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Zielsetzung: Die antimikrobielle Wirksamkeit von kaltem Atmosphärendruckplasma(CAP), auch als gewebeverträgliches Plasma (TTP) bezeichnet,könnte eine aussichtsreiche Option zur Eradikation von Methicillinempfindlichen ebenso wie von Methicillin-resistenten Staphylococcus aureus-Stämmen sein, die oft chronische Wunden kolonisieren. Bisher wurde der Einfluss von CAP auf die Antibiotikaempfindlichkeit von S. aureus kaum untersucht. Da eine Veränderung der Antibiotikaempfindlichkeit für die Wundbehandlung relevant sein könnte, sollte der Einfluss von CAP auf die Empfindlichkeit verschiedener S. aureus-Stämme gegen unterschiedliche Antibiotika untersucht werden.
Methode: Im Agardiffusionstest wurden Antibiotikatestplättchen mit Cefuroxim, Gentamicin, Oxacillin, Vancomycin, Ciprofloxacin, Co-Trimoxazol, Clindamycin und Erythromycin eingesetzt. Die Teststämme wurden auf Agar ausplattiert und mit CAP exponiert, bevor die Testplättchen aufgelegt wurden. Nach 24 h Bebrütung wurden die Inhibitionszonen gemessen und statistisch auf Unterschiede geprüft.
Ergebnisse: In den meisten Fällen war die Einfluss von CAP auf die Antibiotikaempfindlichkeit zu vernachlässigen. Für zwei Stämme wurde die Empfindlichkeit gegenüber β-Lactam-Antibiotika signifikant herabgesetzt.
Schlussfolgerung: Da CAP die Antibiotikaempfindlichkeit beeinflussen kann, sollten vor beabsichtigter kombinierter lokaler CAP-Behandlung und gleichzeitiger systemischer Antibiotikagabe Interaktionen in vitro untersucht werden, um unerwünschte Kombinationseffekte auszuschließen.
Das humanpathogene Bakterium Staphylococcus aureus kann verschiedene, zum Teil lebensbedrohliche Erkrankungen wie Hautinfektionen (Furunkel, Karbunkel), Lungen-entzündung, Osteomyelitis (Knochenmarksentzündung), Endokarditis (Entzündung der Herzinnenhaut) und Sepsis auslösen. Dabei gehört S. aureus zu den häufigsten Erregern von Krankenhausinfektionen, sogenannten Nosokomialinfektionen. Deren Behandlung mittels Antibiotika stellt aufgrund von multiplen Antibiotikaresistenzen von S. aureus eine immer größere Heraus¬forderung dar, da dieser fähig ist, sich rapide an verändernde Umweltbedingungen anzu¬passen. Die Interaktion des pathogenen Bakteriums mit seiner Umwelt und seinem Wirt ist insbesondere durch den Proteinbestand, der auf der Zelloberfläche exponiert ist, bestimmt. S. aureus exprimiert ein Arsenal an Zellober-flächen-gebundenen Virulenzfaktoren, die zur Kolonisierung und Infektion von humanem Gewebe führen. Ziel dieser Arbeit war die Entwicklung und Anwendung von Massen¬spektrometrie-basierten Methoden zur Identifizierung und Quantifizierung der Zellober¬flächen¬-assoziierten Proteine von S. aureus. Dabei ist es gelungen, durch die Gel-freien und GeLC-MS/MS-basierten Methoden Biotinylierung und Trypsin-Behandlung 77% aller be-kannten Oberflächenproteine und zwei Drittel aller nach außen ragenden Membran-veran-kerten Lipoproteine von S. aureus zugänglich zu machen. Bei der Biotinylierung handelt es sich um eine Methode, bei der die Oberflächenproteine von intakten Zellen mit einem membranimpermeablen Reagenz markiert und anschließend über Affinitäts¬chroma-tographie aufgereinigt werden. Dagegen erfolgt bei der Trypsin-Behandlung die proteo-lytische Abspaltung der Oberflächen-exponierten Protein¬domänen. Erstmalig ist durch Markierung der Proteine mit stabilen Isotopen, dem sogenannten 14N/15N-metabolischen Labeling, auch eine relative Quantifizierung der Oberflächenproteine von S. aureus möglich. Bei der Analyse des Oberflächenproteoms von wachsenden und nicht-wachsenden S. aureus Zellen konnten mittels Biotinylierung 146 Oberflächenproteine identifiziert werden. Durch relative Quantifizierung wurde gezeigt, dass Zelloberflächen-assoziierte Adhäsine von S. aureus, wie der Fibrinogen-bindende clumping Faktor B, vorzugsweise während des Wachstums exprimiert werden, während nicht-wachsende Zellen erhöhte Mengen an clumping Faktor A aufweisen. Desweiteren war die Menge an immunodominanten Antigen B auf der Zelloberfläche in der stationären Phase mehr als 10-fach erhöht. Bei dieser Arbeit wurde erstmalig das Gesamt¬proteom des Methicillin-resistenten Staphylococcus aureus COL, bestehend aus cytosolischem, extra¬zellulärem, Membran- und Oberflächenproteom, um¬fassend identifiziert und quantifiziert (Becher et al., 2009). Um die Pathogenität von S. aureus näher zu erforschen, wurde das Oberflächenproteom des Wildtyps mit dem einer sigB-Mutante verglichen. Der alternative Sigma-Faktor SigmaB kontrolliert ein großes Regulon bestehend aus etwa 300 Genen, von denen viele in die Virulenz von S. aureus involviert sind. Durch Kombination von 14N/15N-metabolischen Labeling, Biotinylierung und GeLC-MS/MS konnten 98 Oberflächen-proteine quantifiziert werden. Von den 49 Proteinen, die in der sigB-Mutante verändert vorlagen, waren 21 schon als SigmaB-abhängig oder durch SigmaB beeinflusst bekannt. In dieser Arbeit konnten weitere 28 Oberflächenproteine erstmalig als SigmaB-abhängig beschrieben werden. Die Gruppe der Zelloberflächen-assoziierten Proteine und Virulenz-faktoren, die durch SigmaB beeinflusst werden, wurde so erweitert (Hempel et al., 2010). Durch Trypsin-Behandlung wurden insgesamt 63 Oberflächen¬proteine beim Vergleich vier verschiedener S. aureus Stämme identifiziert. Hierbei konnte gezeigt werden, dass das Oberflächenproteom verschiedener S. aureus Stämme extrem variabel ist. Weniger als 10% der identifizierten Oberflächenproteine aller vier Stämme stimmten überein (Dreisbach et al., 2010). Eine optimale Analyse der Oberflächen¬proteine von S. aureus wird durch eine Kombination von Biotinylierung und Trypsin-Behandlung erreicht. Es konnte gezeigt werden, dass Sortase-Substrate insbesondere durch Trypsin zugänglich sind, während Lipoproteine optimal durch Biotinylierung analysiert werden können. Das Protokoll zur Trypsin-Behandlung wurde modifiziert, stark vereinfacht und ist auch zur Quantifizierung von Oberflächen¬proteinen geeignet. Durch Kombi¬nation beider Methoden mit 14N/15N-metabolischen Labeling konnten 221 Oberflächen¬proteine identifiziert und 158 quantifiziert werden. Hierbei wurde S. aureus unter Eisenmangel-bedingungen untersucht. In den Körperflüssigkeiten von Säugetieren herrschen Eisenmangelbedingungen, und diese fungieren als wichtiges Wirtssignal für die Bakterien um Virulenzproteine zu exprimieren. Unter diesen infektionsrelevanten in vitro Bedingungen wurden insbesondere Zelloberflächenproteine wie die eisenabhängigen Häm-bindenden Proteine IsdA, IsdB, IsdC und IsdD, sowie lipidver¬ankerte Eisen-bindende Proteine stark induziert gefunden (Hempel et al., unpublished).
Staphylococcus aureus (S. aureus) ist einer der meist gefürchtetsten pathogenen Mikroorganismen, der verantwortlich ist für eine Vielzahl von nosokomialen Infektionen und Krankheiten. S. aureus ist in der Lage, sich an verändernde Umweltbedingungen auf Ebene der Genexpression anzupassen, was zu unterschiedlichen Proteinzusammensetzungen und somit zu Veränderungen in der Metabolitenkomposition und metabolischen Aktivität führt. Außerdem stellt die Fähigkeit, Resistenzen gegen gegenwärtig genutzte Antibiotika zu entwickeln, eine Gefahr dar und macht diesen Keim in seiner Behandlung so schwierig. Für ein vollständiges Verstehen der Proteom-, Transkriptom- und Metabolomdaten ist die Untersuchung der Enzymaktivitäten ein entscheidendes Hilfsmittel. In der vorliegenden Arbeit wurden die enzymkatalytischen Eigenschaften sowie die spezifischen Enzymaktivitäten der Enzyme des Intermediär- und Fermentationsstoffwechsels untersucht. Aus Zellen der logarithmischen, transienten und stationären Wachstumsphase unter aeroben wie auch anaeroben Bedingungen wurden für die Enzyme das pH-Optimum, die maximale Reaktionsgeschwindigkeit (vmax) und die Substratkonzentration der halbmaximalen Reaktionsgeschwindigkeit (Km) bestimmt. In S. aureus COL wird die Glucose unter aeroben Bedingungen hauptsächlich über die Glycolyse metabolisiert. Glucose-6-phosphat wird weiter zu Pyruvat umgesetzt, welches wiederum durch die Pyruvat-Oxidase zu Acetylphosphat oder durch den Pyruvat-Dehydrogenase-Komplex zu Acetyl-CoA verstoffwechselt wird. Durch die Phosphatacetyl-Transferase wird das Acetyl-CoA im Folgenden ebenfalls zu Acetylphosphat umgesetzt und nicht dem Citrat-Zyklus zugeführt. Die Acetat-Kinase nutzt das Acetylphosphat zur Generierung von ATP. Geringe extrazelluläre Lactat-Konzentrationen weisen auf eine geringere Bedeutung der Lactat-Dehydrogenase unter aeroben Wachstumsbedingungen hin. Gleichwohl wird ein kleiner Teil des Pyruvates zur Regeneration von NAD+ durch die Lactat-Dehydrogenase genutzt. In der transienten und stationären Wachstumsphase werden die Gene der Enzyme für Gluconeogenese und Citrat-Zyklus vermehrt exprimiert. Lactat und Acetat werden als Kohlenstoff- und Energiequelle wieder aufgenommen und dienen der Bildung unterschiedlicher Intermediate, wie beispielsweise der Bildung von NADPH über Glucose-6-phosphat im Pentose-Phosphat-Weg. Lediglich die Citrat-Synthase, Isocitrat-Dehydrogenase und Fumarat-Hydratase des Citrat-Zyklus konnten enzymologisch untersucht werden, was auf eine geringe metabolische Aktivität im Citrat-Zyklus hinweist. Möglicherweise dient der erste Teil des Citrat-Zyklus nur der Einführung von Aminosäuren als Kohlen- und Stickstoffquelle in den Metabolismus. Unter anaeroben Bedingungen wird die Glucose in der Glycolyse und der gemischten Säuregärung zu Lactat und Ethanol umgesetzt. Hohe spezifische Enzymaktivitäten der Lactat- und Alkohol-Dehydrogenase konnten nachgewiesen werden. Die Energie in Form von ATP wird auch in dieser Phase des Wachstums durch Substratkettenphosphorylierung generiert. Bacillus subtilis 168 (B. subtilis 168) ist ein grampositives apathogenes Bakterium, das durch die Zugabe von Pyruvat auch zum Wachstum unter sauerstofffreien Bedingungen befähigt ist. Es exprimiert Enzyme der 2,3-Butandiol- und Lactatfermentation. In der hier vorliegenden Arbeit wurden die enzymkatalytischen Eigenschaften von Enzymen des Intermediär- und Fermentationsstoffwechsels untersucht. In der logarithmischen Wachstumsphase wird die Glucose über die Glycolyse verstoffwechselt. Wie bei S. aureus COL ist der Eintritt des Glucose-6-phosphates in den Pentose-Phosphat-Weg aufgrund einer höheren spezifischen Enzymaktivität der Glucose-6-phosphat-Isomerase limitiert. Die Energie in Form von ATP wird auch hier hauptsächlich über Substratkettenphosphorylierungsreaktionen generiert. Die Bedeutung der Lactat-Dehydrogenase-Aktivität unter aeroben Bedingungen ist noch nicht eindeutig geklärt, jedoch kann davon ausgegangen werden, dass auch hier ein Teil des Pyruvates zur Regeneration von NAD+ durch die Lactat-Dehydrogenase umgesetzt wird. Unter anaeroben Bedingungen wurden hohe Lactat-Dehydrogenasen-Aktivitäten gemessen. Außerdem wird die Glucose zur Regeneration von NAD+ zu D-2,3-Butandiol fermentiert. Zusammenfassend ist zu sagen, dass enzymologische Untersuchungen und die Erforschung der spezifischen Enzymaktivitäten unter bestimmten Bedingungen ein gutes Hilfsmittel für metabolische Studien ist und diese gut mit vorhandenen Proteom- und Metabolomdaten verglichen werden können. Enzymanalysen sind nicht einfach handhabbar, bieten aber die Möglichkeit, einen Blick in die Physiologie von Mikroorganismen zu werfen. Für ein allumfassendes Verständnis ist es wichtig, Enzymaktivitäten zu untersuchen.
The introduction of two-dimensional polyacrylamide gel electrophoresis (2-D PAGE) enabled the separation and visualization of a substantial fraction of an organism’s entire proteome, and when mass spectrometry entered protein science, these proteins became even amenable to identification on a grand scale. Nevertheless, important classes of proteins elude a separation on classical 2 D gels, as the ones showing extremes in isoelectric point or molecular weight, and foremost very hydrophobic proteins naturally embedded in lipid membranes. This thesis aimed at the establishment and adaptation of alternatives to 2-D PAGE. New techniques allowing for an identification and quantification of critical protein classes were designed and adopted to physiological questions in the Gram-positive bacteria Bacillus subtilis and Staphylococcus aureus. In a comprehensive study on cytoplasmic proteins of S. aureus COL the number of proteins identified by a 2-D gel based approach could be extended by 650 proteins employing gel free technologies. Application of these complementary methods resulted in the establishment of a comprehensive reference map of the cytosolic proteome in growing and non-growing S. aureus cells which can serve as basis for further physiological investigations. Gel free separation of complex protein digests was likewise used in a quantitative study on heat stress in B. subtilis. By implementation of the iTRAQ® technology four different physiological states could be relatively quantified in one experiment. A parallel generation of 2-D gel based data enabled the depiction of strengths and weaknesses of protein quantitation by both, spot intensities on 2-D gels and iTRAQ® signal intensities in MS/MS spectra. Furthermore, new insights into heat sensitivity of pivotal enzymes involved in amino acid biosynthesis could be delivered. The institution of gel free approaches and advancements in 2-D PAGE provide the tools to penetrate into yet unamenable scopes of proteomes. A review on proteome coverage in B. subtilis gives an overview on the strategies which have been explored for most comprehensive protein identification in various sub-proteomes. Although more than one third of B. subtilis’ open reading frames could be demonstrated on protein level, one has to be aware of the fact that it still is a long way to achieve complete coverage of its proteome. Integral membrane proteins make up about one quarter of the entirety of proteins in a cell. Despite their large portion they are clearly understudied due to the intricacy of identification. Their low abundance and non-accessibility of membrane-spanning domains represent major experimental difficulties. The establishment of a protocol efficiently depleting cytosolic proteins by membrane shaving and targeting trans-membrane peptides by novel digestion strategies essentially facilitated identification of highly hydrophobic integral membrane proteins. This protocol was not only successfully applied to the membrane proteome of growing S. aureus cells, but was shown to be applicable in B. subtilis as well. Both studies displayed the novel membrane shaving approach to be highly complementary to a previously established separation of membrane proteins via 1 D PAGE. A combination of the two techniques resulted in identification of about half of the theoretical membrane proteome in both bacteria, and hence layed the foundation for advanced and quantitative analyses. In this regard, 14N/15N metabolically labeled membrane samples of growing and non-growing cells of S. aureus COL were relatively quantified revealing a significant difference in amount for more than one third of the proteins. A corresponding experimental setup was used to compare the membrane proteomes of S. aureus SA113 and its mutant deficient in the lysylphosphatidylglycerol synthetase MprF. Interesting quantitative differences were obtained for proteins most likely involved in the regulation of cellular surface net charge as well as for virulence-associated proteins.
With the development of new functional genomics methods that can access the whole genome, transcriptome, proteome and metabolome more comprehensive insights in cellular processes are possible. Largely based on these advances, our knowledge about molecular constituents for many organisms is increasing at a tremendous rate. Until today, the genomes of several organisms including pathogenic bacteria are already sequenced and pave the way for metabolic network constructions. Interest in metabolomics, the global profiling of metabolites in a cell, tissue or organism, has been rapidly increased. A range of analytical techniques, including nuclear magnetic resonance (NMR) spectroscopy, gas chromatography–mass spectrometry (GC–MS), liquid chromatography–mass spectrometry (LC–MS), Fourier Transform mass spectrometry (FT–MS), high performance liquid chromatography (HPLC) are required in order to maximize the number of metabolites that can be identified in a matrix. With the help of microbial metabolomics (qualification and quantification of a huge variety of metabolites from a bacterium) deciphering of the bacterial metabolism is feasible. The metabolome pipeline or workflow encompasses the processes of (i) sample generation and preparation, (ii) establishment of analytical techniques (iii) collection of analytical data, raw data pre-processing, (iv) data analysis and (v) data integration into biological questions. The present work contributes to the above mentioned steps in a metabolomics workflow. A specific focus was set to the exo- and endometabolome analysis of Gram-positive bacteria
Functional characterization of a novel protease isolated from a mouse-adapted S. aureus strain
(2018)
Background: The high incidence of methicillin-resistant Staphylococcus aureus
(MRSA) strengthens the need for new effective antibiotics and a protective vaccine. Up till now, mainly human-adapted Staphylococcus aureus strains were used to study S. aureus pathogenicity in mouse models. However, it is known that S. aureus is highly host-specific. Recently, a mouse-adapted S. aureus strain, JSNZ, was identified. This strain could be a promising tool in developing more appropriate infection models. JSNZ produces high amounts of a putative extracellular protease, named JSNZ extracellular protease (Jep). Since the jep gene was only detected in S. aureus isolates from laboratory mice and wild small rodents and shrews, we hypothesize that Jep is important for colonization and infection in mice. The jep deletion mutant previously created by our collaborators from the University of Auckland, New Zealand, intriguingly showed a reduced survival and growth fitness in murine serum and whole blood as compared to the JSNZ wild type (WT) strain.
Objective: To elucidate the role of Jep in the interaction between S. aureus and its
host by comparing the impact of JSNZ WT with a mutant and a complement strain on the murine immune system. In addition, the elucidation of possible genetic factors behind host-adaptation of S. aureus strains isolated from wild rodents and shrews.
Methods: A jep complemented strain was generated by chromosomal replacement.
JSNZ WT, the jep mutant and the complement strain were subjected to functional
assays (whole blood survival assay, coagulation assay). In addition, the genetic
background that might confer host specificity was tested by staph array genotyping.
Results: The mutant strain JSNZDjep was successfully complemented with the jep
gene using a chromosomal integration approach. The WT strain and the
complemented strain produced the Jep protein in comparable amounts.
Unexpectedly, the complemented strains did not behave like the WT strain but rather like the mutant in a series of in vitro assays. Firstly, the growth of both the deletion mutant and the complemented strains was slightly reduced in TSB as compared to the WT strain. Secondly, the jep knockout strain showed a strongly reduced survival in murine whole blood compared to its wild type counterpart, but so did the complemented strain. Finally, the coagulation of murine plasma was less pronounced for the jep deletion mutant and the complemented strain as compared to the JSNZ WT. To exclude a defect in jep gene expression, we compared the amount of Jep expressed during growth in TSB medium for the three strains. The complemented strain produced Jep in a manner similar to the WT strain in a growth-phase dependent manner, suggesting that Jep expression was not affected during the creation of the complemented strain.
The array data showed some differences in the genetic makeup between animal
isolated strains and matched human strains. For example, while all animal isolates of the CC88 lacked the resistance mecA gene it was found in some human isolates of the same strain.
Conclusion: In conclusion, our unidentified mutation created during the generation
of the jep knock-out strain rather than the jep gene itself manipulated the murine
immune response. The responsible gene and the underlying mechanisms remain to
be clarified. Genetic profiling of S. aureus strains allowed us to obtain some valuable information including data about CC49, the most frequently isolated lineage in wild rodents and shrews where compared to the human isolates the murine strains showed clear signs of host adaptation. However, the analysis had several limitations including the small sample size.
Lipoproteins of Staphylococcus aureus represent a major class of surface proteins, which are anchored to the outer leaflet of the cell membrane. Although they play a key role in the immune response and virulence, the majority of lipoproteins in this organism is still of unknown function. The aim of our study was to investigate the function of so far poorly or uncharacterized lipoproteins in S. aureus strain Newman. To this end, an integrated bioinformatical approach was applied to define the pan-lipoproteome of 123 completely sequenced S. aureus strains. In total, this analysis predicted 192 different potential lipoproteins, with a core lipoproteome of 39 and a variable lipoproteome of 153 lipoproteins. Out of those 192 lipoproteins, 141 are so far functionally uncharacterized. Primarily focusing on members of the core-lipoproteome with unknown or poorly characterized function, 24 lipoproteins or co-encoded neighbor proteins were selected for further characterization. Of those 24 proteins, 20 S. aureus markerless deletion mutants were constructed (S. aureus delta l01 - delta l20) and screened for an altered growth behavior under various conditions. Here, three mutants showed a temperature-sensitive phenotype, two mutants formed aggregates in the TSB of the manufacturer Merck (TSBMerck), and four mutants showed reduced growth under osmotic stress with 8% NaCl. An altered aggregation behavior was observed for four mutants in the presence of Triton X-100 and for eleven mutants in the presence of SDS. Furthermore, ten mutants revealed an impaired biofilm formation capacity as well as reduced hemolytic activity. Interestingly, S. aureus deletion mutants delta l14 (delta NWMN_1435) and delta l16 (delta NWMN_0646) showed an altered phenotype under nearly all tested growth and stress conditions. Most strikingly, both deletion mutants demonstrated dramatic defects in cell morphology and cell division during the transient growth phase in TSBMerck and were therefore selected for further detailed characterization. Electron microscopy imaging of the two mutants revealed an irregular cell shape, increased cell size, multiple displaced division septa, and incomplete separation of daughter cells resulting in the formation of cell aggregates in TSBMerck. Complementarily, microarray-based transcriptome analysis and whole-genome sequencing of S. aureus delta l14 and delta l16 suppressor mutants strongly point to a functional association of both lipoproteins with cell envelope- or cell division-related processes. Specifically, multiple hints suggest a functional connection of both lipoproteins with lipo- or wall teichoic acids. Of note, the phenotypes of S. aureus delta l14 and delta l16 are conditional and appear under some, but not all growth conditions. Thus, it is conceivable that the function of L14 and L16 is modulated by metabolic processes, or that the proteins might be part of a “backup system” becoming important only under certain conditions. Collectively, we propose that L14 and L16 fulfill a basic role in cell envelope- or cell division-related processes under specific growth conditions. Particularly, the activity of L14 and L16 might be necessary for the function or localization of lipo- or wall teichoic acids, and thus, might be linked to the regulation of autolysins. In conclusion, this study reveals important insights into the function of two so far uncharacterized but highly conserved lipoproteins in S. aureus.
Staphylococcus (S.) aureus is the most common cause of nosocomial infections and the species is becoming increasingly resistant to antibiotics. In contrast, about 35% of the healthy population are colonized with S. aureus in the anterior nares. The genetic make-up of this species is highly diverse. Mobile genetic elements comprise about 15% of the S. aureus genome. They encode many virulence factors like the 21 different known staphylococcal superantigens (SAgs), highly potent activators of T lymphocytes. Besides their well known causative role in food poisoning and toxic shock syndrome, information about SAg involvement in pathogenesis is limited. On the other hand, the human host and its immune response are also highly diverse. This study focuses on SAgs, because they are potent virulence factors that are highly diverse and therefore mirror of the variability of the species S. aureus. The goals of this work were (i) to identify virulence determinants by comparing the prevalence of SAg genes and phages among colonizing and invasive S. aureus isolates and to correlate it with the clonal background, (ii) to determine the prevalence and the development of anti-SAg antibodies in healthy S. aureus carriers and noncarriers as well as in bacteremia patients, and (iii) to elucidate the reasons for the selective lack of neutralizing serum antibodies specific for a subgroup of SAgs, the egc SAgs. In search for a molecular-epidemiological associations between SAgs and different diseases caused by S. aureus we investigated the distribution of SAg genes and/ or bacteriophages and correlated this with the clonal background, determined by spa genotyping. The analysis of more than 700 S. aureus isolates from nasal colonization, bacteremia or furunculosis revealed that SAg-encoding mobile genetic elements and bacteriophages were strongly associated with the clonal background. As a consequence, each clonal lineage was characterized by a typical SAg gene and phage repertoire. Therefore, we suggest that the simultaneous assessment of virulence gene profiles and the genetic background strongly increases the discriminatory power of genetic investigations into the mechanisms of S. aureus pathogenesis. However, we found no association of SAg genes with bacteremia or furunculosis. While functional neutralization assays closely mimic the protective action of anti-SAg antibodies in vivo, they are labor-intensive and time-consuming. A fast and easy method for the simultaneous quantification of antibody binding to multiple staphylococcal antigens is the Luminex® technology. Using serum samples from persistent carriers and noncarriers we showed a strong correlation between antibody binding and neutralizing capacity against the SAg TSST-1. This assay confirmed the astonishing lack of antibodies against egc SAgs in healthy carriers and noncarriers, which was previously described by Holtfreter and coworkers. Since colonization is probably not sufficient to induce a robust antibody response as revealed by experimental colonization with S. aureus, we propose that (minor) infections are required to induce the high titers of non-egc SAg-neutralizing antibodies in healthy adults. To test this, we investigated whether SAgs elicit a neutralizing antibody response during S. aureus bacteremia. At the acute phase of the disease most patients already had neutralizing antibodies against non-egc SAgs, and antibody titers frequently increased during infection. Notably, egc SAgs did not elicit a boost or de novo generation of specific antibodies. The “egc gap” in the antibody response, which has now been shown in healthy adults, as well as following systemic infection with S. aureus, is astonishing. After all, egc SAgs are by far the most prevalent SAgs. In search for an explanation, the intrinsic properties of three recombinant egc (SEI, SElM, SElO) and non-egc SAgs (SEB, SElQ, TSST-1) were compared in depth. Egc and non-egc SAgs were very similar with regard to induced T cell proliferation, cytokine profiles, and gene expression of human immune cells. However, there was a striking difference in the regulation of the two groups of SAgs by S. aureus in bacterial culture. We conclude that the differential regulation of egc and non-egc SAg has an impact on the immune response. But how are SAgs regulated by S. aureus during its interaction with the host? Up until now most research on regulation of virulence factors has been performed in vitro. The immune response can help to shed light on this problem, because it is an exquisitely specific sensor for the exposure to different antigens. The high prevalence of neutralizing serum antibodies against non-egc SAgs indicates that most healthy adults have been exposed to these toxins during their encounters with S. aureus. For egc SAgs this remains an open question. However, initial data indicate that the egc SAg genes are transcribed during nasal colonization.
This thesis contains results from transcriptome studies on different aspects of host-pathogen interactions. First, liver gene expression profiles from a murine chronic stress model served to elucidate aspects of the influence of stress on metabolism and immune response state. Chronic stress in female BALB/c mice was shown to lead to a hypermetabolic syndrome including induction of gluconeogenesis, hypercholesteremia, and loss of essential amino acids, to the induction of the acute phase response, but also of immune suppressive pathways and to the repression of hepatic antigen presentation. Increased leukocyte trafficking, increased oxidative stress together with counter-regulatory gene expression changes, and an induction of apoptosis were detected. The influence of intra-venous infection on the host kidney gene expression was analyzed in another murine model using the wild type strain Staphylococcus aureus RN1HG and its isogenic sigB mutant. Gene expression profiling indicated a highly reproducible host kidney response to infection. The comparison of infected with non-infected samples revealed a strong inflammatory reaction of kidney tissue, e. g. Toll-like receptor signaling, complement system, antigen presentation, interferon and IL-6 signaling. However, the results of this study did not provide any hints for differences in the pathomechanism of the S. aureus strains RN1HG and ΔsigB, since the host response did not differ between infections with the two strains analyzed. Effects of SigB might be transient, only apparent at earlier time points, or might also be compensated for in the in vivo infection by the interlaced pattern of other regulators. SigB might possess only to a lesser extent characteristics attributed to virulence factors and might act in vivo more like a virulence modulator and fine tune bacterial reactions. In addition to the analysis of tissue samples, different in vitro models were furthermore studied. The third part of this thesis focuses on bone-marrow derived macrophages (BMM) of the two mouse strains BALB/c and C57BL/6, which are described in literature to exhibit genetically determined differences in their reaction to infection. Expression profiling was performed on control and IFN-γ treated samples from a serum-free cultivation system and revealed mainly induction of gene expression after treatment of BMM with IFN-γ. Gene expression changes confirmed known IFN-γ effects like induction of immunoproteasome, antigen presentation, interferon signaling related genes, GTPase/GBPs, and inducible NO synthase. IFN-γ dependent gene expression changes were highly similar in BALB/c and C57BL/6 BMM. Considering gene expression differences between BMM of both strains, a similar expression trend was visible on the level of untreated controls as well as after IFN-γ treatment. Differentially expressed genes between BMM of both strains included immune-relevant genes as well as genes linked to cell death, but the coverage of functional groups was limited. The bronchial epithelial cell line S9 was used as an in vitro model system for the infection with S. aureus RN1HG. The fourth chapter in this thesis includes S9 cell gene expression signatures 2.5 h and 6.5 h after start of infection. At the early time point, only 40 genes were differentially expressed, which nevertheless indicated a beginning pro-inflammatory response, e. g. induction of cytokines (IL-6, IFN-β, LIF) or prostaglandin-endoperoxide synthase 2 (PTGS2), but also counter-regulatory processes, e. g. induction of CD274. The host cell response was dramatically aggravated at the later 6.5 h time point. Differential expression was detected for 1196 genes. These included induced cytokines, pattern recognition receptor signaling, antigen presentation, and genes involved in immune defense (e. g. GBPs, MX, APOL). Negative effects on growth and proliferation were even more enhanced in comparison to the early time point, and signs for apoptotic processes were revealed. Finally, the last chapter addresses amongst others the pathogen’s expression profile in the S9 cell in vitro infection model at the two time points 2.5 h and 6.5 h after start of infection by tiling array gene expression analysis. The pathogen expression profiling revealed the activity of the SaeRS two-component system in internalized staphylococci. Partly dependent on SaeRS, the induction of adhesins (e. g. fnbAB, clfAB), toxins (hlgBC, lukDE, hla), and immune evasion genes (e. g. chp, eap) was observed. Furthermore, expression changes of metabolic genes were recorded (gene induction of amino acid biosynthesis, TCA cycle, gluconeogenesis; gene repression of glycolysis, purine biosynthesis, tRNA synthetases). Expression analysis recorded a distinct bacterial expression program, which supported literature results of a specific, bacterial strain and host cell line dependent transcriptional adaptation of the pathogen.
Staphylococcus aureus is present in around a third of the human population as a constant commensal in the anterior nares, in a third as an intermittent commensal, and a third are non-carriers. However, S. aureus is also a dangerous pathogen, responsible for many types of infections. Recently, the emerging of methicillin-resistant S. aureus strains has aggravated the health problem. Treating infections caused by the invasive strains has become ineffective with conventional antibiotics. Noticeably, transmission of S. aureus has occurred not only in healthcare settings but also in the community; furthermore, transmission between humans and domestic animals has been reported. Although studies about host-pathogen interactions of S. aureus have advanced our knowledge in the last decades, we still have not fully understood mechanisms of the immune system in responses to S. aureus. The aim of this study is to unravel interactions of the human adaptive immune system to selected S. aureus virulence factors. In particular, the study focuses on two aspects: the reaction of human antibodies to the bacterial extracellular proteins in S. aureus-induced furunculosis with an emphasis on Panton-Valentine Leukocidin and responses of the adaptive immune system to membrane-bound lipoproteins of S. aureus. Furunculosis is a variety of hair follicle infection in which S. aureus is one of the chief causal pathogens involved. The corresponding bacterial strains are generally capable of producing of a pore-forming toxin, known as Panton-Valentine Leukocidin (PVL). Recently, the emerging of pvl-positive methicillin-resistant S. aureus has become a problem for treating the bacterially caused furuncles. Colonization with the bacteria is a risk factor for development of chronic or recurrent boils. It is not yet known why furunculosis patients are largely infants or young adults. In this context, we untangled the responses of antibody IgG antibodies to S. aureus extra-cellular factors, notably the PVL toxin, in families in which the patients were children. Multiplex PCR demonstrated that S. aureus clones, isolated from the patients’ wounds but also from the nares of family members, harbored genes coding for PVL toxin. Spa-typing highlighted that bacterial genotypes were very similar in each family. This suggests that transmission of pvl-positive S. aureus took place between family members. The finding also raises the question why only the young patients but not family members who were colonized by the same S. aureus clones suffered from furunculosis. 2D immune proteomics procedures showed a tendency of higher IgG titers against bacterial virulence factors in family healthy members than in patients. PVL-specific antibodies were measured using ELISA, in which patients’ PVL-specific IgG titers were low. This supports the idea that antibodies, probably in conjunction with T cells, might contribute to clinical protection in furunculosis. This research will serve as a foundation for future studies, in which our results should be validated in a larger cohort. Among S. aureus’ virulence factors are lipoproteins, which are anchored in the bacterial cell membrane. Lipoproteins perform various functions in colonization, immune evasion, and immunomodulation. These proteins are potent activators of the complex of innate immune receptors termed Toll-like receptors (TLR) 2 and 6. This study addressed the specific B-cell and T-cell responses to lipoproteins in human S. aureus carriers and non-carriers. 2D immune proteomics and ELISA approaches revealed that titers of serum antibody (IgG) binding to the S. aureus lipoproteins were very low or even unmeasurable in healthy individuals except for the lipoprotein SaeP. Only patients with cystic fibrosis or epidermolysis bullosa who were heavily exposed to the bacteria, generated an antibody response also to lipoproteins. Proliferation assays and cytokine profiling data showed only subtle responses of T cells in healthy individuals; three out of eight tested lipoproteins did not elicit proliferation. Hence, the robust activation of the innate immune system by S. aureus lipoproteins does not translate into a strong adaptive immune response. Reasons for this may be inaccessibility of lipoproteins for B cells as well as ineffective processing and presentation of the antigens to T cells. The main findings implicate that family members can serve as S. aureus reservoirs causing recurrent furunculosis in young patients and that antibodies may provide partial protection from such infections by S. aureus. We have found that, different from proteins that are secreted by S. aureus, lipoproteins which anchored in the bacterial cell membrane, do not trigger strong responses from the human adaptive immune system. This suggests that these proteins remain mostly hidden in the bacterial cell-wall.
SUMMARY To date, Staphylococcus aureus is the most common cause of nosocomial infections and the species is becoming increasingly resistant to antibiotics. Beyond this, S. aureus colonises the nasal mucosa of circa 35% of the healthy population, so-called carriers. Importantly, S. aureus nasal carriage is a major risk factor for the development of S. aureus infections, which are commonly caused by the colonising strain. This underlines the importance of host factors for the outcome of S. aureus-host interactions. Despite the clinical importance of nasal carriage, little is known about humoral immune responses triggered by colonisation. Therefore, this thesis was focussed on the anti-staphylococcal antibody responses of S. aureus carriers and noncarriers. Staphylococcal superantigens (SAgs) served as indicator antigens for our studies. SAgs are virulence factors with extraordinary variability in the species S aureus and act as extremely potent T cell mitogens. To date, 19 different SAg gene loci are known in the species S. aureus, but molecular-epidemiological studies on the distribution of these genes are limited. Therefore, we established five multiplex PCRs for the detection of all known SAgs. With this robust and high-throughput technique we analysed the SAg gene patterns of more than 300 isolates, including 107 nasal isolates of S. aureus carriers and 88 blood culture isolates of hospital patients from Western Pomerania. The SAg gene patterns were highly heterogeneous, which can be explained by their localisation on mobile genetic elements (MGE), such as genomic islands, pathogenicity islands, phages and plasmids. Most isolates (~80%) harboured SAg genes, on average five to six, and SAgs of the enterotoxin gene cluster (egc) were by far the most prevalent. Additionally, we observed a strict correlation between the presence of SAg genes and the T cell mitogenic potency of clinical isolates. SAg-encoding MGEs can be distributed by two distinct mechanisms: horizontal transfer by bacteriophages and vertical transmission to daughter cells. To investigate the distribution of SAg genes within the S. aureus population, we determined the clonal relationship of our isolates by spa genotyping. Interestingly, SAg-gene encoding MGEs were not randomly distributed, but rather closely linked to clonal lineages. Each clonal lineage was characterised by defined combinations of SAg genes. These data suggest that the simultaneous assessment of virulence gene profiles and the genetic background strongly enhances the discriminatory power of genetic investigations into the mechanisms of S. aureus virulence. Indeed, the comparison of virulence genes within each clonal complex indicated a role in invasiveness for some MGEs, e.g. the exfoliative toxin D-encoding pathogenicity island, while rendering it unlikely for SAgs. It is known that neutralising serum antibodies against the SAgs SEA, SEB, SEC, SED and TSST-1 are frequently present in healthy individuals. However, the neutralising antibody profiles against more recently described SAgs or complex SAg cocktails as secreted by clinical isolates had not been determined so far. Therefore, we screened more than 100 sera for their SAg neutralising capacity with a neutralisation assay. We observed a marked heterogeneity and surprisingly large “gaps” in the neutralising capacity. Interestingly, the egc SAgs were inhibited only rarely (5-10%), whereas between 32 and 86% of the tested sera neutralised “classical” SAgs. This “egc gap” in the SAg-neutralising antibody profiles of healthy individuals was unexpected, since egc SAgs are by far the most prevalent SAgs. We could demonstrate that the “egc gap” is probably not due to different T cell activating properties of egc SAgs compared to classical SAgs, but rather to a differential regulation of SAg gene expression. S. aureus carriers have an increased risk of developing an S. aureus bacteraemia, which is in most cases caused by the colonising strain. Intriguingly, a large prospective clinical trial revealed a considerably higher mortality in noncarriers with invasive S. aureus strains compared to carriers with invasive disease. To explain these paradoxical findings, we hypothesised that in carriers partial immunity against the colonising strain may contribute to their improved outcome. We used SAgs as strain-specific indicator antigens. Importantly, sera from persistent carriers neutralised SAgs of their colonising strain with significantly higher efficiency than sera from noncarriers. This antibody response was strain-specific, since the antibody response of carriers against other SAgs did not differ from that of noncarriers. Thus, colonisation with S. aureus confers a strong and strain-specific antibody response against staphylococcal SAgs. We suggest that in carriers neutralising antibodies directed against SAgs and other staphylococcal virulence factors confer partial protection during systemic infections. This could explain the better prognosis of carriers with S. aureus bacteraemia compared to noncarriers. Moreover, our data imply that the key to understanding the pathogenesis of S. aureus disease may lie in the identification of host factors rather than bacterial factors. Such host factors could be the immune status and gene polymorphisms that contribute to colonisation, susceptibility to infection and outcome of infection. Finally, while the treatment of S. aureus bacteraemia with pooled immunoglobulins was performed in the past without significant success, our findings on strain-specific antibody profiles suggest that therapies with customised cocktails of monoclonal antibodies could have a higher efficacy.
In vitro and in vivo analyses of mono- and mixed-species biofilms formed by microbial pathogens
(2022)
Microbial biofilms can be defined as multicellular clusters of microorganisms embedded in a self-produced extracellular matrix (ECM), which is primarily composed of polymeric biomolecules. Biofilms represent one of the most severe burdens in both industry and healthcare worldwide, causing billions of dollars of treatment costs annually because biofilms are inherently difficult to prevent, treat, and eradicate. In health care settings, patients suffering from cystic fibrosis, or patients with medical implants are highly susceptible to biofilm infections. Once a biofilm is formed, it is almost impossible to quantitatively eradicate it by mechanical, enzymatical, chemical, or antimicrobial treatment. Often the only remaining option to fully eradicate the biofilm is removing of the infected implant or body part. The primary reasons for the inherent resistance of biofilms against all forms of antimicrobial treatment are (I) a reduced metabolic activity of biofilm-embedded cells climaxing in the presence of metabolic inactive persister cells, as well as (II) the protective nature of the biofilm matrix acting as a (diffusion) barrier against antimicrobials and the host immune system. Consequently, there is an urgent need to better understand microbial biofilms from a structural and (patho-) physiological point of view in order to be able to develop new treatment strategies.
Therefore, the aims of this study were to investigate fundamental physiological properties of different clinically relevant single and multi-species biofilms, both in vitro and in vivo. Furthermore, the effectiveness of a novel treatment strategy using cold atmospheric pressure plasma was evaluated in vitro to treat biofilms of the pathogenic fungus C. albicans.
In article I, the intracellular and ECM protein inventory of Staphylococcus aureus during in vitro biofilm growth in a flow reactor was analyzed by liquid-chromatography coupled to tandem mass-spectrometry (LC-MS/MS) analysis combined with metabolic footprint analysis. This analysis showed that anaerobiosis within biofilms releases organic acids lowering the ECM pH. This, in turn, leads to protonation of alkaline proteins – mostly ribosomal proteins originating from cell lysis as well as actively secreted virulence factors – resulting in a positive net charge of these proteins. As a consequence, these proteins accumulate within the ECM and form an electrostatic network with negatively charged cell surfaces, eDNA, and metabolites contributing to the overall biofilm stability.
In article II, the in vivo metaproteome of the multi-species biofilm community in cystic fibrosis sputum was investigated. To this end, an innovative protocol was developed allowing the enrichment of microbial cells, the extraction of proteins from a small amount of cystic fibrosis sputum, and subsequent metaproteome analysis. This protocol also allows 16S sequencing, metabolic footprint analysis, and microscopy of the same sample to complement the metaproteome data. Applying this protocol, we were able to significantly enhance microbial protein coverage providing first insights into important physiological pathways during CF lung infection. A key finding was that the arginine deaminase pathway as well as microbial proteases play a so far underappreciated role in CF pathophysiology.
In articles III and IV, a novel treatment strategy for biofilms formed by the important fungal pathogen Candida albicans was evaluated in vitro. Biofilms were treated with two different sources of nonthermal plasma (with the Nonthermal Plasma Jet “kINPen09” as well as with the Microwave-induced plasma torch “MiniMIP”) and the effect on growth, survival, and viability was assessed by counting colony-forming units (CFU), by cell proliferation assays, as well as by live/dead staining combined with fluorescence microscopy, confocal laser scanning microscopy, (CLSM) and atomic force microscopy (AFM). These tests revealed that biofilms were effectively inactivated mostly on the bottom side of biofilms, indicating a great potential of these two plasma sources to fight biofilms.
Staphylococcus aureus (S. aureus) endocarditis is still one of the most fatal heart diseases, with a mortality rate of 20-45%. In recent years, the importance of endothelial cells (ECs) in the context of endocarditis has become more evident. The vascular endothelium forms a selective barrier between blood and the adjacent tissue by maintaining an anti-inflammatory and anti-thrombogenic phenotype. However, in case of insertion of cardiac implants, an injury of the endothelium can occur which promotes platelet aggregation followed by S. aureus adherence to the platelets, especially in areas with low hemodynamic shear stress. This process is considered as a key event in the development of infective endocarditis (IE) and allows bacteria to colonize the heart valves. Despite extensive research, the pathogenesis of IE is still not completely understood. Therefore, further investigations are needed to enable an effective prevention of this life-threatening disease.
In order to study the infection process of S. aureus, internalization experiments with two different S. aureus strains, one control strain (HG001) and one strain isolated from an endocarditis patient (T-72949) were performed in human coronary artery endothelial cells (HCAEC). Subsequently, an extensive proteome analysis of the host cells was carried out. More specific analyses were performed using peptidoglycan (PGN), a cell wall component of Gram-positive bacteria, which causes a pro-inflammatory response in ECs. In this context, the focus remained on the analysis of cellular changes in terms of cell stiffness, wound healing, and additionally platelet aggregation.
The analysis of the HCAEC host proteome revealed a time-related difference depending on the infecting bacterial strain. Several proteins involved in host cell signaling pathways exhibited a higher abundance at earlier time points in host cells infected with endocarditis strain T-72949 compared to those infected with HG001. Further proteome analysis uncovered several adaptations on the cellular side that enable internalization and replication of both S. aureus strains as well as the activation of pathways that promote cellular recovery. Furthermore, it could be shown that PGN reduced cellular stiffness which could lead to an increased bacterial uptake and would thereby promote the development of a chronic S. aureus infection. Additionally, PGN prevented effective wound healing which promotes a pro-thrombotic and pro-inflammatory condition. This status could facilitate the bacterial infection of further cells. Apart from that, PGN induced platelet aggregation which could ease bacterial adhesion to thrombotic surfaces (e.g., dysfunctional endothelium). The following formation of a mature vegetation might protect the bacteria from the immune system and antibiotics.
The results of the present work emphasize the central role of ECs in the context of IE. It could be demonstrated that a healthy monolayer of ECs enables a beneficial cell response and may prevent the development of vascular diseases. Moreover, the comprehensive proteome dataset which was generated in this project provides a valuable source of information for future studies to unravel further molecular mechanisms of endocarditis and possible therapeutic approaches.
Staphylococcus aureus (S. aureus) is among the most common infectious agents, burdening the
global health care system and challenging physicians. Thus, the demand for vaccination is
increasing, and despite many attempts, no vaccine is currently available. The iron-regulated
surface determinant protein B (IsdB) is a highly conserved surface protein of S. aureus. It has
an essential role in bacterial iron acquisition and cell attachment, functioning as a fitness factor.
It has been shown that IsdB is critical for S. aureus virulence and growth in iron-restricted
conditions, such as the human host. Therefore, IsdB was studied as a vaccine candidate. A nonadjuvant vaccine (V710) was developed based on IsdB, which showed promising results in the
preclinical, phase I, and phase IIa trials. Unexpectedly, in a phase IIb/III, in cardiothoracic
surgery patients that were infected by S. aureus, mortality was significantly higher in the
vaccinated group than the placebo. Despite increased antibody levels against IsdB in the
vaccinated patients, V710 failed to prevent S. aureus infection. Therefore, a better
understanding of the interaction between S. aureus and the immune system is required.
We have discovered that IsdB has an important role in host-pathogen interaction. This bacterial
protein activated human monocytes and murine bone marrow-derived dendritic cells
(mBMDCs) to produce proinflammatory cytokines, such as IL-6, TNF-α, IL-12, IL-23, IL-33,
and IL-1β. In silico molecular docking and DimPlot analysis predicted that IsdB binds to -TLR4
via non-covalent interactions. Microscale thermophoresis confirmed that IsdB has a high
affinity to recombinant human TLR4 in the nanomolar range. Inhibition of TLR4 completely
abolished the production of all the cytokines mentioned above in both cell types. Furthermore,
we characterized the TLR4 signaling pathway triggered by IsdB. In human monocytes, blocking
the myeloid differentiation factor 88 (MyD88) adaptor protein and NF-κβ transcription factor
caused complete abrogation of proinflammatory cytokines in response to IsdB, revealing that
IsdB induces cytokine release via the TLR4-MyD88-NF-κβ dependent pathway.
The consistent release of IL-1β suggested that IsdB induced activation of the inflammasome, a
multi-molecular complex known to play a crucial role in innate immunity. We corroborated our
observations in human monocytes and mBMDCs by inhibiting essential components of the
NLRP3 inflammasome. Blocking NLRP3, caspases in general and caspase-1 completely
inhibited the release of IL-1β. In monocytes, IsdB alone was sufficient to induce NLRPdependent IL-1β release, suggesting an alternative pathway of inflammasome activation. In
contrast, mBMDCs required an additional stimulus, such as ATP or MSU (known stress
signals) besides IsdB, to release IL-1β, indicating a classical inflammasome activation. These
results demonstrate that IsdB induces the release of IL-1β via the TLR4-NLRP3-Caspase-1
axis. Next, we addressed the molecular mechanisms involved in IsdB-induced IL-1β in monocytes.
A low concentration of intracellular potassium (K+) resulting from K+ efflux is known to trigger the NLRP3 inflammasome-mediated IL-1β release. We demonstrated that blocking potassium efflux by inhibition of ion channels, such as pannexin channels (P2X)7, and addition of extracellular KCl significantly reduced IsdB-induced IL-1β. Other common inflammasome activators, such as phagolysosome rupture and reactive oxygen species (ROS), did not contribute to the release of IL-1β in response to IsdB. In summary, we revealed yet another role of IsdB beyond iron acquisition from Hb and attachment to the host cells via vitronectin and integrins. It is conceivable that IsdB’s interaction with innate immune cells modulates the quality of the adaptive immune response, showing a new facet in the pathogen-host relationship of S. aureus that should be considered in future
vaccine development.
Staphylococcus aureus, einer der häufigsten Erreger von Pneumonien, Endokardien und Sepsen (Frank et al. 2010), gehört bei nahezu einem Drittel der Bevölkerung zur normalen Nasenschleimhautflora (van Belkum et al. 2009) und kann unter bestimmten Risikobedingungen, vor allem in nosokomialer Umgebung, weiter in die unteren Atemwege vordringen und sich dort vermehren (van Belkum et al. 2009, Ahmed et al. 2015). Da das respiratorische Epithel von einer dicken, viskösen Mukusschicht bedeckt ist (Knowles & Boucher 2002), die Bakterien aufgrund ihrer Größe kaum durchdringen können, liegt die Hypothese nahe, dass es die sehr viel kleineren, löslichen Virulenzfaktoren der Bakterien sind, die den Mukus überqueren und einen ersten Pathogen-Wirt-Kontakt herstellen können. Das lösliche, porenbildende α-Hämolysin (Hämolysin a, Hla) ist einer der Haupt-Virulenzfaktor von S. aureus (Spaulding 2012). Studien hatten gezeigt, dass Hla auch in sublytischer Konzentration zu einer Auflösung der Zell-Zell- (Inoshima et al 2012) und Zell-Matrix-Kontakte (Hermann et al. 2015) humaner Atemwegsepithelzellen führte und so eine Lückenbildung im Zellverband induzierte. In vivo könnten solche Hla-vermittelten Prozesse dazu beitragen, dass eine erste Schädigung des Epithels erfolgt und die Überwindung der epithelialen Barriere für S. aures erleichtert wird. Die vorliegende Arbeit konnte in einem ersten Teil zeigen, dass diese Unfähigkeit von humanen Atemwegsepithelzellen (16HBE14o- und S9), nach Inkubation mit rHla den epithelialen Zusammenhalt aufrecht zu erhalten und entstandene parazelluläre Lücken durch aktive Migration zu schließen, auf eine rHla-induzierte Hyperphosphorylierung des fokalen Kontaktproteins Paxillin an Tyrosin 118 (und damit erhöhten Turnover der fokalen Kontakte) und Hypophosphorylierung des Actin-depolymerisierenden Faktors Cofilin an Serin 3 (und damit verstärkten Abbau von Stressfasern) zurückzuführen war. Der Hla-Effekt konnte so in fünf Prüfgrößen quantifizierbar erfasst werden: (1) Verlust des epithelialen Zusammenhalts, (2) Reorganisation des Actinzytoskeletts, (3) Auflösung fokaler Kontakte, (4) Hyperphosphorylierung von Paxillin und (5) Hypophosphorylierung von Cofilin. Im zweiten Teil der Arbeit wurden diese Prüfgrößen herangezogen, um den Mechanismus der Hla-Wirkung genauer aufzuklären. Durch Einsatz einer nichtporenbildenden Mutante rHla-H35L und dem Porenblocker IB201 konnte zunächst gezeigt werden, dass für die schädigenden Effekte auf den epithelialen Zusammenhalt der Zellen Ausbildung einer funktionellen Hla-Pore notwendig war und nicht Bindungsereignisse der Monomere, der Vorpore oder der Pore allein den Hla-Effekt auslösen konnten. Um die porenabhängigen Ereignisse zu untersuchen, wurden Ionenströme durch die Hla-Pore identifiziert und mit Ionomycin (erzeugt einen Calciumeinstrom) und Gramicidin (erzeugt einen Natriumeinstrom und Membrandepolarisierung) nachgebildet. Beide Ionenströme zusammen konnten den Hla-Effekt nahezu vollständig erzeugen. Die Ergebnisse wiesen darüber hinaus darauf hin, dass die Hla-erzeugten ionalen Veränderungen an der Membran unterschiedliche Signalveränderungen in der Zelle vermittelten: Calciumaktivierte Signalwege schienen vor allem für die beobachtete Paxillin-Phosphorylierung verantwortlich zu sein, während ein Natriumeinstrom zu einer Cofilin-Dephosphorylierung führte. Die genaue Signaltransduktion zwischen Einstrom der Ionen und (De-)Phosphorylierungsereignissen erfordert jedoch noch eine genauere Aufklärung. Des Weiteren konnte die Modellierung der Ionenströme den Hla-Effekt nicht komplett nachbilden, sodass wahrscheinlich zusätzliche porenabhängige Signalwege nach Hla-Behandlung (z.B. Verlust von ATP, Baaske & Richter et al. 2016) aktiviert werden.
The metabolomic approach is one part of the "-omics" cascade further comprising genomic, transcriptomic, and proteomic investigations. Since information about the metabolome of the important human pathogenic bacterium Staphylococcus aureus is scarce, the aim of this thesis is the characterization of the exo- and endometabolome of this bacterium on a most global scale. For this, the metabolomic platform consisting of the analytical instruments used for 1H-NMR spectroscopy, HPLC-MS, and GC-MS analysis was applied. First, the requirements for an accurate sampling procedure for the analysis of intracellular metabolites are presented, explaining important pitfalls during the sampling and the subsequent metabolome analysis via HPLC-MS and GC-MS (book chapter I). The challenging task of the metabolite identification is demonstrated, as well as the requirements for absolute quantification of intracellular metabolites. In order to enhance the knowledge about the staphylococcal physiology and the biochemical network, the impact of different stresses and varying cultivation media on the bacterial metabolite pool was investigated in several studies. In article I, a first description of the primary metabolism of growing S. aureus COL cells cultivated aerobically in CDM is provided. This study also monitored the adaptation to glucose starvation on the level of metabolites and proteins. The uptake of all amino acids and the secretion and reuse of overflow metabolites were analyzed in a time-dependent manner. During the switch to a non-growing state, a drastic rearrangement of the amino acid pool in the bacterial cells was detected, and intracellular amounts of glycolytic intermediates were found to decrease in parallel to extracellular glucose exhaustion. During infection processes, S. aureus has to cope with varying levels of oxygen supply, including anaerobic conditions. A global metabolomic approach investigated the adaptation of S. aureus COL to strict anaerobic conditions using CDM as the culture medium. Thereby only linear growth was possible despite the higher uptake rate of glucose compared to aerobically, logarithmically growing cells. In an anoxic environment, S. aureus mainly switched on the less reliable lactic acid fermentation. Only serine and threonine but no alanine were significantly taken up. Subsequent glucose limitation led to energy starvation indicated by a drop in the adenylate energy charge. This was accompanied with an arrest of the fermentative metabolism and declining numbers of colony-forming units without taking advantage of the energy supplying arginine deiminase pathway. Compared to the established CDM, the eukaryotic cell culture medium RPMI 1640 provides more in vivo-like growth conditions. In article II, the growth behavior and the metabolic footprint of the S. aureus strains COL and HG001 were investigated during the aerobic cultivation in RPMI 1640 medium. Both strains are commonly used in laboratory research. The observed uptake and secretion pattern of extracellular metabolites provides important information for infection studies in which this medium is used for the precultivation of S. aureus. The extracellular accumulation of the noncanonical D-amino acid D-isoleucine was an interesting outcome. The strain specific metabolic footprint points to noteworthy differences in the biochemical system of both strains. Moreover, this study demonstrates the impact of the cultivation medium on the metabolic status of bacterial cells. Due to increasing resistance against a large number of antibiotics, community- and hospital- acquired infections with S. aureus are of major concern in medical therapy. Thus, greater knowledge about adaptive mechanisms after antibiotic treatment is required. In article III, the response of S. aureus HG001 to antibiotics with varying target sides, such as ciprofloxacin, erythromycin, fosfomycin, vancomycin, and ampicillin, was investigated on the metabolite level. Thereby, the abundances of 176 intracellular metabolites were observed in a time-dependent manner, thus providing the most comprehensive experimental metabolite dataset so far available for S. aureus. None of the antibiotic compounds led to alterations of single metabolite amounts, but mostly entire metabolic pathways were affected. The intermediates of the cell wall biosynthesis were affected by each antibiotic, confirming this pathway as the most potential target for new antibacterial compounds. The metabolite composition of human nasal secretions and human sweat was analyzed, since such secretions present natural habitats of S. aureus during the colonization of typical host sides. The results confirm that the bacteria has to cope with low concentrations of most of the amino acids but large amounts of urea and lactate during host colonization. Considering the supply of amino acids, the results support the usage of the RPMI 1640 medium as a step to more in vivo-like cultivation experiments. Moreover, essential information for future studies about the adaptation of S. aureus to more in vivo growth conditions is provided. Altogether, the metabolomic approach was proven to be an important tool for helping unravel the complex bacterial metabolism and the environmental factors that also play a role in the virulence of Staphylococcus aureus.
Our modern understanding of the hygiene hypothesis is that bacteria are not only the cause of disease but also essential for a healthy immune response and regulation. Varied microbial exposure prenatally and in early childhood protects us from pathological immune reactions such as autoimmune diseases and allergies. Against this background, the hypothesis that bacteria can act as allergens appears paradoxical. Nevertheless, there is growing evidence that Staphylococcus aureus (S. aureus) is associated with allergic reactions and serine protease-like proteins (Spls) produced by S. aureus have been identified as pacemakers of allergic reactions. To open prospects for treatment or causal therapy in patients at risk, the underlying mechanism of allergy induction by Spls was studied, focusing on the IL-33 pathway in airway inflammation. In a murine asthma model C57BL/6 J wild-type mice were repeatedly exposed to SplD via intratracheal application. After two weeks a Th2-biased inflammatory response was observed in the airways: IL-33 and eotaxin production, eosinophilia, bronchial hyperreactivity, and goblet cell hyperplasia. Blocking IL-33 activity with its soluble receptor ST2 counteracted these effects: significantly decreased numbers of eosinophils, IL-13+ type 2 ILCs, IL-13+CD4+ T cells as well as reduced IL-5 and IL-13 production by lymph node cells were observed. This study indicates that SplD induces allergic airway inflammation via the IL-33/ST2 axis. IL-33 upregulation was not accompanied by cell death, which indicates that IL-33 may not be passively released by dying cells but actively secreted by the airway epithelium. Future identification of the physiological substrates of the Spls may help to shed light on the source of IL-33 in SplD-induced airway inflammation.
While the causes of allergy induction by S. aureus Spls were addressed by investigating the underlying mechanism, the consequences of this were also of interest: Does the pro-allergenic response to S. aureus affect patients exposed to S. aureus in their airways? Therefore, the humoral and cellular immune response against Spls was studied in cystic fibrosis (CF) patients who are more frequently colonized with S. aureus than the healthy population and suffer from frequent recurrent airway infections. In this patient cohort a Th2 shift of the Spl-specific immune response became evident, including high Spl-specific serum IgE levels, strong induction of Th2 cell differentiation and production of type 2 cytokines following ex vivo stimulation with recombinant Spls. The observed response seems to be specific for Spls rather than being a general feature of S. aureus proteases since other putative allergens of S. aureus (ScpA, SspB) did not show increased IgE binding in CF sera. The Th2-driven immune response might impede antibacterial clearance and worsen the clinical picture. Larger clinical studies are needed to validate this notion by correlating the anti-S. aureus immune response with clinical parameters and testing new therapy options.
These results and findings shed light on a novel, possibly underestimated facet of the immune response against S. aureus and give impetus for further research on bacterial allergens in general, reaching beyond the species S. aureus.
Staphylococcus (S.) aureus besiedelt bei 30 % der gesunden Bevölkerung den Nasenraum, meist ohne Symptome zu verursachen (sog. Carrier). Die Bakterienspezies ist aber auch eine der häufigsten Ursachen für nosokomiale Infektionen mit zum Teil hoher Letalität, wie z. B. bei einer S. aureus-Sepsis. In den letzen Jahrzehnten haben sich multiresistente S. aureus-Isolate in und außerhalb der Krankenhäuser stark ausgebreitet. Dies lässt befürchten, dass eine erfolgreiche antibiotische Behandlung schwerer S. aureus-Infektionen in der Zukunft immer seltener möglich sein wird. Deshalb werden andere präventive und therapeutische Strategien wie Impfstoffe benötigt. Die Impfstoffentwicklung gestaltet sich jedoch schwierig. Zum einen ist die Variabilität der Spezies S. aureus sehr groß: Zwei Isolate können sich in bis zu 20 % ihres Genoms unterscheiden. Zum anderen ist auch die Immunantwort des Wirts sehr komplex. Die Mechanismen der angeborenen Immunabwehr sind bereits gut untersucht, das Zusammenspiel von S. aureus mit dem adaptiven Immunsystem dagegen weniger umfassend charakterisiert. Dabei ist gerade dies für die Vakzineentwicklung bedeutsam, denn jede erfolgreiche Vakzinierung beruht auf der Bildung eines Immungedächtnisses, der Kernkompetenz des adaptiven Immunsystems. Da sich die gegen S. aureus gerichtete adaptive Immunantwort von Individuum zu Individuum stark unterscheidet, ist die Entschlüsselung der zugrunde liegenden Mechanismen eine besondere Herausforderung. Die rasche Entwicklung von OMICs-Techniken ermöglicht nun erstmals eine umfassende Charakterisierung des Immunoms von S. aureus; der Gesamtheit der von B-Zellen (und Antikörpern) und T-Zellen erkannten bakteriellen Antigene. In dieser Arbeit sollten diese modernen Methoden eingesetzt werden, um einen Beitrag zum Verständnis der vielfältigen Interaktionen zwischen S. aureus und dem adaptiven Immunsystem zu leisten; mittelfristig soll dieses Projekt zur Entwicklung wirksamer Impfstoffe gegen S. aureus beitragen. Informativ erschien ein Vergleich der adaptiven Immunantwort bei S. aureus-Carriern und Patienten, weil er Aufschluss darüber verspricht, wie die Interaktion zwischen Erreger und Wirt in der Balance gehalten wird und was dieses Gleichgewicht stört. Weil die individuelle Antiköperantwort (IgG, IgA und IgM) in ihrer Komplexität und Variabilität erfasst werden sollte, wurde ein personalisierter Ansatz gewählt, d.h. mittels zweidimensionaler Immunoblots (2D-IB) wurde bei jedem S. aureus-Carrier oder Patienten die Antikörperantwort auf den eigenen kolonisierenden bzw. invasiven S. aureus-Stamm untersucht. Durch die Kombination mit massenspektrometrischen Analysen ließ sich das S. aureus-Immunom der Kolonisierung und der Bakteriämie herauskristallisieren. Um in der Zukunft auch S. aureus-spezifische T-Zellen charakterisieren zu können, wurde ein Verfahren für die Herstellung von humanen T-Zellbanken entwickelt, das die funktionelle Analyse von T-Lymphozyten auf Einzelzellebene ermöglicht.
During infections, innate immune cells are crucial for initiating a pro-inflammatory immune response and clearing the invading pathogen. Delay in pathogen clearance or initiation of an immune response due to impaired functionality of immune cells can result in devastating consequences. The cellular compartment of the innate immune system comprises an array of specialized cell types: Macrophages are tissue-resident professional phagocytes that clear cellular debris, pathogens, and foreign objects. Dendritic cells (DCs) are immune sentinels specialized in antigen uptake and subsequent T cell priming. They are primary sources of cytokines in response to infection. Neutrophils are efficient effector cells that respond rapidly to infection and clear bacteria by different mechanisms. If effector mechanisms of these cells are affected by either bacterial or other factors, infections might not be resolved and can spread throughout the host. Cobalt-chromium-molybdenum biomaterial is widely used in arthroplasty. Implant-derived wear particles and ions lead to macrophage-driven adverse local tissue reactions: Such reactions have been linked to an increased risk of periprosthetic joint infection after revision arthroplasty. While metal-induced cytotoxicity is well characterized in human macrophages, direct effects on their functionality remain elusive. In Paper I, we show that local peri-implant tissue is exposed to Co and Cr in situ. Influx of macrophages is also evident. Exposure of isolated human monocytes/macrophages to Cr3+ in vitro had only minor effects. However, exposure of monocytes/macrophages to pathologic concentrations of Co2+ significantly impaired both phenotype and functionality. High concentrations of Co2+ induced loss of surface markers, including CD14 and CD16. Both Co2+ and Cr3+ impaired macrophage responses to Staphylococcus aureus infection. Co2+ -exposed macrophages, in particular, showed decreased phagocytic activity. These findings demonstrate the immunosuppressive effects of locally elevated metal ions on the innate immune response. Streptococcus pyogenes (group A streptococcus, GAS) causes a variety of diseases ranging from mild to severe necrotizing soft tissue infections (NSTIs). In the host environment hypervirulent GAS variants carrying mutations within the genes encoding for control of virulence (Cov)R/S two component system are enriched. This adaptation is associated with loss of SpeB secretion. In Paper II, we show that in vitro infections with hyper-virulent GAS variants harboring dysfunctional CovR/S suppress secretion of IL-8 and IL-18 by human monocytic cells. This phenotype was mediated by a caspase-8 dependent mechanism. Knockout of streptococcal SLO in a GAS strain carrying functional CovR/S even increased secretion of IL1β and IL-18 by moDCs. Of 67 fully sequenced GAS NSTI isolates, 28 contained covS or covR mutations that rendered the TCS dysfunctional. However, no differences in systemic IL-8 and IL-18 were detected in these patients. GAS isolates recovered from patients often display a mixed phenotype, consisting of SpeB positive (SpeB+ ) and SpeB negative (SpeB- ) clones. Irreversible loss of SpeB expression is often caused by loss of function mutations in regulatory components (CovR/S, RopB). Loss of SpeB is often associated with hyper-virulence. In Paper III, we show that the host environment induces transiently abrogated secretion of SpeB by GAS. Tissue inflammation, neutrophil influx, and degranulation correlated with increased frequencies of SpeB- GAS clones. Isolates recovered from tissue expressed but did not secrete SpeB, which was reversible. Neutrophilderived ROS were identified as the main factor responsible for abrogated SpeB secretion. Hyper-virulent SpeB- clones also exhibit better survival within and induce excessive degranulation of neutrophils.
Neue Antibiotika und Präventionsmaßnahmen gegen S. aureus sind aufgrund der starken Ausbreitung multiresistenter S. aureus-Stämme dringend erforderlich. Zur Entwicklung von Therapie- und Präventionsmaßnahmen werden geeignete Infektionsmodellen benötigt, die die klinische Situation möglichst exakt widerspiegeln. Da die Spezies S. aureus stark wirtsspezifisch ist, könnten wirtsadaptierte S. aureus-Stämme hierbei äußerst hilfreich sein. In der Infektionsforschung werden vor allem Mausmodelle verwendet. Da bisher jedoch angenommen wurde, dass Mäuse keine natürlichen Wirte von S. aureus sind, sind S. aureus-Forscher davon ausgegangen, dass Mäuse kein geeignetes Modell darstellen. Das wurde durch unsere und andere Arbeitsgruppen allerdings in den letzten Jahren widerlegt. Wir konnten zeigen, dass Labor- und Wildmäuse mit S. aureus besiedelt sind.
Im Rahmen dieser Arbeit sollte geklärt werden, ob murine Infektionsmodelle durch die Verwendung von mausadaptierten S. aureus-Stämmen optimiert werden können. Aus über 250 S. aureus-Stämmen, die aus Labor und Wildmäusen isoliert wurden, wurden vier mausadaptierte S. aureus-Isolate ausgewählt und mit dem humanen S. aureus-Isolat Newman in einem Pneumonie- und Bakteriämiemodell vergleichen. Diese Stämme wiesen einen repräsentativen spa-Typ sowie typischen Phagenmuster und Virulenzgene auf. Zudem waren sie in der Lage, murines Plasma zu koagulieren und in murinem Vollblut zu replizieren.
Es zeigte sich, dass das murine Isolat S. aureus DIP sowohl im Pneumonie- als auch im Bakteriämiemodell deutlich virulenter war als das humane Isolat Newman und die anderen getesteten mausadaptierten Stämme. Nach kürzester Zeit starben alle Tiere, die mit S. aureus DIP infiziert wurden. Wurde die Infektionsdosis im Vergleich zu Newman um 90 % reduziert, waren die bakterielle Last, der Belastungsscore, sowie die Zytokin- und Chemokinkonzentrationen nach Infektion mit S. aureus DIP bzw. S. aureus Newman vergleichbar. Im Besiedlungsmodell konnte gezeigt werden, dass die mausadaptierten Stämme S. aureus JSNZ sowie S. aureus DIP in der Lage sind, Mäuse über einen Zeitraum von 7 Tagen stabil zu besiedeln. Mäuse, die mit S. aureus Newman besiedelt waren, konnten den Stamm innerhalb dieses Zeitraums eliminieren. Die Genomsequenzierung der in vivo verwendeten S. aureus Stämme zeigte, dass lediglich S. aureus DIP für das Leukozidin LukMF‘ kodiert. Das lässt vermuten, dass die Präsenz des Virulenzfaktors für die gesteigerte Virulenz von S. aureus DIP verantwortlich sein könnte.
Des Weiteren sollten in dieser Arbeit ein Besiedlungsmodell mit murinen S. aureus-Isolaten etabliert und die beteiligten Immunzellen quantifiziert werden. Es zeigte sich, dass Mäuse mit murinen S. aureus-Isolaten bis zu 7 Tage besiedelt werden können wohingegen S. aureus Newman zu diesem Zeitpunkt nur noch in 20 % der Tiere nachweisbar war. Zudem konnte bei der intranasalen Besiedlung mit einer hohen Dosis S. aureus DIP [1 × 10^8 CFU] gezeigt werden, dass sowohl Th17-Zellen als auch γδ-T-Zellen nach 7 Tagen IL-17A, IL-17F und IL-22 produzieren. Jedoch konnte die Zytokinproduktion nur in Tieren nachgewiesen werden, die einen hohen Belastungsscore aufwiesen. Da nach 24 Stunden bei Tieren mit hohem Belastungsscore auch Bakterien in der Lunge detektiert wurde, ist anzunehmen, dass S. aureus diese Tiere nicht nur besiedelt, sondern bei ihnen auch eine Atemwegsinfektion verursacht hatte. Durch den geringen prozentualen Anteil an ILCs in den zervikalen Lymphknoten war es nicht möglich Rückschlüsse auf deren Zytokinproduktion zu ziehen. Somit gelang es zwar ein murines S. aureus-Besiedlungsmodell zu etablieren, jedoch kann keine Aussage zu den beteiligten Zellen des Immunsystems getroffen werden.
Zusammenfassend konnte gezeigt werden, dass Labormäuse mit mausadaptierten S. aureus-Stämmen länger besiedelt werden können als mit dem humanen Referenzstamm Newman. Zudem konnte mit Hilfe des mausadaptierten Stammes S. aureus DIP die Infektionsdosis im Pneumonie- und Bakteriämiemodell erheblich reduziert werden. Somit gelang es Mausmodelle durch die Verwendung von mausadaptierten S. aureus-Stämmen zu optimieren, auch wenn das nicht auf alle getesteten Isolate zutrifft. Durch die Anpassung an den murinen Wirt stellen mausadaptierte S. aureus-Stämme wie DIP und JSNZ ein physiologischeres Modell der Pathogen-Wirts-Interaktion dar. Die Verwendung eines solchen Stammes ermöglicht es ein besseres Verständnis für Infektionsprozesse und die Pathogen-Wirt-Interaktionen zu erlangen und dadurch eventuell neue Therapiemöglichkeiten zu entwickeln.
Es ist zu berücksichtigen, dass auch die Verwendung mausadaptierter S. aureus-Stämme in murinen Besiedlungs- und Infektionsmodellen lediglich ein Modell darstellt, welches Vor- und Nachteile hat. Daher ist es essenziell, dass Wissenschaftler die Grenzen jedes Modellsystems kennen und das richtige Infektionsmodell (oder eine Kombination davon) auswählen, um ihre Forschungsfragen zu beantworten.