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Nitrogen-regulated pathogenesis describes the expression of virulence attributes as direct response to the quantity and quality of an available nitrogen source. As consequence of nitrogen availability, the opportunistic human fungal pathogen Candida albicans changes its morphology and secretes aspartic proteases [SAPs], both well characterized virulence attributes. C. albicans, contrarily to its normally non-pathogenic relative Saccharomyces cerevisiae, is able to utilize proteins, which are considered as abundant and important nitrogen source within the human host. To assimilate complex proteinaceous matter, extracellular proteolysis is followed by uptake of the degradation products through dedicated peptide transporters (di-/tripeptide transporters [PTRs] and oligopeptide transporters [OPTs]). The expression of both traits is transcriptionally controlled by Stp1 - the global regulator of protein utilization - in C. albicans. The aim of the present study was to elucidate the regulation of virulence attributes of the pathogenic fungus C. albicans by nitrogen availability in more detail. Within a genome wide binding profile of Stp1, during growth with proteins, more than 600 Stp1 target genes were identified, thereby confirming its role in the usage of proteins, but also other nitrogenous compounds as nitrogen source. Moreover, the revealed targets suggest an involvement of Stp1 in the general adaption to nutrient availability as well as in the environmental stress response. With the focus on protein utilization and nitrogen-regulated pathogenesis, the regulation of the major secreted aspartic protease Sap2 - additionally one of the prime examples of allelic heterogeneity in C. albicans - was investigated in detail. Thereby, the heterogezygous SAP2 promoter helped to identify an unintended genomic alteration as the true cause of a growth defect of a C. albicans mutant. Additionally, the promoter region, which was responsible for the differential activation of the SAP2 alleles, was delimited. Furthermore, general Sap2 induction was demonstrated to be mediated by distinct cis-acting elements that are required for a high or a low activity of SAP2 expression. For the utilization of proteins as nitrogen source it is also crucial to take up the peptides that are produced by extracellular proteolysis. Therefore, the function and importance of specific peptide transporters was investigated in C. albicans mutants, unable to use peptides as nitrogen source (opt1Δ/Δ opt2Δ/Δ opt3Δ/Δ opt4Δ/Δ opt5Δ/Δ ptr2Δ/Δ ptr22Δ/Δ septuple null mutants). The overexpression of individual transporters in these mutants revealed differential substrate specificities and expanded the specificity of the OPTs to dipeptides, a completely new facet of these transporters. The peptide-uptake deficient mutants were further used to elucidate, whether indeed proteins and peptides are an important in vivo nitrogen source for C. albicans. It was found that during competitive colonization of the mouse intestine these mutants exhibited wild-type fitness, indicating that neither proteins nor peptides are primary nitrogen sources required to efficiently support growth of C. albicans in the mouse gut. Adequate availability of the preferred nitrogen source ammonium represses the utilization of proteins and other alternative nitrogen sources, but also the expression of virulence attributes, like Sap secretion and nitrogen-starvation induced filamentation. In order to discriminate, whether ammonium availability is externally sensed or determined inside the cell by C. albicans, the response to exterior ammonium concentrations of ammonium-uptake deficient mutants (mep1Δ/Δ mep2Δ/Δ null mutants) was investigated. This study showed that presence of an otherwise suppressing ammonium concentration did not inhibit Sap2 proteases secretion and arginine-induced filamentation in these mutants. Conclusively, ammonium availability is primarily determined inside the cell in order to control the expression of virulence traits. In sum, the present work contributes to the current understanding of how C. albicans regulates expression of virulence-associated traits in response to the presence of available nitrogen sources - especially proteins and peptides - in order to adapt its lifestyle within a human host.
Marine Schwämme (Phylum Porifera) sind sessile Invertebraten, deren Biomasse bis zu 60% aus Mikroorganismen bestehen kann. Während die mikrobielle Diversität in Schwämmen in den letzten Jahren recht gut beschrieben wurde, weiß man noch sehr wenig über mögliche Funktionen und Interaktionen zwischen Schwamm-assoziierten Mikroorganismen mit ihren Wirten. Das Ziel dieser Promotionsarbeit war es, den Prozess der mikrobiellen Nitrifikation im bakterienhaltigen Mittelmeerschwamm Aplysina aerophoba nachzuweisen und im Kontext der Symbiose näher zu untersuchen. Die Nitrifikation beschreibt die zweistufige Oxidation von Ammoniak zu Nitrit und weiter zu Nitrat und wird von bestimmten Mikroorganismen zur Energiegewinnung durchgeführt. Um dieser Fragestellung nachzugehen, wurden physiologische Untersuchungen an lebenden Schwämmen während Freilandexkursionen nach Rovinj (Kroatien) durchgeführt. Frisch gesammelte Schwämme wurden zu unterschiedlichen Jahreszeiten in experimentellen Aquarien jeweils über einen Zeitraum von über 24 Stunden gehältert. Die Konzentrationen von Ammonium, Nitrit und Nitrat wurden in Zeitintervallen mittels photometrischer Nachweise gemessen und die Aufnahme- und Exkretionsraten berechnet. Nitrit wurde in keinem der Experimente messbar ausgeschieden. Ammonium, als natürliches Stoffwechselendprodukt mariner Schwämme, wurde von A. aerophoba in Raten ausgeschieden, die saisonal variabel waren. Im Frühjahr wurde keine Ammonium-ausscheidung beobachtet während die Exkretionsrate zum Sommer hin stetig anstieg. Nitrat, welches natürlicherweise nur durch mikrobielle Nitrifikation entstehen kann, wurde saisonunabhängig konstant ausgeschieden. Ammoniumaufnahme-Experimente zeigten auf, dass Ammonium im Frühjahr rasch aufgenommen wurde und dass Ammonium die Nitratexkretionsrate bis zu vierfach stimulierte, wohingegen im Sommer keine Ammoniumaufnahme und keine Stimulation der Nitratexkretion stattfanden. Durch Zugabe des spezifischen Inhibitors der Nitrifikation, Nitrapyrin, konnte die Nitratexkretion in A. aerophoba vollständig gehemmt werden. Im Gegensatz zu bakterienhaltigen Schwämmen zeigten sogenannte bakterienfreie Schwämme erwartungsgemäß keine Nitratausscheidung. Das 16S rRNA- und das amoA-Gen wurden als molekulare Marker verwendet, um nitrifizierende Mikroorganismen in Schwämmen phylogenetisch zu identifizieren. Es konnten zahlreiche 16S rRNA-Gene aus insgesamt sechs Schwammarten inklusive Aplysina aerophoba amplifiziert und dem marinen Nitrosospira Cluster 1 zugeordnet werden. Aus A. aerophoba konnten auch Nitrosospira amoA-Gensequenzen gewonnen werden. Archaeale 16S rRNA- und amoA-Gensequenzen wurden ebenfalls aus A. aerophoba gewonnen, wobei die 16S rRNA-Gene mit anderen aus Schwämmen stammenden Sequenzen ein Schwamm-spezifisches Cluster innerhalb der Crenarchaea Gruppe I.1A bildeten. Unter Verwendung spezifischer Fluoreszenz-markierter 16S rRNA Sonden konnten den Nitrosospira Cluster 1 und Crenarchaea Gruppe 1 zugehörige Zellen innerhalb des mikrobiellen Konsortiums aus A. aerophoba nachgewiesen werden. Basierend auf der geschätzten Menge nitrifizierender Mikroben in der Schwammmesohylmatrix und den Nitratexkretionsraten wurde eine zellspezifische Ammoniakoxidationsrate von 1,6 fmol Zelle-1 h-1 errechnet. Der Nachweis von 16S rRNA- oder funktionellen Genen des anaeroben mikrobiellen N-Kreislaufs in A. aerophoba verlief negativ. Darüber hinaus wurde eine in vorherigen Arbeiten aus dem mit A. aerophoba assoziierten mikrobiellen Konsortium erstellte Metagenombank auf das Vorhandensein von funktionellen (amoA) Nitrosospira- und Crenarchaea-Genen untersucht. Aus der Sequenzierung des archaealen Metagenomklons 58F6 resultierte die Sequenz des kompletten AMO-Operons eines möglicherweise Schwamm-spezifischen Crenarchaeoten. Diese Ergebnisse liefern erste funktionelle Einblicke in die komplexen Stoffflüsse und Wechselwirkungen zwischen Schwämmen und den mit ihnen assoziierten mikrobiellen Konsortien. Aufgrund dieser Arbeit wurde ein Modell des Stickstoffkreislaufs in A. aerophoba erstellt, welches die Mikroorganismen mit möglichen Stoffwechselfunktionen in dem Wirtsschwamm verknüpft. Diese Arbeit trägt zu dem Informationsstand über die Interaktionen zwischen Schwämmen und Mikroorganismen bei und leistet einen Beitrag zur Aufklärung des Stickstoffkreislaufs in A. aerophoba.
1. Summary Candida albicans is an opportunistic human fungal pathogen that causes a variety of infections, ranging from superficial mucosal to deep-seated systemic infections, especially in immunocompromised patients. Although the ability of C.albicans to cause disease largely depends on the immune status of the host, the fungus also exhibits specific characteristics that facilitate colonization, dissemination, and adaptation to different host niches and thereby turn C.albicans from a harmless commensal to an aggressive pathogen. In response to various environmental stimuli C.albicans switches from growth as a budding yeast to invasive filamentous growth, and this morphogenetic switch plays an important role in C.albicans pathogenesis. Nitrogen limitation is one of the signals that induce filamentous growth in C.albicans, and the control of the morphogenetic transition by nitrogen availability was studied in detail in the present work. Ammonium is a preferred nitrogen source for yeasts that is taken up into the cells by specific transporters. It was found in this study that C.albicans possesses two major ammonium transporters, encoded by the CaMEP1 and CaMEP2 genes, expression of which is induced by nitrogen starvation. Whereas mep1 or mep2 single mutants grew as well as the wild-type strain on limiting concentrations of ammonium, deletion of both transporters rendered C.albicans unable to grow at ammonium concentrations below 5 mM. In contrast to mep1 mutants, mep2 mutants failed to filament and grew only in the yeast form under nitrogen starvation conditions, indicating that in addition to its role as an ammonium transporter CaMep2p also has a signaling function in the induction of filamentous growth. CaMep2p was found to be a less efficient ammonium transporter than CaMep1p and to be expressed at much higher levels, a distinguishing feature important for its signaling function. By the construction and analysis of serially truncated versions of CaMep2p, the C-terminal cytoplasmic tail of the protein was shown to be essential for signaling but dispensable for ammonium transport, demonstrating that these two functions of CaMep2p are separable. In C.albicans at least two signal transduction pathways, a MAP kinase cascade and a cAMP-dependent pathway ending in the transcriptional regulators Cph1p and Efg1p, respectively, control filamentous growth, and mutants defective in either one of these pathways are defective for filamentation under nitrogen starvation conditions. A hyperactive CaMEP2 allele rescued the filamentation defect of a cph1 or a efg1 mutant, but not of a cph1 efg1 double mutant or a mutant deleted for RAS1, which acts upstream of and activates both signaling pathways. Conversely, a dominant active RAS1 allele or addition of exogenous cAMP rescued the filamentation defect of mep2 mutants. These results suggest that CaMep2p activates both the MAP kinase and the cAMP pathway in a Ras1p dependent manner to promote filamentous growth under nitrogen starvation conditions. At sufficiently high concentrations, ammonium repressed filamentous growth even when the signaling pathways were artificially activated. Therefore, C.albicans has established a regulatory circuit in which a preferred nitrogen source, ammonium, serves as an inhibitor of morphogenesis that is taken up into the cell by the same transporter that induces filamentous growth in response to nitrogen starvation. Although a detailed understanding of virulence mechanisms of C.albicans may ultimately lead to novel approaches to combat infections caused by this pathogen, the identification and characterization of essential genes as potential targets for the development of antifungal drugs is a strategy favoured by most pharmaceutical companies. Therefore, C.albicans homologs of three genes that are essential in other fungi were selected in collaboration with an industrial partner and functionally characterized in this work. RAP1 encodes the repressor/activator protein 1, a transcription factor and telomere binding protein that is essential for viability in the budding yeast Saccharomyces cerevisiae. However, deletion of the C.albicans RAP1 homolog did not affect viability or growth of the mutants, suggesting that it is not a promising target. CBF1 (centromere binding factor 1) is necessary for proper chromosome segregation and transcriptional activation of methionine biosynthesis genes in S.cerevisiae and is essential for viability in the related yeasts Kluyveromyces lactis and Candida glabrata. Deletion of CBF1 in C.albicans did not result in an increased frequency of chromosome loss, indicating that it has no role in chromosome segregation in this organism. However, the C.albicans cbf1 mutants exhibited severe growth impairment, temperature sensitivity at 42°C, and auxotrophy for sulphur amino acids, suggesting that Cbf1p is a transcription factor that is important for normal growth of C.albicans. YIL19 is an essential gene in S.cerevisiae that is involved in 18S rRNA maturation. YIL19 was found to be an essential gene also in C.albicans. Conditional mutants in which the YIL19 gene could be excised from the genome by inducible, FLP-mediated recombination were non-viable and accumulated rRNA precursors, demonstrating that YIL19 is essential for this important cellular process and for viability of C.albicans and could serve as a target for the development of antifungal drugs.