56 research outputs found

    Analysis of the inhibitory mechanism of the varicelloviral factor UL49.5

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    Innerhalb des adaptiven Immunsystems spielt der Major Histocompatibility Complex (MHC)-Klasse I-Weg der Antigenpräsentation eine essenzielle Rolle bei der Erkennung und Zerstörung Virus-infizierter Zellen. Ein grundlegender Schritt innerhalb dieses Prozesses ist die Translokation endogener Peptide durch den transporter associated with antigen processing (TAP) in das ER-Lumen. Der TAP-Transporter ist zusammen mit verschiedenen Chaperonen und weiteren Faktoren in einem Peptidbeladungskomplex (PLC) assoziiert. Insbesondere Herpesviren, die durch eine lebenslange Persistenz im Wirt und wiederkehrende Reaktivierung unter Stresssituationen gekennzeichnet sind, interferieren direkt mit dem PLC und dem TAP-Transporter. Das varicellovirale Typ-I-Membranprotein UL49.5 inhibiert den TAP-Komplex, wobei das Protein des Rinderherpesvirus (Bovines Herpesvirus 1, BHV-1) zusätzlich die proteasomale Degradation verschiedener Komponenten des PLCs einleitet. Dieser Mechanismus wird durch die C-terminale Domäne des UL49.5-Proteins vermittelt und ist von keinem anderen Virusprotein bekannt. Welche Aminosäuren des Virusproteins jedoch für diese Inhibition und Degradation essenziell sind, wurde bisher nicht aufgeklärt. Ziel der vorliegenden Doktorarbeit war es, die Funktionsweise des BHV-1 UL49.5-Proteins zu verstehen und insbesondere zu analysieren, welche Bereiche des Proteins für die proteasomale Degradation des TAP-Komplexes verantwortlich sind. Das UL49.5-Protein wurde im Rahmen der vorliegenden Arbeit erfolgreich in Insektenzellen und in HeLa-Zellen exprimiert. Mittels Coimmunpräzipitation (Co-IP) wurde daraufhin die Bindung verschiedener UL49.5-Varianten an den TAP-Komplex analysiert. Unterstützt wurden diese Daten durch einen in vivo Interaktionsscreen (BiFC) und in vitro translatiertes UL49.5. Hierbei stellte sich heraus, dass das UL49.5-Protein in Abwesenheit sämtlicher Komponenten des Immunsystems an beide Untereinheiten des TAP-Transporters bindet. Die Bindung erfolgt sowohl an vollständige TAP-Untereinheiten als auch an den sogenannten coreTAP-Komplex, der nur die inneren sechs Transmembranhelices besitzt. Weiterhin wurden systematisch verkürzte UL49.5-Varianten generiert, um wichtige Reste für TAP-Inhibition und proteasomale Degradation zu identifizieren. Interessanterweise sind weder die N-terminale noch die C-terminale Domäne von UL49.5 für die Bindung an den TAP-Komplex zwingend notwendig. Die Bindung an den TAP-Transporter wird demnach über die Transmembrandomäne von UL49.5 vermittelt. Mit Hilfe von Peptidtransport-Analysen wurde die inhibitorische Aktivität verschiedener UL49.5-Mutanten eingehend untersucht. Zusätzlich wurde eine Untersuchung der MHC I-Oberflächenexpression in transient transfizierten HeLa-Zellen etabliert. In diesen Zellen wurde nach Sortierung eine drastisch reduzierte TAP-Konzentration nachgewiesen, die auf proteasomale Degradation des TAP-Komplexes zurückzuführen war. Die Untersuchung von C-terminal verkürzten UL49.5-Mutanten zeigte, dass die letzten zwei C-terminalen Aminosäuren essenziell für die Induktion der TAP-Degradation sind. Die C-terminale Domäne von UL49.5 konnte jedoch, nach Übertragung auf andere Proteine, keine proteasomale Degradation des TAP-Komplexes einleiten. Demnach ist ein weiterer Bereich des Proteins für diesen Prozess zwingend notwendig. Erstaunlicherweise waren auch N-terminal verkürzte UL49.5-Proteine deutlich in ihrer inhibitorischen Funktion beeinträchtigt. Bereits nach der Deletion von 10 N-terminalen Aminosäuren war das Protein nicht mehr in der Lage, eine proteasomale Degradation des TAP-Komplexes einzuleiten. Demnach spielt auch die ER-luminale Domäne von UL49.5 eine wichtige Rolle bei der UL49.5-induzierten TAP-Degradation. Somit wurde ein bisher noch nicht beschriebener neuartiger Inhibitionsmechanismus für das BHV-1 UL49.5-Protein entdeckt. Nach Bindung von UL49.5 über die Transmembrandomäne an beide Untereinheiten des TAP-Transporters scheint die ER-luminale Domäne von UL49.5 ein Signal über die ER-Membran an die zytoplasmatische Domäne zu übertragen, die dann die proteasomale Degradation des TAP-Komplexes einleitet. Es konnte im Rahmen dieser Doktorarbeit erstmals gezeigt werden, dass additive Effekte eines sehr kleinen Virusproteins auf zwei unterschiedlichen Seiten der ER-Membran zu einer proteasomalen Degradation eines sehr großen Membran-Komplexes führen.As an important strategy within the adaptive immune system, the major histocompatibility complex (MHC) class I-dependent pathway of antigen presentation can trigger the elimination of affected cells by cytotoxic T lymphocytes (CTL) upon presentation of antigenic peptides at the cell surface. A critical step is the translocation of peptides derived from proteasomal degradation into the ER-Lumen by the heterodimeric transporter associated with antigen processing (TAP). This process requires a macromolecular peptide-loading complex (PLC) comprising TAP, MHC I molecules and various chaperones and auxiliary factors. Especially herpes viruses, leading to lifelong persistence and repeated reactivation in the host, encode proteins which interfere at different steps with the MHC class I pathway, especially with the PLC. The varicellovirus protein UL49.5 employs a unique inhibition mechanism to suppress MHC class I expression on the cell surface, unknown from any other viral protein. It arrests the PLC in a functionally incompetent conformation and the protein from the bovine herpesvirus-1 (BHV-1) additionally targets components of the TAP-complex and the UL49.5 protein to proteasomal degradation, mediated by the C-terminal domain of the viral protein. The amino acid residues of UL49.5 which are responsible for TAP inhibition and degradation could not be deciphered yet. Therefore, the goal of this PhD thesis was to understand the mode of action of the BHV-1 UL49.5 protein and especially to analyze which regions of the protein are responsible for induction of the proteasomal degradation of the TAP-complex. The UL49.5 protein could be expressed successfully in Sf9 insect and HeLa cells. Using coimmunprecipitation studies, the binding of several UL49.5 variants to the PLC was analyzed in detail. These data were supported by an in vivo interaction screen (BiFC) and in vitro in rabbit reticulocyte lysate (RRL) translated UL49.5. The results of these studies showed that UL49.5 interacts in the absence of all components of the human immune system with both subunits of the TAP complex. Interestingly, UL49.5 binds both to the wildtype and to the coreTAP complex, consisting of the inner 6+6 transmembrane helices and the nucleotide-binding domains. Additionally, systematically truncated UL49.5 variants were generated to identify residues important for TAP inhibition and proteasomal degradation. Strikingly, neither the N-terminal nor the C-terminal domain of UL49.5 is required for binding to the TAP-complex, indicating that the transmembrane helix of UL49.5 mediates binding to TAP. Binding of the virus protein to the PLC seems to be mediated by the transmembrane domain of UL49.5. Using peptide transport assays, the inhibitory activity of UL49.5 mutants was characterized in detail. An assay using the fluorescence activated cell sorter (FACS) to rapidly analyze the effect of different UL49.5 variants on MHC class I expression on the cell surface was successfully established. In HeLa cells transiently transfected with UL49.5, a downregulation of MHC class I molecules was detected. After FACS sorting of these cells, a drastic reduction of the TAP-level was measured, which was dependent on proteasomal activity. Remarkably, after removal of two C-terminal amino acids of UL49.5, the protein could not induce proteasomal degradation of the TAP complex any more. The isolated C-terminal domain of UL49.5 was not able to induce proteasomal degradation any more, when it was transferred on other proteins. But also after deletion of ten N-terminal amino acids, the UL49.5 protein was drastically impaired in its inhibitory function. Therefore, the ER-luminal domain plays an important role within the process of TAP-inhibition and degradation. Taken together, a new immune evasion mechanism was identified for the BHV-1 UL49.5 protein. After binding of UL49.5 via its transmembrane domain to both subunits of the TAP-complex, the last C-terminal residues of UL49.5 induce the proteasomal degradation of the TAP-transporter. As a further important discovery, this ER-associated degradation signal strictly requires an upstream regulatory element in the ER-Lumenal domain of UL49.5, hence a signalling across the ER membrane. Within this new inhibitory mechanism, it was shown for the first time that additive elements of a small viral factor at two opposing sites of the ER membrane are essential for targeted degradation of a multi-subunit membrane complex

    Varicellovirus UL 49.5 proteins differentially affect the function of the transporter associated with antigen processing, TAP

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    Cytotoxic T-lymphocytes play an important role in the protection against viral infections, which they detect through the recognition of virus-derived peptides, presented in the context of MHC class I molecules at the surface of the infected cell. The transporter associated with antigen processing (TAP) plays an essential role in MHC class I–restricted antigen presentation, as TAP imports peptides into the ER, where peptide loading of MHC class I molecules takes place. In this study, the UL49.5 proteins of the varicelloviruses bovine herpesvirus 1 (BHV-1), pseudorabies virus (PRV), and equine herpesvirus 1 and 4 (EHV-1 and EHV-4) are characterized as members of a novel class of viral immune evasion proteins. These UL49.5 proteins interfere with MHC class I antigen presentation by blocking the supply of antigenic peptides through inhibition of TAP. BHV-1, PRV, and EHV-1 recombinant viruses lacking UL49.5 no longer interfere with peptide transport. Combined with the observation that the individually expressed UL49.5 proteins block TAP as well, these data indicate that UL49.5 is the viral factor that is both necessary and sufficient to abolish TAP function during productive infection by these viruses. The mechanisms through which the UL49.5 proteins of BHV-1, PRV, EHV-1, and EHV-4 block TAP exhibit surprising diversity. BHV-1 UL49.5 targets TAP for proteasomal degradation, whereas EHV-1 and EHV-4 UL49.5 interfere with the binding of ATP to TAP. In contrast, TAP stability and ATP recruitment are not affected by PRV UL49.5, although it has the capacity to arrest the peptide transporter in a translocation-incompetent state, a property shared with the BHV-1 and EHV-1 UL49.5. Taken together, these results classify the UL49.5 gene products of BHV-1, PRV, EHV-1, and EHV-4 as members of a novel family of viral immune evasion proteins, inhibiting TAP through a variety of mechanisms

    Varicellovirus UL49.5 Proteins Differentially Affect the Function of the Transporter Associated with Antigen Processing, TAP

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    Cytotoxic T-lymphocytes play an important role in the protection against viral infections, which they detect through the recognition of virus-derived peptides, presented in the context of MHC class I molecules at the surface of the infected cell. The transporter associated with antigen processing (TAP) plays an essential role in MHC class I–restricted antigen presentation, as TAP imports peptides into the ER, where peptide loading of MHC class I molecules takes place. In this study, the UL49.5 proteins of the varicelloviruses bovine herpesvirus 1 (BHV-1), pseudorabies virus (PRV), and equine herpesvirus 1 and 4 (EHV-1 and EHV-4) are characterized as members of a novel class of viral immune evasion proteins. These UL49.5 proteins interfere with MHC class I antigen presentation by blocking the supply of antigenic peptides through inhibition of TAP. BHV-1, PRV, and EHV-1 recombinant viruses lacking UL49.5 no longer interfere with peptide transport. Combined with the observation that the individually expressed UL49.5 proteins block TAP as well, these data indicate that UL49.5 is the viral factor that is both necessary and sufficient to abolish TAP function during productive infection by these viruses. The mechanisms through which the UL49.5 proteins of BHV-1, PRV, EHV-1, and EHV-4 block TAP exhibit surprising diversity. BHV-1 UL49.5 targets TAP for proteasomal degradation, whereas EHV-1 and EHV-4 UL49.5 interfere with the binding of ATP to TAP. In contrast, TAP stability and ATP recruitment are not affected by PRV UL49.5, although it has the capacity to arrest the peptide transporter in a translocation-incompetent state, a property shared with the BHV-1 and EHV-1 UL49.5. Taken together, these results classify the UL49.5 gene products of BHV-1, PRV, EHV-1, and EHV-4 as members of a novel family of viral immune evasion proteins, inhibiting TAP through a variety of mechanisms

    The Maristán stigma scale: a standardized international measure of the stigma of schizophrenia and other psychoses

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    Background: People with schizophrenia face prejudice and discrimination from a number of sources including professionals and families. The degree of stigma perceived and experienced varies across cultures and communities. We aimed to develop a cross-cultural measure of the stigma perceived by people with schizophrenia.Method: Items for the scale were developed from qualitative group interviews with people with schizophrenia in six countries. The scale was then applied in face-to-face interviews with 164 participants, 103 of which were repeated after 30 days. Principal Axis Factoring and Promax rotation evaluated the structure of the scale; Horn’s parallel combined with bootstrapping determined the number of factors; and intra-class correlation assessed test-retest reliability.Results: The final scale has 31 items and four factors: informal social networks, socio-institutional, health professionals and self-stigma. Cronbach’s alpha was 0.84 for the Factor 1; 0.81 for Factor 2; 0.74 for Factor 3, and 0.75 for Factor 4. Correlation matrix among factors revealed that most were in the moderate range [0.31-0.49], with the strongest occurring between perception of stigma in the informal network and self-stigma and there was also a weaker correlation between stigma from health professionals and self-stigma. Test-retest reliability was highest for informal networks [ICC 0.76 [0.67 -0.83]] and self-stigma [ICC 0.74 [0.64-0.81]]. There were no significant differences in the scoring due to sex or age. Service users in Argentina had the highest scores in almost all dimensions.Conclusions: The MARISTAN stigma scale is a reliable measure of the stigma of schizophrenia and related psychoses across several cultures. A confirmatory factor analysis is needed to assess the stability of its factor structure.We are also grateful for support from the Pan-American Health Office (PAHO), Camden and Islington NHS Foundation Trust and University College London (UCL)

    Mammal responses to global changes in human activity vary by trophic group and landscape

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    Wildlife must adapt to human presence to survive in the Anthropocene, so it is critical to understand species responses to humans in different contexts. We used camera trapping as a lens to view mammal responses to changes in human activity during the COVID-19 pandemic. Across 163 species sampled in 102 projects around the world, changes in the amount and timing of animal activity varied widely. Under higher human activity, mammals were less active in undeveloped areas but unexpectedly more active in developed areas while exhibiting greater nocturnality. Carnivores were most sensitive, showing the strongest decreases in activity and greatest increases in nocturnality. Wildlife managers must consider how habituation and uneven sensitivity across species may cause fundamental differences in human–wildlife interactions along gradients of human influence.Peer reviewe

    Search for dark matter produced in association with bottom or top quarks in √s = 13 TeV pp collisions with the ATLAS detector

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    A search for weakly interacting massive particle dark matter produced in association with bottom or top quarks is presented. Final states containing third-generation quarks and miss- ing transverse momentum are considered. The analysis uses 36.1 fb−1 of proton–proton collision data recorded by the ATLAS experiment at √s = 13 TeV in 2015 and 2016. No significant excess of events above the estimated backgrounds is observed. The results are in- terpreted in the framework of simplified models of spin-0 dark-matter mediators. For colour- neutral spin-0 mediators produced in association with top quarks and decaying into a pair of dark-matter particles, mediator masses below 50 GeV are excluded assuming a dark-matter candidate mass of 1 GeV and unitary couplings. For scalar and pseudoscalar mediators produced in association with bottom quarks, the search sets limits on the production cross- section of 300 times the predicted rate for mediators with masses between 10 and 50 GeV and assuming a dark-matter mass of 1 GeV and unitary coupling. Constraints on colour- charged scalar simplified models are also presented. Assuming a dark-matter particle mass of 35 GeV, mediator particles with mass below 1.1 TeV are excluded for couplings yielding a dark-matter relic density consistent with measurements

    Measurements of top-quark pair differential cross-sections in the eμe\mu channel in pppp collisions at s=13\sqrt{s} = 13 TeV using the ATLAS detector

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    Measurement of the W boson polarisation in ttˉt\bar{t} events from pp collisions at s\sqrt{s} = 8 TeV in the lepton + jets channel with ATLAS

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    Search for single production of vector-like quarks decaying into Wb in pp collisions at s=8\sqrt{s} = 8 TeV with the ATLAS detector

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    Measurement of the charge asymmetry in top-quark pair production in the lepton-plus-jets final state in pp collision data at s=8TeV\sqrt{s}=8\,\mathrm TeV{} with the ATLAS detector

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