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  • About
  • The Global ETD Search service is a free service for researchers to find electronic theses and dissertations. This service is provided by the Networked Digital Library of Theses and Dissertations.
    Our metadata is collected from universities around the world. If you manage a university/consortium/country archive and want to be added, details can be found on the NDLTD website.
1

Die Rolle des Proteasoms für die Replikation des humanen Cytomegalievirus

Kaspari, Marion 15 September 2009 (has links)
Das Humane Cytomegalievirus (HCMV) ist ein ubiquitäres Pathogen, welches den Metabolismus der Wirtszelle auf vielfältige Weise manipuliert, um seine eigene Vermehrung zu begünstigen. In der vorliegenden Arbeit konnte nachgewiesen werden, dass auch das Ubiquitin-Proteasom-System in die HCMV-Replikation involviert ist. So konnte zunächst gezeigt werden, dass die Chymotrypsin-ähnliche (CT-L) Aktivität des konstitutiven Proteasoms in HCMV-infizierten Zellen signifikant erhöht ist. Wurde die CT-L Proteasomaktivität durch Proteasominhibitoren (PI) blockiert, so hatte dies die Hemmung der HCMV-Replikation zur Folge. Die Charakterisierung des Einflusses von PI auf die virale Proteinexpression ergab, dass bei niedriger MOI (MOI 0.1) deutlich verringerte Mengen der sehr frühen Proteine vorlagen, dieser Effekt jedoch bei hoher MOI (ab MOI 1) aufgehoben war. Die Expression früher Proteine war MOI-unabhängig reduziert. Hingegen war die Expression der späten Proteine MOI-unabhängig vollständig unterdrückt. Studien mit dem Nukleosidanalogon BrdU ergaben zudem, dass die de novo Synthese viraler DNA blockiert war. Um erste Hinweise auf den Wirkungsmechanismus von PI zu erhalten, wurde untersucht, ob der Transkriptionsfaktor NF-kappaB oder zelluläre Transkriptionsrepressoren wie z.B. hDaxx am anti-HCMV-Effekt beteiligt sind. Durch die Charakterisierung einer Virusmutante mit Deletion der NF-kappaB-Bindestellen im MIE-Enhancer/Promotor konnte gezeigt werden, dass der antivirale Effekt von PI nicht auf der Hemmung der Aktivierung von NF-kappaB beruht. Experimente mit hDaxx-knockdown Zellen ergaben hingegen, dass die Stabilisierung des Transkriptionsrepressors hDaxx partiell zum anti-HCMV-Effekt von PI beiträgt. Darüber hinaus müssen jedoch weitere virale oder zelluläre Zielproteine existieren, deren Beeinflussung durch PI kritisch für die Virusreplikation ist. Zusammenfassend stellt das Proteasom somit einen neu identifizierten potentiellen Angriffspunkt für die anti-HCMV-Therapie dar. / The Human Cytomegalovirus (HCMV) is a ubiquitous pathogen that manipulates many aspects of the host cell metabolism to enhance viral replication. This work demonstrates that the ubiquitin-proteasome system is also involved in HCMV replication. First of all, the chymotrypsin-like (CT-L) activity of the constitutive proteasome was significantly increased in HCMV infected cells. In the presence of proteasome inhibitors (PI) viral replication was efficiently blocked. Characterisation of the influence of PI on viral protein expression showed that immediate early protein expression was clearly reduced at low MOI (MOI 0.1); however, this effect was abolished at high MOI (starting from MOI 1). Expression of early proteins was significantly decreased independently of the MOI used for infection. In contrast, late protein expression was completely suppressed at both low and high MOI. Additionally, studies using the nucleoside analogue BrdU showed that PI block the de novo synthesis of viral DNA. In order to gain insight into the working mechanism of PI the involvement of the transcription factor NF-kappaB and cellular repressors of transcription (e.g. hDaxx) in the antiviral effect of PI was examined. Studies using a mutant virus carrying deletions of the NF-kappaB binding sites in the MIE-enhancer/promoter revealed that the anti-HCMV effect of PI is not due to inhibition of NF-kappaB activation. Analyses using hDaxx-knockdown cells showed that stabilisation of the transcriptional repressor hDaxx partially contributes to the antiviral effect of PI. However, the existence of additional viral or cellular target proteins of PI is very likely. In summary, the proteasome thus represents a newly identified and promising target for anti-HCMV therapy.
2

Investigating the role of human cytomegalovirus protein LUNA in regulating viral gene expression during latency

Lau, Jonathan January 2018 (has links)
Human cytomegalovirus (HCMV) is a widespread human herpesvirus pathogen and prototypical member of the β-herpesvirus subfamily. Like all herpesviruses, the virus establishes a lifelong latent infection following host exposure, which has the potential to reactivate periodically and contribute to recurrent disease processes. In individuals with weak or compromised immune systems, such reactivation can lead to profound pathology. Understanding how latent infections are maintained is important for uncovering how HCMV causes disease. The study of viral genes that are expressed during latent infection grants insight into how latency is regulated and how it could be therapeutically targeted. To that end, this project has sought to evaluate the functional significance of one such viral gene termed LUNA in the context of latency. In models of experimental latent infection based on primary myeloid cells, levels of viral gene transcription were found to be significantly reduced following infection with LUNA deletion mutant viruses, consistent with corresponding observable changes in post-translational histone modifications over the viral promoters of latency-associated genes. Additionally, using luciferase reporter systems, latency-associated viral gene promoters became activated in response to the expression of wild-type LUNA. Together, these findings argue for a role of LUNA in regulating viral gene expression during latent HCMV infection. One possible mechanism by which LUNA may fulfil its role is by targeting cellular ND10 structures, known intrinsic inhibitors of herpesvirus gene expression, for disruption. In support of this, latently infected cells were found to be devoid of ND10, a phenotype that was recapitulated by the direct expression of wild-type LUNA. Furthermore, mutation studies confirmed the identification of a novel deSUMOylase activity encoded by LUNA that was responsible for mediating ND10 disruption. Use of a catalytically inactive LUNA mutant in transcriptional analyses of latent infection also generated similar results as with the LUNA deletion viruses. Overall, these data support the hypothesis that LUNA serves as an important regulator of viral gene expression during latency, which is likely linked to its ability to target ND10 structures for disruption, thus raising the possibility that inhibition of deSUMOylation may serve as a novel therapeutic strategy to target latent HCMV infection.
3

Rôle des corps nucléaires PML et des chaperons de l’histone H3.3 dans la chromatinisation du génome du virus Herpès Simplex 1 pendant la latence / Role of PML Nuclear Bodies and H3.3 chaperones in Herpes Simplex Virus 1 genomes chromatinization during latency

Cohen, Camille 20 October 2017 (has links)
L'établissement de latence du virus de l'Herpès simplex 1 (HSV1) est contrôlé par les corps nucléaires PML (PML-NBs) mais leur implication exacte reste encore confuse. Une des caractéristiques majeures de la latence du virus est l'interaction entre le génome viral et les PML-NBs formant des structures nommées viral DNA-containing PML-NBs (vDCP-NBs). L'utilisation d'un modèle d'infection de fibroblastes primaires humains, qui reproduit la formation des vDCP-NBs, combinée à une approche par immuno-FISH, a permis de montrer que les vDCP-NBs contiennent l'histone H3.3 et ses chaperons, les complexes DAXX-ATRX et HIRA. La protéine HIRA a été également observé au sein des vDCP-NBs dans les neurones des ganglions trijumeaux de souris infectées par HSV1. Des expériences de ChIP-qPCR dans des cellules exprimant H3.3 ou H3.1 tagguées, nous a permis de déterminer que le génome viral est spécifiquement chromatinisé avec l'histone H3.3. La déplétion d'une seule protéine des complexes chaperons de H3.3 affecte légèrement l'incorporation de H3.3 dans les génomes viraux latents. Au contraire, l'absence de PML diminue significativement la chromatinisation H3.3 du génome HSV-1 latent sans remplacement par H3.1. Cette étude démontre une régulation épigénétique du génomes HSV1 latent par une chromatinisation dépendante de H3.3 impliquant les complexes chaperons DAXX-ATRX et HIRA. De plus, cette étude révèle un rôle majeur des PML-NBs dans la chromatinisation H3.3 des génomes HSV1 latent / Herpes simplex virus 1 (HSV-1) latency establishment is tightly controlled by PML nuclear bodies (PML-NBs) although their exact implication is still elusive. A hallmark of HSV-1 latency is the interaction between latent viral genomes and PML-NBs leading to the formation of viral DNA-containing PML-NBs (vDCP-NBs). Using a replication defective HSV-1 infected human primary fibroblast model reproducing the formation of vDCP-NBs, combined with an IF-FISH approach developed to detect latent HSV-1, we show that vDCP-NBs contain both histone H3.3 and its chaperone complexes, i.e. the DAXX/ATRX and the HIRA complex. HIRA was also detected co-localizing with vDCP-NBs present in trigeminal ganglia neurons from HSV-1 infected WT mice. ChIP-qPCR performed on fibroblasts stably expressing tagged H3.3 or H3.1 show that latent HSV1 genomes are chromatinized almost exclusively with H3.3. Depletion of single proteins from the H3.3 chaperone complexes only mildly affects H3.3 deposition on the latent HSV1 genome. In contrast, absence of PML significantly impacts on the chromatinization of the latent genomes with H3.3 without replacement with H3.1. Consequently, the study demonstrates a specific epigenetic regulation of latent HSV-1 through an H3.3-dependent HSV-1 chromatinization involving both H3.3 chaperones DAXX/ATRX and HIRA complexes. Additionally, the study reveals that PML-NBs are major actors of the latent HSV-1 H3.3 chromatinization through a PML-NBs/histone H3.3/H3.3 chaperones axis

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