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Der Gram-positive Erreger Staphylococcus aureus ist ein Bestandteil der normalen Haut und Schleimhautflora des Menschen, kann aber auch ein weites Spektrum von Krankheitsbildern hervorrufen. Ein besonderes Charakteristikum dieses Pathogens besteht in der Expression von Oberflächenstrukturen, welche eine hohe Affinität für Proteine der extrazellulären Matrix (ECM) von eukaryontischen Organismen aufweisen und die kollektiv als MSCRAMM (microbial surface components recognizing adhesive matrix molecules) bezeichnet werden. Das auf der Bakterienoberfläche gebundene Fn kann in der Folge als eine Art molekulare Brücke zwischen FnBP exprimierenden S. aureus und dem Fn-Rezeptor auf der Wirtszellseite, dem Integrin 51, dienen. Neben der Anheftung an das Wirtsgewebe kann die indirekte Assoziation mit Integrin 51 die Aufnahme der Bakterien durch die eukaryontische Zelle auslösen. Wie die bakterielle Adhäsion an Integrin 51 und die Aggregation der Integrine durch die mit Fn-beschichteten Bakterien in ein Signal zur Aufnahme der Pathogene durch die Zelle umgesetzt wird, ist nicht vollständig geklärt und sollte im Rahmen dieser Arbeit untersucht werden. Zu diesem Zweck wurde ein neues und effektives Protokoll zur fluoreszenzmikroskopischen Differenzierung von extra- und intrazellulären Bakterien entwickelt. Diese Methode besitzt den Vorteil, von Bakterien-spezifischen Antikörpern unabhängig zu sein. Dadurch bietet sich die Möglichkeit, Bakterien, gegen die es noch keine spezifischen Antiseren gibt, dennoch auf ihre zelluläre Lokalisation und Invasivität mittels mikrobiologischer Methoden untersuchen zu können. Im Hinblick auf die nähere Untersuchung der Signaltransduktion bei der Invasion von S. aureus war die kritische Rolle von Tyrosinkinasen für die Integrin-vermittelte Invasion ein erster wichtiger Hinweis. Diese Befunde führten zu weiteren spezifischeren Untersuchungen, wobei eine wichtige Rolle für Kinasen der Src Familie gezeigt werden konnte. Ein weiterer Hinweis auf die Bedeutung der Src-Kinasen für die Internalisierung von S. aureus war ein dramatischer Rückgang der Aufnahmerate in Src/Yes/Fyn-defizienten Maus-Fibroblasten, verglichen mit Src-rekonstituierten Zellen. Auf biochemischer Ebene konnte eine deutliche Aktivierung der Src-Kinase nach einer Infektion mit S. aureus, nicht aber nach Infektion mit dem nicht-pathogenen S. carnosus festgestellt werden. Integrin-reiche fokale Kontakte (FK) sind angereichert mit Proteinen wie Talin, Vinculin, Paxillin, Tensin, -Actinin oder Zyxin sowie Signalenzymen wie der Fokalen Adhäsions Kinase (FAK) oder Kinasen der Src Familie. Die Protein Tyrosin Kinase (PTK) FAK ist nach Integrinstimulierung eines der Schlüsselenzyme in FK. Dies war der Anlass nach der Bedeutung von FAK für die Integrin-vermittelte Internalisierung von S. aureus zu fragen. Ebenfalls ein wichtiger Hinweis waren die starken Rekrutierungen von Markerproteinen von fokalen Komplexen zum Ort von zellgebunden S. aureus nicht aber von S. carnosus. Daraufhin wurde mittels dominant-negativer FAK-Mutanten und FAKdefizienter Mausfibroblasten der Einfluss von FAK für die Internalisierung von S. aureus untersucht. Bei beiden Versuchsansätzen konnte ein starker Rückgang der Aufnahme beobachtet werden. Zusammengefasst bestätigten diese Ergebnisse die essentielle Rolle von FAK für die Integrin vermittelte Aufnahme der pathogenen S. aureus. Bei der Reorganisation des Aktin-Zytoskeletts spielen eine Reihe von Proteinen eine wichtige Rolle, darunter auch Cortactin. Cortactin ist ein bekanntes Substrat der Src-Kinasen und es lag nahe, nach einer funktionellen Verbindung von Src, FAK und Cortactin zu suchen. Dominant-negative Cortactin-Mutanten, die keine Assoziation mit dem Arp2/3 Komplex oder mit Dynamin aufweisen, oder welche die von Src-vermittelte Phosphorylierung am C-Terminus verhindern, blockierten die Aufnahme von S. aureus. Mikroskopisch konnte eine starke Rekrutierung von Cortactin zu zellgebundenen S. aureus beobachtet werden, jedoch wurde die Rekrutierung nicht von FAK beeinflusst. Die Phosphorylierung von Cortactin aufgrund S. aureus-Infektion war allerdings FAK- und Src-abhängig. Diese Ergebnisse legen nahe, dass ine bisher unbeschriebene FAK/Src Cortactin Signalachse für die Regulation der Integrin-Internalisierung verantwortlich ist. Die detaillierten Untersuchungen der rezeptorvermittelten Aufnahme und der dabei induzierten Signaltransduktion in Wirtszellen gaben neue Erkenntnisse über die Pathogenitätsstrategien von S. aureus. Darüber hinaus ermöglichen diese Arbeiten neue Einblicke in die molekularen Vorgänge, welche die Internalisierung von Integrinen steuern.
Streptococcus pneumoniae (pneumococci) are Gram-positive bacteria and commensals of the nasopharyngeal cavity. Besides colonization, pneumococci are responsible for severe local infections such as otitis media, sinusitis and life-threatening invasive diseases, including pneumonia, sepsis and meningitis. The surface of pneumococci is decorated with proteins that are covalently or non-covalently anchored to the cell wall. The most unique group of cell wall associated proteins in pneumococci are the choline-binding proteins (CBPs). PspC, also known as SpsA or CbpA, is a multifunctional choline-binding protein that plays an essential role in pneumococcal pathogenesis by functioning as an adhesin. PspC promotes adherence of pneumococci to mucosal epithelial cells by interacting in a human specific manner with the free secretory component (SC) or to SC as part of the secretory IgA (SIgA) or polymeric immunoglobulin receptor (pIgR). PspC also interacts specifically with the soluble complement Factor H. Apparently, PspC uses two different epitopes for binding the soluble host protein Factor H and SC of pIgR. However, the mechanism by which these independent interactions facilitate pneumococcal infections under physiological and host specific conditions have not yet been completely elucidated. This study aims to explore the impact of the PspC interaction with human pIgR (hpIgR) or complement regulator Factor H on pneumococcal virulence. Here the cellular and molecular basis of PspC-mediated adherence to and invasion of host epithelial and endothelial cells was demonstrated. The genetic approach, specific pharmacological inhibitors and immunoblot analysis demonstrated the complexity of the induced signal transduction pathways during PspC-hpIgR mediated pneumococcal uptake by host cells. Inhibition studies with specific inhibitors of actin cytoskeleton and microtubules demonstrated that the dynamics of host cell cytoskeleton are essential for pneumococcal uptake by mucosal epithelial cells. Moreover, this study reports for the first time that the small GTPase Cdc42 is essential for pneumococcal internalization into epithelial cells via the PspC-hpIgR mechanism. In addition, in infection experiments performed in presence of specific inhibitors of PI3-kinase/Akt and protein tyrosine kinase (PTKs), hpIgR-mediated pneumococcal uptake by host cells was significantly blocked. Amongst PTKs the Src kinase pathway, ERK1/2 and JNK pathways were implicated during pneumococcal ingestion by hpIgR expressing cells. In addition, inhibition experiments performed in the presence of individual inhibitors or with a combination of inhibitors suggested the independent activation of PI3-kinase/Akt and Src kinase pathways during pneumococcal infections of hpIgR expressing cells. By employing specific inhibitors and siRNA in cell culture infection experiments it was further demonstrated that pneumococcal endocytosis by host epithelial cells via the PspC-hpIgR mechanism depends on clathrin and dynamin. PspC recruits also Factor H to the pneumococcal cell surface. Consequently, the impact of pneumococcal cell surface bound Factor H on adherence to host cells and the molecular mechanism facilitating the uptake of Factor H bound pneumococci by epithelial cells was investigated. Flow cytometry and immunoblots revealed that S. pneumoniae has evolved the ability to recruit both purified Factor H as well as Factor H from human plasma or serum. Moreover, it was demonstrated that the recruitment of Factor H is independent of the PspC-subtypes and that capsular polysaccharide (CPS) interferes with its recruitment. Factor H bound to pneumococci significantly increased bacterial attachment to and invasion of host epithelial cells including nasopharyngeal cells (Detroit562), lung epithelial cells (A549), and human brain-derived endothelial cells (HBMEC). Blocking experiments demonstrated that bacteria bound Factor H interacts via the heparin binding sites on Factor H with eukaryotic cell surface glycosaminoglycans and that this interaction promotes pneumococcal adherence to host cells. In addition, inhibition studies with mAbs recognizing specifically different short consensus repeats (SCR) of Factor H suggested that SCR 19-20 of Factor H are essential for the pneumococcal interaction with host epithelial cells via Factor H. In the presence of Factor H, attachment of pneumococci to human polymorphonuclear leukocytes (PMNs) is enhanced. The integrin CD11b/CD18 was identified as the cellular receptor on PMNs. By using pharmacological inhibitors the impact of host cell cytoskeleton and signalling molecules, such as PTKs and PI3-kinase, for Factor H-mediated pneumococcal internalization into eukaryotic cells was shown. Taken together, the results revealed that Factor-H mediated pneumococcal infection requires a concerted role of host epithelial cell surface glycosaminoglycans, integrins and host cell signalling pathways.
Malaria still persists as one of the deadliest infectious disease in addition to AIDS and tuberculosis. lt is a leading cause of high mortality and morbidity rates in the developing world despite of groundbreaking research on global eradication of the disease initiated by WHO, about half a century ago. Lack of a commercially available vaccine and rapid spread of drug resistance have hampered the attempts of extinguishing malaria, which still leads to an annual death toll of about one million people. Resistance to anti-malarial compounds thus renders search for new target proteins imperative. The kinome of the human malaria parasite Plasmodium falciparum comprises representatives of most eukaryotic protein kinase groups, including kinases which regulate proliferation and differentiation processes. Several reports till date have suggested involvement of parasite kinases in the human host and as well as in the mosquito vector. Kinases essential for life cycle stages of the parasite represent promising targets for anti-malarial compounds thus, provoking characterization of additional malarial kinases. Despite extensive research on most plasmodial enzymes, very little information is available regarding the four identified members of the cyclin dependent kinase like kinase (CLK) family. Thus, the present thesis dealt with the functional characterization of four members of the PfCLK kinase family of the parasite denoted as PfCLK-1/Lammer, PfCLK-2, PfCLK-3 and PfCLK-4 with a special focus on the first two kinases. Additionally, one Ca2+/Calmodulin dependent putative kinase-related protein, PfPKRP, presumed to be involved in sexual stage development of the parasite, was investigated for its expression in the life cycle of the parasite. In other eukaryotes, CLK kinases regulate mRNA splicing through phosphorylation of Serine/Arginine-rich proteins. Transcription analysis revealed abundance of PfCLK kinase genes throughout the asexual blood stages and in gametocytes. By reverse genetics approach it was demonstrated that all four kinases are essential for completion of the asexual replication cycle of P. falciparum. PfCLK 1/Lammer possesses two nuclear localization signals and PfCLK-2 possesses one of these signals upstream of the C-terminal catalytic domains. Protein level expression and sub-cellular localization of the two kinases was determined by generation of antiserum directed against the kinase domains of the respective kinase. Indirect immunofluorescence, Western blot and electron microscopy data confirm that the kinases are primarily localized in the parasite nucleus, and in vitro assays show that both enzymes are associated with phosphorylation activity. Finally, mass spectrometric analysis of co immunoprecipitated proteins shows interactions of the two PfCLK kinases with proteins, which have putative nuclease, phosphatase or helicase functions. PfPKRP on the other hand is predominantly expressed during gametocyte differentiation as identified from transcriptional analysis. Antiserum directed against the catalytic domain of PfPKRP detected the protein expression profile in both asexual and gametocyte parasite lysates. Via immunofluorescence assay, the kinase was localized in the parasite cytoplasm in a punctuated manner, mostly in the gametocyte stages. Reverse genetics resulted in the generation of PfPKRP gene-disruptant parasites, thus demonstrating that unlike CLK kinases, PfPKRP is dispensable for asexual parasite survival and hence might have crucial role in sexual development of the parasite. On one hand, characterization of PfCLK kinases exemplified the kinases involved in parasite replication cycle. Successful gene-disruption and protein expression of PfPKRP kinase on the other hand, demonstrated a role of the kinase in sexual stage development of the parasite. Both kinase families therefore, represent potential candidates for anti-plasmodial compounds.