999 resultados para DAMAGED DNA


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Bloom syndrome and ataxia-telangiectasia are autosomal recessive human disorders characterized by immunodeficiency, genome instability and predisposition to develop cancer. Recent data reveal that the products of these two genes, BLM and ATM, interact and function together in recognizing abnormal DNA structures. To investigate the function of these two molecules in DNA damage recognition, we generated double knockouts of ATM(-/-) BLM-/- in the DT40 chicken B-lymphocyte cell line. The double mutant cells were viable and exhibited a variety of characteristics of both ATM(-/-) and BLM-/- cells. There was no evidence for exacerbation of either phenotype; however, the more extreme radiosensitivity seen in ATM(-/-) and the elevated sister chromatid exchange seen in BLM-/- cells were retained in the double mutants. These results suggest that ATM and BLM have largely distinct roles in recognizing different forms of damage in DNA, but are also compatible with partially overlapping functions in recognizing breaks in radiation-damaged DNA.

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The aim of this study was to assess the effect of exogenous DNA and incubation time on the viability of bovine sperm. Sperm were incubated at a concentration of 5 x 10(6)/ml with or without plasmid pEYFP-NUC. Fluorescent probes, propidium iodide/Hoechst 33342, FITC-PSA and JC-1, were used to assess plasma membrane integrity (PMI), acrosome membrane integrity (AMI) and mitochondrial membrane potential (MMP) respectively at 0, 1, 2, 3 and 4 h of incubation. Exogenous DNA addition did not affect sperm viability; however, incubation time was related to sperm deterioration. Simultaneous assessment of PMI, AMI and MMP showed a reduction in the number of sperm with higher viability (integrity of plasma and acrosome membranes and high mitochondrial membrane potential) from 58.7% at 0 h to 7.5% after 4 h of incubation. Lower viability sperm (damaged plasma and acrosome membranes and low mitochondrial membrane potential) increased from 4.6% at 0 h to 25.99% after 4 h of incubation. When PMI, AMI and MMP were assessed separately we noticed a reduction in plasma and acrosome membrane integrity and mitochondrial membrane potential throughout the incubation period. Therefore, exogenous DNA addition does not affect sperm viability, but the viability is reduced by incubation time.

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Dissertação para obtenção do Grau de Mestre em Biotecnologia

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Danger signals released by damaged organelles can promote inflammation. In this issue of Immunity, Shimada et al. (2012) report that oxidized DNA, released by mitochondria, directly binds and activates the NLRP3 inflammasome.

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It is generally accepted that mitochondria are able to proliferate even in postmitotic cells due to their natural turnover and also to satisfy increased cell energy requirements. However, no detailed studies are available, particularly with respect to specific cell types. Since [3H]-thymidine is incorporated not only into nuclear (n) DNA but also into the DNA of cytoplasmic mitochondria, an autoradiographic approach was developed at the light microscopy level in order to study basic questions of mitochondrial (mt) proliferation in organs of rodents in situ via the cytoplasmic incorporation of [3H]-thymidine injected into the animals 1 h before sacrifice. Experiments carried out on mice after X-irradiation showed that cytoplasmic labeling was not due to a process such as unscheduled nuclear DNA synthesis (nUDS). Furthermore, half-lives of mitochondria between 8-23 days were deduced specifically in relation to cell types. The phase of mtDNA synthesis was about 75 min. Finally, mt proliferation was measured in brain cells of mice as a function of age. While all neurons showed a decreasing extent of mtDNA synthesis during old age, nUDS decreased only in distinct cell types of the cortex and hippocampus. We conclude that the leading theories explaining the phenomenon of aging are closely related, i.e., aging is due to a decreasing capacity of nDNA repair, which leads to unrepaired nDNA damage, or to an accumulation of mitochondria with damaged mtDNA, which leads to a deficit of cellular energy production

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In the present study, we analyzed DNA damage induced by phycocyanin (PHY) in the presence of visible light (VL) using a set of repair endonucleases purified from Escherichia coli. We demonstrated that the profile of DNA damage induced by PHY is clearly different from that induced by molecules that exert deleterious effects on DNA involving solely singlet oxygen as reactive species. Most of PHY-induced lesions are single strand breaks and, to a lesser extent, base oxidized sites, which are recognized by Nth, Nfo and Fpg enzymes. High pressure liquid chromatography coupled to electrochemical detection revealed that PHY photosensitization did not induce 8-oxo-7,8-dihydro-2'-deoxyguanosine (8-oxodGuo) at detectable levels. DNA repair after PHY photosensitization was also investigated. Plasmid DNA damaged by PHY photosensitization was used to transform a series of Saccharomyces cerevisiae DNA repair mutants. The results revealed that plasmid survival was greatly reduced in rad14 mutants, while the ogg1 mutation did not modify the plasmid survival when compared to that in the wild type. Furthermore, plasmid survival in the ogg1 rad14 double mutant was not different from that in the rad14 single mutant. The results reported here indicate that lethal lesions induced by PHY plus VL are repaired differently by prokaryotic and eukaryotic cells. Morever, nucleotide excision repair seems to play a major role in the recognition and repair of these lesions in Saccharomyces cerevisiae.

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Pretreatment of Escherichia coli cultures with the iron chelator 2,2’-dipyridyl (1 mM) protects against the lethal effects of low concentrations of hydrogen peroxide (<15 mM). However, at H2O2 concentrations equal to or greater than 15 mM, dipyridyl pretreatment increases lethality and mutagenesis, which is attributed to the formation of different types of DNA lesions. We show here that pretreatment with dipyridyl (1 mM) prior to challenge with high H2O2 concentrations (≥15 mM) induced mainly G:C→A:T transitions (more than 100X with 15 mM and more than 250X with 20 mM over the spontaneous mutagenesis rate) in E. coli. In contrast, high H2O2 concentrations in the absence of dipyridyl preferentially induced A:T→T:A transversions (more than 1800X and more than 300X over spontaneous mutagenesis for 15 and 20 mM, respectively). We also show that in the fpg nth double mutant, the rpoB gene mutation (RifS-RifR) induced by 20 mM H2O2 alone (20X higher) was increased in 20 mM H2O2 and dipyridyl-treated cultures (110X higher), suggesting additional and/or different lesions in cells treated with H2O2 under iron deprivation. It is suggested that, upon iron deprivation, cytosine may be the main damaged base and the origin of the pre-mutagenic lesions induced by H2O2.

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Ancient DNA (aDNA) research has long depended on the power of PCR to amplify trace amounts of surviving genetic material from preserved specimens. While PCR permits specific loci to be targeted and amplified, in many ways it can be intrinsically unsuited to damaged and degraded aDNA templates. PCR amplification of aDNA can produce highly-skewed distributions with significant contributions from miscoding lesion damage and non-authentic sequence artefacts. As traditional PCR-based approaches have been unable to fully resolve the molecular nature of aDNA damage over many years, we have developed a novel single primer extension (SPEX)-based approach to generate more accurate sequence information. SPEX targets selected template strands at defined loci and can generate a quantifiable redundancy of coverage; providing new insights into the molecular nature of aDNA damage and fragmentation. SPEX sequence data reveals inherent limitations in both traditional and metagenomic PCR-based approaches to aDNA, which can make current damage analyses and correct genotyping of ancient specimens problematic. In contrast to previous aDNA studies, SPEX provides strong quantitative evidence that C U-type base modifications are the sole cause of authentic endogenous damage-derived miscoding lesions. This new approach could allow ancient specimens to be genotyped with unprecedented accuracy.

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Solar radiation sustains and affects all life forms on Earth. The increase in solar UV-radiation at environmental levels, due to depletion of the stratospheric ozone layer, highlights serious issues of social concern. This becomes still more dramatic in tropical and subtropical regions where radiation-intensity is still higher. Thus, there is the need to evaluate the harmful effects of solar UV-radiation on the DNA molecule as a basis for assessing the risks involved for human health, biological productivity and ecosystems. In order to evaluate the profile of DNA damage induced by this form of radiation and its genotoxic effects, plasmid DNA samples were exposed to artificial-UV lamps and directly to sunlight. The induction of cyclobutane pyrimidine dimer photoproducts (CPDs) and oxidative DNA damage in these molecules were evaluated by means of specific DNA repair enzymes. On the other hand, the biological effects of such lesions were determined through the analysis of the DNA inactivation rate and mutation frequency, after replication of the damaged pCMUT vector in an Escherichia coli MBL50 strain. The results indicated the induction of a significant number of CPDs after exposure to increasing doses of UVC, UVB, UVA radiation and sunlight. Interestingly, these photoproducts are those lesions that better correlate with plasmid inactivation as well as mutagenesis, and the oxidative DNA damages induced present very low correlation with these effects. The results indicated that DNA photoproducts play the main role in the induction of genotoxic effects by artificial UV-radiation sources and sunlight. (C) 2010 Elsevier B.V. All rights reserved.

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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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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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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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The presence of damaged nucleobases in DNA can negatively influence transcription of genes. One of the mechanisms by which DNA damage interferes with reading of genetic information is a direct blockage of the elongating RNA polymerase complexes – an effect well described for bulky adducts induced by several chemical substances and UV-irradiation. However, other mechanisms must exist as well because many of the endogenously occurring non-bulky DNA base modifications have transcription-inhibitory properties in cells, whilstrnnot constituting a roadblock for RNA polymerases under cell free conditions. The inhibition of transcription by non-blocking DNA damage was investigated in this work by employing the reporter gene-based assays. Comparison between various types of DNA damage (UV-induced pyrimidine photoproducts, oxidative purine modifications induced by photosensitisation, defined synthetic modified bases such as 8-oxoguanine and uracil, and sequence-specific single-strand breaks) showed that distinct mechanisms of inhibition of transcription can be engaged, and that DNA repair can influence transcription of the affectedrngenes in several different ways.rnQuantitative expression analyses of reporter genes damaged either by the exposure of cells to UV or delivered into cells by transient transfection supported the earlier evidence that transcription arrest at the damage sites is the major mechanism for the inhibition of transcription by this kind of DNA lesions and that recovery of transcription requires a functional nucleotide excision repair gene Csb (ERCC6) in mouse cells. In contrast, oxidisedrnpurines generated by photosensitisation do not cause transcriptional blockage by a direct mechanism, but rather lead to transcriptional repression of the damaged gene which is associated with altered histone acetylation in the promoter region. The whole chain of events leading to transcriptional silencing in response to DNA damage remains to be uncovered. Yet, the data presented here identify repair-induced single-strand breaks – which arise from excision of damaged bases by the DNA repair glycosylases or endonucleases – as arnputative initiatory factor in this process. Such an indirect mechanism was supported by requirement of the 8-oxoguanine DNA glycosylase (OGG1) for the inhibition of transcription by synthetic 8-oxodG incorporated into a reporter gene and by the delays observed for the inhibition of transcription caused by structurally unrelated base modifications (8-oxoguanine and uracil). It is thereby hypothesized that excision of the modified bases could be a generalrnmechanism for inhibition of transcription by DNA damage which is processed by the base excision repair (BER) pathway. Further gene expression analyses of plasmids containing single-strand breaks or abasic sites in the transcribed sequences revealed strong transcription inhibitory potentials of these lesions, in agreement with the presumption that BER intermediates are largely responsible for the observed effects. Experiments with synthetic base modifications positioned within the defined DNA sequences showed thatrninhibition of transcription did not require the localisation of the lesion in the transcribed DNA strand; therefore the damage sensing mechanism has to be different from the direct encounters of transcribing RNA polymerase complexes with DNA damage.rnAltogether, this work provides new evidence that processing of various DNA basernmodifications by BER can perturb transcription of damaged genes by triggering a gene silencing mechanism. As gene expression can be influenced even by a single DNA damage event, this mechanism could have relevance for the endogenous DNA damage induced in cells under normal physiological conditions, with a possible link to gene silencing in general.

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The synthesis of a caged RNA phosphoramidite building block containing the oxidatively damaged base 5-hydroxycytidine (5-HOrC) has been accomplished. To determine the effect of this highly mutagenic lesion on complementary base recognition and coding properties, this building block was incorporated into a 12-mer oligoribonucleotide for Tm and CD measurements and a 31-mer template strand for primer extension experiments with HIV-, AMV- and MMLV-reverse transcriptase (RT). In UV-melting experiments, we find an unusual biphasic transition with two distinct Tm's when 5-HOrC is paired against a DNA or RNA complement with the base guanine in opposing position. The higher Tm closely matches that of a C-G base pair while the lower is close to that of a C-A mismatch. In single nucleotide extension reactions, we find substantial misincorporation of dAMP and to a lesser extent dTMP, with dAMP almost equaling that of the parent dGMP in the case of HIV-RT. A working hypothesis for the biphasic melting transition does not invoke tautomeric variability of 5-HOrC but rather local structural perturbations of the base pair at low temperature induced by interactions of the 5-HO group with the phosphate backbone. The properties of this RNA damage is discussed in the context of its putative biological function.

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Exposure to UVB radiation induces local and systemic immune suppression, evidenced by inhibition of the contact hypersensitivity response (CHS). Epidermal dendritic cells, the primary antigen presenting cells responsible for the induction of CHS, are profoundly altered in phenotype and function by UVB exposure and possess UV-specific DNA damage upon migrating to skin-draining lymph nodes. Expression of the proapoptotic protein FasL has been demonstrated in both skin and lymph node cells following UVB exposure. Additionally, functional FasL expression has recently been demonstrated to be required in the phenomenon of UV-induced immune suppression. To test the hypothesis that FasL expression by DNA-damaged Langerhans cells migrating to the skin-draining lymph nodes is a crucial event in the generation of this phenomenon, mice were given a single 5KJ/m2 UV-B exposure and sensitized to 0.5% FITC through the exposed area. Dendritic cells (DC) harvested from skin-draining lymph nodes (DLN) 18 hours following sensitization by magnetic CD11c-conjugated microbeads expressed high levels of Iab, CD80 and CD86, DEC-205 and bore the FITC hapten, suggesting epidermal origin. Radioimmunoassay of UV-specific DNA damage showed that DC contained the vast majority of cyclobutane pyrimidine dimers (CPDs) found in the DLN after UVB and exhibited increased FasL mRNA expression, a result which correlated with greatly increased FasL-mediated cytotoxicity. The ability of DCs to transfer sensitization to naïve hosts was lost following UVB exposure, a phenomenon which required DC FasL expression, and was completely reversed by cutaneous DNA repair. Collectively, these results demonstrate the central importance of DNA damage-induced FasL expression on migrating dendritic cells in mediating UV-induced suppression of contact hypersensitivity. ^