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Ebolaviruses are dependent on host cell proteins for almost all steps in their viral life cycle. While some cellular factors with crucial roles in the ebolavirus life cycle have been identified, many of them remain to be identified or fully characterised. This thesis focuses on the characterisation and identification of host cell interactions of the highly pathogenic Ebola virus (EBOV), probing host-virus interaction at various stages of the viral life cycle. Beginning with viral budding, the function of a recently proposed late domain motif within the EBOV matrix protein VP40 was examined using an EBOV transcription and replication-competent virus-like particle (trVLP) system. Although this motif has been suggested to interact with the endosomal sorting complex required for transport (ESCRT), we could show that this late domain motif does not contribute to EBOV budding.
While many host cell proteins have been identified so far that are important for viral budding, only a few proteins are known that are necessary for EBOV RNA synthesis. Thus, to identify host proteins that are involved in viral replication and transcription, we performed a genome-wide siRNA screen in the context of an EBOV minigenome assay. Using this approach, we identified several proteins that appear to be important for viral RNA synthesis or protein expression. Two of the most prominent hits in our screen were CAD (Carbamoyl-phosphate synthetase 2, aspartate transcarbamylase and dihydroorotase) and NXF1 (nuclear RNA export factor 1). CAD catalyses the first three steps in the de novo pyrimidine biosynthesis, while NXF1 is the main nuclear export protein for cellular mRNAs. In subsequent characterisation studies, using a range of life cycle modelling systems as well as molecular analyses, we could demonstrate that the canonical function of CAD during the pyrimidine biosynthesis is necessary for EBOV replication and transcription. In contrast to this, for NXF1 we discovered a so-far unknown function: Again, by applying different life cycle modelling alongside with molecular assays, we provided evidence that the EBOV nucleoprotein recruits NXF1 into inclusion bodies, the site of EBOV RNA synthesis, where it binds viral mRNAs to export them from these structures. Importantly, for both CAD and NXF1 we were able to recapitulate key data in the context of live EBOV infection, confirming their roles in the viral life cycle.
Both of these identified host factors are promising targets for antiviral therapies and indeed de novo pyrimidine synthesis is emerging as a possible antiviral target for a number of viruses. Similarly, as we could show NXF1 to be important in the life cycle of the highly pathogenic Junín virus, this raises the possibility that disruption of this interaction may result in broad-spectrum antiviral activity. Moreover, for an increasing number of negative-sense RNA viruses inclusion bodies as site of viral RNA synthesis are described to have a liquid organelle character. Therefore, our findings on NXF1 also provide an intriguing model to explain how negative-sense RNA viruses in general overcome this obstacle and export viral mRNAs from inclusion bodies.
Until today, more than 100 years after its first description in Italy, the highly pathogenic avian influenza virus (HPAIV) has not lost its fearsome character for wild birds, poultry and humans. On the contrary, the number of outbreaks with high casualty rates in wild birds and poultry has multiplied in recent years and cases of zoonotic infections are also increasingly reported from HPAI endemic areas. The epidemiology of these infections is complex and also involves surface water and possibly sediments of shallow standing waters, which could play a role as a vector medium and/or virus reservoir. The goal of this project was to expand current knowledge of the influence of water on the spread of AIV. As part of this project, we were able to ...
1. ...improve AIV detection methods using real time RT-PCR in terms of sensitivity and breadth of viruses detected. In addition, we succeeded in economizing the procedure so that fewer resources are required and results are obtained faster (publication I: [173]).
2. ...develop an ultrafiltration-based enrichment method for AIV from surface water and evaluate it with field samples from HPAI outbreak areas in wild bird habitats (Wadden Sea coast of Schleswig-Holstein) and previously unaffected regions (Antarctic Weddell Sea) (publication II: [174]). Furthermore, protocols for testing different environmental sample matrices for AIV screening were tested and compared to results of passive monitoring by dabbing diseased or dead wild birds. AIV was detected in more than half (61%) of 44 water samples. We received additional sediment samples from 36 of the 44 water samples. In 18 of 36 of the sediments tested, as well as in 4.16% of 1705 fecal samples tested AIV was detected. However, the studies of the environmental samples mostly yielded only generic AIV detections, with viral loads in the range of the detection limit. This massively hampered further investigations for sub- and pathotyping. In contrast, 79.41% of 68 samples from passive monitoring showed high to very high HPAIV viral loads which also allowed sub- and pathotyping.
3. ...demonstrate in animal experiments that even very low titers (0.1 TCID50 ml-1) of HPAI viral infectivity in water can induce productive infection in susceptible but clinically largely resistant mallard ducks (publication III: [175]). Furthermore, we were able to develop evidence that there is a difference in virus spread that depends on the type of (contaminated) water source. This means that infections on poultry farms with inverted or nipple drinkers may follow a different course than infections in the wild, which are mediated via larger surface waters.
Overall, the results of this project highlight the important role of surface and drinking water, as well as aquatic sediments, in the spread of AIV. The methods developed here for AIV detection extend the possibilities for surveillance of AIV infections; however, passive remains superior to active surveillance of HPAIV infections in several aspects. Examination of various environmental samples did not yield a significant advantage in terms of an early warning system that would indicate the presence or spread of HPAIV in wild bird habitats prior to the occurrence of lethal infections in wild birds.
The highly oncogenic alphaherpesvirus Marek’s disease virus (MDV) causes immense economic losses in the poultry industry. The main targets of in vivo MDV infection are primary B and T lymphocytes. The cytolytic infection of B cells leads to depletion of lymphoid cells results in severe immunosuppression. Infected B cells recruit and activate T cells. The close interaction between B cells and T cells enables efficient intercellular transfer of MDV. During infection of T cells, the virus enters a latent state. Infection of T cells can lead to transformation of these cells and formation of lymphoma, which manifest in various visceral organs. This study aimed at the characterization of the proteomes of MDV-infected lymphocytes during the lytic and latent phases of infection.
Previous in vitro studies concerning the MDV pathogenesis and host-virus interactions have been mainly conducted with primary fibroblasts or kidney cells, due to the short lifespan of primary lymphocytes in cell culture. Recently, a cultivation system has been established that extents the lifespan of primary lymphocytes through the addition of cytokines to the growth medium. This allowed the infection of B cells in vitro and to conduct quantitative proteomic analysis of primary lymphocytes. Infection with GFP labelled virus recombinants allowed the isolation of infected cells by FACS for the proteome analysis of MDV infected B lymphocytes. An efficient quantitative proteomic workflow was developed, which consisted of a filter-aided (FASP) digest of the extracted proteins, followed by differential dimethyl chemical labeling of the peptides for quantitative evaluation prior to LC-MALDI TOF/TOF mass spectrometry. Only few alterations of the protein and transcript expression profiles were observed after infection of primary B cells with the very virulent RB-1B and the live-attenuated vaccine strain CVI988/Rispens. Relevant changes in relative protein levels were found for only twelve and six interesting host proteins after RB1B and CVI988 infection, respectively. However, the regulations were confirmed by inspection of the spectra from all experiments. The identified candidates play a role in immune response, translation and inflammatory response.
To confirm the potential infection markers, RNA-seq analysis of three biological replicates of each RB-1B -, CVI988- and mock-infected B cells was performed. Eighty expressed MDV transcripts could be identified, which were associated with lytic infection. The same MDV proteins were identified after infection with RB-1B or CVI988. However, transcriptome and proteome analysis of MDV-infected primary B cells showed only poor correlation. This indicates that the changes in protein expression profiles are mostly due to posttranscriptional events. Infection marker candidates were identified by the RNA-seq analysis, for which the gene expression was altered by MDV infection. Although almost 12,000 transcripts were identified, only few transcript levels changed markedly after MDV infection. The biological processes immune response, apoptotic process, signal transduction, cell migration and response to virus were enriched after MDV infection. The RNA-seq results confirm the observation that alterations of protein levels early after MDV infection are rare.
Most notably, MDV induces transformation of lymphocytes leading to malignant T-cell lymphomas in visceral organs with mortalities of up to 100 %. While several factors involved in MDV tumorigenesis have been identified, the transformation process is not fully understood. Therefore, we set out to fill this knowledge gap using proteome analysis of transformed T-cells ex vivo. In addition, the role of the viral telomerase RNA during transformation was assessed by comparison of tumors that had formed after infection with WT-virus or a telomerase RNA negative mutant. A major obstacle for tumor proteome analyses is the preparation of sufficient amounts of homogenous tumor tissue, as tumors appear with a dispersed morphology in the affected organs. The quantitation of cell types within the tumors indicated varying portions of hepatocytes, connective tissue, and CD3+ lymphocytes even with the same virus strain in different animals. However, the ∆vTR-induced tumors contained lower levels of hepatocytes and higher levels of CD3+ lymphocytes compared to WT tumors in all tested tumor samples. Thus, ∆vTR tumors were chosen for determination of differences in protein expression profiles of tumors and naïve T cells for their lower content of liver cells. We developed a workflow for the proteome analysis of T cell tumors from livers of MDV-infected chickens. Samples included laser capture micro-dissected tissue cuts from tumors and surrounding healthy liver tissue as well as naïve T-cells prepared from thymus. To enable quantitative proteome analysis, samples were digested using the FASP protocol and peptides were isotope-coded by differential dimethyl labeling. To improve proteome analysis peptides were fractionated by preparative isoelectric focusing prior to nano-HPLC MALDI/TOF-TOF mass- spectrometric analysis.
Proteomic analyses of LCM dissected ΔvTR tumor compared to naïve T cells, the main targets of transformation, identified nineteen potential transformation markers but again only minor changes in relative levels were observed. Several of the identified markers could also be verified by RT-qPCR on transcript level. The identified transformation candidates were associated with nucleosome assembly, regulation of transcription, inflammatory response, immune response and oxidation-reduction process.
However, further functional analyses are necessary to fully elucidate the role of the identified markers during MDV infection and transformation.
Die Afrikanische Schweinepest (ASP) ist eine Viruserkrankung, die Mitglieder der Suidae-Familie wie Buschschweine, Warzenschweine, Hausschweine und Wildschweine befällt. Das Virus wird durch direkten Kontakt zwischen infizierten und naiven Tieren, durch Zecken der Gattung Ornithodoros oder durch Kontakt mit kontaminiertem Material übertragen. Während die Krankheit bei Warzenschweinen und Buschschweinen im Allgemeinen asymptomatisch verläuft, verursacht die ASP eine hohe Mortalität bei Hausschweinen und Wildschweinen. Daher ist die jüngste Ausbreitung von ASP in Europa eine ernste Bedrohung für die Schweinehaltung in der EU. Bis heute ist keine wirksame Behandlung oder Impfung verfügbar. Und es liegen nur wenige Informationen über Virus-Wirt-Wechselwirkungen vor, die als Grundlage für die Etablierung antiviraler Strategien verwendet werden könnten.
Das Virus der afrikanischen Schweinepest (African swine fever virus, ASFV) ist der einzige bekannte Vertreter der Familie der Asfarviridae. Das DNA-Genom des ASFV kodiert für über 150 Gene. Über die Expressionsprodukte ist wenig bekannt, nur wenige virale Proteine sind bisher funktionell charakterisiert. Die Morphogenese von ASFV ist sehr komplex. So entstehen neben den zweifach umhüllten reifen extrazellulären Virionen auch einfach umhüllte intrazelluläre Partikel, die die die Präparation reiner extrazellulären Virionen erschweren.
In früheren in vitro Studien wurde die Zusammensetzung der extrazellulären Viruspartikel mittels 2D-Gelelektrophorese analysiert. Die Reinigung erfolgte über ein im Jahre 1985 veröffentlichtes Reinigungsprotokoll, welches auf einer Percolldichtegradientenzentrifugation und einer Gelchromatographie basierte. Das Protokoll wurde für die Reinigung des auf Vero-zellen adaptierten Virusstamm Ba-71V etabliert. In einer frühen MS Studie wurden 54 Proteine in ASFV Partikeln detektiert, 15 davon Wirtsproteine. Der Einbau von Aktin, α-Tubulin und β-Tubulin ins Virion konnte ebenfalls bestätigt werden. Systematische massenspektrometrische Untersuchungen zur Charakterisierung des Proteoms der ASF Virionen lagen zu Beginn der vorliegenden Dissertation nicht vor, erst während der Anfertigung des Manuskripts wurde eine solche Studie durch Alejo et al. veröffentlicht.
Im Rahmen dieser Arbeit wurde ein auf einer Dichtegradientenzentrifugation ohne nachfolgende Gelchromatographie beruhendes Reinigungsprotokoll entwickelt und die Zusammensetzung reifer ASF Viruspartikel mittels MALDI-TOF/TOF Massenspektrometrie analysiert. Zur Anzucht einer GFP-positiven ASFV OUR T88/3 Mutante wurde die vom Wildschwein abstammende Zelllinie WSL-HP verwendet. Wesentliche Schritte der Reinigung waren eine niedertourige Zentrifugation zur Entfernung zellulärer Verunreinigungen, gefolgt von einer Sedimentation des Virus durch ein Saccharosekissen und einem Proteaseverdau. Final wurde die Präparation über einen selbstgenerierenden Optiprep™ Dichtegradienten gereinigt. Die Titerausbeute lag zwischen 30 und 70 %, die spezifische Infektiosität bei 2,4 x 109 TCID50/mg. Elektronenmikroskopische Untersuchungen zeigten, dass die Präparation zwar Virionen enthielt, aber auch, dass die Fixierung mit Glutaraldehyd die Stabilität der Virionen beeinträchtigt.
In der massenspektrometrischen Analyse wurden 29 der 33 bekannten ASFV Strukturproteine bestätigt. Von den neu identifizierten Strukturproteinen konnten vier (pK145R, pC129R, pE146L und pI73R) in allen drei Replikaten und sechs in zwei von drei Replikaten (p5, CP123L, CP312R, E184L, M1249L und M2248R) bestätigt werden. Ein weiteres bis dato nicht charakterisiertes Protein, p285L, konnte als mögliches neues Strukturprotein identifiziert werden. 152 Wirtsproteine wurden im Virion detektiert, darunter hauptsächlich Membranproteine oder Proteine des Zytoskeletts. Daneben wurde eine Reihe an phospholipidbindenden Proteine gefunden. Unter den identifizierten Proteinen waren fünf aus dem glatten ER und einige Vertreter der Hitzeschockproteine.
Im zweiten Teil dieser Arbeit sollte das intrazelluläre Proteom des ASFV identifiziert werden.
Für diese Untersuchungen wurden drei empfänglichen Zelllinien verwendet, die vom Wildschwein abstammenden Linie WSL-HP, Vero Zellen, die in der Vergangenheit für viele Studien herangezogen wurde und die menschliche Linie HEK-293, die aus einem weiteren nicht empfänglichen Wirt stammt.
Der in dieser Studie verwendete Virusstamm ASFV OUR T88/3 besitzt 157 ORFs. In früheren Studien konnte die Existenz eines Proteins für 44 ORFs bestätigt werden. Für weitere 69 ORFs wurden Transkripte, nicht aber die korrespondierenden Proteine, beschrieben, sodass für 44 ORFs kein Nachweis der Expression vorlag.
In der massenspektrometrischen Analyse wurden je Wirtszelle rund 1000 Proteine identifiziert. Insgesamt belief sich die Zahl der identifizierten ASFV Proteine auf 94, davon 88 in WSL-HP, 83 in Vero und 57 in HEK-293 Zellen. 54 ASFV Proteine wurden in allen drei Zelllinien detektiert. Für 34 der identifizierten ASFV Proteine war bisher nur die Existenz des Transkripts beschrieben, für 23 weitere weder die Existenz eines Proteins noch eines Transkripts. Für 44 der 94 identifizierten Proteine wurde das N-terminales Peptid detektiert. Bei fünf der MGF-110 Proteinen (1L, 2L, 4L, 5L und 14L) und den Proteinen pI329L und pCP123L wurde die Abspaltung der vorhergesagten Signalsequenz experimentell bestätigt.
Die MS Analysen wurden unter Verwendung des emPAI auch quantitativ ausgewertet.
Die geringe Zahl detektierter ASFV Proteine in HEK-293 Zellen korrelierte mit dem geringeren Anteil an ASFV Proteinen im Gesamtproteingehalt der Zelle (6,3 Mol%). Allerdings wurden einige Proteine in HEK-293 Zellen ähnlich stark oder sogar stärker exprimiert als in Vero bzw. WSL-HP Zellen. Die Abundanz einzelner ASFV Proteine variierte in den verschiedenen Zelllinien. Einige wurden jedoch durchgehend stark exprimiert wie z.B. das Strukturprotein p11.5. Einige bisher nicht charakterisierte Proteine, wie z.B. pK145R, pI73R und pC129R, wurden überraschenderweise ebenfalls in allen Zellen stark exprimiert und sind somit möglicherweise Träger wichtiger viraler Funktionen, die weiter untersucht werden sollten.