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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.
11

Funktionelle Charakterisierung des 26S Proteasoms unter Nutzung in vitro generierter Ubiquitin-konjugierter Substrate

Helfrich, Annett 19 January 2007 (has links)
Das Ubiquitin-Proteasom-System gewährleistet in eukaryontischen Zellen den regulierten Abbau der meisten intrazellulären Proteine und ist mit der Generierung von T-Zell-Epitopen grundlegend an der Immunantwort beteiligt. Wegen der Komplexität des Systems stand ein in vitro Verfahren zur 26S proteasomalen Prozessierung eines ubiquitinierten Modellsubstrates erstmals im Jahr 2000 zur Verfügung. In der vorliegenden Arbeit gelang es, diese von Thrower et al. publizierte Methode hinsichtlich einer größeren Proteinquantität zu optimieren und auf die in vitro Ubiquitinierung und Degradation von Proteinen anzuwenden, deren proteasomaler Abbau unter dem Aspekt der Epitopgenerierung immunologisch von besonderer Relevanz ist. Die biochemische und massenspektrometrische Analyse der 26S proteasomalen Degradation von penta-ubiquitinierten Derivaten des tumorassoziierten Glykoproteins Mucin1 zeigte erstens, dass die Prozessierung der Substrate zu einem 26S proteasomalen gating-Effekt führt, der von Substratbindung und -deubiquitinierung sowie von ATP-Hydrolyse abhängig ist. Zweitens ließ sich als Folge der Substratprozessierung eine Instabilisierung des 26S Proteasoms beobachten, die auf einen Assoziations-Dissoziations-Zyklus hindeutet. Drittens ergab die Untersuchung zum Einfluss des Proteasom-Aktivators PA28 auf den Abbau eines Mucin1-Polyepitops, dass PA28 eine erhöhte Quantität an 26S proteasomal generiertem Epitop verursacht. Viertens war unter Zuhilfenahme des Inhibitors clasto-Lactacystin und anhand der ubiquitinierten Mucin1-Derivate erstmals für ubiquitinierte Substrate nachweisbar, dass die proteasomale katalytische Untereinheit beta5 für die Proteindegradation durch den 26S-Komplex nicht essentiell ist. Das in der vorliegenden Arbeit etablierte Abbausystem hat zudem sein Potential unter Beweis gestellt, als ein in vivo-nahes in vitro Testsystem zu fungieren, um die Wirksamkeit von Proteasom-Inhibitoren sowie die Prozessierbarkeit von Polyepitop-Vakzinen zu bewerten. / The ubiquitin-proteasome pathway plays a major role in cellular protein degradation. By generating T-cell epitopes it contributes essentially to the immune response. The complexity of the system impeded the establishment of an in vitro approach that would make a detailed analysis of the protein degradation by the 26S proteasome possible. Finally, in 2000 Thrower et al. published an in vitro method enabling the synthesis and degradation of an ubiquitinated model substrate by the 26S proteasome. In the study presented here the approach of Thrower et al. was improved by scaling up and by the synthesis of substrates the degradation of which by the 26S proteasome is of great importance immunologically, mainly in regard to the generation of T-cell epitopes. In vitro synthesised penta-ubiquitinated versions of the tumor-associated glycoprotein mucin1 were processed by purified 26S proteasomes. The analysis of substrate degradation and product generation by biochemistry and mass spectrometry showed firstly, that substrate processing initiated a 26S proteasomal gating effect which depends on substrate binding to the proteasome, deubiquitination and proteasomal ATP-hydrolysis. Secondly, a disassembly of the 26S proteasome was observed following substrate processing which suggests a regulated association-dissociation cycle of the proteasome. Thirdly, supplementation of the degradation approach with the proteasome activator PA28 led to a higher quantity of epitope generated by the 26S proteasome out of a mucin1 polyepitope string. Fourthly, use of the proteasome inhibitor clasto-Lactacystin revealed, for the first time, that the catalytic proteasome subunit beta5 is not essential for the degradation of ubiquitinated protein substrates by the 26S proteasome. In addition, the in vitro approach established in the presented study has shown its potential to function as an in vivo-like system which helps to assess proteasome inhibitors and potential polyepitope vaccines.
12

The Epigenetic Regulation of Cytokine Inducible Mammalian Transcription by the 26S Proteasome

Koues, Olivia I 08 July 2009 (has links)
It is evident that components of the 26S proteasome function beyond protein degradation in the regulation of transcription. Studies in yeast implicate the 26S proteasome, specifically the 19S cap, in the epigenetic regulation of transcription. Saccharomyces cerevisiae 19S ATPases remodel chromatin by facilitating histone acetylation and methylation. However, it is unclear if the 19S ATPases play similar roles in mammalian cells. We previously found that the 19S ATPase Sug1 positively regulates transcription of the critical inflammatory gene MHC-II and that the MHC-II promoter fails to efficiently bind transcription factors upon Sug1 knockdown. MHC-II transcription is regulated by the critical coactivator CIITA. We now find that Sug1 is crucial for regulating histone H3 acetylation at the cytokine inducible MHC-II and CIITA promoters. Histone H3 acetylation is dramatically decreased upon Sug1 knockdown with a preferential loss occurring at lysine 18. Research in yeast indicates that the ortholog of Sug1, Rpt6, acts as a mediator between the activating modifications of histone H2B ubiquitination and H3 methylation. Therefore, we characterized the role the 19S proteasome plays in regulating additional activating modifications. As with acetylation, Sug1 is necessary for proper histone H3K4 and H3R17 methylation at cytokine inducible promoters. In the absence of Sug1, histone H3K4me3 and H3R17me2 are substantially inhibited. Our observation that the loss of Sug1 has no significant effect on H3K36me3 implies that Sug1’s regulation of histone modifications is localized to promoter regions as H3K4me3 but not H3K36me3 is clustered around gene promoters. Here we show that multiple H3K4 histone methyltransferase subunits bind constitutively to the inducible MHC-II and CIITA promoters and that over-expressing one subunit significantly enhances promoter activity. Furthermore, we identified a critical subunit of the H3K4 methyltransferase complex that binds multiple histone modifying enzymes, but fails to bind the CIITA promoter in the absence of Sug1, implicating Sug1 in recruiting multi-enzyme complexes responsible for initiating transcription. Finally, Sug1 knockdown maintains gene silencing as elevated levels of H3K27 trimethylation are observed upon Sug1 knockdown. Together these studies strongly implicate the 19S proteasome in mediating the initial reorganization events to relax the repressive chromatin structure surrounding inducible genes.
13

Roles of the Ubiquitin-Proteasome System and Mono-ubiquitination in Regulating MHC class II Transcription

Bhat, Kavita Purnanda 12 February 2010 (has links)
Major Histocompatibility Complex (MHC) class II molecules are indispensable arms of the im-mune system that present extracellular antigens to CD4+T cells and initiate the adaptive immune response. MHC class II expression requires recruitment of a master regulator, the class II trans-activator (CIITA). How this master transcriptional regulator is recruited, stabilized and degraded is unknown. The 26S proteasome, a master regulator of protein degradation, is a multi-subunit complex composed of a 20S core particle capped on one or both ends by 19S regulatory particles. Previous findings have linked CIITA and MHC class II transcription to the ubiquitin proteasome system (UPS) as mono-ubiquitination of CIITA increases its transactivity whereas poly-ubiquitination targets CIITA for degradation. Increasing evidence indicates individual ATPase subunits of the 19S regulator play non-proteolytic roles in transcriptional regulation and histone modification. Our initial observations indicate proteasome inhibition decreases CIITA transac-tivity and MHC class II expression without affecting CIITA expression levels. Following cyto-kine stimulation, the 19S ATPase Sug1 associates with CIITA and with the MHC class II enhan-ceosome complex. Absence of Sug1 reduces promoter recruitment of CIITA and proteasome inhibition fails to restore CIITA binding, indicating Sug1 is required for CIITA mediated MHC class II expression. Furthermore, we identify a novel N-terminal 19S ATPase binding domain (ABD) within CIITA. The ABD of CIITA lies within the Proline/Serine/Threonine (P/S/T) re-gion of CIITA and encompasses a majority of the CIITA degron sequence. Absence of the ABD increases CIITA half-life, but blocks MHC class II surface expression, indicating that CIITA requires interaction with the 19S ATPases for both its deployment and destruction. Finally, we identify three degron proximal lysine residues, lysines (K): K315, K330 and K333, and a phosphorylation site, serine (S), S280, located within the CIITA degron, that regulate CIITA ubiquitination, stability and MHC class II expression. These are the first lysine residues identified as sites of CIITA ubiquitination that are essential for MHC class II expression. These observations increase our understanding of the role of the UPS in modulating CIITA mediated MHC class II transcription and will facilitate the development of novel therapies involving manipulation of MHC class II gene expression.
14

The 26S Proteasome and Histone Modifying Enzymes Regulate

Truax, Agnieszka D 07 May 2011 (has links)
Major Histocompatibility Complex Class-II (MHC-II) molecules are critical regulators of adaptive immunity that present extracellular antigens required to activate CD4+ T cells. MHC-II are regulated at the level of transcription by master regulator, the Class II Transactivator (CIITA), whose association with the MHC-II promoter is necessary to initiate transcription. Recently, much research focused on novel mechanisms of transcriptional regulation of critical genes like MHC-II and CIITA; findings that the macromolecular complex of the 26S-proteasome is involved in transcription have been perhaps the most exciting as they impart novel functions to a well studied system. Proteasome is a multi-subunit complex composed of a 20S-core particle capped by a 19S-regulatory particle. The 19S contains six ATPases which are required for transcription initiation and elongation. We demonstrate that 19S ATPase-S6a inducibly associates with CIITA promoters. Decreased expression of S6a negatively impacts recruitment of the transcription factors STAT-1 and IRF-1 to the CIITA due to significant loss in histone H3 and H4 acetylation. S6a is robustly recruited to CIITA coding regions, where S6a binding coordinates with that of RNA polymerase II. RNAi mediated S6a knockdown significantly diminishes recruitment of Pol II and P-TEF-b components to CIITA coding regions, indicating S6a plays important roles in transcriptional elongation. Our research is focused on the ways in which accessibility to and transcription of DNA is regulated. While cancers are frequently linked to dysregulated gene expression, contribution of epigenetics to cancers remains unknown. To achieve metastatic ability, tumors alter gene expression to escape host immunosurveilance. MHC-II and CIITA expression are significantly downregulated in highly metastatic MDA-MB-435 breast cancer cells. This suppression correlates with elevated levels of the silencing modification H3K27me3 at CIITA and a significant reduction in Pol II recruitment. We observe elevated binding of the histone methyltransferase to CIITApIV and demonstrate this enzyme is a master regulator of CIITA gene expression. EZH2 knockdown results in significant increases in CIITA and MHC-II transcript levels in metastatic cells. In sum, transcriptional regulation by the 19S-proteasome and histone modifying enzymes represents novel mechanisms of control of mammalian gene expression and present novel therapeutic targets for manipulating MHC expression in disease.
15

The Epigenetic Regulation of Cytokine Inducible Mammalian Transcription by the 26S Proteasome

Koues, Olivia I 08 July 2009 (has links)
It is evident that components of the 26S proteasome function beyond protein degradation in the regulation of transcription. Studies in yeast implicate the 26S proteasome, specifically the 19S cap, in the epigenetic regulation of transcription. Saccharomyces cerevisiae 19S ATPases remodel chromatin by facilitating histone acetylation and methylation. However, it is unclear if the 19S ATPases play similar roles in mammalian cells. We previously found that the 19S ATPase Sug1 positively regulates transcription of the critical inflammatory gene MHC-II and that the MHC-II promoter fails to efficiently bind transcription factors upon Sug1 knockdown. MHC-II transcription is regulated by the critical coactivator CIITA. We now find that Sug1 is crucial for regulating histone H3 acetylation at the cytokine inducible MHC-II and CIITA promoters. Histone H3 acetylation is dramatically decreased upon Sug1 knockdown with a preferential loss occurring at lysine 18. Research in yeast indicates that the ortholog of Sug1, Rpt6, acts as a mediator between the activating modifications of histone H2B ubiquitination and H3 methylation. Therefore, we characterized the role the 19S proteasome plays in regulating additional activating modifications. As with acetylation, Sug1 is necessary for proper histone H3K4 and H3R17 methylation at cytokine inducible promoters. In the absence of Sug1, histone H3K4me3 and H3R17me2 are substantially inhibited. Our observation that the loss of Sug1 has no significant effect on H3K36me3 implies that Sug1’s regulation of histone modifications is localized to promoter regions as H3K4me3 but not H3K36me3 is clustered around gene promoters. Here we show that multiple H3K4 histone methyltransferase subunits bind constitutively to the inducible MHC-II and CIITA promoters and that over-expressing one subunit significantly enhances promoter activity. Furthermore, we identified a critical subunit of the H3K4 methyltransferase complex that binds multiple histone modifying enzymes, but fails to bind the CIITA promoter in the absence of Sug1, implicating Sug1 in recruiting multi-enzyme complexes responsible for initiating transcription. Finally, Sug1 knockdown maintains gene silencing as elevated levels of H3K27 trimethylation are observed upon Sug1 knockdown. Together these studies strongly implicate the 19S proteasome in mediating the initial reorganization events to relax the repressive chromatin structure surrounding inducible genes.
16

Role of 26S Proteasome and Regulator of G-Protein Signaling 10 in Regulating Neuroinflammation in the Central Nervous System

Maganti, Nagini 17 December 2015 (has links)
Major histocompatibility complex molecules (MHCII) are cell surface glycoproteins that present extracellular antigens to CD4+ T lymphocytes and initiate adaptive immune responses. Apart from their protective role, overexpression of MHCII contributes to autoimmune disorders where the immune system attacks our own tissues. Autoimmune diseases are characterized by self-reactive responses to autoantigens, promoting tissue damage, inflammation mediated by proinflammatory cytokines, autoreactive lymphocytes, and autoantibodies. MHCII molecules are tightly regulated at the level of transcription by Class II transactivator (CIITA). CIITA associates with an enhanceosome complex at MHCII promoters and regulates the expression of MHCII. It is thus crucial to understand the regulation of CIITA expression in order to regulate MHCII in autoimmune diseases. Our lab has shown that the 19S ATPases of the 26S proteasome associate with MHCII and CIITA promoters and play important roles in gene transcription, regulate covalent modifications to histones, and are involved in the assembly of activator complexes in mammalian cells. The mechanisms by which the proteasome influences transcription remain unclear. Here, we define novel roles of the 19S ATPases Sug1, S7, and S6a in expression of CIITApIV genes. These ATPases are recruited to CIITApIV promoters and coding regions, interact with the elongation factor PTEFb, and with Ser5 phosphorylated RNA Pol II. Both the generation of CIITApIV transcripts and efficient recruitment of RNA Pol II to CIITApIV are negatively impacted by knockdown of 19S ATPases. Alternatively, inflammation is also suppressed via the Regulator of G-protein signaling 10 (RGS10) in microglial cells which express high levels of RGS10 and promote homeostasis in the central nervous system. However, chronic activation of microglial cells leads to release of cytokines which cause neuroinflammation. Our investigation of roles played by RGS10 in chronically activated microglial cells indicates that RGS10 binds to promoters of IL-1β, and TNF-α and regulates these genes, while the molecular mechanism remains to be investigated. Together, our observations indicate roles for the UPS in modulating gene expression and for RGS10 in regulating proinflammatory cytokines in microglial cells, each of which provides novel therapeutic targets to combat inflammation in autoimmune and neurodegenerative diseases.
17

Die Funktionen des COP9 Signalosoms und des assoziierten USP15 im Ubiquitin-Proteasomsystem

Hetfeld, Bettina Kathrin Johanna 19 July 2006 (has links)
Das COP9 Signalosom (CSN) ist ein hoch konservierter Proteinkomplex, der an der Regulation des Ubiquitin (Ub)-26S Proteasomsystems (UPS) beteiligt ist. Das UPS ist die wichtigste Proteolysemaschinerie in eukaryotischen Zellen, bei der Proteine über eine dreistufige Kaskade der Enzyme E1-E3 mit einer Ub-Kette markiert werden, die als Erkennungssignal für den Abbau durch das 26S Proteasom dient. Das CSN gilt als Paralog zum Lid, einem Subkomplex des 26S Proteasoms, und interagiert mit einer Vielzahl von Proteinen, unter anderem mit E3-Ligasen und Kinasen. In dieser Arbeit konnte die direkte Bindung des CSN an das 26S Proteasom gezeigt werden, was zu einem Einfluss auf die Peptidaseaktivität des 26S Proteasoms in vitro führt. In Flag-Pulldown-Experimenten aus B8 Mausfibroblasten, die stabil mit Flag-CSN2 transfiziert waren, wurde ein vollständiger Flag-CSN-Komplex nachgewiesen, der mit dem 26S Proteasom assoziiert vorliegt. Co-Immunpräzipitationen beider Komplexe in vitro wiesen auf eine konzentrationsabhängige Verdrängung des Lid-Subkomplexes durch das CSN hin. Diese Interaktion führte zur Reduktion der proteolytischen Aktivität des 26S Proteasoms. Darüber hinaus wurde eine assoziierte deubiquitinierende Aktivität am CSN entdeckt und als USP15 identifiziert. Die Charakterisierung von USP15 zeigte, dass es durch die am CSN assoziierte Kinase CK2 phosphoryliert und stabilisiert wird. Erstmalig konnte durch Inhibitorstudien mit ortho-Phenanthrolin eine Metallabhängigkeit der Aktivität von USP15 nachgewiesen werden, die zur Identifizierung eines bisher unbekannten Zn-Fingers führte. Mutationsanalysen des Zn-Fingers zeigen, dass dieser für die Bindung und Spaltung von Ub-Ketten, nicht aber von linearen Ub-Konstrukten, notwendig ist. In Zellexperimenten konnte nachgewiesen werden, dass USP15 die E3 Ligase Rbx1 stabilisiert, was vermutlich auf eine Umkehr der Autoubiquitinierung zurückzuführen ist. Das CSN scheint somit sowohl das 26S Proteasom als auch die E3-Ligasen direkt zu beeinflussen. Die Ergebnisse dieser Arbeit stellen eine Vertiefung der Erkenntnisse über das CSN als Regulator des UPS dar. / The COP9 signalosome (CSN) is a conserved protein complex that is involved in the regulation of the ubiquitin (Ub)/26S proteasome system (UPS). The UPS is the most important degradation machinery in eukaryotic cells. By the concerted action of three enzymes, E1-E3, proteins are labelled with a Ub-chain that serves as a recognition signal for the degradation by the 26S proteasome. The CSN is homologous to the lid, a subcomplex of the 26S proteasome, and interacts with numerous proteins, including E3 Ub ligases and kinases. In this study a direct interaction of the CSN with the 26S proteasome could be shown which has consequences for the peptidase activity of the 26S proteasome in vitro. In Flag-pull-down experiments from mouse B8 fibroblasts, that permanently expressed Flag-CSN2, an intact Flag-CSN complex was detected that is associated with the 26S proteasome. Co-immunoprecipitation of both complexes in vitro indicated a concentration-dependent replacement of the lid subcomplex by the CSN. This interaction led to a decrease of the proteolytic activity of the 26S proteasome. Moreover, a deubiquitinating activity associated with the CSN was discovered and identified as USP15. The USP15 was phosphorylated by the CSN-associated kinase CK2 that stabilised the enzyme. For the first time inhibitor studies with ortho-phenanthroline demonstrated a metal-dependency for the activity of USP15 that could be attributed to a formerly unidentified Zn-finger. Mutational analysis of the Zn-finger showed that it is necessary for the binding and cleavage of poly-Ub-chains but not for linear Ub-constructs. Cell culture experiments demonstrated a stabilisation of the E3 ligase Rbx1 by USP15 most likely by reversing its autoubiquitination. Therefore the CSN seems to directly influence the 26S proteasome as well as E3 ligases in their functions. These results expand the present knowledge on the CSN as a regulator of the UPS.
18

The Expanding Diversity of Plant U-box E3 Ubiquitin Ligases in Arabidopsis: Identifying AtPUB18 and AtPUB19 Function during Abiotic Stress Responses

Yee, Donna 17 February 2011 (has links)
The ability of plants to sense and respond to environmental and endogenous signals is essential to their growth and development. As part of these diverse cellular functions, ubiquitin-mediated proteolysis has emerged to be an important process involved in how plant signalling pathways can be regulated in response to such cues. Of the three enzymes involved in linking ubiquitin to protein targets, E3 ubiquitin ligases are of interest as they confer substrate specificity during this ubiquitination process. The overall focal point of this research is on plant U-box (PUB) E3 ubiquitin ligases, a family that has undergone a large gene expansion possibly attributable to the regulation of biological processes unique to the plant life cycle. In Arabidopsis there are 64 predicted PUBs, many for which biological roles have yet to be determined. And as research continues to uncover PUB functions, the functional diversity in the gene family will likely expand. Specifically the focus of this research is on characterizing two ARM repeat-containing PUBs – AtPUB18 and AtPUB19. General analysis of pub18 and pub19 T-DNA insertion lines for growth defects did not yield distinct altered phenotypes. Closer inspection of selected lines showed independent gene assortment phenotypes that, with further inordinately convoluted pursuit, proved to have an AtPUB18/19-unrelated outcome. The availability of Arabidopsis microarray databases provided exploratory expression profiling as a starting point to elucidate PUB function. AtPUB19 and closely related AtPUB18 are notable for their increased expression during abiotic stresses. While condition-directed germination assays showed a decreased sensitivity to salt and ABA for pub18 pub19 double insertion lines, no related change in susceptibility to these or other abiotic stress treatments were seen with condition-directed root growth assays. Thus, this preliminary work has begun to reveal insight into the complex abiotic stress-related roles AtPUB18 and AtPUB19 have during mediation of environmental stress acclimation in Arabidopsis.
19

The Expanding Diversity of Plant U-box E3 Ubiquitin Ligases in Arabidopsis: Identifying AtPUB18 and AtPUB19 Function during Abiotic Stress Responses

Yee, Donna 17 February 2011 (has links)
The ability of plants to sense and respond to environmental and endogenous signals is essential to their growth and development. As part of these diverse cellular functions, ubiquitin-mediated proteolysis has emerged to be an important process involved in how plant signalling pathways can be regulated in response to such cues. Of the three enzymes involved in linking ubiquitin to protein targets, E3 ubiquitin ligases are of interest as they confer substrate specificity during this ubiquitination process. The overall focal point of this research is on plant U-box (PUB) E3 ubiquitin ligases, a family that has undergone a large gene expansion possibly attributable to the regulation of biological processes unique to the plant life cycle. In Arabidopsis there are 64 predicted PUBs, many for which biological roles have yet to be determined. And as research continues to uncover PUB functions, the functional diversity in the gene family will likely expand. Specifically the focus of this research is on characterizing two ARM repeat-containing PUBs – AtPUB18 and AtPUB19. General analysis of pub18 and pub19 T-DNA insertion lines for growth defects did not yield distinct altered phenotypes. Closer inspection of selected lines showed independent gene assortment phenotypes that, with further inordinately convoluted pursuit, proved to have an AtPUB18/19-unrelated outcome. The availability of Arabidopsis microarray databases provided exploratory expression profiling as a starting point to elucidate PUB function. AtPUB19 and closely related AtPUB18 are notable for their increased expression during abiotic stresses. While condition-directed germination assays showed a decreased sensitivity to salt and ABA for pub18 pub19 double insertion lines, no related change in susceptibility to these or other abiotic stress treatments were seen with condition-directed root growth assays. Thus, this preliminary work has begun to reveal insight into the complex abiotic stress-related roles AtPUB18 and AtPUB19 have during mediation of environmental stress acclimation in Arabidopsis.

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