Institut für Hygiene und Mikrobiologie
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Sonstige beteiligte Institutionen
- Broad Institute, USA (1)
- Department Pharmazie - Zentrum für Pharmaforschung, Ludwig-Maximilians-Universität München (1)
- Department of Hematology and Oncology, Sana Hospital Hof, Hof, Germany (1)
- Department of Laboratory Medicine and Medicine Huddinge, Karolinska Institutet and University Hospital, Stockholm, Sweden (1)
- Department of Medicine A, University Hospital of Münster, Münster, Germany (1)
- Instituto de Higiene, Universidad de la República, Montevideo, Uruguay (1)
- Instituto de Hygiene Montevideo, Uruguay (1)
- Krankenhaushygiene und Antimicrobial Stewardship (1)
- Krankenhaushygiene und Antimicrobial Stewardship (Universitätsklinikum) (1)
- Leibniz-Institut für Naturstoff-Forschung und Infektionsbiologie Hans-Knöll-Institut (1)
EU-Project number / Contract (GA) number
- 2016 FGR 0053 (1)
- 278864 (1)
- 715466 (1)
- 847507 (1)
Background
Neisseria meningitidis is a naturally transformable, facultative pathogen colonizing the human nasopharynx. Here, we analyze on a genome-wide level the impact of recombination on gene-complement diversity and virulence evolution in N. meningitidis. We combined comparative genome hybridization using microarrays (mCGH) and multilocus sequence typing (MLST) of 29 meningococcal isolates with computational comparison of a subset of seven meningococcal genome sequences.
Principal Findings
We found that lateral gene transfer of minimal mobile elements as well as prophages are major forces shaping meningococcal population structure. Extensive gene content comparison revealed novel associations of virulence with genetic elements besides the recently discovered meningococcal disease associated (MDA) island. In particular, we identified an association of virulence with a recently described canonical genomic island termed IHT-E and a differential distribution of genes encoding RTX toxin- and two-partner secretion systems among hyperinvasive and non-hyperinvasive lineages. By computationally screening also the core genome for signs of recombination, we provided evidence that about 40% of the meningococcal core genes are affected by recombination primarily within metabolic genes as well as genes involved in DNA replication and repair. By comparison with the results of previous mCGH studies, our data indicated that genetic structuring as revealed by mCGH is stable over time and highly similar for isolates from different geographic origins.
Conclusions
Recombination comprising lateral transfer of entire genes as well as homologous intragenic recombination has a profound impact on meningococcal population structure and genome composition. Our data support the hypothesis that meningococcal virulence is polygenic in nature and that differences in metabolism might contribute to virulence.
Staphylococcus aureus (S. aureus) ist einer der häufigsten Erreger schwerer endovaskulärer Infektionen, die häufig mit einer Dissemination des Erregers in andere Organe und lebensbedrohlichen Komplikationen wie Endokarditis, Osteomyelitis oder Abszessen assoziiert sind. Entscheidender Schritt in der Pathogenese endovaskulärer Infektionen ist die Schädigung und Überwindung der Endothelbarriere. Für deren Integrität ist die Intaktheit von Zell-Zell-Verbindungen elementar, diese werden unter anderem durch Src-Kinasen reguliert. Es ist bekannt, dass S. aureus Fibronektin-Bindeproteine (FnBPs) maßgeblich für die Adhärenz und Invasion des Erregers in Endothelzellen sind. Die Invasion erfolgt über eine indirekte Bindung an α5β1-Integrine, invasive Eigenschaften finden sich in nahezu allen klinischen Isolaten. In verschiedenen Tiermodellen konnte außerdem ein Zusammenhang zwischen der Expression von FnBPs und der Dissemination von S. aureus in andere Organe gezeigt werden. Bislang ist jedoch nicht untersucht, welche Auswirkung die S. aureus-Infektion auf die Endothelbarriere hat und welche Mechanismen für die Translokation des Erregers verantwortlich sind.
In dieser Arbeit wurde analysiert, ob die Infektion mit S. aureus- und S. carnosus-Stämmen in vitro zu einer Schädigung der endothelialen Integrität von EA.hy926-Zellen führt. Hierzu wurden Änderungen der transendothelialen Impedanz und der Endothelpermeabeabilität nach Infektion im xCELLigence- bzw. Transwell-System erfasst. Zytotoxische Effekte wurden durch Kristallviolettfärbungen, immunfluoreszenz-mikroskopische Untersuchungen der Mitochondrien und Nuklei sowie die Erfassung der hypodiploiden Zellkerne mittels Durchflusszytometrie quantifiziert. Zur Entschlüsselung des molekularen Mechanismus wurden Veränderungen der Adherens und Tight Junction-Proteine ZO-1 und VE-Cadherin in der Immunfluoreszenz untersucht. Die Rolle von Src-Kinasen wurde durch pharmakologische Inhibition analysiert.
Es konnte gezeigt werden, dass FnBP-exprimierende S. aureus-Stämme eine Abnahme der transendothelialen Impedanz verursachen und dass es 4 und 24 Stunden nach Infektion zu einer signifikanten Zunahme der Endothelpermeabilität kommt. Zytotoxische Effekte auf die Endothelzellen durch die Infektion traten nach 24 Stunden auf, jedoch nicht nach 4 Stunden. VE-Cadherin und ZO-1 zeigten 4 Stunden nach Infektion eine FnBP-abhängige Konformationsänderung und Reduktion der Signalintensität. Außerdem konnte demonstriert werden, dass die Inhibition von Src-Kinasen den Anstieg der Endothelpermeabilität signifikant reduziert.
In dieser Arbeit wurde zum ersten Mal belegt, dass S. aureus FnBPs eine Erhöhung der Endothelpermeabilität bewirken. Während hierfür zu späten Zeitpunkten Apoptose verantwortlich ist, muss nach 4 Stunden ein anderer Mechanismus ursächlich sein. Da es zu einer Abschwächung der ZO-1- und VE-Cadherin-Signalintensität in der Immunfluoreszenz kam, ist anzunehmen, dass Adherens und Tight Junctions durch die Infektion geschädigt werden. Es ist bekannt, dass Src-Kinasen durch die Infektion mit S. aureus aktiviert werden. Außerdem sind sie elementar für die Regulation der Endothelpermeabilität und vermitteln diesen Effekt unter anderem über eine Phosphorylierung von Adherens und Tight Junction-Proteinen. Eine Src-vermittelte Phosphorylierung von Zell-Zell-Verbindungsproteinen wäre daher eine mögliche Erklärung für die beobachteten Veränderungen von ZO-1 und VE-Cadherin. Dieser Mechanismus könnte Wegbereiter für die parazelluläre Passage über die Endothelbarriere sein. Darüber hinaus könnte die erhöhte Endothelpermeabilität den Zugang zur Extrazellulärematrix und zum größten Pool an Fibronektin und Integrinen ermöglichen und so die Invasion und Transzytose begünstigen. Die hier gewonnenen Ergebnisse tragen dazu bei, die komplexe Interaktion zwischen S. aureus und dem Endothel und somit wichtige Schritte in der Pathogenese endovaskulärer Infektionen besser zu verstehen und neue Zielstrukturen für therapeutische Interventionen zu identifizieren.
The eradication of infectious agents is an attractive means of disease control that, to date, has been achieved for only one human pathogen, the smallpox virus. The introduction of vaccines against Neisseria meningitidis into immunisation schedules, and particularly the conjugate polysaccharide vaccines which can interrupt transmission, raises the question of whether disease caused by this obligate human bacterium can be controlled, eliminated, or even eradicated. The limited number of meningococcal serogroups, lack of an animal reservoir, and importance of meningococcal disease are considerations in favour of eradication; however, the commensal nature of most infections, the high diversity of meningococcal populations, and the lack of comprehensive vaccines are all factors that suggest that this is not feasible. Indeed, any such attempt might be harmful by perturbing the human microbiome and its interaction with the immune system. On balance, the control and possible elimination of disease caused by particular disease-associated meningococcal genotypes is a more achievable and worthwhile goal.
Staphylococcus aureus is a frequent human commensal bacterium and pathogen. Here we report the complete genome sequence of strain 6850 (spa type t185; sequence type 50 [ST50]), a highly cytotoxic and clinically virulent methicillin-sensitive strain from a patient with complicated S. aureus bacteremia associated with osteomyelitis and septic arthritis.
Pathogenic Neisseria meningitidis isolates contain a polysaccharide capsule that is the main virulence determinant for this bacterium. Thirteen capsular polysaccharides have been described, and nuclear magnetic resonance spectroscopy has enabled determination of the structure of capsular polysaccharides responsible for serogroup specificity. Molecular mechanisms involved in N. meningitidis capsule biosynthesis have also been identified, and genes involved in this process and in cell surface translocation are clustered at a single chromosomal locus termed cps. The use of multiple names for some of the genes involved in capsule synthesis, combined with the need for rapid diagnosis of serogroups commonly associated with invasive meningococcal disease, prompted a requirement for a consistent approach to the nomenclature of capsule genes. In this report, a comprehensive description of all N. meningitidis serogroups is provided, along with a proposed nomenclature, which was presented at the 2012 XVIIIth International Pathogenic Neisseria Conference.
Human alveolar echinococcosis (AE) is a potentially deadly disease; recent studies have shown that the endemic area of Echinococcus multilocularis, its causative agent, is larger than previously known. This disease has low prevalence and remains underreported in Europe. Emerging clinical data show that diagnostic difficulties are still common. We report on a 76-year old patient suffering from AE lesions restricted to the left lobe of the liver who underwent a curative extended left hemihepatectomy. Prior to the resection a liver biopsy under the suspicion of an atypical malignancy was performed. After the intervention he developed a pseudoaneurysm of the hepatic artery that was successfully coiled. Surprisingly, during surgery, the macroscopic appearance of the tumour revealed a growth pattern that was rather typical for cystic echinococcosis (CE), i.e., a gross tumour composed of multiple large vesicles with several centimeters in diameter. In addition, there were neither extensive adhesions nor infiltrations of the neighboring pancreas and diaphragm as was expected from previous imaging results. The unexpected diagnosis of AE was confirmed by definite histopathology, specific polymerase chain reaction and serology results. This is a rare case of unusual macroscopic presentation of AE that posed immense diagnostic challenges and had an eventful course. To our knowledge this is the first case of an autochthonous infection in this particular geographic area of Germany, the federal state of Saxony. This report may provide new hints for an expanding area of risk for AE and emphasizes the risk of complications in the scope of diagnostic procedures and the limitations of modern radiological imaging.
Cytosine methylation is a conserved epigenetic feature found throughout the phylum Platyhelminthes
(2013)
Background: The phylum Platyhelminthes (flatworms) contains an important group of bilaterian organisms responsible for many debilitating and chronic infectious diseases of human and animal populations inhabiting the planet today. In addition to their biomedical and veterinary relevance, some platyhelminths are also frequently used models for understanding tissue regeneration and stem cell biology. Therefore, the molecular (genetic and epigenetic) characteristics that underlie trophic specialism, pathogenicity or developmental maturation are likely to be pivotal in our continued studies of this important metazoan group. Indeed, in contrast to earlier studies that failed to detect evidence of cytosine or adenine methylation in parasitic flatworm taxa, our laboratory has recently defined a critical role for cytosine methylation in Schistosoma mansoni oviposition, egg maturation and ovarian development. Thus, in order to identify whether this epigenetic modification features in other platyhelminth species or is a novelty of S. mansoni, we conducted a study simultaneously surveying for DNA methylation machinery components and DNA methylation marks throughout the phylum using both parasitic and non-parasitic representatives.
Results: Firstly, using both S. mansoni DNA methyltransferase 2 (SmDNMT2) and methyl-CpG binding domain protein (SmMBD) as query sequences, we illustrate that essential DNA methylation machinery components are well conserved throughout the phylum. Secondly, using both molecular (methylation specific amplification polymorphism, MSAP) and immunological (enzyme-linked immunoabsorbent assay, ELISA) methodologies, we demonstrate that representative species (Echinococcus multilocularis, Protopolystoma xenopodis, Schistosoma haematobium, Schistosoma japonicum, Fasciola hepatica and Polycelis nigra) within all four platyhelminth classes (Cestoda, Monogenea, Trematoda and 'Turbellaria') contain methylated cytosines within their genome compartments.
Conclusions: Collectively, these findings provide the first direct evidence for a functionally conserved and enzymatically active DNA methylation system throughout the Platyhelminthes. Defining how this epigenetic feature shapes phenotypic diversity and development within the phylum represents an exciting new area of metazoan biology.
Haemophilus influenzae is a Gram-negative bacillus and a frequent commensal of the human nasopharynx. Earlier work demonstrated that in H. influenzae type b, l-lactate metabolism is associated with serum resistance and in vivo survival of the organism. To further gain insight into lactate utilization of the non-typeable (NTHi) isolate 2019 and laboratory prototype strain Rd KW20, deletion mutants of the l-lactate dehydrogenase (lctD) and permease (lctP) were generated and characterized. It is shown, that the apparent KM of l-lactate uptake is 20.1μM as determined for strain Rd KW20. Comparison of the COPD isolate NTHi 2019-R with the corresponding lctP knockout strain for survival in human serum revealed no lactate dependent serum resistance. In contrast, we observed a 4-fold attenuation of the mutant strain in a murine model of nasopharyngeal colonization. Characterization of lctP transcriptional control shows that the lactate utilization system in H. influenzae is not an inductor inducible system. Rather negative feedback regulation was observed in the presence of l-lactate and this is dependent on the ArcAB regulatory system. Additionally, for 2019 it was found that lactate may have signaling function leading to increased cell growth in late log phase under conditions where no l-lactate is metabolized. This effect seems to be ArcA independent and was not observed in strain Rd KW20. We conclude that l-lactate is an important carbon-source and may act as host specific signal substrate which fine tunes the globally acting ArcAB regulon and may additionally affect a yet unknown signaling system and thus may contribute to enhanced in vivo survival.