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Hintergrund: Für Beschäftigte im Gesundheitswesen besteht die Gefahr einer Kontamination und folgenden Infektion durch Blut übertragbare Krankheitserreger, insbesondere durch Hepatitis B, C und das Humane Immundefizienz-Virus. Die Kontaminationshäufigkeiten und -hergänge sind unter den Beschäftigten allerdings nicht gleich verteilt.
Ziel der Arbeit: Identifikation von Risikogruppen für Kontaminationsereignisse mit potentiell infektiösen Körpermaterialien durch detaillierte Subgruppenanalysen.
Material und Methoden: Retrospektive Studie an einer deutschen Universitätsklinik im Zeitraum 2010 bis 2014. Die Datenerhebung erfolgte mittels standardisierter Checklisten. Abweichungen der absoluten bzw. relativen Häufigkeiten wurden mittels Kontingenzanalysen, Fishers exaktem Test sowie Kaplan-Meier-Survival-Funktionen untersucht.
Ergebnisse: Kontaminationsereignisse mit potentiell infektiösen Körpermaterialien stellen mit knapp einem Ereignis pro Tag an einem deutschen Universitätsklinikum häufige Arbeitsunfälle dar. Ein erhöhtes Kontaminationsrisiko scheint unter Beschäftigten der operativen Fächer, der Desinfektion/Sterilisation, Hebammen und Kardiotechniker zu bestehen. Niedrige Hepatitis B-Impfraten fanden sich unter Zahnmedizinstudierenden.
Diskussion: Anhand der insgesamt niedrigen Kontaminations- und hohen Hepatitis B-Durchimpfungsraten kann auf sichere Arbeitsbedingungen geschlossen werden, vorbehaltlich niedriger Dunkelziffern. Allerdings sollte aufgrund der teils geringen Kopfzahlen in den Risikoberufsgruppen eine besonders tiefgreifende Evaluation der Arbeitsbedingungen zur Risikoreduktion von Kontaminationsereignissen mit potentiell infektiösen Körpermaterialien erfolgen.
The obligate human pathogen Neisseria meningitidis is a major cause of sepsis and meningitis worldwide. It affects mainly toddlers and infants and is responsible for thousands of deaths each year. In this study, different aspects of the importance of sphingolipids in meningococcal pathogenicity were investigated. In a first step, the acid sphingomyelinase (ASM), which degrades membrane sphingomyelin to ceramide, was studied in the context of meningococcal infection. A requirement for ASM surface activity is its translocation from the lysosomal compartment to the cell surface, a process that is currently poorly understood.
This study used various approaches, including classical invasion and adherence assays, flow cytometry, and classical and super resolution immunofluorescence microscopy (dSTORM). The results showed that the live, highly piliated N. meningitidis strain 8013/12 induced calcium-dependent ASM translocation in human brain microvascular endothelial cells (HBMEC). Furthermore, it promoted the formation of ceramide-rich platforms (CRPs). In addition, ASM translocation and CRP formation were observed after treating the cells with pili-enriched fractions derived from the same strain. The importance for N. meningitidis to utilize this pathway was shown by the inhibition of the calcium-dependent ASM translocation, which greatly decreased the number of invasive bacteria.
I also investigated the importance of the glycosphingolipids GM1 and Gb3. The results showed that GM1, but not Gb3, plays an important role in the ability of N. meningitidis to invade HBMEC. By combining dSTORM imaging and microbiological approaches, we demonstrated that GM1 accumulated prolifically around bacteria during the infection, and that this interaction seemed essential for meningococcal invasion.
Sphingolipids are not only known for their beneficial effect on pathogens. Sphingoid bases, including sphingosine, are known for their antimicrobial activity. In the last part of this study, a novel correlative light and electron microscopy approach was established in the combination with click chemistry to precisely localize azido-functionalized sphingolipids in N. meningitidis. The result showed a distinct concentration-dependent localization in either the outer membrane (low concentration) or accumulated in the cytosol (high concentration). This pattern was confirmed by mass spectrometry on separated membrane fractions. Our data provide a first insight into the underlying mechanism of antimicrobial sphingolipids.
The StrongPaed study in the paediatric ward of a referral hospital in Mwanza in the lake region of Tanzania showed the prevalence of S. stercoralis, G. lamblia, E. histolytica and E. dispar as well as of other intestinal parasites with various diagnostic methods.
The prevalence of S. stercoralis was 2-10 % depending on the diagnostic methods used. There were no symptomatic infections but only carriage of the nematode. The positive results differed greatly depending on the performed diagnostic methods. None of the diagnostics showed satisfying results, neither in sensitivity and specificity nor in feasibility for this population in an endemic region in sub-Saharan Africa. PCR and microscopy were limited by the low amount of examined stool samples and by the resulting lack of sensitivity. Stool cultures were limited by time-consuming procedures and mainly by the problem of differentiation from hookworm and the resulting lack of specificity. ELISA was limited by the need of blood samples and also by poor specificity in the ELISA used.
The prevalence of G. lamblia was high, but mostly only carriage and not symptomatic infections was seen. No E. histolytica was detected, but 8.5 % samples were positive for E. dispar. Among the performed diagnostics, the rapid test showed sufficient results. It showed better sensitivity than microscopy and is cheaper and more feasible than PCR. Differentiation between E. histolytica and E. dispar was only possible with qPCR performed in Germany.
More children were positive for intestinal parasites from rural than from urban areas. The profession of the parents working as farmers was a risk factor for intestinal parasitic infections. Hygienic living conditions such as access to tap water and flush toilets at home were preventive for intestinal parasitic infections in children.
Der Weg von der Entwicklung bis zur Zulassung neuer Virostatika ist bis heute mit hohen Kosten und einem großen Zeitaufwand verbunden. Sollten jedoch bereits zugelassene antivirale Medikamente eine Wirkung auf andere virale Infektionen zeigen, könnte dieser Prozess stark verkürzt werden. Daher war es Ziel dieser Arbeit, den Effekt von zugelassenen Medikamenten, gegen HSV-1, mCMV, hCMV, RSV, Parainfluenzavirus-3, DENV-2, CHIKV, Poliovirus, Masernvirus und HIV-1 zu evaluieren. Getestet wurden die Polymeraseinhibitoren ACV, GCV, CDV, sowie das neuere Medikament T-705 und die reversen Transkriptase-Inhibitoren TDF, 3TC, AZT und ABC. Außerdem die Proteaseinhibitoren SMV, GRV, DCV, LDV, ELB, VEL, SOF und DSV.
TDF senkte in einer Konzentration von 10 µM die Infektiosität von HSV-1 und mCMV bis zu 1 Größenordnung. Auch ABC senkte die Infektiosität von HSV-1 und mCMV in einer Konzentration von 30 µM um 0,4 bzw. 0,6 Größenordnungen. AZT und ELB senkten die Infektiosität bei Infektionen mit HSV-1 in einer Konzentration von 30 µM um 0,4 Größenordnungen. VEL senkte die Infektiosität von mCMV bis zu einer Konzentration von 2 µM um 0,7 Größenordnungen. Durch die Substanzen ELB und LDV konnte die Replikation von DENV-2 bei einer Konzentration von 10 µM um 0,6 bzw. 0,8 Größenordnungen gesenkt werden. Die Substanzen zeigten jedoch keinen Effekt auf Infektionen mit CHIKV und Poliovirus, sodass für beide Substanzen ein virusspezifischer Effekt anzunehmen ist. Es wurde keine Wirkung der Substanzen gegen Infektionen mit Masernvirus, RSV oder Parainfluenzavirus-3 in den Versuchen beobachtet. Es wurde gezeigt, dass die verwendeten Methoden eine schnelle und effektive Möglichkeit darstellen, neue direkt-antivirale Medikamente zu etablieren. Zudem stellen die gefundenen Wirkstoffe eine gute Grundlage als Leitsubstanzen zur Entwicklung neuer Wirkstoffe dar. Weitere Versuche mit Kombinationen der wirksamen Substanzen sollten zur weiteren Therapiefindung durchgeführt werden. Damit hat die vorgelegte Arbeit eine hohe Relevanz für die weitere Forschung.
According to the WHO, foodborne derived enteric infections are a global disease burden and often manifest in diseases that can potentially reach life threatening levels, especially in developing countries. These diseases are caused by a variety of enteric pathogens and affect the gastrointestinal tract, from the gastric to the intestinal to the rectal tissue. Although the complex mucosal structure of these organs is usually well prepared to defend the body against harmful agents, specialised pathogens such as Salmonella enterica can overcome the intestinal defence mechanism. After ingestion, Salmonella are capable of colonising the gut and establishing their proliferative niche, thereby leading to inflammatory processes and tissue damage of the host epithelium. In order to understand these processes, the scientific community in the last decades mostly used cell line based in vitro approaches or in vivo animal studies. Although these approaches provide fundamental insights into the interactions between bacteria and host cells, they have limited applicability to human pathology. Therefore, tissue engineered primary based approaches are important for modern infection research. They exhibit the human complexity better than traditional cell lines and can mimic human-obligate processes in contrast to animal studies.
Therefore, in this study a tissue engineered human primary model of the small intestinal epithelium was established for the application of enteric infection research with the exemplary pathogen Salmonella Typhimurium.
To this purpose, adult stem cell derived intestinal organoids were used as a primary human cell source to generate monolayers on biological or synthetic scaffolds in a Transwell®-like setting. These tissue models of the intestinal epithelium were examined for their comparability to the native tissue in terms of morphology, morphometry and barrier function. Further, the gene expression profiles of organotypical mucins, tight junction-associated proteins and claudins were investigated. Overall, the biological scaffold-based tissue models showed higher similarity to the native tissue - among others in morphometry and polarisation. Therefore, these models were further characterised on cellular and structural level. Ultrastructural analysis demonstrated the establishment of characteristic microvilli and tight-junction connections between individual epithelial cells. Furthermore, the expression pattern of typical intestinal epithelial protein was addressed and showed in vivo-like localisation. Interested in the cell type composition, single cell transcriptomic profiling revealed distinct cell types including proliferative cells and stem cells, progenitors, cellular entities of the absorptive lineage, Enterocytes and Microfold-like cells. Cells of the secretory lineage were also annotated, but without distinct canonical gene expression patterns. With the organotypical polarisation, protein expression, structural features and the heterogeneous cell composition including the rare Microfold-like cells, the biological scaffold-based tissue model of the intestinal epithelium demonstrates key requisites needed for infection studies with Salmonella.
In a second part of this study, a suitable infection protocol of the epithelial tissue model with Salmonella Typhimurium was established, followed by the examination of key features of the infection process. Salmonella adhered to the epithelial microvilli and induced typical membrane ruffling during invasion; interestingly the individual steps of invasion could be observed. After invasion, time course analysis showed that Salmonella resided and proliferated intracellularly, while simultaneously migrating from the apical to the basolateral side of the infected cell. Furthermore, the bacterial morphology changed to a filamentous phenotype; especially when the models have been analysed at late time points after infection. The epithelial cells on the other side released the cytokines Interleukin 8 and Tumour Necrosis Factor α upon bacterial infection in a time-dependent manner. Taken together, Salmonella infection of the intestinal epithelial tissue model recapitulates important steps of the infection process as described in the literature, and hence demonstrates a valid in vitro platform for the investigation of the Salmonella infection process in the human context.
During the infection process, intracellular Salmonella populations varied in their bacterial number, which could be attributed to increased intracellular proliferation and demonstrated thereby a heterogeneous behaviour of Salmonella in individual cells. Furthermore, by the application of single cell transcriptomic profiling, the upregulation of Olfactomedin-4 (OLFM4) gene expression was detected; OLFM4 is a protein involved in various functions including cell immunity as well as proliferating signalling pathways and is often used as intestinal stem cell marker. This OLFM4 upregulation was time-dependent, restricted to Salmonella infected cells and seemed to increase with bacterial mass. Investigating the OLFM4 regulatory mechanism, nuclear factor κB induced upregulation could be excluded, whereas inhibition of the Notch signalling led to a decrease of OLFM4 gene and protein expression. Furthermore, Notch inhibition resulted in decreased filamentous Salmonella formation. Taken together, by the use of the introduced primary epithelial tissue model, a heterogeneous intracellular bacterial behaviour was observed and a so far overlooked host cell response – the expression of OLFM4 by individual infected cells – could be identified; although Salmonella Typhimurium is one of the best-studied enteric pathogenic bacteria. This proves the applicability of the introduced tissue model in enteric infection research as well as the importance of new approaches in order to decipher host-pathogen interactions with higher relevance to the host.
The immune system is responsible for the preservation of homeostasis whenever a given organism is exposed to distinct kinds of perturbations. Given the complexity of certain organisms like mammals, and the diverse types of challenges that they encounter (e.g. infection or disease), the immune system evolved to harbor a great variety of distinct immune cell populations with specialized functions. For instance, the family of T cells is sub-divided into conventional (Tconv) and unconventional T cells (UTCs). Tconv form part of the adaptive arm of the immune system and are comprised of αβ CD4+ or CD8+ cells that differentiate from naïve to effector and memory populations upon activation and are essential during infection and cancer. Furthermore, UTCs, which include γδ T cells, NKT and MAIT, are involved in innate and adaptive immune responses, due to their dual mode of activation, through cytokines (innate-like) or TCR (adaptive), and function. Despite our understanding of the basic functions of T cells in several contexts, a great number of open questions related to their basic biology remain. For instance, the mechanism behind the differentiation of naïve CD4+ and CD8+ T cells into effector and memory populations is not fully understood. Moreover, the exact function and relevance of distinct UTC subpopulations in a physiological context have not been fully clarified. Here, we investigated the factors mediating naïve CD8+ T cell differentiation into effector and memory cells. By using flow cytometry, mass spectrometry, enzymatic assays, and transgenic mouse models, we found that the membrane bound enzyme sphingomyelin-phosphodiesterase acid-like 3b (Smpdl3b) is crucial for the maintenance of memory CD8+ T cells. Our data show that the absence of Smpdl3b leads to diminished CD8+ T cell memory, and a loss of stem-like memory populations due to an aggravated contraction. Our scRNA-seq data suggest that Smpdl3b could be involved in clathrinmediated endocytosis through modulation of Huntingtin interacting protein 1 (Hip1) levels, likely regulating TCR-independent signaling events. Furthermore, in this study we explored the role of UTCs in lymph node-specific immune responses. By using transgenic mouse models for photolabeling, lymph node transplantation models, infection models and flow cytometry, we demonstrate that S1P regulates the migration of tissue-derived UTC from tissues to draining lymph nodes, resulting in heterogeneous immune responses mounted by lymph nodes draining different tissues. Moreover, our unbiased scRNAseq and single lineage-deficient mouse models analysis revealed that all UTC lineages (γδ T cells, NKT and MAIT) are organized in functional units, based on transcriptional homogeneity, shared microanatomical location and migratory behavior, and numerical and functional redundancy. Taken together, our studies describe additional cell intrinsic (Smpdl3b) and extrinsic (S1Pmediated migration) functions of sphingolipid metabolism modulating T cell biology. We propose the S1P/S1PR1/5 signaling axis as the potential survival pathway for Smpdl3b+ memory CD8+ T cells and UTCs, mainly in lymph nodes. Possibly, Smpdl3b regulates S1P/S1PR signaling by balancing ligandreceptor endocytosis, while UTCs migrate to lymph nodes during homeostasis to be exposed to specific levels of S1P that assure their maintenance. Our results are clinically relevant, since several drugs modulating the S1P/S1PR signaling axis or the levels of Smpdl3b are currently used to treat human diseases, such as multiple sclerosis and B cell-mediated diseases. We hope that our discoveries will inspire future studies focusing on sphingolipid metabolism in immune cell biology.