximal pausing site. Within the transcription cycle, promoter pausing is a fundamental step the importance of which has been well established as a means of coupling elongation to RNA maturation. By measuring nascent RNA transcripts bound to chromatin, we demonstrated that TOP 1 inhibition by CPT can enhance RNAP II escape from promoter proximal pausing site of the human Hypoxia Inducible Factor 1 (HIF-1) and c-MYC genes in a dose dependent manner. This effect is dependent from Cdk7/Cdk9 activities since it can be reversed by the kinases inhibitor DRB. Since CPT affects RNAP II by promoting the hyperphosphorylation of its Rpb1 subunit the findings suggest that TOP 1inhibition by CPT may increase the activity of Cdks which in turn phosphorylate the Rpb1 subunit of RNAP II enhancing its escape from pausing. Interestingly, the transcriptional consequences of CPT induced topological stress are wider than expected. CPT increased co-transcriptional splicing of exon1 and 2 and markedly affected alternative splicing at exon 11. Surprisingly despite its well-established transcription inhibitory activity, CPT can trigger the production of a novel long RNA (5’aHIF-1) antisense to the human HIF-1 mRNA and a known antisense RNA at the 3’ end of the gene, while decreasing mRNA levels. The effects require TOP 1 and are independent from CPT induced DNA damage. Thus, when the supercoiling imbalance promoted by CPT occurs at promoter, it may trigger deregulation of the RNAP II pausing, increased chromatin accessibility and activation/derepression of antisense transcripts in a Cdks dependent manner. A changed balance of antisense transcripts and mRNAs may regulate the activity of HIF-1 and contribute to the control of tumor progression After focusing our TOP 1 investigations at a single gene level, we have extended the study to the whole genome by developing the “Topo-Seq” approach which generates a map of genome-wide distribution of sites of TOP 1 activity sites in human cells. The preliminary data revealed that TOP 1 preferentially localizes at intragenic regions and in particular at 5’ and 3’ ends of genes. Surprisingly upon TOP 1 downregulation, which impairs protein expression by 80%, TOP 1 molecules are mostly localized around 3’ ends of genes, thus suggesting that its activity is essential at these regions and can be compensate at 5’ ends. The developed procedure is a pioneer tool for the detection of TOP 1 cleavage sites across the genome and can open the way to further investigations of the enzyme roles in different nuclear processes.