@phdthesis{Wolter2015, author = {Wolter, Patrick}, title = {Characterization of the mitotic localization and function of the novel DREAM target GAS2L3 and Mitotic kinesins are regulated by the DREAM complex, often up-regulated in cancer cells, and are potential targets for anti-cancer therapy}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-122531}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2015}, abstract = {The recently discovered human DREAM complex (for DP, RB-like, E2F and MuvB complex) is a chromatin-associated pocket protein complex involved in cell cycle- dependent gene expression. DREAM consists of five core subunits and forms a complex either with the pocket protein p130 and the transcription factor E2F4 to repress gene expression or with the transcription factors B-MYB and FOXM1 to promote gene expression. Gas2l3 was recently identified by our group as a novel DREAM target gene. Subsequent characterization in human cell lines revealed that GAS2L3 is a microtubule and F-actin cross-linking protein, expressed in G2/M, plays a role in cytokinesis, and is important for chromosomal stability. The aim of the first part of the study was to analyze how expression of GAS2L3 is regulated by DREAM and to provide a better understanding of the function of GAS2L3 in mitosis and cytokinesis. ChIP assays revealed that the repressive and the activating form of DREAM bind to the GAS2L3 promoter. RNA interference (RNAi) mediated GAS2L3 depletion demonstrated the requirement of GAS2L3 for proper cleavage furrow ingression in cytokinesis. Immunofluorescence-based localization studies showed a localization of GAS2L3 at the mitotic spindle in mitosis and at the midbody in cytokinesis. Additional experiments demonstrated that the GAS2L3 GAR domain, a putative microtubule- binding domain, is responsible for GAS2L3 localization to the constriction zones in cytokinesis suggesting a function for GAS2L3 in the abscission process. DREAM is known to promote G2/M gene expression. DREAM target genes include several mitotic kinesins and mitotic microtubule-associated proteins (mitotic MAPs). However, it is not clear to what extent DREAM regulates mitotic kinesins and MAPs, so far. Furthermore, a comprehensive study of mitotic kinesin expression in cancer cell lines is still missing. Therefore, the second major aim of the thesis was to characterize the regulation of mitotic kinesins and MAPs by DREAM, to investigate the expression of mitotic kinesins in cancer cell line panels and to evaluate them as possible anti-cancer targets. ChIP assays together with RNAi mediated DREAM subunit depletion experiments demonstrated that DREAM is a master regulator of mitotic kinesins. Furthermore, expression analyses in a panel of breast and lung cancer cell lines revealed that mitotic kinesins are up-regulated in the majority of cancer cell lines in contrast to non-transformed controls. Finally, an inducible lentiviral-based shRNA system was developed to effectively deplete mitotic kinesins. Depletion of selected mitotic kinesins resulted in cytokinesis failures and strong anti-proliferative effects in several human cancer cell lines. Thus, this system will provide a robust tool for future investigation of mitotic kinesin function in cancer cells.}, subject = {Zellzyklus}, language = {en} } @phdthesis{Spannaus2015, author = {Spannaus, Ralf}, title = {Regulation der foamyviralen Proteaseaktivit{\"a}t}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-113401}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2015}, abstract = {Alle Retroviren prozessieren ihre Pol- und Strukturproteine mit Hilfe der viralen Protease. In dieser Arbeit wurden zentrale Mechanismen der Regulation der foamyviralen Protease untersucht und charakterisiert. Dazu wurde eine chromatographische Virusreinigungsmethode entwickelt und die relative Pol- und Env-Enkapsidierung bestimmt. Foamyviren enthalten weniger Pol als andere Retroviren aber deutlich mehr Env als humane Immunodefizienzviren. Die Pol-Inkorporation k{\"o}nnte durch die limitierte Prozessierung mit nur einer einzigen Schnittstelle in Gag und Pol kompensiert werden. Deshalb wurde untersucht, ob die foamyvirale Protease ein beschr{\"a}nktes Schnittstellenrepertoire aufweist. In Zellkulturen sind die Schnitt-stellenpositionen P2' und P2 auf die Aminos{\"a}urereste Valin und Valin/Asparagin beschr{\"a}nkt. Demnach hat die foamyvirale Protease ein eingeschr{\"a}nkteres Schnittstellenrepertoire als die Protease des humanen Immunodefizienzvirus. Weiterhin wurde hier gezeigt, dass die vollst{\"a}ndige reverse Transkription die Prozessierung von Gag voraussetzt und Proteaseaktivit{\"a}t-defiziente oder Gag-Schnittstellen-defiziente Viren keine vollst{\"a}ndige cDNA bilden k{\"o}nnen. Demnach kompensieren Foamyviren die niedrige Proteasekonzentration, indem sie sicherstellen, dass die reverse Transkription erst nach der Gag-Maturation vollendet werden kann. Weiterhin wird bei humanen Immunodefizienzviren durch die Gag-Maturation die essenzielle Mobilit{\"a}t der wenigen Env-Trimere auf der H{\"u}llmembran getriggert. Die erstmals in dieser Arbeit bei Foamyviren quantifizierte Env-Menge ergab, dass Foamyviren 28 mal mehr Env- pro Gag-Molek{\"u}l als humane Immunodefizienzviren besitzen. Wahrscheinlich dient dieser hohe Env-Gehalt der Kompensation der eingeschr{\"a}nkten Env-Mobilit{\"a}t, die durch die limitierte Gag-Prozessierung an nur einer carboxyterminalen Schnittstelle verursacht wird. Da f{\"u}r die Aktivierung der foamyviralen Protease virale Ribonukleins{\"a}ure ben{\"o}tigt wird, wurde untersucht, welche Pol-Dom{\"a}nen f{\"u}r die Aktivierung der Protease ben{\"o}tigt werden. Im Gegensatz zur Integrase, deren Deletion in reduzierter Proteaseaktivit{\"a}t resultierte, war die funktionelle RNaseH-Dom{\"a}ne essenziell f{\"u}r die Gag-Prozessierung. Die Substitution der foamyviralen RNaseH durch RNaseH-Dom{\"a}nen von anderen Retroviren resultierte in genomunabh{\"a}ngiger Proteaseaktivit{\"a}t in Zellen und genomabh{\"a}ngiger Proteaseaktivit{\"a}t in den rekombinanten Viren. Demnach scheint die dimerstabilisierende Funktion der RNaseH durch direkte Protein-Protein-Interaktion oder durch unspezifische RNA-Bindung verursacht zu werden.}, subject = {Spumaviren}, language = {de} } @phdthesis{LiessneeEller2021, author = {Liess [n{\´e}e Eller], Anna Katharina Luise}, title = {Understanding the regulation of the ubiquitin-conjugating enzyme UBE2S}, doi = {10.25972/OPUS-20419}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-204190}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2021}, abstract = {The ubiquitination of proteins serves as molecular signal to control an enormous number of physiological processes and its dysregulation is connected to human diseases like cancer. The versatility of this signal stems from the diverse ways by which ubiquitin can be attached to its targets. Thus, specificity and tight regulation of the ubiquitination are pivotal requirements of ubiquitin signaling. Ubiquitin-conjugating enzymes (E2s) act at the heart of the ubiquitination cascade, transferring ubiquitin from a ubiquitin-activating enzyme (E1) to a ubiquitin ligase (E3) or substrate. When cooperating with a RING-type E3, ubiquitin-conjugating enzymes can determine linkage specificity in ubiquitin chain formation. Our understanding of the regulation of E2 activities is still limited at a structural level. The work described here identifies two regulation mechanisms in UBE2S, a cognate E2 of the human RING-type E3 anaphase-promoting complex/cyclosome (APC/C). UBE2S elongates ubiquitin chains on APC/C substrates in a Lys11 linkage-specific manner, thereby targeting these substrates for degradation and driving mitotic progression. In addition, UBE2S was found to have a role in DNA repair by enhancing non-homologous end-joining (NHEJ) and causing transcriptional arrest at DNA damage sites in homologous recombination (HR). Furthermore, UBE2S overexpression is a characteristic feature of many cancer types and is connected to poor prognosis and diminished response to therapy. The first regulatory mechanism uncovered in this thesis involves the intramolecular auto-ubiquitination of a particular lysine residue (Lys+5) close to the active site cysteine, presumably through conformational flexibility of the active site region. The Lys+5-linked ubiquitin molecule adopts a donor-like, 'closed' orientation towards UBE2S, thereby conferring auto-inhibition. Notably, Lys+5 is a major physiological ubiquitination site in ~25\% of the human E2 enzymes, thus providing regulatory opportunities beyond UBE2S. Besides the active, monomeric state and the auto-inhibited state caused by auto-ubiquitination, I discovered that UBE2S can adopt a dimeric state. The latter also provides an auto-inhibited state, in which ubiquitin transfer is blocked via the obstruction of donor binding. UBE2S dimerization is promoted by its unique C-terminal extension, suppresses auto-ubiquitination and thereby the proteasomal degradation of UBE2S. Taken together, the data provided in this thesis illustrate the intricate ways by which UBE2S activity is fine-tuned and the notion that structurally diverse mechanisms have evolved to restrict the first step in the catalytic cycle of E2 enzymes.}, subject = {E2}, language = {en} } @phdthesis{Adenugba2021, author = {Adenugba, Akinbami Raphael}, title = {Functional analysis of the gene organization of the pneumoviral attachment protein G}, doi = {10.25972/OPUS-12814}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-128146}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2021}, abstract = {The putative attachment protein G of pneumonia virus of mice (PVM), a member of the Pneumoviruses, is an important virulence factor with so far ambiguous function in a virus-cell as well as in virus-host context. The sequence of the corresponding G gene is characterized by significant heterogeneity between and even within strains, affecting the gene and possibly the protein structure. This accounts in particular for the PVM strain J3666 for which two differing G gene organizations have been described: a polymorphism in nucleotide 65 of the G gene results in the presence of an upstream open reading frame (uORF) that precedes the main ORF in frame (GJ366665A) or extension of the major G ORF for 18 codons (GJ366665U). Therefore, this study was designed to analyse the impact of the sequence variations in the respective G genes of PVM strains J3666 and the reference strain 15 on protein expression, replication and virulence. First, the controversy regarding the consensus sequence of PVM J3666 was resolved. The analysis of 45 distinct cloned fragments showed that the strain separated into two distinct virus populations defined by the sequence and structure of the G gene. This division was further supported by nucleotide polymorphisms in the neighbouring M and SH genes. Sequential passage of this mixed strain in the cell line standardly used for propagation of virus stocks resulted in selection for the GJ366665A-containing population in one of two experiments pointing towards a moderate replicative advantage. The replacement of the G gene of the recombinant PVM 15 with GJ366665A or GJ366665U, respectively, using a reverse genetic approach indicated that the presence of uORF within the GJ366665A significantly reduced the expression of the main G ORF on translational level while the potential extension of the ORF in GJ366665U increased G protein expression. In comparison, the effect of the G gene-structure on virus replication was inconsistent and dependent on cell line and type. While the presence of uORF correlated with a replication advantage in the standardly used BHK-21 cells and primary murine embryonic fibroblasts, replication in the murine macrophage cell line RAW 264.7 did not. In comparison, the GJ366665U variant was not associated with any effect on replication in cultured cells at all. Nonetheless, in-vivo analysis of the recombinant viruses associated the GJ366665U gene variant, and hence an increased G expression, with higher virulence whereas the GJ366665A gene, and therefore an impaired G expression, conferred an attenuated phenotype to the virus. To extend the study to other G gene organizations, a recombinant PVM expressing a G protein without the cytoplasmic domain and for comparison a G-deletion mutant, both known to be attenuated in vivo, were studied. Not noticed before, this structure of the G gene was associated with a 75\% reduction in G protein expression and a significant attenuation of replication in macrophage-like cells. This attenuation was even more prominent for the virus lacking G. Taking into consideration the higher reduction in G protein levels compared to the GJ366665A variant indicates that a threshold amount of G is required for efficient replication in these cells. In conclusion, the results gathered indicated that the expression levels of the G protein were modulated by the sequence of the 5' untranslated region of the gene. At the same time the G protein levels modulated the virulence of PVM.}, subject = {G glycoprotein}, language = {en} }