@phdthesis{Kronhardt2012, author = {Kronhardt, Angelika}, title = {Channel Formation, Binding and Translocation Properties of Anthrax, CDT and Related Toxins of the AB7 type}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-71559}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2012}, abstract = {The ability to produce toxins is spread among a huge variety of bacterial strains. A very prominent class of bacterial protein toxins is the family of binary AB toxins sharing a common mode of intoxication. A pore forming component B binds and translocates an enzymatic component A into the cytosol of target cells exhibiting a fatal mode of action. These components are supposed to be not toxic themselves but both required for cell toxicity. Anthrax toxin produced by the Gram-positive bacteria Bacillus anthracis is the best studied binary toxin especially since its use as a biological weapon in the context of the attacks of 9/11 in 2001. In contrast to other binary toxins, Anthrax toxin possesses two different enzymatic components, edema factor (EF), a calcium- and calmodulin-dependent adenylat-cyclase and lethal factor (LF), a zinc-dependent metalloprotease. Protective antigen (PA) is the pore-forming component responsible for binding and translocation. Clostridium botulinum possesses in addition to the well known botulinum toxin (Botox) a variety of other toxins, such as the binary C2 toxin. C2 toxin is composed of the binding and translocation moiety C2II and the enzymatic moiety C2I acting as an actin-ADP-ribosyltransferase. In this study, the mode of translocation and the binding kinetics to the enzymatic component were studied in a biophysical experimental setup. In chapter 2, the binding of the N-terminal fractions EFN and LFN to the PA channel are analyzed in artificial bilayer membranes revealing lower binding affinity compared to full-length EF and LF. Other biophysical properties like voltage-dependency and ionic-strength dependency are not influenced. The results suggest that additional forces are involved in the binding process, than those concerning the N-terminus exclusively, as it was supposed previously. As the treatment of an Anthrax infection with antibiotics is often medicated very late due to the lack of early symptoms, tools to prevent intoxication are required. 4-aminoquinolones like chloroquine are known to block the PA channel, thereby inhibiting intoxication but they also lead to severe side-effects. In chapter 3 new promising agents are described that bind to PA in artificial bilayer systems, elucidating common motives and features which are necessary for binding to PA in general. The possible interaction of Anthrax and C2 toxin is investigated by measuring the binding of one enzymatic component to the respective other toxin's pore (chapter 4). Interestingly, in vitro experiments using the black lipid bilayer assay show that PA is able to bind to C2I resulting in half saturation constants in the nanomolar range. Furthermore, in vivo this combination of toxin components exhibits cell toxicity in human cell lines. This is first-time evidence that a heterologous toxin combination is functional in in vitro and in vivo systems. In contrast, C2II is able to bind to EF as well as to LF in vitro, whereas in in vivo studies almost no toxic effect is detected. In the case of PA, an N-terminal His6-tag attached to the enzymatic subunit increased the binding affinity (chapter 5). A His6-tag attached to not related proteins also led to high binding affinities, providing the possibility to establish PA as a general cargo protein. In chapter 6 a set of different molecules and proteins is summarized, which are either related or not related to binary toxins, PA is able to bind. In first line, the presence of positive charges is found to be responsible for binding to PA which is in accordance to the fact that PA is highly cation selective. Furthermore, we present evidence that different cationic electrolytes serve as a binding partner to the PA channel. In the last decade another toxin has aroused public attention as it was found to be responsible for a rising number of nosocomial infections: Clostridium difficile CDT toxin. The mode of action of the enzymatic subunit CDTa is similar to C2I of C2 toxin, acting as an ADP-ribosylating toxin. The channel forming and binding properties of CDT toxin are studied in artificial bilayer membranes (chapter 7). We found that two different types of channels are formed by the B component CDTb. The first channel is similar to that of iota toxin's Ib of Clostridium perfringens with comparable single channel conductance, selectivity and binding properties to the enzymatic subunit CDTa. The formation of this type of channel is cholesterol-dependent, whereas in the absence of cholesterol another kind of channel is observed. This channel has a single channel conductance which is rather high compared to all other binary toxin channels known so far, it is anion selective and does not show any binding affinity to the enzymatic component CDTa. The results reveal completely new insights in channel formation properties and the flexibility of a pore-forming component. Additionally, these findings suggest further possibilities of toxicity of the pore forming component itself which is not known for any other binary toxin yet. Therefore, the pathogenic role of this feature has to be studied in detail.}, subject = {Bacillus anthracis}, language = {en} } @phdthesis{AlcantarinoMenescal2012, author = {Alcantarino Menescal, Luciana}, title = {In vivo characterization of genetic factors involved in Xmrk driven melanoma formation in Medaka (Oryzias latipes): a closer look at braf, Stat5 and c-myc}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-70762}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2012}, abstract = {Melanoma arises from the malignant transformation of melanocytes and is one of the most aggressive forms of human cancer. In fish of the genus Xiphophorus, melanoma development, although very rarely, happens spontaneously in nature and can be induced by interspecific crossing. The oncogenic receptor tyrosine kinase, Xmrk, is responsible for melanoma formation in these fishes. Since Xiphophorus are live-bearing fishes and therefore not compatible with embryonic manipulation and transgenesis, the Xmrk melanoma model was brought to the medaka (Oryzias latipes) system. Xmrk expression under the control of the pigment cell specific mitf promoter leads to melanoma formation with 100\% penetrance in medaka. Xmrk is an orthologue of the human epidermal growth factor receptor (EGFR) and activates several downstream signaling pathways. Examples of these pathways are the direct phosphorylation of BRAF and Stat5, as well as the enhanced transcription of C-myc. BRAF is a serine-threonine kinase which is found mutated at high frequencies in malignant melanomas. Stat5 is a transcription factor known to be constitutively activated in fish melanoma. C-myc is a transcription factor that is thought to regulate the expression of approximately 15\% of all human genes and is involved in cancer progression of a large number of different tumors. To gain new in vivo information on candidate factors known to be involved in melanoma progression, I identified and analysed BRAF, Stat5 and C-myc in the laboratory fish model system medaka. BRAF protein motifs are highly conserved among vertebrates and the results of this work indicate that its function in the MAPK signaling is maintained in medaka. Transgenic medaka lines carrying a constitutive active version of BRAF (V614E) showed more pigmented skin when compared to wild type. Also, some transiently expressing BRAF V614E fishes showed a disrupted eye phenotype. In addition, I was able to identify two Stat5 copies in medaka, named Stat5ab/a and Stat5ab/b. Sequence analysis revealed a higher similarity between both Stat5 sequences when compared to either human Stat5a or Stat5b. This suggests that the two Stat5 copies in medaka arose by an independent duplication processes. I cloned these two Stat5 present in medaka, produced constitutive active and dominant negative gene versions and successfully established transgenic lines carrying each version under the control of the MITF promoter. These lines will help to elucidate questions that are still remaining in Stat5 biology and its function in melanoma progression, like the role of Stat5 phosphorylation on tumor invasiveness. In a third project during my PhD work, I analysed medaka C-myc function and indentified two copies of this gene in medaka, named c-myc17 and c-myc20, according to the chromosome where they are located. I produced conditional transgenic medaka lines carrying the c-myc17 gene coupled to the hormone binding domain of the estrogen receptor to enable specific transgene activation at a given time point. Comparable to human C-myc, medaka C-myc17 is able to induce proliferation and apoptosis in vivo after induction. Besides that, C-myc17 long-term activation led to liver hyperplasia. In summary, the medaka models generated in this work will be important to bring new in vivo information on genes involved in cancer development. Also, the generated transgenic lines can be easily crossed to the melanoma developing Xmrk medaka lines, thereby opening up the possibility to investigate their function in melanoma progression. Besides that, the generated medaka fishes make it possible to follow the whole development of melanocytes, since the embryos are transparent and can be used for high throughput chemical screens.}, subject = {Japank{\"a}rpfling}, language = {en} } @phdthesis{Kubisch2012, author = {Kubisch, Alexander}, title = {Range border formation in the light of dispersal evolution}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-70639}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2012}, abstract = {Understanding the emergence of species' ranges is one of the most fundamental challenges in ecology. Early on, geographical barriers were identified as obvious natural constraints to the spread of species. However, many range borders occur along gradually changing landscapes, where no sharp barriers are obvious. Mechanistic explanations for this seeming contradiction incorporate environmental gradients that either affect the spatio-temporal variability of conditions or the increasing fragmentation of habitat. Additionally, biological mechanisms like Allee effects (i.e. decreased growth rates at low population sizes or densities), condition-dependent dispersal, and biological interactions with other species have been shown to severely affect the location of range margins. The role of dispersal has been in the focus of many studies dealing with range border formation. Dispersal is known to be highly plastic and evolvable, even over short ecological time-scales. However, only few studies concentrated on the impact of evolving dispersal on range dynamics. This thesis aims at filling this gap. I study the influence of evolving dispersal rates on the persistence of spatially structured populations in environmental gradients and its consequences for the establishment of range borders. More specially I investigate scenarios of range formation in equilibrium, periods of range expansion, and range shifts under global climate change ...}, subject = {Areal}, language = {en} } @phdthesis{Schriefer2012, author = {Schriefer, Eva-Maria}, title = {Molekulare und biochemische Charakterisierung der β-Laktamasen von Yersinia enterocolitica und deren Sekretionsverhalten}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-69580}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2012}, abstract = {In dieser Arbeit wurden zwei Aspekte der Yersinia β-Laktamasen bearbeitet: (1) Charakterisierung der β-Laktamasen hinsichtlich β-Laktam-Antibiotikaresistenz, Sekretion und Thermostabilit{\"a}t. (2) Untersuchung der Sekretionsf{\"a}higkeit von verschiedenen thermostabilen β Laktamasen {\"u}ber das Yersinia T3SS. Im ersten Teil wurden β Laktamase-Deletionsmutanten im Y. enterocolitica Serotyp O:8 Stamm WA-314 hergestellt, um den Einfluss der chromosomalen β Laktamasen auf die in vitro-Resistenz zu untersuchen. Es konnte gezeigt werden, dass WA-314 konstitutiv BlaA produziert und BlaA somit - unter nicht-induzierbaren Bedingungen - der dominante Faktor in der in vitro-Resistenz gegen{\"u}ber Penicillinen mit erweitertem Wirkungsspektrum (z.B. Ampicillin) und Cephalosporinen der 1. Generation (z.B. Cefazolin) ist. Weiterhin konnte gezeigt werden, dass die zweite chromosomale β Laktamase AmpC (BlaB) unter Zugabe von subinhibitorischen Konzentrationen von Imipenem stark induziert wird. Keine der β Laktamasen ist in der Lage, in vitro-Resistenz gegen{\"u}ber Carbapenemen und Monobactamen zu vermitteln. Die Konstruktion und Bestimmung der in vitro Antibiotika-Empfindlichkeit der β Laktamase-Deletionsmutanten dient als Grundlage f{\"u}r nachfolgende Untersuchungen im Mausinfektionsmodell. Weiterhin wurden die Transporteigenschaften beider β Laktamasen untersucht. In Gram-negativen Bakterien sind reife β Laktamasen im Periplasma lokalisiert und m{\"u}ssen somit nach der Synthese im Cytosol {\"u}ber die Cytoplasmamembran transportiert werden. Bis auf drei Ausnahmen (β Laktamasen aus Mycobacterium smegmatis, M. tuberculosis und Stenotrophomonas maltophila) sind bisher nur Sec-abh{\"a}ngige β Laktamasen beschrieben worden. Mittels Fusionsproteinen bestehend aus β Laktamase-Signalpeptiden und GFP konnte in dieser Arbeit eindeutig gezeigt werden, dass es sich bei Yersinia BlaA um ein Tat-Substrat handelt, bei Yersinia AmpC hingegen um ein Sec-Substrat. Somit konnte im Rahmen dieser Arbeit zum ersten Mal eine Tat-abh{\"a}ngige β Laktamase bei einer Bakterienart aus der Familie der Enterobacteriaceae nachgewiesen werden. Außerdem konnte gezeigt werden, dass die β Laktamase BlaA nicht diffus im Periplasma, sondern auf bestimmte Bereiche im Periplasma lokalisiert verteilt ist. Allerdings konnte die Art der Lokalisierung bisher nicht genau spezifiziert werden. Die cytosolische Faltung und die Tat-abh{\"a}ngige Translokation von BlaA lassen vermuten, dass eine besondere Thermostabilit{\"a}t von BlaA vorliegt. Deshalb wurde das BlaA-Enzym hinsichtlich seiner Thermostabilit{\"a}t und temperaturabh{\"a}ngigen enzymatischen Aktivit{\"a}t untersucht. Im Vergleich zur E. coli β Laktamase TEM-1 und der hitzestabilen TEM-1-Variante MEGA zeigte BlaA eine erh{\"o}hte Thermostabilit{\"a}t und einen starken Anstieg der Aktivit{\"a}t in einem Temperaturbereich zwischen 30 °C und 45 °C. Im zweiten Teil dieser Arbeit wurde gepr{\"u}ft, ob die charakterisierten Yersinia β Laktamasen als Reporterkonstrukte zur Untersuchung des Typ III Sekretionssystems (T3SS) geeignet sind. Y. enterocolitica besitzt ein pYV Virulenzplasmid, auf dem der vollst{\"a}ndige Satz der Gene f{\"u}r das Ysc-T3SS und die Effektor-Yops (Yersinia outer protein) lokalisiert sind. Injektion der Yops in eukaryotische Zielzellen erm{\"o}glicht das extrazellul{\"a}re {\"U}berleben der Yersinien im Wirtsorganismus. Bei YopE handelt es sich um ein gut charakterisiertes Effektor-Yop, dessen N Terminus fusioniert an den reifen Teil der β Laktamase TEM-1 bereits vielfach als Reporterkonstrukt eingesetzt wurde. Unter Verwendung des fluoreszierenden β Laktamase-Substrats CCF4-AM kann die Translokation von YopEi-TEM-1 in Zielzellen in Zellkultur-Experimenten und im Mausinfektionsmodell visualisiert werden. In dieser Arbeit sollte deshalb die T3SS-Sekretionsf{\"a}higkeit von YopE-β Laktamase-Fusionsproteinen in Abh{\"a}ngigkeit von der „Schmelztemperatur" (temperaturabh{\"a}ngige Stabilit{\"a}t, TM) untersucht werden. Yop-Substrate werden im ungefalteten Zustand (YscN wirkt dabei vermutlich als ATP-abh{\"a}ngige „Unfoldase") {\"u}ber das Ysc-„Injektisom" transloziert. YopEi-TEM-1 wird effizient sekretiert und transloziert (TM (TEM-1) = 50,8 °C). YopE-Fusionsproteine mit thermostabilen TEM-1 Varianten, YopEi-RLT bzw. YopEi-MEGA (TM (RLT) = 60,4 °C; TM (MEGA) = 69,2 °C) werden hingegen nur schwach bzw. nicht sekretiert. Weiterhin konnte gezeigt werden, dass die Sec-abh{\"a}ngige β Laktamase AmpC als YopE-Fusionsprotein (YopEi-AmpC) effizient T3SS-abh{\"a}ngig sekretiert und transloziert werden kann; das native Tat-Substrat BlaA (YopEi-BlaA) kann jedoch weder sekretiert noch transloziert wird. Eine m{\"o}gliche Erkl{\"a}rung w{\"a}re, dass die ATPase YscN nicht in der Lage ist, BlaA und die thermostabilen TEM-1-Varianten zu entfalten und {\"u}ber das T3SS zu sekretieren und zu translozieren. RLT und MEGA k{\"o}nnen hingegen mithilfe ihrer nativen Signalsequenz {\"u}ber das Sec-System (und somit im ungefalteten Zustand) transloziert werden.}, subject = {Yersinia enterocolitica}, language = {de} }