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ABSTRACT
The highly conserved heterotrimeric protein kinase SNF1 is important for metabolic adaptations in the pathogenic yeast Candida albicans. A key function of SNF1 is to inactivate the repressor protein Mig1 and thereby allow the expression of genes that are required for the utilization of alternative carbon sources when the preferred carbon source, glucose, is absent or becomes limiting. However, how SNF1 controls Mig1 activity in C. albicans has remained elusive. Using a phosphoproteomics approach, we found that Mig1 is phosphorylated at multiple serine residues. Replacement of these serine residues by nonphosphorylatable alanine residues strongly increased the repressor activity of Mig1 in cells lacking a functional SNF1 complex, indicating that additional protein kinases are involved in the regulation of Mig1. Unlike wild-type Mig1, whose levels strongly decreased when the cells were grown on sucrose or glycerol instead of glucose, the levels of a mutant Mig1 protein lacking nine phosphorylation sites remained high under these conditions. Despite the increased protein levels and the absence of multiple phosphorylation sites, cells with a functional SNF1 complex could still sufficiently inhibit the hyperactive Mig1 to enable wild-type growth on alternative carbon sources. In line with this, phosphorylated forms of the mutant Mig1 were still detected in the presence and absence of a functional SNF1, demonstrating that Mig1 contains additional, unidentified phosphorylation sites and that downstream protein kinases are involved in the control of Mig1 activity by SNF1.
IMPORTANCE
The SNF1 protein kinase signaling pathway, which is highly conserved in eukaryotic cells, is important for metabolic adaptations in the pathogenic yeast Candida albicans. However, so far, it has remained elusive how SNF1 controls the activity of one of its main effectors, the repressor protein Mig1 that inhibits the expression of genes required for the utilization of alternative carbon sources when glucose is available. In this study, we have identified multiple phosphorylation sites in Mig1 that contribute to its inactivation. Mutation of these sites strongly increased Mig1 repressor activity in the absence of SNF1, but SNF1 could still sufficiently inhibit the hyperactive Mig1 to enable growth on alternative carbon sources. These findings reveal features of Mig1 that are important for controlling its repressor activity. Furthermore, they demonstrate that both SNF1 and additional protein kinases regulate Mig1 in this pathogenic yeast.
Abstract
Protein kinases are central components of almost all signaling pathways that control cellular activities. In the model organism Saccharomyces cerevisiae, the paralogous protein kinases Ypk1 and Ypk2, which control membrane lipid homeostasis, are essential for viability, and previous studies strongly indicated that this is also the case for their single ortholog Ypk1 in the pathogenic yeast Candida albicans. Here, using FLP-mediated inducible gene deletion, we reveal that C. albicans ypk1Δ mutants are viable but slow-growing, explaining prior failures to obtain null mutants. Phenotypic analyses of the mutants showed that the functions of Ypk1 in regulating sphingolipid biosynthesis and cell membrane lipid asymmetry are conserved, but the consequences of YPK1 deletion are milder than in S. cerevisiae. Mutational studies demonstrated that the highly conserved PDK1 phosphorylation site T548 in its activation loop is essential for Ypk1 function, whereas the TORC2 phosphorylation sites S687 and T705 at the C-terminus are important for Ypk1-dependent resistance to membrane stress. Unexpectedly, Pkh1, the single C. albicans orthologue of Pkh1/Pkh2, which mediate Ypk1 phosphorylation at the PDK1 site in S. cerevisiae, was not required for normal growth of C. albicans under nonstressed conditions, and Ypk1 phosphorylation at T548 was only slightly reduced in pkh1Δ mutants. We found that another protein kinase, Pkh3, whose ortholog in S. cerevisiae cannot substitute Pkh1/2, acts redundantly with Pkh1 to activate Ypk1 in C. albicans. No phenotypic effects were observed in cells lacking Pkh3 alone, but pkh1Δ pkh3Δ double mutants had a severe growth defect and Ypk1 phosphorylation at T548 was completely abolished. These results establish that Ypk1 is not essential for viability in C. albicans and that, despite its generally conserved function, the Ypk1 signaling pathway is rewired in this pathogenic yeast and includes a novel upstream kinase to activate Ypk1 by phosphorylation at the PDK1 site.
Author summary
Protein kinases are key components of cellular signaling pathways, and elucidating the specific roles of individual kinases is important to understand how organisms adapt to changes in their environment. The protein kinase Ypk1 is highly conserved in eukaryotic organisms and crucial for the maintenance of cell membrane homeostasis. It was previously thought that Ypk1 is essential for viability in the pathogenic yeast Candida albicans, as in the model organism Saccharomyces cerevisiae. Here, by using forced, inducible gene deletion, we reveal that C. albicans mutants lacking Ypk1 are viable but have a strong growth defect. The phenotypes of the mutants indicate that the known functions of Ypk1 are conserved in C. albicans, but loss of this kinase has less severe consequences than in S. cerevisiae. We also unravel the puzzling previous observation that C. albicans mutants lacking the Ypk1-activating kinase Pkh1, which is essential in S. cerevisiae, have no obvious growth defects. We show that the protein kinase Pkh3, which has not previously been implicated in the Ypk1 signaling pathway, can substitute Pkh1 and activate Ypk1 in C. albicans. These findings provide novel insights into this conserved signaling pathway and how it is rewired in a human-pathogenic fungus.
Protein kinases play central roles in virtually all signaling pathways that enable organisms to adapt to their environment. Microbial pathogens must cope with severely restricted iron availability in mammalian hosts to invade and establish themselves within infected tissues. To uncover protein kinase signaling pathways that are involved in the adaptation of the pathogenic yeast Candida albicans to iron limitation, we generated a comprehensive protein kinase deletion mutant library of a wild-type strain. Screening of this library revealed that the protein kinase Ire1, which has a conserved role in the response of eukaryotic cells to endoplasmic reticulum stress, is essential for growth of C. albicans under iron-limiting conditions. Ire1 was not necessary for the activity of the transcription factor Sef1, which regulates the response of the fungus to iron limitation, and Sef1 target genes that are induced by iron depletion were normally upregulated in ire1Δ mutants. Instead, Ire1 was required for proper localization of the high-affinity iron permease Ftr1 to the cell membrane. Intriguingly, iron limitation did not cause increased endoplasmic reticulum stress, and the transcription factor Hac1, which is activated by Ire1-mediated removal of the non-canonical intron in the HAC1 mRNA, was dispensable for Ftr1 localization to the cell membrane and growth under iron-limiting conditions. Nevertheless, expression of a pre-spliced HAC1 copy in ire1Δ mutants restored Ftr1 localization and rescued the growth defects of the mutants. Both ire1Δ and hac1Δ mutants were avirulent in a mouse model of systemic candidiasis, indicating that an appropriate response to endoplasmic reticulum stress is important for the virulence of C. albicans. However, the specific requirement of Ire1 for the functionality of the high-affinity iron permease Ftr1, a well-established virulence factor, even in the absence of endoplasmic reticulum stress uncovers a novel Hac1-independent essential role of Ire1 in iron acquisition and virulence of C. albicans.
The fungal cell wall is essential for the maintenance of cellular integrity and mediates interactions of the cells with the environment. It is a highly flexible organelle whose composition and organization is modulated in response to changing growth conditions. In the pathogenic yeast Candida albicans, a network of signaling pathways regulates the structure of the cell wall, and mutants with defects in these pathways are hypersensitive to cell wall stress. By harnessing a library of genetically activated forms of all C. albicans zinc cluster transcription factors, we found that a hyperactive Czf1 rescued the hypersensitivity to cell wall stress of different protein kinase deletion mutants. The hyperactive Czf1 induced the expression of many genes with cell wall-related functions and caused visible changes in the cell wall structure. C. albicans czf1Δ mutants were hypersensitive to the antifungal drug caspofungin, which inhibits cell wall biosynthesis. The changes in cell wall architecture caused by hyperactivity or absence of Czf1 resulted in an increased recognition of C. albicans by human neutrophils. Our results show that Czf1, which is known as a regulator of filamentous growth and white-opaque switching, controls the expression of cell wall genes and modulates the architecture of the cell wall.
Candida albicans is ubiquitously present, and colonization in the nose and oral cavity is common. In healthy patients, it usually does not act as a pathogen, but in some cases can cause diseases. The influence of C. albicans as a trigger of T cell activation on the pathogenesis of chronic rhinosinusitis (CRS) is controversial, and its exact role is not clear to date. The aim of the present study was to detect and characterize C. albicans-specific CD4+ and CD8+ T cells in patients with CRS, with and without nasal polyps. Tissue and blood samples were collected from patients suffering from chronic rhinosinusitis with (CRSwNP) and without nasal polyps (CRSsNP), and from healthy controls. A peptide pool derived from C. albicans antigen was added to tissue and blood samples. After 6 days, lymphocytes were analyzed by multicolor flow cytometry. Activation was assessed by the intracellular marker Ki-67, and the cytokine secretion was measured. Tissue CD8+ T cells of CRSsNP patients showed a significantly higher proportion of Ki-67+ cells after activation with C. albicans antigen compared to peripheral blood CD8+ T cells. Cytokine secretion in response to C. albicans antigen was similar for all study groups. In this study, C. albicans-specific CD4+ and CD8+ T cells were detected in peripheral blood and mucosal tissue in all study groups. In patients suffering from CRSsNP, C. albicans-specific CD8+ T cells were relatively enriched in the nasal mucosa, suggesting that they might play a role in the pathogenesis of CRSsNP.
Oligopeptides incorporating \(N3\)-(4-methoxyfumaroyl)-L-2,3-diaminopropanoic acid (FMDP), an inhibitor of glucosamine-6-phosphate synthase, exhibited growth inhibitory activity against \(Candida\) \(albicans\), with minimal inhibitory concentration values in the 0.05–50 μg mL\(^{-1}\) range. Uptake by the peptide permeases was found to be the main factor limiting an anticandidal activity of these compounds. Di- and tripeptide containing FMDP (F2 and F3) were transported by Ptr2p/Ptr22p peptide transporters (PTR) and FMDP-containing hexa-, hepta-, and undecapeptide (F6, F7, and F11) were taken up by the oligopeptide transporters (OPT) oligopeptide permeases, preferably by Opt2p/Opt3p. A phenotypic, apparent resistance of \(C. albicans\) to FMDP-oligopeptides transported by OPT permeases was triggered by the environmental factors, whereas resistance to those taken up by the PTR system had a genetic basis. Anticandidal activity of longer FMDP-oligopeptides was strongly diminished in minimal media containing easily assimilated ammonium sulfate or L-glutamine as the nitrogen source, both known to downregulate expression of the OPT genes. All FMDP-oligopeptides tested were more active at lower pH and this effect was slightly more remarkable for peptides F6, F7, and F11, compared to F2 and F3. Formation of isolated colonies was observed inside the growth inhibitory zones induced by F2 and F3 but not inside those induced by F6, F7, and F11. The vast majority (98%) of those colonies did not originate from truly resistant cells. The true resistance of 2% of isolates was due to the impaired transport of di- and to a lower extent, tripeptides. The resistant cells did not exhibit a lower expression of \(PTR2\), \(PTR22\), or \(OPT1–3\) genes, but mutations in the \(PTR2\) gene resulting in T422H, A320S, D119V, and A320S substitutions in the amino acid sequence of Ptr2p were found.
The protein kinase Snf1, a member of the highly conserved AMP-activated protein kinase family, is a central regulator of metabolic adaptation. In the pathogenic yeast Candida albicans, Snf1 is considered to be essential, as previous attempts by different research groups to generate homozygous snf1 Delta mutants were unsuccessful. We aimed to elucidate why Snf1 is required for viability in C. albicans by generating snf1 Delta null mutants through forced, inducible gene deletion and observing the terminal phenotype before cell death. Unexpectedly, we found that snf1 Delta mutants were viable and could grow, albeit very slowly, on rich media containing the preferred carbon source glucose. Growth was improved when the cells were incubated at 37 degrees C instead of 30 degrees C, and this phenotype enabled us to isolate homozygous snf1 Delta mutants also by conventional, sequential deletion of both SNF1 alleles in a wild-type C. albicans strain. All snf1 Delta mutants could grow slowly on glucose but were unable to utilize alternative carbon sources. Our results show that, under optimal conditions, C. albicans can live and grow without Snf1. Furthermore, they demonstrate that inducible gene deletion is a powerful method for assessing gene essentiality in C. albicans.
IMPORTANCE
Essential genes are those that are indispensable for the viability and growth of an organism. Previous studies indicated that the protein kinase Snf1, a central regulator of metabolic adaptation, is essential in the pathogenic yeast Candida albicans, because no homozygous snf1 deletion mutants of C. albicans wild-type strains could be obtained by standard approaches. In order to investigate the lethal consequences of SNF1 deletion, we generated conditional mutants in which SNF1 could be deleted by forced, inducible excision from the genome. Unexpectedly, we found that snf1 null mutants were viable and could grow slowly under optimal conditions. The growth phenotypes of the snf1 Delta mutants explain why such mutants were not recovered in previous attempts. Our study demonstrates that inducible gene deletion is a powerful method for assessing gene essentiality in C. albicans.
Fungal microorganisms frequently lead to life-threatening infections. Within this group of pathogens, the commensal Candida albicans and the filamentous fungus Aspergillus fumigatus are by far the most important causes of invasive mycoses in Europe. A key capability for host invasion and immune response evasion are specific molecular interactions between the fungal pathogen and its human host. Experimentally validated knowledge about these crucial interactions is rare in literature and even specialized host pathogen databases mainly focus on bacterial and viral interactions whereas information on fungi is still sparse. To establish large-scale host fungi interaction networks on a systems biology scale, we develop an extended inference approach based on protein orthology and data on gene functions. Using human and yeast intraspecies networks as template, we derive a large network of pathogen host interactions (PHI). Rigorous filtering and refinement steps based on cellular localization and pathogenicity information of predicted interactors yield a primary scaffold of fungi human and fungi mouse interaction networks. Specific enrichment of known pathogenicity-relevant genes indicates the biological relevance of the predicted PHI. A detailed inspection of functionally relevant subnetworks reveals novel host fungal interaction candidates such as the Candida virulence factor PLB1 and the anti-fungal host protein APP. Our results demonstrate the applicability of interolog-based prediction methods for host fungi interactions and underline the importance of filtering and refinement steps to attain biologically more relevant interactions. This integrated network framework can serve as a basis for future analyses of high-throughput host fungi transcriptome and proteome data.
Infektionen durch C. albicans auf den Schleimhäuten sind eine häufige Erkrankung bei Patienten mit einer Schwächung der T-Zellimmunität. Blutstrominfektionen mit der Hefe C. albicans (Candidämie) stellen, vor allem bei Patienten auf Intensivstationen, eine nach wie vor bedrohliche Komplikation mit hoher Letalität dar.
Das pH-regulierte Antigen 1 (Pra1) ist ein Protein, das von C. albicans produziert wird, auf der Oberfläche des Pilzes gebunden vorkommt und auch vom Pilz in den Überstand sezerniert wird. Im humanen System bindet das Protein an T-Zellen an das Oberflächenprotein CD46. Es ist des Weiteren bekannt, dass das Pra1 an bestimmte Immunzellen der Maus (Monozyten und Phagozyten) binden kann. Eine Bindung an T-Zellen der Maus ist bisher nicht beschrieben. Eine genaue Charakterisierung der Interaktion von Pra1 mit Immunzellen der Maus ist interessant, da die Maus als biologischer Modellorganismus zur Erforschung der Infektion mit C. albicans dient. In dieser Arbeit konnte gezeigt werden, dass rekombinantes Pra1 (rPra1) auch an Maus-CD4+ T-Zellen binden kann.
Es wurden Einflussfaktoren auf die gefundene Bindung von Pra1 an CD4+ T- Zellen gesucht. Als ein Einflussfaktor wurde Zink identifiziert. Pra1 kann an freies Zink binden und durch Zugabe von ZnCl2 während der Inkubation von Pra1 mit T-Zellen kann das Signal von gebundenem Pra1 an CD4+ T-Zellen erhöht werden. Aspf2, ein Protein aus Aspergillus fumigatus mit großer Homologie zu Pra1, kann nicht an diese Zellen binden.
Im in-vivo-Experiment mit Tieren, die mit C. albicans infiziert wurden, konnte kein wildtypisches sezerniertes Pra1 gebunden an T-Zellen nachgewiesen werden. Zellkulturüberstände von C. albicans zeigten nach Inkubation in vitro mit T-Zellen ein Signal für gebundenes Pra1 an CD4+ T-Zellen.
Die Bindungskinetik von Pra1 an T-Zellen zeigte eine über die Zeit der Inkubation konstante Zunahme des Signals von zellgebundenem rPra1 an CD4+ T-Zellen. In der off-Kinetik fand sich eine Abnahme des Signals über die Zeit bis an die Grenze der Nachweisbarkeit.
Der Bindungspartner von Pra1 auf T-Zellen konnte nicht identifiziert werden. Die strukturell und funktionell verwandten Oberflächenproteine Crry, CD59a und CD55 wurden auf Bindungsfähigkeit an T-Zellen in entsprechenden Knockout- Mäusen getestet, konnten jedoch als Rezeptor für Pra1 ausgeschlossen werden. Durch die Bindung von sezerniertem Pra1 an neutrophile Granulozyten wird die Fähigkeit dieser Zellen zur Phagozytose eingeschränkt. Die Bindung von Pra1 an CD4+ T-Zellen führt zur Kostimulation der T-Zellen, also zur verstärkten Zellaktivierung und Proliferation. Durch die Zugabe von 10 μM Zinkchlorid wird die kostimulatorische Aktivität von Pra1 verstärkt.
Während der Zellaktivierung von Effektor-Memory-CD4+ T-Zellen reduziert rPra1 die Sekretion von IFN-γ. Diese Reduktion von IFN-γ-produzierenden Zellen entsteht nicht durch einen Einfluss von Pra1 während der Zellaktivierung von naiven CD4+ T-Zellen zu Th1-Zellen und auch nicht durch die Auslösung von Apoptose in IFN-γ-produzierenden Th1-Zellen. Die Bindung von Pra1 an CD4+- T-Zellen, die über den T-Zell-Rezeptor aktiviert werden, reduziert in vitro die Sekretion des Zytokins. Zusätzlich werden weitere Zytokine in ihrer sezernierten Menge reduziert wie IL-2 und TNF-α.
Farnesol, produced by the polymorphic fungus Candida albicans, is the first quorum-sensing molecule discovered in eukaryotes. Its main function is control of C. albicans filamentation, a process closely linked to pathogenesis. In this study, we analyzed the effects of farnesol on innate immune cells known to be important for fungal clearance and protective immunity. Farnesol enhanced the expression of activation markers on monocytes (CD86 and HLA-DR) and neutrophils (CD66b and CD11b) and promoted oxidative burst and the release of proinflammatory cytokines (tumor necrosis factor alpha [TNF-\(\alpha\)] and macrophage inflammatory protein 1 alpha [MIP-1 \(\alpha\)]). However, this activation did not result in enhanced fungal uptake or killing. Furthermore, the differentiation of monocytes to immature dendritic cells (iDC) was significantly affected by farnesol. Several markers important for maturation and antigen presentation like CD1a, CD83, CD86, and CD80 were significantly reduced in the presence of farnesol. Furthermore, farnesol modulated migrational behavior and cytokine release and impaired the ability of DC to induce T cell proliferation. Of major importance was the absence of interleukin 12 (IL-12) induction in iDC generated in the presence of farnesol. Transcriptome analyses revealed a farnesol-induced shift in effector molecule expression and a down-regulation of the granulocyte-macrophage colony-stimulating factor (GM-CSF) receptor during monocytes to iDC differentiation. Taken together, our data unveil the ability of farnesol to act as a virulence factor of C. albicans by influencing innate immune cells to promote inflammation and mitigating the Th1 response, which is essential for fungal clearance.
RNAseq analysis of Aspergillus fumigatus in blood reveals a just wait and see resting stage behavior
(2015)
Background:
Invasive aspergillosis is started after germination of Aspergillus fumigatus conidia that are inhaled by susceptible individuals. Fungal hyphae can grow in the lung through the epithelial tissue and disseminate hematogenously to invade into other organs. Low fungaemia indicates that fungal elements do not reside in the bloodstream for long.
Results:
We analyzed whether blood represents a hostile environment to which the physiology of A. fumigatus has to adapt. An in vitro model of A. fumigatus infection was established by incubating mycelium in blood. Our model allowed to discern the changes of the gene expression profile of A. fumigatus at various stages of the infection. The majority of described virulence factors that are connected to pulmonary infections appeared not to be activated during the blood phase. Three active processes were identified that presumably help the fungus to survive the blood environment in an advanced phase of the infection: iron homeostasis, secondary metabolism, and the formation of detoxifying enzymes.
Conclusions:
We propose that A. fumigatus is hardly able to propagate in blood. After an early stage of sensing the environment, virtually all uptake mechanisms and energy-consuming metabolic pathways are shut-down. The fungus appears to adapt by trans-differentiation into a resting mycelial stage. This might reflect the harsh conditions in blood where A. fumigatus cannot take up sufficient nutrients to establish self-defense mechanisms combined with significant growth.
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.
The pathogenic yeast Candida albicans can develop resistance to the widely used antifungal agent fluconazole, which inhibits ergosterol biosynthesis, by the overexpression of genes encoding multidrug efflux pumps or ergosterol biosynthesis enzymes. Zinc cluster transcription factors play a central role in the transcriptional regulation of drug resistance. Mrr1 regulates the expression of the major facilitator MDR1, Tac1 controls the expression of the ABC transporters CDR1 and CDR2, and Upc2 regulates ergosterol biosynthesis (ERG) genes. Gain-of-function mutations in these transcription factors result in constitutive overexpression of their target genes and are responsible for fluconazole resistance in many clinical C. albicans isolates. The transcription factor Ndt80 contributes to the drug-induced upregulation of CDR1 and ERG genes and also binds to the MDR1 and CDR2 promoters, suggesting that it is an important component of all major transcriptional mechanisms of fluconazole resistance. However, we found that Ndt80 is not required for the induction of MDR1 and CDR2 expression by inducing chemicals. CDR2 was even partially derepressed in ndt80D mutants, indicating that Ndt80 is a repressor of CDR2 expression. Hyperactive forms of Mrr1, Tac1, and Upc2 promoted overexpression of MDR1, CDR1/CDR2, and ERG11, respectively, with the same efficiency in the presence and absence of Ndt80. Mrr1- and Tac1-mediated fluconazole resistance was even slightly enhanced in ndt80D mutants compared to wild-type cells. These results demonstrate that Ndt80 is dispensable for the constitutive overexpression of Mrr1, Tac1, and Upc2 target genes and the increased fluconazole resistance of strains that have acquired activating mutations in these transcription factors.
Die Detektion von Umweltsignalen und die gezielte zelluläre Reaktion ist eine zentrale und für das Überleben aller Lebewesen essentielle Fähigkeit. Candida albicans, als dominierender humanpathogener Pilz, ist hochgradig verschiedenen biochemischen und physikalischen Umweltbedingungen ausgesetzt, welche sowohl die Zellmorphologie als auch die Virulenz dieses Erregers beeinflussen. In der vorliegenden Arbeit wurde der Einfluss von Kohlendioxid, als ubiquitär vorkommendes Gasmolekül, auf die Zellmorphologie und Virulenz untersucht. Erhöhte Konzentrationen von Kohlendioxid stellen ein äußerst robustes Umweltsignal dar, welches die morphologische Transition vom Hefewachstum zum hyphalen Wachstum, einem Hauptvirulenzfaktor, in Candida albicans stimuliert. In diesem Zusammenhang wurde die Rolle der putativen Carboanhydrase Nce103 durch die Generation von knock – out Mutanten untersucht. Die Disruption von NCE103 in C. albicans führt zu einem Kohlendioxid – abhängigen Phänotyp, welcher Wachstum unter aeroben Bedingungen (ca. 0,033% CO2) nicht zulässt, jedoch unter Bedingungen mit einem erhöhten CO2 Gehalt von ca. 5% ermöglicht. NCE103 ist also für das Wachstum von C. albicans in Wirtsnischen mit aeroben Bedingungen essentiell. Durch Untersuchungen zur Enzymkinetik mittels Stopped – flow wurde in dieser Arbeit gezeigt, dass Nce103 die Funktion einer Carboanhydrase erfüllt. Die biochemische Funktion dieser Carboanhydrase besteht in der Fixation von CO2 bzw. HCO3ˉ in der Zelle zur Unterhaltung der wesentlichen metabolischen Reaktionen. Weiterhin konnte gezeigt werden, dass die Induktion hyphalen Wachstums durch CO2 in C. albicans nicht durch den Transport von CO2 mittels des Aquaporins Aqy1 beeinflusst wird. CO2 bzw. HCO3ˉ aktiviert in der Zelle direkt eine Adenylylcyclase (Cdc35), welche sich grundlegend von den bisher gut charakterisierten G-Protein gekoppelten Adenylylcylasen unterscheidet. Die Generation von cAMP beeinflusst in der Folge direkt die Transkription hyphenspezifischer Gene und nachfolgend die morphologische Transition vom Hefewachstum zum elongierten, hyphalen Wachstum. Dieser Mechanismus konnte sowohl in Candida albicans als auch in Cryptococcus neoformans nachgewiesen werden, was auf einen panfungal konservierten Signaltransduktionsmechanismus schliessen lässt. Die Inhibition dieser spezifischen Kaskade eröffnet neue Ansätze zur Entwicklung spezifischer antimykotischer Wirkstoffe.
Candida albicans ist ein opportunistischer Hefepilz, den die meisten gesunden Menschen als harmlosen Kommensalen des Verdauungstraktes beherbergen. Bei einer Schwächung des Immunsystemes kann es jedoch zu schweren Candida-Infektionen bis hin zur lebensbedrohlichen Pilzsepsis kommen. Neben anderen Virulenzfaktoren spielt offenbar der Polymorphismus, also die Fähigkeit, sowohl in einer sprossenden Hefeform als auch in einer filamentösen Hyphenform zu wachsen, eine bedeutende Rolle in der Pathogenität von C._albicans. Welche Wachstumsform überwiegt, hängt entscheidend von den Wachstumsbedingungen, insbesondere auch vom pH-Wert, ab. Im Zentrum des pH-abhängigen Transduktionsweges steht der alkalisch-exprimierte Transkriptionsfaktor RIM101, dessen inaktive Vorläuferform unter neutralen bzw. alkalischen Wachstumsbedingungen vermutlich durch eine zweistufige proteolytische Prozessierung des C-Terminus in (mindestens) eine aktive Form übergeführt wird. Diese wiederum hat mindestens zwei Funktionen: Erstens induziert sie im Rahmen der pH-abhängigen Genexpression unter anderem PHR1 und reprimiert PHR2, die beide für den Zellwandaufbau erforderliche, funktionell homologe Proteine kodieren. Zweitens steuert sie bei gleichzeitig vorliegender Temperaturerhöhung auf ca. 37°C auf noch unbekannte Weise den Übergang der Zelle in die filamentöse Wachstumsform. Ziel dieser Arbeit ist es, die Folgen C-terminaler Verkürzungen von Rim101 auf das Wachstum, die PHR1-Induktion und die Filamentierung, jeweils in Abhängigkeit vom extrazellulären pH-Wert, zu untersuchen. Daraus können neue Einsichten über die Bedeutung von RIM101, den Mechanismus seiner Aktivierung und seine Funktion im Geflecht der Transduktionskaskaden gewonnen werden. Hierzu wurden zunächst 14 phr2∆-Suppressormutanten isoliert, die trotz der phr2∆-Nullmutation in der Lage waren, bei saurem pH-Wert zu wachsen. Es zeigte sich, dass diese Stämme im sauren Milieu nicht nur eine starke PHR1-Induktion aufwiesen, sondern darüber hinaus unabhängig vom pH-Wert des Mediums in hohen Raten zur Filamentierung fähig waren. Die molekulargenetische Analyse beider RIM101-Allele in diesen Revertanten ergaben, dass in jedem der Stämme ein RIM101-Allel eine Nonsense-Mutation enthielt, die offensichtlich zur Synthese eines trunkierten und damit konstitutiv aktiven Rim101p führte. Die spontan aufgetretenen RIM101-Suppressormutationen fanden sich bei den 14 verschiedenen analysierten Revertanten in einem umschriebenen Bereich, der auf dem das C-terminale Drittel codierenden Teil des RIM101-ORF liegt. Um die Folgen von stärkeren, also weiter upstream lokalisierten, Rim101p-Trunkierungen zu untersuchen, wurden daraufhin C.-albicans-Stämme konstruiert, die nach Transformation eines linearisierten Plasmides jeweils ein RIM101-Allel mit einer gezielt eingeführten Nonsense-Mutation enthielten. Wir erhielten 19 solcher Stämme (phr2∆) mit in 5’-Richtung progessiven RIM101-Trunkierungen in einem weiten Bereich des RIM101-ORF. Interessanterweise konnten wir bei der darauf folgenden Untersuchung der gewonnenen Stämme drei Gruppen von RIM101-Trunkierungen unterscheiden, die verschiedene Konsequenzen für Wachstum und Filamentierung mit sich brachten: a) Der Austausch der Codons 281, 305 und 333, die näher am 5’-Ende im Bereich oder der Nähe der Zinkfingerregion lokalisiert sind, ermöglicht kein Wachstum bei pH 4. b) Die Einführung von Nonsense-Codons an die Stellen 385 und 411 führt dazu, dass die entsprechenden Stämme bei pH 4 wachsen und PHR1 induzieren, aber nicht in der Lage sind, bei diesem pH-Wert zu filamentieren. c) Dagegen erlaubt der Ersatz von einem der Codons 463 bis 475 durch ein Stop-Codon Wachstum, PHR1-Induktion und filamentöses Wachstum bei pH 4. Die Region zwischen den Aminosäuren 411 und 463 muss also für die Initiation der Keimschlauchbildung essentiell, für die Induktion pH-regulierter Gene wie PHR1 aber nicht notwendig sein. Dieses Ergebnis scheint darauf hinzuweisen, dass der Funktion des Transkriptionsfaktors Rim101p in den Bereichen Zellwandaufbau/Wachstum und pH-abhängiger Morphogenese zwei verschiedenartige Steuermechanismen zugrunde liegen. Denkbare Modelle für solche Mechanismen werden in der vorliegenden Arbeit auf dem Hintergrund früherer Studien diskutiert. Der letzte Teil dieser Arbeit befasst sich mit der potentiellen Bedeutung von Rim101p bei der Regulation der Expression von sog. sekretorischen Aspartylproteinasen (SAPs). Mit Hilfe eines Reportersystemes sollen die Auswirkungen von RIM101-Mutationen auf drei „hyphenspezifische“ Mitglieder der SAP-Genfamilie, nämlich SAP4, SAP5 und SAP6, untersucht werden. Daraus gewonnene Informationen könnten die bisher vorwiegend isolierte Betrachtung des Dimorphismus und der Proteinasen im Pathogenitätsprozess ausweiten auf ein sich ergänzendes Zusammenspiel dieser Faktoren.
Es konnte mit PHR3 bei Candida albicans ein drittes GAS-homologes Gen nachgewiesen werden. Dieses weist überzeugende Übereinstimmungen der Nuklein- und Aminosäurensequenz und mit der fehlenden GPI-Verankerungsstelle und der pH-konstitutiven Expression auch interessante Unterschiede zu den bisher bekannten Genen der PHR-Familie auf. Eine funktionelle Homologie zu den weiteren PHR-Genen bei Candida albicans konnte nicht belegt werden. Es sind bisher in verschiedenen Spezies mehrere homologe Gene dieser Familie nachgewiesen worden. So sind auch bei Candida albicans weitere möglich und die endgültige Zahl der PHR-Gene wird erst nach Abschluß des Candida albicans-Genomprojektes bestimmt werden können. Der Zweck mehrerer homologer Gene ist insbesondere für die bei unterschiedlichen pH-Werten vorliegenden Proteine Phr1p und Phr2p noch nicht bekannt. Eine mögliche Erklärung ist, dass ihre Translation auf unterschiedliche Weise die Expression anderer Gene oder die Prozessierung und Funktion von Proteinen beeinflusst. Eine solche feine Regulation von Wachstums- und Virulenzfaktoren und somit eine Anpassung an Umweltbedingungen und Infektionswege ist für die Pathogenität von Candida albicans von Bedeutung. Die spezifischen Faktoren für die Induktion von PHR3 sind, sollte eine differenzierte Regulation vorliegen, dagegen ebenso wenig wie für GAS4, als nähestes verwandtes Gen, und für die weiteren GAS-Gene bekannt. Zum Nachweis einer solchen signalspezifischen Transkription sind Experimente mit anderen Versuchsanordnungen, mit welchen sich komplexere Milieus und Infektionswege untersuchen lassen, wie DNA-Chips oder induktionsabhängige Signalkassetten (Morschhäuser et al., 1999; Staib et al., 1999) hilfreich. Da eine fehlende C-terminale Region bei GAS1 zur Sekretion eines vergrößerten Proteins mit Hypermannosylierung der serinreichen Region führt (Popolo et Vai, 1998), erscheint auch eine extrazelluläre Funktion von Phr3p, welches dieses hydrophobe 3’ Ende nativ nicht besitzt, möglich. Dabei ist eine zu Phr1p und Phr2p ähnliche oder gleiche enzymatische Funktion, welche in Diskussion 112 unterschiedlichen Kompartimenten oder von unterschiedlicher Lokalisation aus den Aufbau der Zellwand beeinflusst, denkbar.