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Life-threatening systemic infections often occur due to the translocation of pathogens across the gut barrier and into the bloodstream. While the microbial and host mechanisms permitting bacterial gut translocation are well characterized, these mechanisms are still unclear for fungal pathogens such as Candida albicans, a leading cause of nosocomial fungal bloodstream infections. In this study, we dissected the cellular mechanisms of translocation of C. albicans across intestinal epithelia in vitro and identified fungal genes associated with this process. We show that fungal translocation is a dynamic process initiated by invasion and followed by cellular damage and loss of epithelial integrity. A screen of >2,000 C. albicans deletion mutants identified genes required for cellular damage of and translocation across enterocytes. Correlation analysis suggests that hypha formation, barrier damage above a minimum threshold level, and a decreased epithelial integrity are required for efficient fungal translocation. Translocation occurs predominantly via a transcellular route, which is associated with fungus-induced necrotic epithelial damage, but not apoptotic cell death. The cytolytic peptide toxin of C. albicans, candidalysin, was found to be essential for damage of enterocytes and was a key factor in subsequent fungal translocation, suggesting that transcellular translocation of C. albicans through intestinal layers is mediated by candidalysin. However, fungal invasion and low-level translocation can also occur via non-transcellular routes in a candidalysin-independent manner. This is the first study showing translocation of a human-pathogenic fungus across the intestinal barrier being mediated by a peptide toxin. IMPORTANCE Candida albicans, usually a harmless fungus colonizing human mucosae, can cause lethal bloodstream infections when it manages to translocate across the intestinal epithelium. This can result from antibiotic treatment, immune dysfunction, or intestinal damage (e.g., during surgery). However, fungal processes may also contribute. In this study, we investigated the translocation process of C. albicans using in vitro cell culture models. Translocation occurs as a stepwise process starting with invasion, followed by epithelial damage and loss of epithelial integrity. The ability to secrete candidalysin, a peptide toxin deriving from the hyphal protein Ece1, is key: C. albicans hyphae, secreting candidalysin, take advantage of a necrotic weakened epithelium to translocate through the intestinal layer.
Humane neutrophile Granulozyten spielen eine wichtige Rolle in der Immunabwehr invasiver Infektionen durch die humanpathogenen Pilze Candida albicans und Aspergillus fumigatus. Das Ziel der hier vorliegenden Arbeit bestand in einer Charakterisierung der Interaktion beider Pilzspezies mit neutrophilen Granulozyten, mit Fokussierung auf die unterschiedlichen Effektormechanismen dieser Zellen. C. albicans exprimiert eine Reihe von Aspartatproteasen, welche mit der Virulenz des Erregers assoziiert sind und zu Adhäsion, Gewebeinvasion und Immunevasion beitragen können. In dieser Arbeit wurde die Rolle der Aspartatproteasen Sap1-6, Sap9 und Sap10 in der Interaktion mit neutrophilen Granulozyten analysiert. Es konnte gezeigt werden, dass, im Gegensatz zu anderen Aspartatproteasen, das zelloberflächenassoziierte GPI-verankerte Enzym Sap9 einen maßgeblichen Einfluss auf die Erkennung von C. albicans durch neutrophile Granulozyten hat. SAP9-Expression ist erforderlich, um die gerichtete Motilität (Chemotaxis) neutrophiler Granulozyten zu C. albicans-Keimschläuchen hin zu induzieren. Dieser Prozess stellt eine Grundvoraussetzung zur effektiven Aktivierung neutrophiler Granulozyten darstellt. Die Chemotaxis neutrophiler Granulozyten kann durch autologe Sekretion des Zytokins IL-8 verstärkt werden. Es konnte jedoch kein Einfluss von SAP9 auf die IL-8 Sekretion beobachtet werden. Allerdings führte die Deletion von SAP9 zu reduzierter Freisetzung von reaktiven Sauerstoffspezies (engl. reactive oxygen species, ROS) in neutrophilen Granulozyten. Die mit der ROS-Generierung in Verbindung stehende und durch C. albicans induzierte Apoptose neutrophiler Granulozyten war ebenfalls vermindert. In Konfrontationsassays war die Abtötung einer SAP9-Deletionsmutante verglichen mit dem Wildtyp reduziert. Die Degranulation stellt neben der Produktion von ROS einen weiteren wichtigen Effektormechanismus zur Abtötung von Mikroben dar, jedoch verlief die Freisetzung von Elastase ebenso unabhängig von SAP9 wie die durch neutrophile Granulozyten ausgelöste Wachstumsinhibition von Keimschläuchen. Die hier präsentierten Daten verbinden die Aktivität der Protease Sap9, der zuvor bereits eine Rolle in der Immunevasion von C. albicans zugeschrieben wurde, mit der Initiation der protektiven angeborenen Immunität. Wie C. albicans stimuliert auch A. fumigatus die Aktivität der neutrophilen Granulozyten. Microarray- Analysen mit Fokus auf dem Zytokinprofil neutrophiler Granulozyten während der Interaktion mit A. fumigatus-Hyphen offenbarten, dass nur wenige Zytokine im Lauf der Infektion hochreguliert wurden. Zusammenfassend konnte gezeigt werden, dass die Sap-Granulozyten-Interaktion neue molekulare Mechanismen zur Aktivierung dieser Zellen birgt. Zudem brachten die Microarray Analysen die Erkenntnis, dass die de novo-Zytokinsynthese durch A. fumigatus nur geringfügig beeinflusst wird und eine schnelle Abtötung des Pilzes offenbar im Vordergrund steht.
The opportunistic fungal pathogen Candida albicans frequently produces genetically altered variants to adapt to environmental changes and new host niches in the course of its life-long association with the human host. Gain-of-function mutations in zinc cluster transcription factors, which result in the constitutive upregulation of their target genes, are a common cause of acquired resistance to the widely used antifungal drug fluconazole, especially during long-term therapy of oropharyngeal candidiasis. In this study, we investigated if C. albicans also can develop resistance to the antimicrobial peptide histatin 5, which is secreted in the saliva of humans to protect the oral mucosa from pathogenic microbes. As histatin 5 has been shown to be transported out of C. albicans cells by the Flu1 efflux pump, we screened a library of C. albicans strains that contain artificially activated forms of all zinc cluster transcription factors of this fungus for increased FLU1 expression. We found that a hyperactive Mrr1, which confers fluconazole resistance by upregulating the multidrug efflux pump MDR1 and other genes, also causes FLU1 overexpression. Similarly to the artificially activated Mrr1, naturally occurring gain-of-function mutations in this transcription factor also caused FLU1 upregulation and increased histatin 5 resistance. Surprisingly, however, Mrr1-mediated histatin 5 resistance was mainly caused by the upregulation of MDR1 instead of FLU1, revealing a previously unrecognized function of the Mdr1 efflux pump. Fluconazole-resistant clinical C. albicans isolates with different Mrr1 gain-of-function mutations were less efficiently killed by histatin 5, and this phenotype was reverted when MRR1 was deleted. Therefore, antimycotic therapy can promote the evolution of strains that, as a consequence of drug resistance mutations, simultaneously have acquired increased resistance against an innate host defense mechanism and are thereby better adapted to certain host niches.
The heterotrimeric protein kinase SNF1 plays a key role in the metabolic adaptation of the pathogenic yeast Candida albicans. It consists of the essential catalytic α-subunit Snf1, the γ-subunit Snf4, and one of the two β-subunits Kis1 and Kis2. Snf4 is required to release the N-terminal catalytic domain of Snf1 from autoinhibition by the C-terminal regulatory domain, and snf4Δ mutants cannot grow on carbon sources other than glucose. In a screen for suppressor mutations that restore growth of a snf4Δ mutant on alternative carbon sources, we isolated a mutant in which six amino acids between the N-terminal kinase domain and the C-terminal regulatory domain of Snf1 were deleted. The deletion was caused by an intragenic recombination event between two 8-bp direct repeats flanking six intervening codons. In contrast to truncated forms of Snf1 that contain only the kinase domain, the Snf4-independent Snf1\(^{Δ311 − 316}\) was fully functional and could replace wild-type Snf1 for normal growth, because it retained the ability to interact with the Kis1 and Kis2 β-subunits via its C-terminal domain. Indeed, the Snf4-independent Snf1\(^{Δ311 − 316}\) still required the β-subunits of the SNF1 complex to perform its functions and did not rescue the growth defects of kis1Δ mutants. Our results demonstrate that a preprogrammed in-frame deletion event within the SNF1 coding region can generate a mutated form of this essential kinase which abolishes autoinhibition and thereby overcomes growth deficiencies caused by a defect in the γ-subunit Snf4.
Der opportunistisch humanpathogene Hefepilz Candida albicans gehört bei vielen gesunden Menschen zur mikrobiellen Schleimhautflora, kann jedoch bei abwehrgeschwächten Patienten oberflächliche Infektionen sowie auch lebensbedrohliche tiefe Organmykosen verursachen. Obwohl der Immunstatus des Wirtes für eine Infektion mit diesem Erreger von entscheidender Bedeutung ist, tragen vermutlich auch eine Reihe von Virulenzfaktoren zur Pathogenität von C. albicans bei, indem sie Besiedlung, Ausbreitung und Vermehrung der Pilzzellen unter Anpassung an die verschiedensten Wirtsnischen unterstützen. Eine für die Pathogenität von C. albicans wichtige Eigenschaft ist die Bildung sekretorischer Aspartylproteasen (SAPs), die durch eine große Familie homologer Gene codiert werden. Es wird angenommen, dass die individuellen Proteasen während der Infektion verschiedene Aufgaben erfüllen bzw. optimal an unterschiedliche Wirtsnischen angepaßt sind. Jedoch ist der Beitrag der einzelnen SAP-Gene zur Pathogenese noch weitgehend unverstanden. Da die wirtsinduzierte Aktivierung dieser Virulenzgene während bestimmter Infektionsstadien Hinweise auf ihre spezifische pathogenetische Bedeutung liefern könnte, wurde in dieser Arbeit eine Methode für C. albicans entwickelt, mit der die Induktion eines Gens während der Infektion nachgewiesen werden kann. Die Methode beruht auf einer genetischen Rekombination als Reporter einer Genexpression, was bedeutet, dass nach Induktion des zu untersuchenden Gens eine site-spezifische Rekombinase spezifisch einen Mykophenolsäure-Resistenzmarker aus dem Genom der Zelle entfernt. Da diese Deletion ein irreversibles Ereignis darstellt, das auf die jeweiligen Nachkommen vererbt wird, kann selbst eine vorübergehende Genaktivierung während eines bestimmten Infektionsstadiums bzw. in einem bestimmten Organ in einzelnen Zellen nach deren Reisolierung aus infiziertem Gewebe durch Ausplattieren auf geeignetem Indikatormedium nachgewiesen werden. Durch Analyse der Expression des SAP2-Gens wurde bestätigt, dass mit diesem Reportersystem eine biologisch signifikante Genaktivierung in C. albicans nachgewiesen werden kann. SAP2 wird in C. albicans in vitro in einem Medium induziert, das Rinderserumalbumin als alleinige Stickstoffquelle enthält, ist in anderen gängigen Labormedien jedoch reprimiert. Diese in vivo-Expressionstechnologie (IVET) wurde verwendet, um die Expression von sechs verschiedenen SAP-Genen von C. albicans, SAP1-SAP6, in unterschiedlichen Tiermodellen zu studieren. Dabei konnte gezeigt werden, dass die einzelnen Proteasegene abhängig von der Art der Infektion, d.h. lokal begrenzte Schleimhautinfektion bzw. Systeminfektion, und auch vom Infektionsstadium differentiell reguliert werden. Dabei wurden sogar die äußerst homologen Gene SAP4-SAP6, die aufgrund von in vitro erzielten Ergebnissen als hyphenspezifische Gene galten, in vivo unterschiedlich reguliert. SAP5 und SAP6, aber nicht die anderen SAP-Gene, wurden in einem Maus-Ösophagus-Schleimhautmodell signifikant aktiviert, als die C. albicans-Hyphen in das Epithel invadierten. Eine stadienspezifische Expression der SAP-Gene wurde in einem Maus-Peritonitis-Modell beobachtet. Kurz nach Inokulation der C. albicans-Hefezellen in die Bauchhöhle der Tiere, zu einem Zeitpunkt, als noch keine Ausbildung von Hyphen zu beobachten war, wurde SAP5, aber nicht SAP6 oder eines der anderen analysierten SAP-Gene in einem signifikanten Anteil der infizierenden Zellen aktiviert. Demzufolge scheint SAP5 für die Gewebeinvasion während der Schleimhautinfektion und auch für die ersten Schritte während einer disseminierenden Infektion von Bedeutung zu sein. Durch die intravenöse Infektion der Maus, bei der frühe Infektionsschritte umgangen werden, wurde gezeigt, dass SAP5 und SAP6, aber auch SAP4, während der späteren Stadien einer disseminierenden Infektion weiterhin aktiviert werden. Dagegen wurde eine Induktion des SAP2-Gens vorwiegend im Spätstadium einer systemischen Infektion beobachtet, nachdem die Pilzzellen innere Organe befallen hatten. Daher fördert SAP2 vermutlich weniger die Invasion von Geweben, dafür aber die Vermehrung der Pilze nach Organbefall, möglicherweise durch die Bereitstellung von Nährstoffen. Dabei wurde gezeigt, dass die in vivo-Regulation von SAP2 durch bestimmte Repeatstrukturen innerhalb der Promotorregion dieses Gens beeinflußt wird. Während des Verlaufs einer systemischen Infektion wurden sogar die zwei SAP2-Allele des hier untersuchten C. albicans-Modellstammes CAI4, die sich in dieser Repeatregion unterscheiden, differentiell reguliert. Das SAP2-2-Allel wurde nämlich bereits deutlich früher induziert als das Allel SAP2-1. Eine Expression von SAP1 und SAP3 konnte im Gegensatz zu den anderen SAP-Genen nur in wenigen der infizierenden Zellen nachgewiesen werden, so dass diesen Genen ein Beitrag zur Pathogenität in den hier untersuchten Infektionsmodellen nicht beigemessen werden kann. Im Verlauf einer Infektion setzt C. albicans vermutlich viele verschiedene Virulenzfaktoren gleichzeitig für eine bestmögliche Anpassung an die jeweilige Wirtsnische ein. Ob in Abhängigkeit entsprechender Wirtssignale dabei unterschiedliche Eigenschaften der Pilzzelle koordiniert reguliert werden, ist kaum erforscht, erscheint jedoch für ein besseres Verständnis der Erreger-Wirts-Auseinandersetzung von besonderem Interesse. An der Kontrolle der Hyphenbildung von C. albicans sind wenigstens zwei Signaltransduktionskaskaden beteiligt, eine MAP-Kinase-Kaskade und ein cAMP-abhängiger Signalweg, die in den Transkriptionsregulatoren CPH1 bzw. EFG1 enden. Nachdem dimorphes Wachstum für die Infektion von Bedeutung ist und die Expression der Gene SAP4-SAP6 in vitro mit der Hyphenwachstumsphase verbunden ist, wurde eine mögliche Abhängigkeit hyphenassoziierter SAP-Aktivierung von diesen Regulatoren durch die Analyse der SAP5-Expression in entsprechenden Mutanten analysiert. Sowohl in cph1- als auch in efg1-Einzelmutanten wurde eine reduzierte Aktivierung des SAP5-Gens in vivo beobachtet. Dadurch konnte gezeigt werden, dass sowohl CPH1 als auch EFG1 zur SAP5-Aktivierung während der Infektion beitragen. Da cph1-Mutanten im infizierten Gewebe wie der Wildtyp-Stamm Hyphen ausbildeten, war die Hyphenbildung allein offensichtlich nicht für eine volle SAP5-Aktivierung in vivo ausreichend. Andererseits war die SAP5-Induktion in vivo nicht von der Hyphenwachstumsphase abhängig, da eine verminderte, aber dennoch signifikante SAP5-Expression auch in den efg1-Mutanten zu beobachten war, die in den infizierten Tieren nur in der Hefephase wuchsen. In Zellen, in denen beide Regulatoren fehlten, konnte eine Induktion von SAP5 kaum nachgewiesen werden. Das bedeutet, dass diese Signalwege in C. albicans für die Kontrolle verschiedener zellulärer Programme während der Infektion wichtig sind und die Expression von unterschiedlichen Virulenzgenen koordinieren. Durch die in vivo-Analyse der Virulenzgenexpression in C. albicans konnten Einblicke in regulatorische Anpassungsmechanismen dieses Mikroorganismus an verschiedene Wirtsnischen gewonnen werden. Einzelne Mitglieder einer Virulenzgenfamilie dieses Pilzes werden während der Infektion differentiell und in Abhängigkeit vom Infektionsstadium reguliert und tragen daher vermutlich sehr spezifisch zur Pathogenese bei. Unterschiedliche Virulenzmerkmale können zudem während der Infektion koordiniert reguliert werden und dadurch gemeinsam die Anpassungsfähigkeit von C. albicans an den Wirt unterstützen. Die erzielten Erkenntnisse sollten letztlich dazu beitragen, die Pathogenität dieses wichtigen opportunistisch humanpathogenen Erregers besser verstehen zu können.
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.
Analysis of the mechanism and the regulation of histatin 5 resistance in \(Candida\) \(albicans\)
(2018)
Antimycotics such as fluconazole are frequently used to treat C. albicans infections of the oral mucosa. Prolonged treatment of the fungal infection with fluconazole pose a risk to resistance development. C. albicans can adapt to these stressful environmental changes by regulation of gene expression or by producing genetically altered variants that arise in the population. Adapted variants frequently carry activating mutations in zinc cluster transcription factors, which cause the upregulation of their target genes, including genes encoding efflux pumps that confer drug resistance. MDR1, regulated by the zinc cluster transcription factor Mrr1, as well as CDR1 and CDR2, regulated by the zinc cluster transcription factor Tac1, are well-known examples of genes encoding efflux pumps that extrude the antimycotic fluconazole from the fungal cell and thus contribute to the survival of the fungus.
In this study, it was investigated if C. albicans can develop resistance to the antimicrobial peptide histatin 5, which serves as the first line of defence in the oral cavity of the human host. Recently, it was shown that C. albicans transports histatin 5 outside of the Candia cell via the efflux pump Flu1. As efflux pumps are often regulated by zinc cluster transcription factors, the Flu1 efflux pump could also be regulated by a zinc cluster transcription factor which could in a hyperactive form upregulate the expression of the efflux pump, resulting in increased export of histatin 5 and consequently in histatin 5 resistance.
In order to find a zinc cluster transcription factor that upregulates FLU1 expression, a comprehensive library of C. albicans strains containing artificially activated forms of zinc cluster transcription factors was screened for suitable candidates. The screening was conducted on medium containing mycophenolic acid because mycophenolic acid is also a substrate of Flu1 and a strain expressing a hyperactive zinc cluster transcription factor that upregulates FLU1 expression should exhibit an easily recognisable mycophenolic acid-resistant phenotype. Further, FACS analysis, quantitative real-time RT-PCR analysis, broth microdilution assays as well as histatin 5 assays were conducted to analyse the mechanism and the regulation of histatin 5 resistance.
Several zinc cluster transcription factors caused mycophenolic acid resistance and upregulated FLU1 expression. Of those, only hyperactive Mrr1 was able to confer increased histatin 5 resistance. Finding Mrr1 to confer histatin 5 resistance was highly interesting as fluconazole-resistant strains with naturally occurring Mrr1 gain of function mutations exist, which were isolated from HIV-infected patients with oral candidiasis. These Mrr1 gain of function mutations as well as artificially activated Mrr1 cause fluconazole resistance by upregulation of the efflux pump MDR1 and other target genes. In the course of the study, it was found that expression of different naturally occurring MRR1 gain-of-function mutations in the SC5314 wild type background caused increased FLU1 expression and increased histatin 5 resistance. The same was true for fluconazole-resistant clinical isolates with Mrr1 gain of function mutations, which also caused the overexpression of FLU1. Those cells were less efficiently killed by histatin 5 dependent on Mrr1. Surprisingly, FLU1 contributed only little to histatin 5 resistance, rather, overexpression of MDR1 mainly contributed to the Mrr1-mediated histatin 5 resistance, but also additional Mrr1-target genes were involved. These target genes are yet to be uncovered. Moreover, if a link between the yet unknown Mrr1-target genes contributing to fluconazole resistance and increased histatin 5 resistance can be drawn remains to be discovered upon finding of the responsible target genes.
Collectively, this study contributes to the understanding of the impact of prolonged antifungal exposure on the interaction between host and fungus. Drug therapy can give rise to resistance evolution resulting in strains that have not only developed resistance to fluconazole but also to an innate host mechanism, which allows adaption to the host niche even in the absence of the drug.
The number of fungal infections is rising in Germany and worldwide. These infections are mainly caused by the opportunistic fungal pathogen C. albicans, which especially harms immunocompromised people. With increasing numbers of fungal infections, more frequent and longer lasting treatments are necessary and lead to an increase of drug resistances, for example against the clinically applied therapeutic fluconazole. Drug resistance in C. albicans can be mediated by the Multidrug resistance pump 1 (Mdr1), a membrane transporter belonging to the major facilitator family. However, Mdr1-mediated fluconazole drug resistance is caused by the pump’s regulator, the transcription factor Mrr1 (Multidrug resistance regulator 1). It was shown that Mrr1 is hyperactive without stimulation or further activation in resistant strains which is due to so called gain of function mutations in the MRR1 gene.
To understand the mechanism that lays behind this constitutive activity of Mrr1, the transcription factor should be structurally and functionally (in vitro) characterized which could provide a basis for successful drug development to target Mdr1-mediated drug resistance caused by Mrr1. Therefore, the entire 1108 amino acid protein was successfully expressed in Escherichia coli. However, further purification was compromised as the protein tended to form aggregates, unsuitable for crystallization trials or further characterization experiments. Expression trials in the eukaryote Pichia pastoris neither yielded full length nor truncated Mrr1 protein. In order to overcome the aggregation problem, a shortened variant, missing the N-terminal 249 amino acids named Mrr1 ‘250’, was successfully expressed in E. coli and could be purified without aggregation. Similar to the wild type Mrr1 ‘250’, selected gain of function variants were successfully cloned, expressed and purified with varying yields and with varying purity. The Mrr1 `250’ construct contains most of the described regulatory domains of Mrr1. It was used for crystallization and an initial comparative analysis between the wild type protein and the variants. The proposed dimeric form of the transcription factor, necessary for DNA binding, could be verified for both, the wild type and the mutant proteins. Secondary structure analysis by circular dichroism measurements revealed no significant differences in the overall fold of the wild type and variant proteins. In vitro, the gain of function variants seem to be less stable compared to the wild type protein, as they were more prone to degradation. Whether this observation holds true for the full length protein’s stability in vitro and in vivo remains to be determined. The crystallization experiments, performed with the Mrr1 ‘250’ constructs, led to few small needle shaped or cubic crystals, which did not diffract very well and were hardly reproducible. Therefore no structural information of the transcription factor could be gained so far.
Infections with M. tuberculosis, the causative agent of tuberculosis, are the leading cause of mortality among bacterial diseases. Especially long treatment times, an increasing number of resistant strains and the prevalence of for decades persisting bacteria create the necessity for new drugs against this disease. The cholesterol import and metabolism pathways were discovered as promising new targets and interestingly they seem to play an important role for the chronic stage of the tuberculosis infection and for persisting bacteria.
In this thesis, the 3-ketoacyl-CoA thiolase FadA5 from M. tuberculosis was characterized and the potential for specifically targeting this enzyme was investigated. FadA5 catalyzes the last step of the β-oxidation reaction in the side-chain degradation pathway of cholesterol. We solved the three dimensional structure of this enzyme by X-ray crystallography and obtained two different apo structures and three structures in complex with acetyl-CoA, CoA and a hydrolyzed steroid-CoA, which is the natural product of FadA5. Analysis of the FadA5 apo structures revealed a typical thiolase fold as it is common for biosynthetic and degradative enzymes of this class for one of the structures. The second apo structure showed deviations from the typical thiolase fold. All obtained structures show the enzyme as a dimer, which is consistent with the observed dimer formation in solution. Thus the dimer is likely to be the catalytically active form of the enzyme. Besides the characteristic structural fold, the catalytic triad, comprising two cysteines and one histidine, as well as the typical coenzyme A binding site of enzymes belonging to the thiolase class could be identified. The two obtained apo structures differed significantly from each other. One apo structure is in agreement with the characteristic thiolase fold and the well-known dimer interface could be identified in our structure. The same characteristics were observed in all complex structures. In contrast, the second apo structure followed the thiolase fold only partially. One subdomain, spanning 30 amino acids, was in a different orientation. This reorientation was caused by the formation of two disulfide bonds, including the active site cysteines, which rendered the enzyme inactive. The disulfide bonds together with the resulting domain swap still permitted dimer formation, yet with a significantly shifted dimer interface. The comparison of the apo structures together with the preliminary activity analysis performed by our collaborator suggest, that FadA5 can be inactivated by oxidation and reactivated by reduction. If this redox switch is of biological importance requires further evaluation, however, this would be the first reported example of a bacterial thiolase employing redox regulation.
Our obtained complex structures represent different stages of the thiolase reaction cycle. In some complex structures, FadA5 was found to be acetylated at the catalytic cysteine and it was in complex with acetyl-CoA or CoA. These structures, together with the FadA5 structure in complex with a hydrolyzed steroid-CoA, revealed important insights into enzyme dynamics upon ligand binding and release. The steroid-bound structure is as yet a unique example of a thiolase enzyme interacting with a complex ligand. The characterized enzyme was used as platform for modeling studies and for comparison with human thiolases. These studies permitted initial conclusions regarding the specific targetability of FadA5 as a drug target against M. tuberculosis infection, taking the closely related human enzymes into account. Additional analyses led to the proposal of a specific lead compound based on the steroid and ligand interactions within the active site of FadA5.
Azobenzene derivatives with activity against drug‐resistant Candida albicans and Candida auris
(2023)
Increasing resistance against antimycotic drugs challenges anti‐infective therapies today and contributes to the mortality of infections by drug‐resistant Candida species and strains. Therefore, novel antifungal agents are needed. A promising approach in developing new drugs is using naturally occurring molecules as lead structures. In this work, 4,4'‐dihydroxyazobenzene, a compound structurally related to antifungal stilbene derivatives and present in Agaricus xanthodermus (yellow stainer), served as a starting point for the synthesis of five azobenzene derivatives. These compounds prevented the growth of both fluconazole‐susceptible and fluconazole‐resistant Candida albicans and Candida auris strains. Further in vivo studies are required to confirm the potential therapeutic value of these compounds.
Endothelzellen sind ein aktiver Bestandteil der angeborenen Immunabwehr des Menschen gegen mikrobielle Pathogene. Unter ungünstigen Bedingungen kann die Abwehrreaktion sogar zu einer lebensbedrohlichen Sepsis führen. Hier wurde die bislang wenig bekannte Endothelantwort auf den fakultativ humanpathogenen Hefepilz Candida albicans, einem der häufigsten Verursacher von letaler Sepsis beim Menschen, näher untersucht. Mittels Oligonukleotid-Mikroarray-Analyse von HUVEC nach Exposition mit C. albicans konnten 56 hochregulierte Gene identifiziert werden, während 69 Gene herunterreguliert wurden. Ein bedeutender Anteil der regulierten Gene ist an Prozessen der angeborenen Immunantwort beteiligt und dient hauptsächlich der Rekrutierung von Neutrophilen. Weitere Untersuchungen ergaben eine zentrale Rolle des proinflammatorischen NF-kappaB-Weges bei der Regulation des Candida-induzierten Transkriptoms von Endothelzellen. Es konnte gezeigt werden, dass C. albicans diesen Signalweg sequenziell aktiviert. Zusätzlich konnte durch die Expression einer dominant-negativen Mutante einer Signalkomponente des NF-kappaB-Signalwegs die Candida-vermittelte Induktion von kappaB-abhängigen Genen gehemmt werden. Mit einem pharmakologischen Ansatz wurde der p38 MAP Kinase-Signalweg als weiterer bedeutsamer Signalweg identifiziert, der die Expression einzelner Candida-Zielgene wie CXCL8/IL-8 moduliert. Schließlich wurde gezeigt, dass die Candida-induzierte NF-kappaB-Aktivierung im untersuchten endothelialen Zellsystem unabhängig von den Toll-like Rezeptoren TLR2 und TLR4 geschieht, die üblicherweise an der Erkennung mikrobieller Pathogene beteiligt sind. Durch RNA-Interferenz-Experimente konnte jedoch dargelegt werden, dass das Adaptermolekül MyD88 und die Kinase IRAK1, die beide entscheidend an der TLR-vermittelten Signaltransduktion beteiligt sind, essentiell für die Weiterleitung des Signals in Endothelzellen sind. Nachfolgend konnte mit TLR3 zumindest einer der signaltransduzierenden Rezeptoren identifiziert werden. Als erste umfassende Untersuchung der endothelialen Antwort auf Candida albicans erlaubt die vorliegende Arbeit neue Einblicke in die komplexen Signalmuster von Endothelzellen, die dieser klinisch bedeutende Krankheitserreger auslöst.