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Das Opc-Protein ist ein Außenmembranprotein von Meningokokken, das über extrazelluläre Matrixproteine mit Integrinen der Wirtszelle interagiert. Opc ist in Menschen immunogen und induziert bakterizide Antikörper. Das Opc-Protein wurde daher als aussichtsreicher Impfstoff-Kandidat angesehen, da es außerdem relativ gut konserviert ist. Allerdings wird das Opc-Protein nicht von allen Meningokokkenstämmen exprimiert. Einerseits fehlt das opc-Gen in einigen klonalen Komplexen (z.B. ST-8, ST-11, ST-53), andererseits ist die Opc-Expression nicht konstitutiv wegen einer phasenvariablen Transkription, die auf einem Poly-Cytidin-Bereich im Promotor des opc-Gens beruht.
In dieser Arbeit wurde die Präsenz des opc-Gens und die Opc-Expression in zwei großen Sammlungen deutscher Meningokokkenisolate von invasiven Erkrankungen (n=1141) und gesunden Trägern (n=792) untersucht.
Das opc-Gen war bei 71% der invasiven und 77% der Trägerstämme nachweisbar. Der größte Teil der opc-Gen negativen Stämme gehörte zu den klonalen Komplexen ST-8, ST-11, ST-213, ST-231, ST-334 und ST-53.
Der Anteil opc-positiver Stämme, die Opc in vitro exprimieren, war bei den invasiven Stämmen kleiner als bei den Trägerstämmen (13% vs. 29%, p<0,001, Chi-square-Test).
Der größere Anteil Opc-exprimierender Trägerstämme ist u.a. am ehesten mit der Überrepräsentation von wenig pathogenen klonalen Komplexen (ST-23, ST-35, ST-198) mit einer hohen Opc-Expressionsrate zu erklären.
24 von den 176 invasiven Stämmen mit einer Anzahl von 11 - 14 Cs in der Promotor-Region, die die Opc-Expression begünstigt, zeigten weder im ELISA noch im Westernblot eine Opc-Expression. Bei 14 dieser 24 Stämme wurde als Ursache ein phasenvariabler, intragenischer Poly-Adenin-Bereich identifiziert, der zu einer Leserasterverschiebung führte.
Die Vermutung mehrerer Autoren, dass die Opc-Expression mit dem klinischen Bild der Meningitis verknüpft ist, konnte mit der hier genutzten großen Stammsammlung nicht bestätigt werden. Invasive Stämme, die das Opc-Protein exprimierten, wurden genauso häufig von Patienten mit dem klinischen Bild der Meningitis isoliert wie Stämme, die das Opc-Protein nicht exprimierten (46% vs. 47%, Chi-square-Test: p<0,9). Allerdings gibt es eine starke Assoziation der Gegenwart des opc-Gens mit dem klinischen Merkmal Meningitis. Dieser Befund gibt Anlass zu der Hypothese, dass in vitro und in vivo Expression von Opc sich unterscheiden.
Zusammenfassend lässt sich festhalten, dass das Opc-Protein nur in 19,8% aller Isolate (invasive und Trägerstämme zusammengenommen) exprimiert wurde. Es zeigte sich eine Tendenz zu häufigerer Opc-Expression in apathogenen Trägerisolaten. Das Vorhandensein des opc-Gens, nicht aber die in vitro Expression konnten mit dem klinischen Merkmal Meningitis assoziiert werden. Zusätzlich wurde ein weiterer Mechanismus der intragenischen Phasenvariation beschrieben.
Neisseria meningitidis (N. meningitidis) is a human commensal that occasionally causes life-threatening infections such as bacterial meningitis and septicemia. Despite experi-mental evidence that the expression of small non-coding RNAs (sRNAs) as well as the RNA chaperone Hfq affect meningococcal physiology, the impact of RNA-based regula-tion (riboregulation) on fitness and virulence in N. meningitidis is only poorly understood. Therefore, this study addressed these issues using a combination of high-throughput tech-nologies.
A differential RNA-sequencing (dRNA-seq) approach was applied to produce a single-nucleotide resolution map of the primary transcriptome of N. meningitidis strain 8013. The dRNA-seq analysis predicted 1,625 transcriptional start sites including 65 putative sRNAs, of which 20 were further validated by northern blot analysis. By Hfq RNA im-munopreci-pitation sequencing a large Hfq-centered post-transcriptional regulatory net-work comprising 23 sRNAs and 401 potential mRNA targets was identified. Rifampicin stability assays demonstrated that Hfq binding confers enhanced stability on its associat-ed sRNAs. Based on these data, the interactions of two paralogous sRNAs and their cog-nate target mRNA prpB were validated in vivo as well as in vitro. Both sRNAs directly repress prpB encoding a methylisocitrate lyse which was previously shown to be involved in meningococcal colonization of the human nasopharynx.
Besides the well-described RNA chaperone Hfq, FinO-domain proteins have recently been recognized as a widespread family of RNA-binding proteins (RBPs) with regulatory roles in diverse bacteria. They display an intriguing bandwidth of target sites, ranging from a single RNA pair as recognized by plasmid-encoded FinO to the global RNA regu-lons of enterobacterial ProQ proteins. To better understand the intrinsic targeting mode of this RBP family, in vivo targets of the minimal ProQ protein of N. meningitidis were de-termined. In vivo UV crosslinking with RNA deep sequencing (UV-CLIP) identified as-sociations of ProQ with 16 sRNAs and 166 mRNAs encoding a variety of biological functions and thus revealed ProQ as another global RBP in meningococci. It could be shown that meningococcal ProQ predominantly binds to highly structured RNA regions including DNA uptake sequences (DUS) and rho-independent transcription terminators and stabilizes many of its RNA targets as proved by rifampicin stability experiments. As expected from the large suite of ProQ-bound RNAs, proQ deletion globally affects both gene and protein expression in N. meningitidis, changing the expression levels of at least 244 mRNAs and 80 proteins. Phenotypic analyses suggested that ProQ promotes oxida-tive stress tolerance and UV damage repair capacity, both of which are required for full virulence of N. meningitidis.
Together, this work uncovers the co-existence of two major post-transcriptional regulons, one governed by ProQ, the other by Hfq, in N. meningitidis. It further highlights the role of these distinct RBPs and its associated sRNAs to bacterial virulence and indicates that riboregulation is likely to contribute to the way how meningococci adapt to different host niches.
FinO-domain proteins are a widespread family of bacterial RNA-binding proteins with regulatory functions. Their target spectrum ranges from a single RNA pair, in the case of plasmid-encoded FinO, to global RNA regulons, as with enterobacterial ProQ. To assess whether the FinO domain itself is intrinsically selective or promiscuous, we determine in vivo targets of Neisseria meningitidis, which consists of solely a FinO domain. UV-CLIP-seq identifies associations with 16 small non-coding sRNAs and 166 mRNAs. Meningococcal ProQ predominantly binds to highly structured regions and generally acts to stabilize its RNA targets. Loss of ProQ alters transcript levels of >250 genes, demonstrating that this minimal ProQ protein impacts gene expression globally. Phenotypic analyses indicate that ProQ promotes oxidative stress resistance and DNA damage repair. We conclude that FinO domain proteins recognize some abundant type of RNA shape and evolve RNA binding selectivity through acquisition of additional regions that constrain target recognition. FinO-domain proteins are bacterial RNA-binding proteins with a wide range of target specificities. Here, the authors employ UV CLIP-seq and show that minimal ProQ protein of Neisseria meningitidis binds to various small non-coding RNAs and mRNAs involved in virulence.
Neisseria meningitidis ist ein wichtiger Erreger von Meningitis und Sepsis insbesondere bei jungen Menschen, gleichzeitig sind hohe Raten asymptomatischen Trägertums bekannt. Als die Virulenz begünstigende Faktoren wurden unter anderem die Kapsel, Pili, äußere Membranvesikel (OMV) und Lipopolysaccharid (LPS) identifiziert, die es dem Erreger erleichtern, das menschliche Immunsystem zu überwinden.
Dabei war bisher die Rolle von Neutrophil Extracellular Traps (NETs) als neu beschriebene Komponente der angeborenen Immunantwort nicht untersucht worden. NETs stellen spinnennetzartige DNA-Strukturen mit globulären Proteindomänen dar, die aus neutrophilen Granulozyten entstehen und als antimikrobiell gelten. Ziel dieser Arbeit war es, die Wirkung von NETs auf Meningokokken zu charakterisieren und mögliche Resistenzmechanismen der Bakterien zu identifizieren.
In den vorliegenden Versuchen konnte gezeigt werden, dass Meningokokken an NETs binden und durch diese in ihrer Proliferation gehemmt werden. Eine Lokalisation der Bakterien an die NETs konnte dargestellt werden, LPS und Pili wurden als wichtige Strukturen für die Vermittlung der NET-Bindung identifiziert. OMVs zeigten sich als protektiv gegenüber dem Einfluss der NETs, indem sie die Bindung der Erreger an die NETs blockierten.
Wenig empfindlich zeigten sich die Bakterien gegenüber Histonen als den quantitativ bedeutsamsten NET-Proteinen. Meningokokken schützen sich gegenüber dem Einfluss der NETs durch Ausbildung von Kapsel und LPS mit intakter Phosphoethanolamin-Modifikation. Ebenso vermitteln zwei Cathelicidin-Resistenzgene den Bakterien einen Überlebensvorteil. Keine Rolle bei der NET-Resistenz spielten die untersuchten Effluxmechanismen.
Neuere Untersuchungen von Lappann et al. indentifizierten Meningokokken und OMVs als potente NET-Induktoren. Damit könnten durch die relativ NET-resistenten Mikroorganismen andere Abwehrmechanismen der Neutrophilen konterkariert werden und eine Immunevasion begünstigt werden. Genauere Untersuchungen diesbezüglich stehen noch aus.
Objective
The aim of this study was to determine the prevalence of Neisseria meningitidis, Haemophilus influenzae, Streptococcus pneumoniae, group A Streptococcus (GAS), and Staphylococcus aureus in asymptomatic elderly people and to unravel risk factors leading to colonization.
Methods
A multi-centre cross-sectional study was conducted including 677 asymptomatic adults aged 65 years or more, living at home or in nursing homes. Study areas were Greater Aachen (North-Rhine-Westphalia) and Wuerzburg (Bavaria), both regions with medium to high population density. Nasal and oropharyngeal swabs as well as questionnaires were collected from October 2012 to May 2013. Statistical analysis included multiple logistic regression models.
Results
The carriage rate was 1.9% ([95%CI: 1.0–3.3%]; 13/677) for H. influenzae, 0.3% ([95%CI: 0–1.1%]; 2/677) for N. meningitidis and 0% ([95% CI: 0–0.5%]; 0/677) for S. pneumoniae and GAS. Staphylococcus aureus was harboured by 28.5% of the individuals ([95% CI: 25.1–32.1%]; 193/677) and 0.7% ([95% CI: 0.2–1.7%]; 5/677) were positive for methicillin-resistant S. aureus. Among elderly community-dwellers colonization with S. aureus was significantly associated with higher educational level (adjusted OR: 1.905 [95% CI: 1.248–2.908]; p = 0.003). Among nursing home residents colonization was associated with being married (adjusted OR: 3.367 [1.502–7.546]; p = 0.003).
Conclusion
The prevalence of N. meningitidis, H. influenzae, S. pneumoniae and GAS was low among older people in Germany. The S. aureus rate was expectedly high, while MRSA was found in less than 1% of the individuals.
Neisseria meningitidis (the meningococcus) is one of the major causes of bacterial meningitis, a life-threatening inflammation of the meninges. Traversal of the meningeal blood-cerebrospinal fluid barrier (mBCSFB), which is composed of highly specialized brain endothelial cells (BECs), and subsequent interaction with leptomeningeal cells (LMCs) are critical for disease progression. Due to the human-exclusive tropism of N. meningitidis, research on this complex host-pathogen interaction is mostly limited to in vitro studies. Previous studies have primarily used peripheral or immortalized BECs alone, which do not retain relevant barrier phenotypes in culture. To study meningococcal interaction with the mBCSFB in a physiologically more accurate context, BEC-LMC co-culture models were developed in this project using BEC-like cells derived from induced pluripotent stem cells (iBECs) or hCMEC/D3 cells in combination with LMCs derived from tumor biopsies.
Distinct BEC and LMC layers as well as characteristic expression of cellular markers were observed using transmission electron microscopy (TEM) and immunofluorescence staining. Clear junctional expression of brain endothelial tight and adherens junction proteins was detected in the iBEC layer. LMC co-culture increased iBEC barrier tightness and stability over a period of seven days, as determined by sodium fluorescein (NaF) permeability and transendothelial electrical resistance (TEER). Infection experiments demonstrated comparable meningococcal adhesion and invasion of the BEC layer in all models tested, consistent with previously published data. While only few bacteria crossed the iBEC-LMC barrier initially, transmigration rates increased substantially over 24 hours, despite constant high TEER. After 24 hours of infection, deterioration of the barrier properties was observed including loss of TEER and altered expression of tight and adherens junction components. Reduced mRNA levels of ZO-1, claudin-5, and VE-cadherin were detected in BECs from all models. qPCR and siRNA knockdown data suggested that transcriptional downregulation of these genes was potentially but not solely mediated by Snail1. Immunofluorescence staining showed reduced junctional coverage of occludin, indicating N. meningitidis-induced post-transcriptional modulation of this protein, as previous studies have suggested. Together, these results suggest a potential combination of transcellular and paracellular meningococcal traversal of the mBCSFB, with the more accessible paracellular route becoming available upon barrier disruption after prolonged N. meningitidis infection. Finally, N. meningitidis induced cellular expression of pro-inflammatory cytokines and chemokines such as IL-8 in all mBCSFB models. Overall, the work described in this thesis highlights the usefulness of advanced in vitro models of the mBCSFB that mimic native physiology and exhibit relevant barrier properties to study infection with meningeal pathogens such as N. meningitidis.
Meningococcal meningitis is a severe central nervous system infection that occurs when Neisseria meningitidis (Nm) penetrates brain endothelial cells (BECs) of the meningeal blood-cerebrospinal fluid barrier. As a human-specific pathogen, in vivo models are greatly limited and pose a significant challenge. In vitro cell models have been developed, however, most lack critical BEC phenotypes limiting their usefulness. Human BECs generated from induced pluripotent stem cells (iPSCs) retain BEC properties and offer the prospect of modeling the human-specific Nm interaction with BECs. Here, we exploit iPSC-BECs as a novel cellular model to study Nm host-pathogen interactions, and provide an overview of host responses to Nm infection. Using iPSC-BECs, we first confirmed that multiple Nm strains and mutants follow similar phenotypes to previously described models. The recruitment of the recently published pilus adhesin receptor CD147 underneath meningococcal microcolonies could be verified in iPSC-BECs. Nm was also observed to significantly increase the expression of pro-inflammatory and neutrophil-specific chemokines IL6, CXCL1, CXCL2, CXCL8, and CCL20, and the secretion of IFN-γ and RANTES. For the first time, we directly observe that Nm disrupts the three tight junction proteins ZO-1, Occludin, and Claudin-5, which become frayed and/or discontinuous in BECs upon Nm challenge. In accordance with tight junction loss, a sharp loss in trans-endothelial electrical resistance, and an increase in sodium fluorescein permeability and in bacterial transmigration, was observed. Finally, we established RNA-Seq of sorted, infected iPSC-BECs, providing expression data of Nm-responsive host genes. Altogether, this model provides novel insights into Nm pathogenesis, including an impact of Nm on barrier properties and tight junction complexes, and suggests that the paracellular route may contribute to Nm traversal of BECs.
Neisseria meningitidis is a commensal bacterium which sometimes causes serious disease in humans. Recent studies in numerous human pathogenic bacteria have shown that the stringent response contributes to bacterial virulence. Therefore, this study analyzed the regulation of the stringent response in meningococci and in particular of RelA as well as its contribution to ex vivo fitness in a strain- and condition- dependent manner by using the carriage strain α522 and the hyperinvasive strain MC58 in different in vitro and ex vivo conditions.
Growth experiments revealed that both wild-type strains were almost indistinguishable in their ex vivo phenotypes. However, quantitative real time PCR (qRT-PCR) found differences in the gene expression of relA between both strains. Furthermore, in contrast to the MC58 RelA mutant strain α522 deficient in RelA was unable to survive in human whole blood, although both strains showed the same ex vivo phenotypes in saliva and cerebrospinal fluid. Moreover, strain α522 was depended on a short non-coding AT-rich repeat element (ATRrelA) in the promoter region of relA to survive in human blood. Furthermore, cell culture experiments with human epithelial cells revealed that in both strains the deletion of relA resulted in a significantly decreased invasion rate while not significantly affecting adhesion. In order to better understand the conditional lethality of the relA deletion, computational and experimental analyses were carried out to unravel differences in amino acid biosynthetic pathways between both strains. Whereas strain MC58 is able to synthesize all 20 amino acids, strain α522 has an auxotrophy for cysteine and glutamine. In addition, the in vitro growth experiments found that RelA is required for growth in the absence of external amino acids in both strains. Furthermore, the mutant strain MC58 harboring an ATRrelA in its relA promoter region showed improved growth in minimal medium supplemented with L-cysteine and/or L-glutamine compared to the wild-type strain. Contrary, in strain α522 no differences between the wild-type and the ATRrelA deletion mutant were observed.
Together this indicates that ATRrelA interferes with the complex regulatory interplay between the stringent response pathway and L-cysteine as well as L-glutamine metabolism. It further suggests that meningococcal virulence is linked to relA in a strain- and condition- depended manner. In conclusion, this work highlighted the role of the stringent response and of non-coding regulatory elements for bacterial virulence and indicates that virulence might be related to the way how meningococci accomplish growth within the host environments.
Neisseria meningitidis ist Auslöser invasiver Infektionen, die Sepsis und Meningitis hervorrufen. Bakterielle ADP-Ribosyltransferasen wurden als Toxine zahlreicher Bakterien wie E.coli, V. cholerae und B. pertussis beschrieben, die postranslationale Modifikationen bei eukaryotischen Proteinen mit pathologischer Wirkung für den Menschen hervorrufen. Die ADP-Ribosyltransferase NarE von Neisserien ist auf der Basis von Sequenzhomologien identifiziert worden. Die enzymatische Aktivität des Proteins wurde bereits in Studien gezeigt. Ziel dieser Arbeit war, NarE aus epidemiologischem und populationsbiologischem Blickwinkel zu betrachten.
Insgesamt wurden 576 Meningokokkenisolate (109 Isolate aus der Stammsammlung des Instituts für Hygiene und Mikrobiologie Würzburg und 467 Isolate der Meningococcus Genome Library der Meningitis Research Foundation) auf das Vorhandensein von narE sowie auf Sequenzvariationen untersucht. Das Ergebnis zeigte den Besitz des Gens bei insgesamt 247 Stämmen. Bis auf zwei Punktmutationen waren alle untersuchten narE-Sequenzen identisch. Die narE-positiven Isolate konnten neun klonalen Komplexen zugeordnet werden.
Zusätzlich wurde veranschaulicht, dass das Gen in Komplexen vorkommt, die verwandtschaftlich nicht eng miteinander verbunden sind.
Mittels Western Blot konnte bei allen narE-positiven Meningokokken die Proteinexpression bestätigt werden, wobei ein signifikanter Unterschied zwischen Stämmen des cc32 und cc41/44 festzustellen war. Auf Transkriptionsebene konnte mittels qRT-PCR kein Unterschied zwischen diesen Komplexen ermittelt werden, so dass der Expressionsunterschied auf einem posttranskriptionellen Mechanismus beruhen muss.
Neisseria gonorrhoeae ist ebenfalls im Besitz des Gens wie von Masignani et al. (2003) am Beispiel weniger Isolate beschrieben. In dieser Arbeit konnte für alle 29 getesteten Gonokokken die Insertion von vier Basenpaaren bestätigt werden, die zu einer Verschiebung im Leseraster führt, so dass NarE nicht exprimiert wird. Auch ein Neisseria sicca Stamm beinhaltet und exprimiert das narE-Gen.