988 resultados para Dna Strand Breaks


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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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Replication protein A (RPA) is a highly conserved heterotrimeric single-stranded DNA-binding protein involved in different events of DNA metabolism. In yeast, subunits 1 (RPA-1) and 2 (RPA-2) work also as telomerase recruiters and, in humans, the complex unfolds G-quartet structures formed by the 3' G-rich telomeric strand. In most eukaryotes, RPA-1 and RPA-2 bind DNA using multiple OB fold domains. In trypanosomatids, including Leishmania, RPA-1 has a canonical OB fold and a truncated RFA-1 structural domain. In Leishmania amazonensis, RPA-1 alone can form a complex in vitro with the telomeric G-rich strand. In this work, we show that LaRPA-1 is a nuclear protein that associates in vivo with Leishmania telomeres. We mapped the boundaries of the OB fold DNA-binding domain using deletion mutants. Since Leishmania and other trypanosomatids lack homologues of known telomere end binding proteins, our results raise questions about the function of RPA-1 in parasite telomeres. (C) 2007 Elsevier B.V. All rights reserved.

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Human cells are constantly exposed to DNA damage. Without repair, damage can result in genetic instability and eventually cancer. The strong association between the lack of DNA damage repair, mutations and cancer is dramatically demonstrated by a number of cancer-prone human syndromes, such as xeroderma pigmentosum (XP), ataxia-telangiectasia (AT) and Fanconi anemia (FA). This review focuses on the historical discoveries related with these three diseases and describes their impact on the understanding of DNA repair mechanisms and the causes of human cancer. As deficiencies in DNA repair are also often related with progeria symptoms, unrepaired damage and aging are somehow related. Several other pathologies associated with DNA repair defects, genetic instability and increased cancer risk are also discussed. In fact, studies with cells from these many syndromes have helped in understanding important levels of protection against cancer and aging, although little help has actually been conferred to the patients in terms of therapy. Finally, the recent advances in combined basic and translational research on DNA repair and chemotherapy are presented.

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Doxorubicin (DOX) is an important tumor chemotherapeutic agent, acting mainly by genotoxic action. This work focus on cell processes that help cell survival, after DOX-induced DNA damage. In fact, cells deficient for XPA or DNA polymerase eta (pol eta, XPV) proteins (involved in distinct DNA repair pathways) are highly DOX-sensitive. Moreover, LY294002, an inhibitor of PIKK kinases, showed a synergistic killing effect in cells deficient in these proteins, with a strong induction of G2/M cell cycle arrest. Taken together, these results indicate that XPA and pol eta proteins participate in cell resistance to DOX-treatment, and kinase inhibitors can selectively enhance its killing effects, probably reducing the cell ability to recover from breaks induced in DNA. (C) 2011 Elsevier Ireland Ltd. All rights reserved.

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Recurrent chromosomal translocations underlie both haematopoietic and solid tumours. Their origin has been ascribed to selection of random rearrangements, targeted DNA damage, or frequent nuclear interactions between translocation partners; however, the relative contribution of each of these elements has not been measured directly or on a large scale. Here we examine the role of nuclear architecture and frequency of DNA damage in the genesis of chromosomal translocations by measuring these parameters simultaneously in cultured mouse B lymphocytes. In the absence of recurrent DNA damage, translocations between Igh or Myc and all other genes are directly related to their contact frequency. Conversely, translocations associated with recurrent site-directed DNA damage are proportional to the rate of DNA break formation, as measured by replication protein A accumulation at the site of damage. Thus, non-targeted rearrangements reflect nuclear organization whereas DNA break formation governs the location and frequency of recurrent translocations, including those driving B-cell malignancies.

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Chk1 both arrests replication forks and enhances repair of DNA damage by phosphorylating downstream effectors. Although there has been a concerted effort to identify effectors of Chk1 activity, underlying mechanisms of effector action are still being identified. Metnase (also called SETMAR) is a SET and transposase domain protein that promotes both DNA double-strand break (DSB) repair and restart of stalled replication forks. In this study, we show that Metnase is phosphorylated only on Ser495 (S495) in vivo in response to DNA damage by ionizing radiation. Chk1 is the major mediator of this phosphorylation event. We had previously shown that wild-type (wt) Metnase associates with chromatin near DSBs and methylates histone H3 Lys36. Here we show that a Ser495Ala (S495A) Metnase mutant, which is not phosphorylated by Chk1, is defective in DSB-induced chromatin association. The S495A mutant also fails to enhance repair of an induced DSB when compared with wt Metnase. Interestingly, the S495A mutant demonstrated increased restart of stalled replication forks compared with wt Metnase. Thus, phosphorylation of Metnase S495 differentiates between these two functions, enhancing DSB repair and repressing replication fork restart. In summary, these data lend insight into the mechanism by which Chk1 enhances repair of DNA damage while at the same time repressing stalled replication fork restart. Oncogene (2012) 31, 4245-4254; doi:10.1038/onc.2011.586; published online 9 January 2012

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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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Die Anregung und Emission von Fluorophoren nahe planaren Metalloberflächen und schiefen Gittern wurde mittels Oberflächenplasmonen Fluoreszenz Spektroskopie (SPFS) untersucht. Die Fluorophore konnten durch das evaneszente Plasmonenfeld angeregt und die einzelnen Abregungskanäle identifiziert werden.Die Sensorarchitektur für den Nachweis der Hybridisierung bestand aus auf einer Streptavidin-Matrix immobilisierten unmarkierten Sondensträngen. Cy5 markierte Zielsequenzen wurden aus der Lösung hybridisiert und die Adsorptionskinetiken konnten oberflächensensitiv detektiert werden.Ein neues Detektionsschema für unmarkierte Zielstränge wurde mittels fluoreszenzmarkirten Sondensträngen realisiert. Die Hybridisierung führte zu der Bildung von steifen helikalen Bereichen in der Probe und separierte den Farbstoff von der Metalloberfläche. Reduzierte Fluorezenzlöschung zeigte daher das Hybridisierungsereignis an.Die Verwendung eines potentiellen Förster-Paares zur Detektion von DNA Hybridisierung wurde untersucht. Donor und Akzeptor wurden an Ziel- und Sondenstrang immobilisiert und das Hybridisierungsereignis konnte anhand der Auslöschung der Donor-Fluorezenz nachgewiesen werden.Schließlich wurde der Einsatz von einzelstrangbindenden Proteinen (SSB) zur Steigerung der Sensitivität bezüglich Basenfehlpaarungen betrachtet. Verdrängungsreaktionen zwischen Proteinen und markierten Zielsträngen wurden anhand von SPS und Fluorezenzkinetiken studiert.

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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.

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Gegenstand dieser Arbeit war es, das Zusammenspiel zwischen DNA-Reparatur und zellulärem anitoxidativen Abwehrsystem in Melanomzellen und gesunden Hautfibroblasten näher zu untersuchen. Dabei konnte gezeigt werden, dass die dominierenden DNA-Läsionen im Falle einer Bestrahlung mit sichtbarem Licht (400 – 800 nm) Fpg-sensitive Läsionen, zu denen die Basenmodifikation 7,8-Dihydro-8-oxoguanin (8-oxoG) gehört, und im Falle der UVA-Bestrahlung Cyclobutan-Pyrimidindimere (CPDs) sind. Sowohl Melanomzellen als auch Hautfibroblasten waren problemlos in der Lage, die durch sichtbares Licht und UVA-Strahlung induzierten oxidativen DNA-Modifikationen zu reparieren. Jedoch reagierten Melanomzellen in einer adaptiven Antwort mit einer Erhöhung ihres Glutathion-Gehalts auf ein Maximum (nach circa 10 - 14 h) nach Bestrahlung mit sichtbarem Licht, wohingegen die Hautfibroblasten einen massiven Einbruch direkt nach Bestrahlung und eine extrem lange Erholungsphase über 48 h aufzuweisen hatten. Die darauffolgende Untersuchung der DNA-Reparaturkapazität der Zellen unter Bedingungen von oxidativem Stress mit vorangegangener Depletion intrazellulären Glutathions zeigten eine dramatische, nahezu vollständige Hemmung der Reparatur durch UVA- bzw. Sonnenlicht-induzierter Fpg-sensitiver DNA-Modifikationen (8-oxoG) - sowohl in Melanomzellen als auch in Hautfibroblasten. Dieser Effekt ließ sich durch den Zusatz von Dithiothreitol (DTT), nach erfolgter Bestrahlung der Glutathion-depletierten Zellen, wieder komplett revertieren. Diese Ergebnisse weisen darauf hin, dass an der Reparatur ein redoxempfindliches Protein oder zellulärer Cofaktor beteiligt sein muß. Zudem konnte durch Untersuchungen der Nukleotidexzisionsreparatur (NER) und der Einzelstrangbruchreparatur nach dem gleichen Versuchsdesign gezeigt werden, dass es sich hierbei sehr wahrscheinlich um einen für die Basenexzisionsreparatur (BER) von 7,8-dihydro-8-oxo-guanine (8-oxoG) exklusiven Effekt handelte. Zwei der wichtigsten Reparaturproteine der BER, nämlich hOGG1 und APE1, wurden anschließend auf ihre Funktionsfähigkeit hin untersucht, da es naheliegend war, dass der Reparaturhemmung ein Funktionsverlust eines dieser beiden Enzyme zugrunde liegen könnte. Im Falle des APE1-Proteins konnte dies ausgeschlossen werden, da mit Hilfe der Alkalischen Elution die volle Funktionsfähigkeit für die Reparatur von AP-Läsionen nachgewiesen werden konnte. Interessanterweise zeigte aber das hOGG1-Protein eine zwischen der dritten und vierten Stunde nach Bestrahlung Glutathion-depletierter Zellen stark abfallende Aktivität der 8-oxoG-Glykosylasefunktion. Die Western-Blot-Analyse ergab allerdings keinen Hinweis auf eine Proteinoxidation von hOGG1. Möglicherweise wird nicht hOGG1 selbst, wohl aber ein anderes, für eine konzertierte Abfolge der einzelnen Reparaturschritte entscheidend notwendiges Protein innerhalb der Zelle durch ROS leicht oxidiert. In jedem Fall bleibt festzustellen, dass Glutathion eine wichtige Aufgabe hinsichtlich einer voll funktionsfähigen Basenexzisionreparatur zuzukommen scheint. Die Ergebnisse unterstreichen die mögliche Bedeutung von oxidativem Stress für die Entstehung von Krebs durch Sonnenlicht, insbesondere durch UVA, da die durch die Strahlung (und eventuell auftretende Entzündung) gebildeten ROS nicht nur DNA-Schäden induzieren, sondern auch ihre Reparatur verhindern können.

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DNA elongation is performed by Pol III α subunit in E. coli, stimulated by the association with ε and θ subunits. These three subunits define the DNA Pol III catalytic core. There is controversy about the DNA Pol III assembly for the simultaneous control of lagging and leading strands replication, since some Authors propose a dimeric model with two cores, whereas others have assembled in vitro a trimeric DNA Pol III with a third catalytic core, which increases the efficiency of DNA replication. Moreover, the function of the PHP domain, located at the N-terminus of α subunit, is still unknown. Previous studies hypothesized a possible pyrophosphatase activity, not confirmed yet. The present Thesis highlights by the first time the production in vivo of a trimeric E. coli DNA Pol III by co-expressing α, τ, ε and θ subunits. This trimeric complex has been enzymatically characterized and a molecular model has been proposed, with 2 α subunits sustaining the lagging-strand replication whereas the third core replicates the leading strand. In addition, the pyrophosphatase activity of the PHP domain has been confirmed. This activity involves, at least, the H12 and the D19 residues, whereas the D201 regulates phosphate release. On the other hand, an artificial polymerase (HoLaMa), designed by deleting the exonuclease domain of Klenow Fragment, has been expressed, purified and characterized for a better understanding of bacterial polymerases mechanism. The absence of exonuclease domain impaired enzyme processivity, since this domain is involved in DNA binding. Finally, Klenow enzyme, HoLaMa, α subunit and DNA Pol III αεθ have been characterized at the single-molecule level by FRET analysis, combining ALEX and TIRF microscopy. Fluorescently-labeled DNA molecules were immobilized, and changes in FRET efficiency enabled us to study polymerase binding and DNA polymerization.

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Yellowfin tuna (Thunnus albacares, YFT, Bonnaterre 1788) is one of the most important market tuna species in the world. The high mortality of juveniles is in part caused by their bycatch. Indeed, if unregulated, it could permanently destabilize stocks health. For this reason investigating and better knowing the stock boundaries represent a crucial concern. Aim of this thesis was to preliminary investigate the YFT population structure within and between Atlantic and Pacific Oceans through the analysis of genetic variation at eight microsatellite loci and assess the occurrence of barriers to the gene flow between Oceans. For this propouse we collected 4 geographical samples coming from Atlantic and Pacific Ocean and selected a panel of 8 microsatellites loci developped by Antoni et al., (2014). Samples 71-2-Y and 77-2-Y, came from rispectively west central pacific ocean (WCPO) and east central pacific ocean (ECPO), instead samples 41-1-Y and 34-2-Y derive from west central atlantic ocean (WCAO) and east central atlantic ocean (ECAO). Total 160 specimens were analyzed (40 per sample) and were carried out several genetic information as allele frequencies, allele number, allelic richness, HWE (using He and Ho) and pairwise Fst genetic distance. Results obtained, may support the panmictic theory of this species, only one of pairwise Fst obtained is statistically significant (Fst= 0.00927; pV= 0.00218) between 41-1-Y and 71-2-Y samples. Results suggest low genetic differentiation and consequent high level of gene flow between Atlantic and Pacific populations. Furthermore, we performed an analysis of molecular taxonomy through the use of ATCO (the flaking region between ATPse6 and cytochrome oxidase subunit III genes mt DNA, to discriminate within the gener Thunnus two of the related species (Yellofin and bigeye tuna) according with their difficult recognition at certain size (<40 cm). ATCO analysis in this thesis, has provided strong discriminate evidence between the target species proving to be one of the most reliable genetic tools capable to indagate within the genus Thunnus. Thus, our study has provided useful information for possible use of this protocol for conservation plans and management of this fish stocks.

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;Small interfering RNAs (siRNAs) can be exploited for the selective silencing of disease-related genes via the RNA interference (RNAi) machinery and therefore raise hope for future therapeutic applications. Especially chemically modified siRNAs are of interest as they are expected to convert lead siRNA sequences into effective drugs. To study the potential of tricyclo-DNA (tc-DNA) in this context we systematically incorporated tc-DNA units at various positions in a siRNA duplex targeted to the EGFP gene that was expressed in HeLa cells. Silencing activity was measured by FACS, mRNA levels were determined by RT-PCR and the biostability of the modifed siRNAs was determined in human serum. We found that modifications in the 3'-overhangs in both the sense and antisense strands were compatible with the RNAi machinery leading to similar activities compared to wild type (wt) siRNA. Additional modifications at the 3'-end, the 5'- end and in the center of the sense (passenger) strand were also well tolerated and did not compromise activity. Extensive modifications of the 3'- and the 5'-end in the antisense (guide) strand, however, abolished RNAi activity. Interestingly, modifications in the center of the duplex on both strands, corresponding to the position of the cleavage site by AGO2, increased efficacy relative to wt by a factor of 4 at the lowest concentrations (2 nM) investigated. In all cases, reduction of EGFP fluorescence was accompanied with a reduction of the EGFP mRNA level. Serum stability analysis further showed that 3'-overhang modifications only moderately increased stability while more extensive substitution by tc-DNA residues significantly enhanced biostability.

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A series of oligodeoxyribonucleotides and oligoribonucleotides containing single and multiple tricyclo(tc)-nucleosides in various arrangements were prepared and the thermal and thermodynamic transition profiles of duplexes with complementary DNA and RNA evaluated. Tc-residues aligned in a non-continuous fashion in an RNA strand significantly decrease affinity to complementary RNA and DNA, mostly as a consequence of a loss of pairing enthalpy DeltaH. Arranging the tc-residues in a continuous fashion rescues T(m) and leads to higher DNA and RNA affinity. Substitution of oligodeoxyribonucleotides in the same way causes much less differences in T(m) when paired to complementary DNA and leads to substantial increases in T(m) when paired to complementary RNA. CD-spectroscopic investigations in combination with molecular dynamics simulations of duplexes with single modifications show that tc-residues in the RNA backbone distinctly influence the conformation of the neighboring nucleotides forcing them into higher energy conformations, while tc-residues in the DNA backbone seem to have negligible influence on the nearest neighbor conformations. These results rationalize the observed affinity differences and are of relevance for the design of tc-DNA containing oligonucleotides for applications in antisense or RNAi therapy.