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The anaerobic pathogen Clostridioides difficile is perfectly equipped to survive and persist inside the mammalian intestine. When facing unfavorable conditions C. difficile is able to form highly resistant endospores. Likewise, biofilms are currently discussed as form of persistence. Here a comprehensive proteomics approach was applied to investigate the molecular processes of C. difficile strain 630Δerm underlying biofilm formation. The comparison of the proteome from two different forms of biofilm-like growth, namely aggregate biofilms and colonies on agar plates, revealed major differences in the formation of cell surface proteins, as well as enzymes of its energy and stress metabolism. For instance, while the obtained data suggest that aggregate biofilm cells express both flagella, type IV pili and enzymes required for biosynthesis of cell-surface polysaccharides, the S-layer protein SlpA and most cell wall proteins (CWPs) encoded adjacent to SlpA were detected in significantly lower amounts in aggregate biofilm cells than in colony biofilms. Moreover, the obtained data suggested that aggregate biofilm cells are rather actively growing cells while colony biofilm cells most likely severely suffer from a lack of reductive equivalents what requires induction of the Wood-Ljungdahl pathway and C. difficile’s V-type ATPase to maintain cell homeostasis. In agreement with this, aggregate biofilm cells, in contrast to colony biofilm cells, neither induced toxin nor spore production. Finally, the data revealed that the sigma factor SigL/RpoN and its dependent regulators are noticeably induced in aggregate biofilms suggesting an important role of SigL/RpoN in aggregate biofilm formation.
More than half of the infectious diseases in humans are caused by zoonotic pathogens or pathogens of animal origin that were transmitted to humans a long time ago. Two important rodent-associated zoonotic pathogens are hantaviruses and human-pathogenic Leptospira spp. Both pathogens induce lifelong infection in the rodent hosts that shed the pathogen. Infection with these zoonotic pathogens in humans can cause clinical symptoms. Since some rodents, like the common vole (Microtus arvalis) and the bank vole (Clethrionomys glareolus syn. Myodes glareolus), have cyclic mass reproduction, this can result in years of population outbreaks in an increased number of disease cases in humans. This was found to be the case with the leptospirosis outbreaks in Germany and tularemia outbreaks in Spain, which were traced back to increased common vole density, as well as with the hantavirus disease outbreaks in several European countries, which were associated with bank vole population outbreaks.
The aim of this work was to define the distribution and prevalence of different hantaviruses and leptospires as well as their coinfection in different European rodents, with a focus on voles from the genus Microtus and the identification of factors that affect the pathogen prevalence in rodent hosts. Therefore, common voles, bank voles, striped field mice (Apodemus agrarius) and other rodents were screened by molecular methods for the presence and prevalence of Leptospira spp. and different hantaviruses. Additionally, in selected studies, the presence of anti-hantavirus antibodies was screened by enzyme-linked immunosorbent assay (ELISA) using recombinant hantavirus-nucleocapsid proteins. The prevalence of hantavirus, Leptospira spp. and double-infections with both pathogens was analyzed using individual and population-based factors. Small mammals from four different European countries, Spain in the West, Germany and Austria in Central and Lithuania in Northeastern Europe, were included in the studies.
With the molecular screenings, two new hantavirus strains were detected in continental Europe and were named Traemmersee hantavirus (TRAV) and Rusne hantavirus (RUSV) after the trapping locations in Germany and Lithuania, respectively. TRAV was detected in a field vole (Microtus agrestis) from the federal state of Brandenburg, Germany, while RUSV was detected in root voles (Microtus oeconomus) from Lithuania. Phylogenetic analysis of both hantaviruses indicates their close relation to Tatenale hantavirus and Kielder hantavirus, which were discovered in field voles in Great Britain. A pairwise evolutionary distance (PED) analysis showed that all four hantaviruses belong to the same hantavirus species, for which the putative name “Tatenale orthohantavirus” was proposed. Additionally, a recombinant RUSV antigen was generated and used successfully in ELISA for the detection of RUSV-specific antibodies and for the analysis of the cross-reactivity of monoclonal and polyclonal antibodies.
In Germany, Tula orthohantavirus (TULV) was foremost detected in common voles in Thuringia and Brandenburg but was also detected in field voles in Brandenburg. Puumala orthohantavirus (PUUV) was detected in Thuringia at the virus distribution border, but sequences differed strongly from known sequences from another neighboring trapping location. While in Austria Dobrava-Belgrade orthohantavirus (DOBV), genotype Kurkino, was detected for the first time in striped field mice, no hantavirus RNA was detected in common voles from Spain. The cause of this absence in the Iberian common vole population might be its long-term isolation from the common vole populations more to the east. The TULV prevalence in Germany in this study was dependent on the season and on the prior growth of the reservoir population. An individual factor that affected the hantavirus prevalence, was the increasing age of the common vole.
Leptospira spp.-DNA was detected in common voles from Spain and Germany, as well as in one striped field mouse from Austria. Except for the two detections of L. borgpetersenii in Spain, which were probably the result of spillover infections, only the genomospecies L. kirschneri was detected in common voles from Spain and Germany. The high prevalence of Leptospira spp., as well as the detection of only one genomospecies, confirm that L. kirschneri is the genomospecies for which the common vole is the main reservoir. Important factors for the Leptospira spp. prevalence were found to be, in addition to temperature and rainfall, the season and the preceding common vole density. Like the case with hantavirus, the age of the vole was found to be an influencing factor.
In Germany, coinfections of TULV and Leptospira spp. were detected. These were associated with high common vole density and increased with the age of the common vole. Furthermore, the incidence of coinfections seems to be impacted more by the Leptospira spp. than by the hantavirus prevalence.
As part of this thesis, TULV and PUUV were detected in previously untested regions in Germany, DOBV was detected for the first time in Austria and the distribution range of the putative species “Tatenale orthohantavirus” was extended to continental Europe for the first time with detection in two countries. Screenings in Spain indicate that certain common vole populations can be free from TULV infection. Furthermore, leptospires were detected in rodents from Spain, Germany and Austria. It was verified that certain Leptospira genomospecies are host-specific. Factors that influence the prevalence of infection or coinfection by hantaviruses and leptospires were determined.
The origin and hosts associated with the Tatenale orthohantavirus should be clarified in further studies including the field vole and the root vole as well as other members of the genus Microtus in Europe and Asia. The development of a RUSV-antigen-based ELISA will enable future screening in humans and therefore might provide information about the human pathogenicity of this pathogen. For final confirmation of the zoonotic potential, isolation of the virus and development of a focus reduction neutralization test are necessary. The expansion of the striped field mouse to Austria and the detectable carryover of DOBV associated with this implies that further screening studies to more precisely characterize the distribution of DOBV (and other pathogens) are needed. The studies of DOBV spread in Austria as well as PUUV spread in Germany could help to better understand the emergence of zoonotic pathogens in new regions. The here described hantavirus-Leptospira spp. and Neoehrlichia mikurensis-Bartonella spp. coinfections should be further analyzed to characterize the interactions of the pathogens in the context of a microbiome and their influence on epidemiological aspects of the involved pathogens. The here identified individual and population-based impact factors for the TULV and Leptospira spp. prevalence should support the development and optimization of prediction models.
Streptococcus pneumoniae is a commensal of the human upper respiratory tract and moreover, the
causative agent of several life-threatening diseases including pneumonia, sepsis, otitis media, and
meningitis. Due to the worldwide rise of resistance to antibiotics in pneumococci the understanding
of its physiology is of increasing importance. In this context, the analysis of the pneumococcal
proteome is helpful as comprehensive data on protein abundances in S. pneumoniae may provide
an extensive source of information to facilitate the development of new vaccines and drug
treatments.
It is known that protein phosphorylation on serine, threonine and tyrosine residues is a major
regulatory post-translational modification in pathogenic bacteria. This reversible post-translational
modification enables the translation of extracellular signals into cellular responses and therewith
adaptation to a steadily changing environment. Consequently, it is of particular interest to gather
precise information about the phosphoproteome of pneumococci. S. pneumoniae encodes a single
Serine/Threonine kinase-phosphatase couple known as StkP-PhpP.
To address the global impact and physiological importance of StkP and PhpP which are closely
linked to the regulation of cell morphology, growth and cell division in S. pneumoniae, proteomics
with an emphasis on phosphorylation and dephosphorylation events on Ser and Thr residues was
applied. Thus, the non-encapsulated pneumococcal D39Δcps strain (WT), a kinase (ΔstkP) and
phosphatase mutant (ΔphpP) were analyzed in in a mass spectrometry based label-free
quantification experiment. The global proteome analysis of the mutants deficient for stkP or phpP
already proved the essential role of StkP-PhpP in the protein regulation of the pneumococcus.
Proteins with significantly altered abundances were detected in diverse functional groups in both
mutants. Noticeable changes in the proteome of the stkP deletion mutant were observed in
metabolic processes such as “Amino acid metabolism” and also in pathways regulating genetic
and environmental information processing like “Transcription” and “Signal transduction”.
Prominent changes in the metabolism of DNA, nucleotides, carbohydrates, cofactors and vitamins
as well as in the categories “Transport and binding proteins” and “Glycan biosynthesis and
metabolism” have been additionally detected in the proteome of the phosphatase mutant. Still, the
quantitative comparison of WT and mutants revealed more significantly altered proteins in ΔphpP
than in ΔstkP. Moreover, the results indicated that the loss of function of PhpP causes an increased
abundance of proteins in the pneumococcal phosphate uptake system Pst. Furthermore, the
obtained quantitative proteomic data revealed an influence of StkP and PhpP on the twocomponent
systems ComDE, LiaRS, CiaRH, and VicRK.
Recent studies of the pneumococcal StkP/PhpP couple demonstrated that both proteins play an
essential role in cell growth, cell division and separation. Growth analyses and the phenotypic
characterization of the mutants by electron-microscopy performed within this work pointed out
that ΔphpP and ΔstkP had different growth characteristics and abnormal cell division and cell
separation. Nevertheless, the morphological effects could not be explained by changes in protein
abundances on a global scale. So, the in-depth analysis of the phosphoproteome was mandatory
to deliver further information of PhpP and StkP and their influence in cell division and
peptidoglycan synthesis by modulating proteins involved in this mechanisms.
For more detailed insights into the activity, targets and target sites of PhpP and StkP the advantages
of phosphopeptide enrichment using titanium dioxide and spectral library based data evaluation
were combined. Indeed, the application of an adapted workflow for phosphoproteome analyses
and the use of a recently constructed broad spectral library, including a large number of
phosphopeptides (504) highly enhanced the reliable and reproducible identification of
phosphorylated proteins in this work.
Finally, already known targets and target sites of StkP and PhpP, detected and described in other
studies using different experimental procedures, have been identified as a proof of principle
applying the mass spectrometry based phosphoproteome approach presented in this work.
Referring to the role of StkP in cell division and cell separation a number of proteins participating
in cell wall synthesis and cell division that are apparently phosphorylated by StkP was identified.
In comparison to StkP, the physiological function and role of the co-expressed phosphatase PhpP
is poorly understood. But, especially the list of previously unknown putative target substrates of
PhpP has been extended remarkably in this work. Among others, five proteins with direct
involvement in cell division (DivIVA, GpsB) and peptidoglycan biosynthesis (MltG, MreC, MacP)
can be found under the new putative targets of PhpP.
All in all, this work provides a complex and comprehensive protein repository of high proteome
coverage of S. pneumoniae D39 including identification of yet unknown serine/threonine/tyrosine
phosphorylation, which might contribute to support various research interests within the scientific
community and will facilitate further investigations of this important human pathogen.
Infections with bacterial pathogens are a major cause of morbidity and mortality
worldwide. Furthermore, the extensive use of antibiotics increased the frequency of infections with drug-resistant pathogens. Streptococcus pneumoniae, a major cause of
bacterial pneumonia, is among the pathogens that often show resistances. As an
additional side effect, the use of antibiotics can disrupt the patient’s intestinal microbiome, allowing Clostridioides difficile to cause severe, recurring and hard-to-treat
colitis. Hence, new antimicrobials are needed to combat infections caused by these
pathogens. A promising approach is the usage of antimicrobial peptides (AMPs), defense
molecules produced by organisms from all domains of life. AMPs can specifically perforate
bacterial membranes and stimulate the overall immune response of the host.
In this work, the proteomic adaptations of S. pneumoniae to the human antimicrobial
peptides LL-37 and hBD3 were assessed by high-resolution mass spectrometry and
compared to general membrane stress, in order to evaluate the specificity of the bacterial
reactions. Furthermore, C. difficile was challenged with the Lactococcus lactis-derived
AMP nisin, and the proteomic alterations were examined. In essence, application of LL-37
and hBD3 changed the abundance of pneumococcal proteins involved in membrane
transport, including a putative AMP transporter, a protease, virulence proteins and
genetic regulators. Moreover, a challenge with LL-37 caused an increase of proteins
involved in cell surface modifications that alter the bacterial membrane charge and repel cationic molecules such as LL-37. In support of this, mutants unable to express these
proteins were more sensitive to LL-37. In contrast, general membrane stress, induced by
the application of cationic detergents, produced a diverse proteomic adjustment, though the same two-component regulatory system was activated. In C. difficile, levels of flagella proteins were significantly increased shortly after treatment with nisin, being in
accordance with subsequent electron microscopy data and pointing at a role of these
proteins in adaptation to nisin. Interestingly, a flagella-overexpressing mutant showed an
enhanced resistance towards nisin, independent of bacterial motility.
Taken together, the bacterial pathogens under investigation seem to possess
mechanisms to reduce the effect of AMPs on their physiology, a finding that should be
considered developing drugs based on AMPs. Although AMPs exhibit membrane
perturbations as a common mechanism of action, bacterial adaptation to AMPs appear
multifactorial and dependent on the exact pathogen observed and AMP used.
Pestivirus-Replikons als Werkzeug für heterologe Genexpression und molekulare Charakterisierung
(2021)
Replikons sind autonom replizierende RNA-Moleküle die nicht in der Lage sind, infektiöse Viren zu bilden. Sie sind wichtige Hilfsmittel zur molekularen Charakterisierung von Viren. Außerdem werden sie erfolgreich als Expressionssystem für Proteine und zur Entwicklung von Impfvektoren eingesetzt. Im Rahmen der vorliegenden Arbeit wurde ein Replikon-basiertes Testsystem für den Nachweis spezifischer Antikörper gegen das atypische porzine Pestivirus (APPV) in Schweineseren etabliert. Auf Basis eines Klons des Virus der bovinen Virusdiarrhoe Typ 1 (BVDV) wurden die ursprünglichen BVDV Glykoproteine E1 und E2 gegen die Glykoproteine des APPV ausgetauscht. Die Expression mittels Replikon gewährleistet die natürliche Konformation der Proteine und damit die Bindung der entsprechenden Antikörper. Dieses System ermöglichte die serologische Untersuchung von 1115 Schweineseren ohne vorherige Isolation oder Zellkulturadaptation des Virus. Mit diesem neu entwickelten System konnte eine Seroprävalenzstudie gestartet und eine hohe Prävalenz von APPV in der untersuchten deutschen Schweinepopulation gezeigt werden.
Im weiteren Verlauf dieser Arbeit wurden Replikons zur Charakterisierung des atypischen Pestivirus Bungowannah Pestivirus (BuPV) eingesetzt. Während die Replikons mit Deletionen der Gene für die einzelnen Strukturproteine C, E1 und E2 oder die gesamte Strukturproteinregion keine Besonderheiten im Vergleich zu bereits untersuchten Pestivirus-Replikons aufwiesen und keine infektiösen Virionen mehr produzieren konnten, zeigten BuPV-Replikons mit ERNS-Deletion die Fähigkeit, zwei weitere Replikationszyklen zu durchlaufen und Zellen zu infizieren, allerdings mit einem sehr deutlichen Wachstumsdefizit. Dieser Defekt scheint in der Virusassemblierung und/oder der Freisetzung aus der Zelle zu liegen. Es konnte somit erstmals gezeigt werden, dass ERNS nicht essentiell für die Bildung infektiöser Bungowannah-Viren ist, jedoch sehr wichtig für eine effiziente Virusvermehrung. Diese Eigenschaft der ERNS deletieren BuPV macht diese besonders interessant als Vektoren für die Entwicklung neuer Replikon-basierter Expressionssysteme und einer Vakzinplattform. ERNS-Deletionsmutanten wurden daher auf ihre Fähigkeit hin untersucht, eine effiziente Expression verschiedener immunogener Proteine zu gewährleisten. Die Konstrukte waren dabei in der Lage, die ausgewählten Proteine effizient zu exprimieren und konnten zudem effizient zu Virus-Replikon-Partikel (VRP) verpackt und in einer trans-komplementierenden Zelllinie vermehrt werden.
Auch der für das parentale Virus beschrieben Zelltropismus konnte für die generierten BuPV-VRP gezeigt werden. Zusätzlich zu den beschriebenen Eigenschaften sind es der nicht-zytopathogene Charakter und die in den meisten Regionen fehlende Immunität gegen BuPV, die das hohe Potential dieses Systems als universellen Vakzinvektor herausstellen.
Zusätzlich wurde im Rahmen dieser Arbeit ein erstes DNA-basiertes System zur Herstellung rekombinanter BuPVs etabliert. Dieses System ermöglicht sowohl die Virusproduktion ausgehend von einem T7-RNA-Polymerase Promotor, als auch von einem Polymerase-II-Promotor. Die infektiösen Viren zeigten gleiche Wachstumseigenschaften wie Viren, welche mit dem konventionellen RNA-System generiert wurden. Auf Basis des neuen DNA-Systems konnte auch ein Replikon mit Deletion im ERNS-Gen etabliert werden. Dieser Klon zeigte nach der Transfektion eine sehr geringe Replikationsrate, konnte jedoch zur weiteren Konstruktion eines „single round infectious particle“ (SRIP) eingesetzt werden. Diese SRIP sind durch die Koexpression des deletierten ERNS in der Lage, sich selbst zu verpacken und bilden damit ein ideales System zum Transport selbst-replizierender RNA. Durch seine selbstlimitierenden Eigenschaften könnte es zur Entwicklung und Etablierung einer effizienten und sicheren Vakzineplattform eingesetzt werden. Allerdings ist dafür eine weiterreichende Optimierung notwendig.
Insgesamt zeigten die Untersuchungen, dass sich pestivirale Replikons sowohl als effizientes und schnelles Testsystem für die Untersuchung der Verbreitung neu auftretender Pestiviren, als auch zur Entwicklung effizienter RNA- und DNA-basierter Transport- und Verpackungssysteme viraler Proteine, eignet.
Bisherige Analysen von RABV-Pathogenitätsdeterminanten wurden mit laboradaptierten, teils attenuierten Viren durchgeführt. Es ist unklar, ob bisher untersuchte Faktoren auch für hoch virulente RABV-Feldviren relevant sind. Der hier durchgeführte systematische Vergleich von Feldviren und Laborstämmen im infizierten Tier konnte Unterschiede hinsichtlich der Fähigkeit immunkompetente Neuroglia des ZNS zu infizieren als mögliche Pathogenitätsdeterminante aufzeigen. Darüber hinaus wurden erstmals SZ-Neuroglia peripherer Nerven als Zielzellen für die RABV-Infektion identifiziert.
Für die Analyse von RABV-infizierten Geweben wurde ein modernes 3D Imaging-Verfahren angewandt. Gehirne aus experimentell infizierten Mäusen und Frettchen wurden wie in Veröffentlichung 1 beschrieben immunfluoreszenz-gefärbt, optisch geklärt und hochauflösend mit einem konfokalen Laserscan Mikroskop untersucht. RABV N und P Protein konnten dreidimensional in räumlicher Umgebung zu zellulären Strukturen des Wirtes visualisiert werden. Diese Untersuchung bewies die besondere Eignung des Verfahrens zur Identifizierung vereinzelter Zielstrukturen und wurde für nachfolgende systematische Analysen im ZNS und PNS verwendet.
Der RABV-Zelltropismus wurde als vermutlich wichtige Pathogenitätsdeterminante in Veröffentlichung 2 untersucht. RABV Feldviren vom Hund (rRABV Dog), Fuchs (rRABV Fox) und Waschbär (rRABV Rac) konnten im Vergleich zu den laboradaptierten Viren (rCVS-11, SAD L16 und ERA) nicht-neuronale Zellen im ZNS wie Astroglia produktiv infizieren. Der Anteil infizierter Astrozyten ist mit 7-17 % nach i.m. Inokulation vergleichbar mit dem der Neuronen (7-19 %). Interessanterweise wurde eine Inokulationsroutenabhängige Infektion von Astrozyten mit dem moderat virulenten Laborstamm rCVS-11 beobachtet. Diese systematische und quantitative Analyse des RABV-Astrozyten- und Neuronentropismus zeigt, dass mit abnehmender Virulenz die Fähigkeit der Viren produktiv in Astroglia im ZNS zu replizieren abnimmt. Die Fähigkeit eine produktive Infektion in Astrozyten auszubilden, scheint demnach ein grundlegender Unterschied zwischen Feldviren und weniger virulenten Laborstämmen zu sein.
Weiterführend wurde in Veröffentlichung 3 die Virusausbreitung vom ZNS in periphere Nerven untersucht. Hinterbeine, Wirbelsäule inklusive Rückenmark, Gehirn und weitere Kopfbereiche experimentell infizierter Mäuse wurden mittels Lichtblatt- und konfokaler Laserscanmikroskopie analysiert. Zum Ersten Mal konnte eine RABV-Infektion peripherer Neuroglia dargestellt werden. Eine produktive Infektion immunkompetenter SZ im PNS ist also möglicherweise, genauso wie die Infektion von Astrozyten im ZNS, entscheidend für die RABV-Neuropathogenese. Die Detektion von RABV-Antigen im Hinterbein nach i.c. Inokulation beweist eine anterograde axonale Virusausbreitung vom ZNS in periphere Nerven. Interessanterweise konnte das Virus auch in Bereichen des Nasopharynx und des Zungenepithels nachgewiesen werden, worüber möglicherweise zusätzlich zur Speicheldrüse Virus in den Nasenrachenraum ausgeschieden wird. Zusammenfassend konnten mit dieser Arbeit neue Einblicke hinsichtlich des Zelltropismus und der Ausbreitung von RABV in vivo im Modellorganismus Maus gewonnen werden. Die Fähigkeit der untersuchten hoch virulenten Feldviren nicht-neuronale, immunkompetente Neuroglia des ZNS und PNS zu infizieren unterscheidet diese von den weniger virulenten bzw. apathogenen Virusstämmen und könnte ein entscheidender Faktor bei der Ausbildung einer Tollwut-Enzephalitis darstellen.
Out of Control: The Role of the Ubiquitin Proteasome System in Skeletal Muscle during Inflammation
(2021)
The majority of critically ill intensive care unit (ICU) patients with severe sepsis develop ICU-acquired weakness (ICUAW) characterized by loss of muscle mass, reduction in myofiber size and decreased muscle strength leading to persisting physical impairment. This phenotype results from a dysregulated protein homeostasis with increased protein degradation and decreased protein synthesis, eventually causing a decrease in muscle structural proteins. The ubiquitin proteasome system (UPS) is the predominant protein-degrading system in muscle that is activated during diverse muscle atrophy conditions, e.g., inflammation. The specificity of UPS-mediated protein degradation is assured by E3 ubiquitin ligases, such as atrogin-1 and MuRF1, which target structural and contractile proteins, proteins involved in energy metabolism and transcription factors for UPS-dependent degradation. Although the regulation of activity and function of E3 ubiquitin ligases in inflammation-induced muscle atrophy is well perceived, the contribution of the proteasome to muscle atrophy during inflammation is still elusive. During inflammation, a shift from standard- to immunoproteasome was described; however, to which extent this contributes to muscle wasting and whether this changes targeting of specific muscular proteins is not well described. This review summarizes the function of the main proinflammatory cytokines and acute phase response proteins and their signaling pathways in inflammation-induced muscle atrophy with a focus on UPS-mediated protein degradation in muscle during sepsis. The regulation and target-specificity of the main E3 ubiquitin ligases in muscle atrophy and their mode of action on myofibrillar proteins will be reported. The function of the standard- and immunoproteasome in inflammation-induced muscle atrophy will be described and the effects of proteasome-inhibitors as treatment strategies will be discussed.
Over thirty years have passed since the first description of ubiquitin-positive structures in the brain of patients suffering from Alzheimer’s disease. Meanwhile, the intracellular accumulation of ubiquitin-modified insoluble protein aggregates has become an indisputable hallmark of neurodegeneration. However, the role of ubiquitin and a fortiori the ubiquitin-proteasome system (UPS) in the pathogenesis of neurodevelopmental disorders (NDD) is much less described. In this article, we review all reported monogenic forms of NDD caused by lesions in genes coding for any component of the UPS including ubiquitin-activating (E1), -conjugating (E2) enzymes, ubiquitin ligases (E3), ubiquitin hydrolases, and ubiquitin-like modifiers as well as proteasome subunits. Strikingly, our analysis revealed that a vast majority of these proteins have a described function in the negative regulation of the innate immune response. In this work, we hypothesize a possible involvement of autoinflammation in NDD pathogenesis. Herein, we discuss the parallels between immune dysregulation and neurodevelopment with the aim at improving our understanding the biology of NDD and providing knowledge required for the design of novel therapeutic strategies.
Phospholipide wie Phosphatidylinositol und Phosphatidylcholin sind essenzielle Bestandteile aller biologischen Membranen und für deren Integrität und Funktion unerlässlich. Sind Inositol und Cholin (IC) im Medium vorhanden, ist die Hefe Saccharomyces cerevisiae in der Lage, diese aufzunehmen und zu verarbeiten. Unter Mangelbedingungen können diese Stoffe von der Zelle selbst synthetisiert werden. Daher ist es sinnvoll, die Phospholipid¬biosynthese-Gene differenziell zu exprimieren, was auf der Ebene der Transkriptions¬initiation geschieht. Bei IC-Mangel werden die Gene (z. B. das Inositol-3-Phosphat Synthase Gen INO1) durch Bindung des heterodimeren Aktivatorkomplexes Ino2/Ino4 an das Promotorelement ICRE („inositol/ choline responsive element“) aktiviert, um die Biosynthese zu gewährleisten. Sowohl Ino2 als auch Ino4 sind für die ICRE-Bindung nötig, während die transkriptionale Aktivierung nur durch Ino2 mit Hilfe zweier Transkriptionsaktivierungsdomänen TAD1 und TAD2 vermittelt wird. Ist dagegen ausreichend IC vorhanden, werden die Gene reprimiert, indem der Repressor Opi1 an den Aktivator Ino2 bindet, sodass es zu einer Konformationsänderung kommt und eine Dimerisierung mit Ino4 nicht mehr möglich ist.
Um eine erfolgreiche Transkriptionsinitiation zu gewährleisten, bilden neben der RNA-Polymerase II eine Reihe genereller Transkriptionsfaktoren (A, B, D, E, F und H) sowie der Mediatorkomplex im Promotorbereich der Zielgene den sog. Präinitiationskomplex (PIC). Die von diesen basalen Faktoren gewährleistete geringe Grundexpression kann von Aktivatorproteinen, die an positiv-regulatorische Elemente („upstream activation site“, UAS) binden, deutlich verstärkt werden. Hierzu nutzen Aktivatorproteine verschiedene Mechanismen, zu denen die Auflockerung der Chromatinstruktur durch Histonmodifikationskomplexe wie SAGA oder Chromatinremodellierungskomplexe wie SWI/SNF, die bessere Bindung der Transkriptionsfaktoren am Basalpromotorbereich oder die Beschleunigung des Übergangs vom geschlossenen zum offenen PIC gehören.
Im Verlauf dieser Arbeit konnten zahlreiche Interaktionen zwischen dem Aktivator Ino2 und Faktoren der Transkriptionsmaschinerie nachgewiesen werden, die vermutlich die Häufigkeit der Trans¬kriptions-initiation beeinflussen. Einige der Untereinheiten des Transkriptionsfaktors TFIID interagie¬ren mit Ino2. Ein Schwerpunkt dieser Arbeit lag auf der Charakterisierung der Interaktion der Ino2-TAD1 mit Taf1 und Taf12. Der Austausch der Aminosäuren Asparaginsäure-20 und Phenyl¬alanin-21 in Ino2 führte zu einem Interaktionsausfall mit beiden Tafs. In Taf1 konnten zwei basisch-hydro¬phobe Aminosäure-Bereiche (K206 Y207 und L208 L209 K210) innerhalb der minimalen Aktivator¬binde¬domäne 2 (ABD2) identifiziert werden, die kritisch für den Kontakt zum Aktivator sind. Es konnte ferner gezeigt werden, dass basische und hydrophobe Aminosäuren in Kombination für die Bindung an den Aktivator verantwortlich sind und dass der Austausch gegen Alanin (KY-AA) zu einem Abfall der Expression des INO1-Gens auf 44% führt. Darüber hinaus konnte der Bromo¬domänen¬faktor Bdf1 als Interaktionspartner von Ino2 identifiziert werden. Bdf1 vervollständigt Hefe-Taf1, während Säuger-Taf1 selbst Bromodomänen zur Erkennung von Histonacetylierungen beinhaltet. Innerhalb der Taf12-Minimaldomäne sind die Aminosäuren K150 L151 R175 und L176 wesentlich für die Bindung an Ino2. Eine Teildeletion von Taf12, die unter anderem den Verlust dieser Aminosäuren zur Folge hat, führt zu einer auf 76% reduzierten INO1-Expression.
Ein weiterer Transkriptions¬faktor, der von Ino2 kontaktiert wird, ist TFIIA mit seinen Untereinheiten Toa1 und Toa2. Die Proteine kontaktieren beide TADs des Aktivators, allerdings konnten innerhalb der minimalen Interaktionsdomänen der Toa-Proteine keine für diese Interaktion verantwortliche Aminosäuren identifiziert werden. Veränderungen der Toa1-Sequenz hatten keinen phänotypischen Einfluss auf die Phospholipidbiosynthese, allerdings führten einige Veränderungen (RKRK-Motiv im AS-Bereich 253-259) zu letalen Folgen für das Wachstum der Zellen, weil die Bildung des TFIIA-TBP-TATA-Komplexes beeinträchtigt ist. Wahrscheinlich hat die Interaktion zwischen Ino2 und TFIIA eine verstärkende Wirkung auf die Transkriptionsinitiation der Phospholipidbiosynthese-Gene, indem die Interaktion zwischen TFIIA und TFIID stabilisiert wird und TFIIA die interaktive Oberfläche am Promotor für Interaktionen mit anderen Proteinen vergrößert.
Die Verschiebung der Nucleosomen in Promotorbereichen durch Chromatinremodellierungs¬kompexe wie SWI/SNF ist ein weiterer Mechanismus der Transkriptionsaktivierung. In früheren Arbeiten wurde bereits die Interaktion zwischen Ino2, Aro80 bzw. Gal4 und der SWI/SNF ATPase-Untereinheit Swi2 beschrieben. Im Zuge dieser Arbeit konnte eine minimale Interaktionsdomäne im AS-Bereich 238-307 kartiert werden. Essenzielle Aminosäuren für die Bindung an Ino2 und andere Aktivatoren konnten nicht identifiziert werden.
Sug1 und Sug2 sind ATPasen der regulatorischen 19S-Untereinheit des 26S Proteasoms. Neben der Degradation fehlgefalteter polyubiquitinierter Proteine haben sie auch eine nicht-proteolytische Bedeutung für die Transkriptionsinitiation. Bekannt ist, dass proteasomale ATPasen an aktiven Promotoren zu finden sind und mit Aktivator¬proteinen (z. B. Gal4) interagieren können. Die vorlie¬gende Arbeit zeigt, dass auch Ino2 von Sug1 und Sug2 kontaktiert wird. Möglicherweise dienen sie am INO1-Promotor als Stabilisatoren und Vermittler zwischen Ino2 und der Transkriptionsmaschi¬nerie und erleichtern den Übergang des Präinitiationskomplexes in den Elongationskomplex.
Unter reprimierenden Bedingungen bindet Opi1 an Ino2 und rekrutiert die Corepressorkomplexe Sin3 und Cyc8/Tup1, die ihrerseits Histondeacetylasen in Promotornähe bringen und die Transkrip¬tion durch lokale Chromatinverfestigung reprimieren. Frühere Arbeiten hatten gezeigt, dass die Corepressoren auch mit Ino2 und weiteren Aktivatoren (Hac1 und Pho4) interagieren und dass sie in Abhängigkeit von Ino2, nicht aber von Opi1, am INO1-Promotor vorliegen. In dieser Arbeit wurde die Interaktion zwischen Ino2 und Sin3 bzw. Cyc8 charakterisiert. Sin3 und Cyc8 kontaktieren einen Bereich des Aktivators, der die TAD2 und die RID (Repressorinteraktionsdomäne) enthält. Es war bekannt, dass die Aminosäuren Phenylalanin-130, Leucin-131 und Asparaginsäure-132 essenziell für die Interaktion mit Opi1 sind. In dieser Arbeit wurde gezeigt, dass deren Austausch gegen Alanin auch einen Interaktionsverlust mit Cyc8 und Sin3 bewirkt. Darüber hinaus konnte gezeigt werden, dass diese FLD-AAA-Mutation zu einer praktisch konstitutiven Expression des INO1-Gens führt, allerdings auf niedrigerem Niveau als im Fall dereprimierter Zellen mit einem Wildtyp Ino2. In Hac1 und Pho4 konnten Aminosäuren mit vergleichbarer Bedeutung für die Corepressorbindung nicht identifiziert werden. Offenbar können die Corepressoren je nach physiologischer Situation in der Zelle positiv oder negativ auf die Transkriptionsinitiation wirken.
Lyssaviruses, the causative agents of rabies, are a long-known threat for animals and humans. To date, terrestrial rabies still accounts for tens of thousands of human deaths annually, notwithstanding ambitious vaccination campaigns targeting susceptible dog and wildlife populations that act as reservoirs for the prototypic rabies virus. Moreover, the continuing discovery of newly emerging virus species in hitherto unconcerned chiropteran hosts and geographic regions drive the expansion of the Lyssavirus genus by unveiling its actual variety, host range and distribution.In this work, the genetic diversity of three distinct lyssaviruses, namely EBLV-1, KBLV and RABV, was elucidated by in-depth genomic analyses to provide further insight into lyssavirus evolution. The generation of full-genome sequences from primarily bat-associated Danish EBLV-1 samples significantly increased the number of available Danish EBLV-1 genome sequences while phylogenetic and phylogeographic analysis revealed a stronger phylogeographic structure for the cluster A1 of the sublineage EBLV-1a than it was postulated in previous studies. In addition, the acquisition of a nearly complete genome sequence for the Kotalahti bat lyssavirus provided the basis for the classification of this putative new lyssavirus species as a recognized member of the genus. Furthermore, phylogenetic analysis revealed the affiliation of KBLV to a group of Myotis-associated lyssaviruses giving a deeper insight into the shared evolutionary history of lyssaviruses co-evolving with particular bat species. Moreover, a deep-sequencing approach was utilized to assess the high genetic diversity of vaccine virus populations, uncovering three independent patterns of single nucleotide variants (SNVs) that became selected in ERA-related vaccine-induced cases. However, no apparent influence of the genetic diversity of vaccine viruses on microevolutionary processes like a potential reversion to virulence or a species-specific adaptation of the vaccine virus strains could be detected, leaving the question for the cause of rabies induction in the affected animals unanswered. Lastly, the successful implementation of a hybridization capturing system for the generation of full-genome sequences and deep-sequencing variant analyses of RABV and KBLV samples was demonstrated for a diagnostic bait set, highlighting the versatility and consistency of this approach to assess the genetic spectrum of known and novel lyssavirus species while setting the basis for its application and optimization in upcoming projects.In conclusion, as shown by the studies in this work, the investigation of lyssavirus genomes at the sub-consensus, full-genome and population level remains crucial to assess the complexity of lyssavirus evolution, as it provides an indispensable source of information to cover the diversity of the genus and understand evolutionary dynamics on a long-term and microevolutionary scale.
Primary producers, alongside heterotrophic bacteria and viruses, modulate the essential global carbon cycle. About half of the Earth’s net primary production originates in the marine environment. By effecting these systems and the burial of carbon, bacteria play a significant role in the world’s climate, especially with regard to rising temperatures and increasing anthropogenic carbon dioxide production.
Particles present substrate-rich niches for particle-associated bacteria, but are rare in the marine system. Particle-associated bacteria, comprising of chemotactic motile free-living and particle-attached bacteria, were shown to have higher respiration rates, were larger in cell and genome size and showed a higher hydrolytic activity of extracellular enzymes compared to the free-living fraction.
Understanding the contribution of particle-associated bacteria to the degradation of algal biomass is essential to understand the marine carbon cycle. However, the identification of this group is difficult and required refinement.
Sequential filtration, the most commonly used technique for the separation of bacterial fractions, provides only access to a part of the particle-associated microbiome, and includes with large and clustered bacteria undesired false-positives. To overcome these limitations, separation by gravity in Imhoff sedimentation cones was explored in this thesis to access, identify and define particle-associated microbiomes, in comparison and conjunction with the established separation techniques like sequential filtration and centrifugation.
The cultivability on agar plates was assessed, aiming at the question which portion of the colony-forming bacteria belong to free-living non-motile or motile bacteria or to particle-attached bacteria. As continuous cultivation on plates often involves loss of cultures, colonies of the original plate were used to obtain partial 16S rRNA sequences of individual colonies and of plate microbiomes.
For future studies on particle-associated bacteria, a representative strain collection was established from particle-attached bacteria retained on 3 μm filters and from particle-associated bacteria collected together with settled algae in sedimentation cones.
To understand the contribution of top-down selection to a yearly recurring bacterioplankton bloom at our sampling site Helgoland, particle-associated strains were included in isolation experiments for flavophages, since Flavobacteriia are among the most important responder to the yearly observed blooms.
Overall, this thesis provides new insights into the isolation and cultivation of particle-associated bacteria – an important, but currently not fully understood fraction of organisms within the marine system.
Infectious diseases remain a significant threat to the wellbeing of humans and animals
worldwide. Thus, infectious disease outbreaks should be investigated to understand the
emergence of these pathogens, leading to prevention and mitigation strategies for future
outbreaks. High-throughput sequencing (HTS) and bioinformatic analysis tools are reshaping
the surveillance of viral infectious diseases through genome-based outbreak investigations. In
particular, analyzing generic HTS datasets using a metagenomic analysis pipeline enable
simultaneous identification, characterization, and discovery of pathogens.
In this thesis, generic HTS datasets derived from the 2018-19 WNV epidemic and USUV
epizooty in Germany were evaluated using a unified pipeline for outbreak investigation and an
early warning system (EWS). This pipeline obtained 34 West Nile virus (WNV) whole-genome
sequences and detected several sequences of Usutu virus (USUV) and other potential
pathogens. A few WNV and USUV genome sequences were completed using targeted HTS
approaches. Phylogenetic and phylogeographic inferences, reconstructed using WNV wholegenome sequences, revealed that Germany experienced at least six WNV introduction events.
The majority of WNV German variants clustered into the so-called “Eastern German clade
(EGC),” consisting of variants derived from birds, mosquitoes, a horse, and human cases. The
progenitors of the EGC subclade probably circulated within Eastern Europe around 2011. These
flavivirus genome sequences also provided substantial evidence for the first reported cases of
WNV and USUV co-infection in birds. Phylogenetic inferences of USUV genome sequences
showed the further spread of the USUV lineage Africa 3 and might indicate the overwintering
of the USUV lineage Europe 2 in Germany. Among viral sequences reported in the EWS, Hedwig
virus (HEDV; a novel peribunyavirus) and Umatilla virus (UMAV; detected in Europe for the
first time) were investigated using genome characterization, molecular-based screening, and
virus cultivation since these viruses were suspected of causing co-infections in WNV-infected
birds. The EWS detected overall 8 HEDV-positive and 15 UMAV-positive birds in small sets of
samples, and UMAV could be propagated in a mosquito cell culture Future studies are necessary
to investigate the pathogenicity of these viruses and their role in the health of wild and captive
birds.
In conclusion, this study provided a proof-of-concept that the developed unified and
generic pipeline is an effective tool for outbreak investigation and pathogen discovery using the
same generic HTS datasets derived from outbreak and surveillance samples. Therefore, this
thesis recommends incorporating the unified pipeline in the key response to viral outbreaks to
enhance outbreak preparedness and response.
LPAIV H9N2 and HPAIV H5N8 clade 2.3.4.4 viruses have been frequently isolated from domestic and wild birds in Germany and they are endemic in poultry worldwide. H9N2 is known to donate gene segments to other AIV with high case fatality rate in humans (e.g. H5N1, H7N9). Similarly, H5N8 devastated poultry worldwide since 2014 and has been recently isolated from humans. Therefore, it is important to understand the genetic predisposition for adaptation of H9N2 and H5N8 AIV in poultry and mammals. In the first publication, we focused on the variable hemagglutinin cleavage site (HACS) of European and Non-European H9N2 viruses, since the HACS is a main virulence determinant of AIV in birds. We found a preferential substitution of non-basic amino acids (G, A, N, S, D, K) in the HACS at position 319 of European H9N2 viruses compared to non-European H9N2 viruses. Recombinant viruses carrying different non-basic amino acids in the HACS modulated replication in vitro. While these non-basic amino acids did not affect virulence or transmission in chickens, they modulated virulence and replication in turkeys. Moreover, H9N2 viruses with non-basic amino acids in the HACS were able to replicate in mammalian brain cells for multiple cycles even without trypsin. In the second publication, we addressed the question whether reassortment between two recent German H9N2 and H5N8 clade 2.3.4.4. B viruses is possible and analysed the impact on virus fitness in mammals and birds. We found that H9N2 PB1 and NP segments were not compatible to generate infectious H5N8 viruses and this incompatibility was due to mutations outside the packaging region. However, H9N2 NS alone or in combination with PB2 and PA significantly increased replication of H5N8 in human cells. Moreover, H9N2 PB2, PA and/or NS segments increased virulence of H5N8 in mice. Interestingly, in chickens, reassortment with H9N2 gene segments, particularly NS, partially or fully impaired chicken-to-chicken transmission. These results indicate that the evolution of H9N2/H5N8 reassortants showing high virulence for mammals is unlikely to occur in chickens. In the third publication, we focused on the NS1 protein of different HPAIV H5N8 clade 2.3.4.4 viruses from 2013 to 2019 and studied the impact of its C-terminus (CTE) variation on virus fitness in chickens and ducks. Our findings revealed a preferential selection for a certain NS1 CTE length in 2.3.4.4. H5N8 clade A (237 aa) and B (217 aa) viruses over the common length of 230 aa. Indeed, the NS1 CTE can affect virus virulence and pathogenesis in a species and virus clade dependent manner. In chickens, although there was no impact on virulence, NS1 CTE of H5N8-A and H5N8-B, regardless of the length, have evolved towards higher efficiency to block the IFN response. In ducks, NS1 CTE contributed to efficient transmission, replication and high virulence of H5N8-B. In the fourth publication, we assessed the impact of variable length of NS1 on H5N8 virus replication in human cells and virulence in mice. We showed that NS1 of H5N8-B virus unlike the vast majority of NS1 of AIV, shared preferences for short NS1 similar to human and zoonotic influenza viruses. This virus (i) was able to efficiently block IFN and apoptosis induction which might be the first steps for efficient adaptation to human cells and (ii) without prior adaptation replicated at higher levels and was more virulent in mice than H5N8-A. The virulence of the latter virus increased after shortening the NS1 similar to H5N8-B virus. Therefore, it is conceivable that truncation in NS1 is a determinant for adaptation of H5N8 in mammals irrespective of its impact on virus fitness in poultry. Findings in this dissertation indicated that HA mutations in the European H9N2 and NS1 variations in H5N8 viruses play a role in virus fitness in poultry and/or mammals. These results improve our current understanding for AIV adaptation and are useful to assess the potential of these viruses to infect mammals.
Permafrost-affected soil stores a significant amount of organic carbon. Identifying the biological constraints of soil organic matter transformation, e.g., the interaction of major soil microbial soil organic matter decomposers, is crucial for predicting carbon vulnerability in permafrost-affected soil. Fungi are important players in the decomposition of soil organic matter and often interact in various mutualistic relationships during this process. We investigated four different soil horizon types (including specific horizons of cryoturbated soil organic matter (cryoOM)) across different types of permafrost-affected soil in the Western Canadian Arctic, determined the composition of fungal communities by sequencing (Illumina MPS) the fungal internal transcribed spacer region, assigned fungal lifestyles, and by determining the co-occurrence of fungal network properties, identified the topological role of keystone fungal taxa. Compositional analysis revealed a significantly higher relative proportion of the litter saprotroph Lachnum and root-associated saprotroph Phialocephala in the topsoil and the ectomycorrhizal close-contact exploring Russula in cryoOM, whereas Sites 1 and 2 had a significantly higher mean proportion of plant pathogens and lichenized trophic modes. Co-occurrence network analysis revealed the lowest modularity and average path length, and highest clustering coefficient in cryoOM, which suggested a lower network resistance to environmental perturbation. Zi-Pi plot analysis suggested that some keystone taxa changed their role from generalist to specialist, depending on the specific horizon concerned, Cladophialophora in topsoil, saprotrophic Mortierella in cryoOM, and Penicillium in subsoil were classified as generalists for the respective horizons but specialists elsewhere. The litter saprotrophic taxon Cadophora finlandica played a role as a generalist in Site 1 and specialist in the rest of the sites. Overall, these results suggested that fungal communities within cryoOM were more susceptible to environmental change and some taxa may shift their role, which may lead to changes in carbon storage in permafrost-affected soil.
Ebolaviruses are zoonotic pathogens causing severe hemorrhagic fevers in humans
and non-human primates with high case fatality rates. In recent years, the number and
scope of outbreaks has increased, highlighting the importance of better understanding
the molecular aspects of ebolaviral infection and host cell interactions in order to be able to better control this virus.
To facilitate virus genome replication, transcription and protein expression,
ebolaviruses recruit and interact with specific host factors. These interactions play a key role in viral infection and influence virus survival and disease outcome. Based on a genome-wide siRNA screen, the three host factors CAD, NXF1 and UAP56 were
recently identified to be involved in ebolavirus genome replication and/or transcription
and/or mRNA-translation. However, mechanistical details of how these host factors
affect the ebolavirus lifecycle remained elusive.
In this thesis I analyzed the functional interactions between EBOV and these newly
identified host proteins in order to better understand the virus-host interface. To this
end I used siRNA knockdown as well as overexpression of these host proteins in
combination with different reverse-genetics based lifecycle modelling assays to
investigate the influence of CAD, NXF1 and UAP56 on individual aspects of the EBOV
lifecycle. Using these systems in relation with a host factor knockdown I was able to
show that the provision of pyrimidines by CAD plays an important role for both EBOV
genome replication and transcription, whereas NXF1 is predominantly required for
mRNA transport. I furthermore used immunofluorescence analysis to examine whether
these host factors are recruited by one or more EBOV proteins to inclusion bodies,
which represent physical sites of ebolavirus genome replication. During these
experiments, I was able to show that CAD and NXF1, and possibly also UAP56, are
recruited to EBOV inclusion bodies in order to fulfill their individual function for EBOV RNA synthesis or later steps in protein expression. Additionally, I was able to show that the uptake of NXF1 into NP-induced inclusion bodies is most likely mediated via the C-terminal domain of NP, and that the FG-repeat interaction domains of NXF1 are sufficient for recruitment. Further, my data indicate that RNA interaction of both NXF1 and NP is not required for this process, but rather important for exit of NXF1 from inclusion bodies. I therefore suggest that the viral mRNA is transferred in inclusionbodies from NP to NXF1, which leads to a rapid export of the NXF1 packed viral mRNA into the cytosol for mRNA translation.
The exact mechanism of how these host factors are recruited into inclusion bodies and whether they have similar functions in the lifecycle of other negative-sense RNA viruses still needs to be investigated. Nevertheless, this study increases our understanding of virus-host interaction of ebolaviruses, and thus helps to identify targets for the development of novel therapeutics against these viruses.
Viral diseases are a threat to bacteria and enormous animals alike. Vaccines are available against several viruses. However, for some viruses, like ASFV, we still lack vaccines, while for others, like IAV, they are not as effective as we need them to be. To a large extent, this is because we do not fully understand the mechanisms conferring antiviral immunity. To improve our understanding of antiviral immunity, we used a model species that is in many immunological aspects closer to humans than the widely used laboratory mice, pigs. In this thesis, pigs were investigated as a potential biomedical model species for viral respiratory infections in humans and as a natural host for viral infections. Both approaches provide valuable insights into aspects of porcine immunology that can either be used as the foundation for translational research or for the design of targeted therapeutics and vaccines for pigs.
Insights into fundamental characteristics of the porcine immune system form the basis for translational studies. Paper I pioneered a detailed characterization of porcine iNKT cells. To make pigs and porcine iNKT cells more available for scientific investigations, we established multicolor flow cytometry analysis platforms that allow for a more detailed investigation of these cells than previously possible. We found porcine iNKT cells circulating in peripheral blood to be a rare population among CD3+ lymphocytes that displays a pre-activated effector state and can be divided into at least three functional subsets. Upon antigenic activation, they proliferated rapidly, secreted pro-inflammatory cytokines, and exerted cytotoxicity. Moreover, we provided first evidence for a role of iNKT cells in porcine IAV and ASFV infections, which we investigated in more detail in paper IV. Central characteristics, i.e., phenotype and functional properties, exhibit a high degree of similarity between humans and pigs. Moreover, differences between human and murine iNKT cells are more pronounced than between humans and pigs.
Based on the results obtained in paper II, the established biomedical model could be used for further studies of infectious respiratory diseases. IAV infections pave the way for secondary co-infections with increased morbidity and lethality. These bactoviral co-infections are a threat to both pigs and humans. The shared susceptibility as well as homologies on the physiological and immunological level make pigs exceptionally suitable animal models for studies of these infections. Paper I and II can also be interpreted under translational aspects. Activation of iNKT cells in porcine vaccination studies showed promising results. Based on these and our findings, this might be a suitable approach for humans as well. Along with other studies, our results suggest that pigs might be a well-suited large animal model for research in infectious diseases. This is true especially for respiratory infections, such as seasonal IAV infections, for which pigs are natural hosts and contribute to viral spread and emergence as “mixing vessels”, which can result in pandemic strains like H1N1pdm09. We could show that porcine iNKT cells as well as the antiviral responses of cTC against H1N1pdm09 in pigs are comparable to human cells and processes. The increased implementation of pigs in basic and applied research might enable an improved translation of scientific knowledge to human and veterinary medicine.
In two further studies, papers III and IV, we investigated T-cell responses during a viral infection, ASF, for which pigs are the only natural hosts. Immune responses were similar after highly and moderately virulent ASFV infection in domestic pigs and wild boar, respectively. However, they differed between both species. Antiviral immunity in domestic pigs was predominantly exerted by αβ T cells, CD8α+ and DP αβ T cells, while the response in wild boar was dominated by γδ T cells, mainly CD8α+ effector cells. Since wild boar show a higher disease severity and lethality, even during infection with moderately virulent ASFV “Estonia2014”, a shift to γδ T cells seems to be detrimental. In contrast, domestic pigs survive infections with moderately virulent ASFV “Estonia2014”, which indicates that CD8α+ or DP αβ T cells confer protection at least in infections with non-highly virulent ASFV strains. Interestingly, in paper V we found higher and prolonged inflammation in domestic pigs, correlating with increased T-cell influx. However, histopathological analyses revealed no direct explanation for the differences in disease progression and lethality in domestic pigs and wild boar. These findings require further studies to elucidate the underlying mechanisms.
The lack of basic data about immunological differences between domestic pigs and wild boar hampers attempts to understand immunity against ASFV. We found differences between both suid subspecies already at steady state and even more prominent during ASFV infections in papers III-V. Most apparently, T-cell responses in wild boar were heavily biased towards γδ T cells, while immune responses in domestic pigs were based on αβ T cells. However, information about even basic characteristics, like the composition, phenotypes, and functional qualities of wild boar’s immune system, is missing. Therefore, essential baseline data must be obtained in order to adequately assess changes in future studies.
Analyses like these reveal major advantages of pigs as a biomedical model. On the one hand, similar to conventional model species, researchers can investigate every tissue at any desired time. Tissue from human patients is often scarce or not at all available, so models that can be investigated at specific times after infection are needed. On the other hand, results obtained in pigs are more comparable to humans than data from murine studies. Moreover, pigs are susceptible to similar pathogens as humans and experimental infections can be investigated without the need for major genetic manipulations. However, there are also limitations of the porcine model system. Analysis tools are not as advanced as they are for mice, especially in terms of availability of mAbs or genetically modified organisms. Still, given the major advantages that become more and more obvious, efforts should be made to make pigs more applicable for basic and translational research. In addition, findings derived from pigs can be used for the species itself. Pigs are a major livestock species and new treatments, or vaccines could also be used for them. Therefore, this research could eventually also improve animal welfare.
In summary, the presented thesis significantly enhanced our knowledge of porcine immune processes for cTC in general and iNKT cells in particular. Results were obtained both at steady state and in the context of IAV and ASFV infections, and thus, made pigs more available as a model for future research. The use of multicolor flow cytometry provided a broad overview of the ongoing immune reactions and enables further, more wide-ranging studies that can also address open questions in even more complex infection scenarios.
The genus Capripoxvirus of the family Poxviridae consists of the species lumpy skin disease virus, sheeppox virus and goatpox virus that affect cattle, sheep and goats, respectively. Whereas lumpy skin disease virus (LSDV) is transmitted mainly mechanically via blood-feeding insects and possibly hard ticks, the major transmission routes of sheeppox virus (SPPV) and goatpox virus (GTPV) are via direct contact and aerosols. Affected animals develop fever and display clinical signs such as ocular and nasal discharge, lymphadenopathy and characteristic lesions of the skin. Severe clinical course, especially in combination with respiratory signs, can result in the death of the affected animals. In endemic regions, mortality of capripox virus-induced diseases is low (1-10%). However, mortalities of up to 75% have been reported for LSDV and up to 100% for SPPV and GTPV in exotic breeds and high-producing dairy or beef animals. The loss of quality of the leather, reduced weight gain and milk yield as well as complete loss of affected animals have severe impact on national and global economies. Therefore, capripox virus-induced diseases have significant impact on both the affected individual animal as well as on the existence of small-scale farmers and large agricultural enterprises. However, until now, only live attenuated vaccines are commercially available. These attenuated vaccines are not authorized in the European Union and their administration would comprise the disease-free status of the respective country. Thus, reliable diagnostic tools for the detection and characterization of capripox viruses as well as safe and efficient control measures are of high importance.
The objectives of the present thesis were the development, validation and comparison of diagnostic tools, the establishment of challenge infection models and the performance of pathogenesis studies for all three capripox virus species, and the development and testing of different inactivated prototype vaccine candidates against LSDV.
First, new real-time quantitative polymerase chain reaction (qPCR) assays for robust detection and differentiation of LSDV field strains, LSDV vaccine strains, SPPV and GTPV were developed and extensively validated. In the following, two single assays were combined to duplex assays, one for the differentiation between LSDV field strains and LSDV vaccine strains, and the second for discrimination of SPPV and GTPV. Finally, a diagnostic workflow based on these new duplex assays in combination with already published methods was established. This workflow enables time-saving, robust and reliable detection, species-specific identification and genetic and phylogenetic characterization of all three capripox virus species. In addition, already existing serological examination methods (serum neutralization assay and commercial enzyme-linked immunosorbent assay) were compared regarding their sensitivity and specificity. Furthermore, pathogenesis studies with different capripox virus isolates were performed in the respective target species, and the suitability of selected virus isolates as challenge viruses for future vaccine studies was analyzed. Pathogenesis studies with isolates GTPV-“V/103” and LSDV-“Macedonia2016” revealed that both are proper candidates for challenge models. Finally, three different SPPV isolates (SPPV-“V/104”, SPPV-“India/2013/Surankote” and SPPV-“Egypt/2018”) were tested in sheep regarding their virulence to find a suitable challenge model for SPPV, and SPPV-“India/2013/Surankote” was chosen for future vaccine studies.
Once appropriate challenge models were established, different inactivated prototype vaccines against LSDV were developed, and vaccine safety as well as vaccine efficacy were tested in cattle. Eventually, a Polygen-adjuvanted inactivated LSDV-vaccine candidate was selected that is able to fully prevent cattle from any LSDV-related clinical signs after severe challenge infection. Furthermore, molecular and serological data indicate that this inactivated prototype vaccine is even able to induce a kind of “sterile immunity” against LSDV in those cattle. It has to be mentioned that a commercially available vaccine similar to this prototype vaccine would be a great advance for the control of LSDV.
In the future, additional studies addressing diagnostics and optimized control of capripox viruses should be performed. Firstly, probe-based real-time qPCR assays for the differentiation of SPPV and GTPV vaccine strains from their respective virulent field strains should be developed and included into the diagnostic workflow. Secondly, further tests of the inactivated prototype vaccine, e.g. determination of the minimum protective dose and the possibility of cross-protection in sheep and goats against SPPV and GTPV, respectively, should be performed.
Der Erreger des Q-Fiebers ist C. burnetii, ein zoonotisches intrazelluläres Bakterium. Die Gram-negativen Coxiellen kommen in zwei verschiedenen antigenen Lipopolysaccharid (LPS)-Formen vor: als virulente Ph I-LPS- und/oder avirulente Ph II-LPS-Bakterien. C. burnetii wird durch Kontakt mit infizierten Tieren sowie infektiösen Stäuben übertragen. Akute fiebrige Infektionen können beim Menschen im weiteren Verlauf eine Pneumonie oder Hepatitis auslösen. Zu einem geringen Prozentsatz entstehen chronische Infektionen mit persistierenden Coxiellen. Eine C. burnetii-Infektion bewirkt sowohl eine humorale als auch zelluläre Immunantwort. Neben Monozyten und Makrophagen dienen auch dendritische Zellen (DCs) den Coxiellen als geeignete Wirtszellen. DCs gehören zu den Immunzellen der first-line-of-defense des angeborenen Immunsystems und treten während einer Coxiellen-Infektion ebenso wie die mit ihnen kooperierenden natürlichen Killerzellen (NK-Zellen) früh mit dem aufgenommenen bakteriellen Pathogen in Kontakt. Durch Antigenpräsentation infizierter DCs wird die für die anti-Coxiellen Abwehr maßgebliche T-Zell-Immunität initialisiert und die nachgeschaltete Immunantwort funktional ausgerichtet.
Trotz dieser zentralen Immunfunktion sind die zellulären Vorgänge von DCs während einer C. burnetii-Infektion, insbesondere mit Blick auf die zelluläre Selbstverteidigung gegenüber den vermutlich initial auftretenden Ph II-LPS-Varianten, nicht ausreichend verstanden. Zudem ist bisher nicht hinreichend geklärt, welchen Einfluss FN-γ, das von aktivierten NK-Zellen produziert wird, sowie die Sauerstoffumgebung auf die zelluläre Abwehr infizierter APCs nimmt.
Das Forschungsziel dieser Promotionsarbeit war es daher, einen detaillierten Einblick in die Prozesse der Coxiellen-Infektionen von DCs und NK-Zellen zu erhalten und hierbei insbesondere die IFN-γ-Wirkung auf die DC-Pathogen-Wechselwirkung sowohl unter norm- als auch hypoxischen Bedingungen zu untersuchen.
Die im ersten Teil der Promotionsarbeit durchgeführten zellbiologischen, immunologischen und proteinbiochemischen Analysen im murinen Zellsystem belegen eine pathogenausgelöste Subversion der funktionalen Aktivierung/Induktion der MHC I-Antigenpräsentation Coxiellen-infizierter DCs. Die infektionsbedingte Beeinträchtigung der MHC-Antigenpräsentation infizierter DCs lässt sich in direkter Weise auf einen autokrinen Suppressionseffekt des αVβ8-Integrin-aktivierten TGF-β und nicht auf die subversive Wirkung von Coxiellen-LPS als Virulenzfaktor zurückführen. Untersuchungen im Zusammenhang mit IFN-γ zeigen, dass dieses Zytokin in infizierten DCs eine Wiederherstellung der MHC I-Induktion und -Oberflächenexpression bewirkt, welche mit einer funktionalen Prozessierung und MHC-Präsentation pathogener Peptidantigene verbunden ist. Weitere Studien belegen zudem, dass IFN-γ-behandelte DCs in der Lage sind, die Etablierung/Vermehrung intrazellulärer Coxiellen negativ zu beeinflussen. Die durchgeführten siRNA- und CRISPR/Cas9-Experimente zeigen, dass die zelluläre Selbstverteidigung infizierter DCs maßgeblich durch das IFN-γ-induzierbare iNOS/NO-System vermittelt wird. Als reaktives Stickstoffradikal scheint Stickstoffmonoxid (NO) sowohl Komponenten der bakteriellen Elektronentransportkette als auch die autophagische Ausbildung und Integrität parasitophorer Vakuolen zu beeinträchtigen. Parallel hierzu schützen sich infizierte DCs über einen metabolischen Wechsel zur aeroben Glykolyse vor mitotoxischer NO-Wirkung und sichern so während der intrazellulären Coxiellen-Eliminierung ihr eigenes Überleben.
Weitere Untersuchungen dieser Arbeit belegen zudem, dass auch C. burnetii zu einer entsprechenden Gegenwehr fähig ist. Um der NO-vermittelten Abwehr infizierter DCs entgegenzuwirken, induzieren Coxiellen zur Minderung antibakterieller Radikal-Effekte ihre Cytochrom bd-, Katalase- und SOD-Expression. Infektionsstudien mit T4SS-defekten Coxiellen weisen ferner darauf hin, dass das bakterielle Sekretionssystem vermutlich eine wichtige Rolle bei der Wirksamkeit der NO-vermittelten Abwehr infizierter DCs spielt, da sich Coxiellen ohne intaktes T4SS offensichtlich dem negativen NO-Einfluss entziehen und/oder keine entsprechenden Angriffsziele für NO bieten. Studien C. burnetii-infizierter Makrophagen bestätigen, dass das iNOS/NO-System eine essenzielle antibakterielle Selbstverteidigung von APCs darstellt. So zeigen auch Makrophagen eine deutliche Beeinträchtigung intrazellulärer Coxiellen-Vermehrung unter iNOS-vermittelter NO-Synthese. Die im weiteren Verlauf der Arbeit untersuchten norm- und hypoxischen Infektionsmodelle infizierter DCs lassen vermuten, dass hypoxische Kulturbedingungen die Coxiellen dazu veranlassen, ein sporenähnliches Stadium ohne produktive Vakuolenbildung auszubilden. Diese hypoxische Überlebensform intrazellulärer Coxiellen zeichnet sich durch IFN-γ-Resistenz, eine durch modifizierte Genexpression optimierte Sauerstoffverwertung und Radikalentgiftung sowie die Erhaltung ihrer Infektiosität aus. Dies deutet darauf hin, dass Hypoxie den intrazellulären Coxiellen weitere Möglichkeiten zur effizienten Immunevasion eröffnet, die einen unentdeckten Bakterienverbleib innerhalb infizierter Wirtszellen begünstigt und so vermutlich chronische C. burnetii-Infektionen fördert.
Für die Synthese und Freisetzung des APC-stimulierenden IFN-γ sind im Zuge angeborener Immunität vor allem die mit DCs kooperierenden NK-Zellen verantwortlich. Die im zweiten Teil dieser Promotionsarbeit durchgeführten Studien zur Charakterisierung der Interaktion zwischen NK-Zellen und Coxiellen belegen, dass NK-Zellen von C. burnetii infiziert werden, sie jedoch die Etablierung und Replikation internalisierter Bakterien durch Ausschleusung in die extrazelluläre Umgebung unterbinden. Dieser Prozess geht mit einer funktionalen NK-Zell-Aktivierung einher, welche durch Phospho-Aktivierung der PKC ϴ sowie IFN-γ- und Granzym B-Ausschüttung charakterisiert ist. Verschiedene mikroskopische Analysen zeigen zudem, dass die intrazellulären bakteriellen Strukturen in unmittelbarem Kontakt mit den sekretorischen Granula stehen und die Coxiellen-Freisetzung über Degranulierung infizierter NK-Zellen erfolgt. Der Abtötung innerhalb der sekretorischen Granula infizierter NK-Zellen scheint sich C. burnetii durch seine Säure- und Protease-Resistenz zu entziehen. Freigesetzte Coxiellen erhalten nach Degranulierung größtenteils ihre Integrität und Fähigkeit zur Infektion benachbarter Wirtszellen. Obschon Coxiellen der Eliminierung durch die sekretorischen Granula entgehen und dies eine kritische Achillesferse der angeborenen Immunantwort darstellt, verbleibt über das gleichzeitig ausgeschüttete IFN-γ infizierter NK-Zellen ein positiver Effekt auf die antibakterielle APC-Aktivität.
In ihrer Gesamtbetrachtung tragen die erzielten Ergebnisse dieser Promotionsarbeit zu einem besseren und tieferen Verständnis der C. burnetii-Infektion von DCs und NK-Zellen bei und geben neue Einsichten in die zelluläre Selbstverteidigung sowie die IFN-γ-basierte Immunkooperation innerhalb der frühen Phase der anti-Coxiellen Abwehr. Im weiteren Infektionsverlauf können jedoch diese immunologischen Prozesse durch auftretende Hypoxie vermutlich eingeschränkt und die Eliminierung intrazellulärer Coxiellen erschwert sein.
Orthohantaviruses are rodent-borne pathogens distributed all over the world, which do not cause visible disease in their reservoir host. Puumala orthohantavirus (PUUV) causes most human hantavirus disease cases in Europe and is transmitted by the bank vole (Clethrionomys glareolus). Hantaviruses have a tri-segmented genome consisting of the large (L) segment, coding for the RNA-dependent RNA polymerase (RdRP), the medium (M) segment, encoding the glycoproteins, and the small (S) segment. The S-segment contains two major overlapping open reading frames (ORF) coding for the nucleocapsid (N) protein and a non-structural (NSs) protein, a putative type I interferon (IFN-I) antagonist. To date, pathogenesis and reservoir host adaptation of hantaviruses are poorly understood due to missing adequate cell culture and animal models.
In contrast to previous studies, in this work, data from spring and summer 2019 indicated a high vole abundance, a high PUUV prevalence in voles and high human incidence for some endemic regions in Germany, but elsewhere values were low to moderate. Regional and local human health institutions need to be aware about the heterogeneous distribution of human PUUV infection risk.
For a better understanding of virus-host associations, two novel cell lines from bank voles and common voles each were generated and their susceptibility and replication capacities for a variety of zoonotic and non-zoonotic viruses were analyzed. The PUUV strain Vranica/Hällnäs showed efficient replication in a new bank vole kidney cell line, but not in four other cell lines of bank and common voles. Vice versa, Tula orthohantavirus (TULV) replicated in the kidney cell line of common voles, but was hampered in its replication in other cell lines. Several viruses, such as Cowpox virus, Vaccinia virus, Rift Valley fever virus, and Encephalomyocarditis virus 1 replicated in all four cell lines. West Nile virus, Usutu virus, Sindbis virus and Tick-borne encephalitis virus replicated only in a part of the cell lines. These results indicate a tissue or species specific tropism for many of the tested viruses and the potential value of vole cell lines to address such questions in detail.
Using one of these new cell lines, the first German PUUV strains were isolated from bank voles caught in the highly endemic region around Osnabrück. Complete genomes were determined by target-enrichment-mediated high-throughput sequencing from original lung tissue, after isolation and after additional passaging in VeroE6 cells and a bank vole-derived kidney cell line. Different single amino acid substitutions were observed in the RdRP of the two stable PUUV isolates. The PUUV strain isolated on VeroE6 cells showed a lower titer when propagated on bank vole cells compared to VeroE6 cells. Additionally, glycoprotein precursor (GPC)-derived virus-like particles of a German PUUV strain from the same region allowed the generation of monoclonal antibodies that reacted with the isolated PUUV strains.
To investigate the role of PUUV and other vole-borne hantavirus NSs proteins, the evolution of the NSs and N encoding sequences was investigated by a field study in bank voles and the NSs sequences were characterized in vitro for their inhibitory effect on the human interferon-β promoter. Analysis of blood and lung samples of 851 bank voles trapped during 2010-2014 in Baden-Wuerttemberg and North Rhine-Westphalia resulted in detection of 27.8% PUUV-specific antibody positive bank voles, whereas in 22.3% PUUV-specific RNA was detected. In the hantavirus outbreak years 2010 and 2012 PUUV prevalence in bank voles was higher compared to 2011, 2013 and 2014. Sequences of the S segment of all positive bank voles showed amino acid and nucleotide sequence types of the NSs-ORF with temporal and/or local variation, whereas the N-ORF was highly conserved. One sequence type persisted over the whole observation period in both regions. The NSs coding sequence was highly divergent among regional bank vole populations in the outbreak year 2012.
Transfection experiments resulted in the detection of different products of the NSs-ORF of PUUV, TULV, Prospect Hill and Khabarovsk orthohantaviruses, due to translation initiation at different methionine codons along the coding sequence. Using luciferase reporter assays, the NSs proteins of PUUV, TULV, Prospect Hill and Khabarovsk orthohantaviruses showed inhibition of IFN-I induction of up to 70%, whereas Sin Nombre and Andes orthohantavirus NSs proteins showed a reduced effect compared to the other NSs proteins. The first 20 amino acids of the N-terminal region of PUUV NSs were found to be crucial for IFN-I promoter inhibition.
In conclusion, the newly established cell lines, antibodies, reporter assays and PUUV isolates are highly valuable tools for future hantavirus research. The activity of PUUV NSs protein in human cells contributes to our understanding of virus-host interactions and highlights the importance of corresponding future reservoir host studies. Hantavirus surveillance studies showed the necessity for timely information of the potential human PUUV infection risk to public health institutions in endemic areas to initiate appropriate actions.
The here presented dissertation investigated the molecular mechanisms, by which the food industry model bacteria Pseudomonas fluorescens and Listeria monocytogenes, grown either as planktonic cultures, were inhibited by plasma treated water (PTW) produced by a microwave-induced plasma source (MidiPLexc). As a starting point, optimal operating parameters were determined with 5 standard liters per minutes(slm)compressed air during the treatment of 10 ml deionized water within a treatment time of up to 15 min (pre-treatment time). Treatment times of 1, 3 and 5 min were selected (post-treatment time). In addition to physical parameters, i.e. temperature measurements at different spots at the plasma source during the production of the PTW, the chemical composition of PTW was determined by pH measurements, chronoamperometry (determination of the H2O2 concentration), ion chromatography (determination of the NO2-, NO3- and ONOO- concentrations) and mass spectrometry (qualitative determination of the molecules). In addition, concentration changes of reactive species over a period of 3 h indicated a decrease of the NO2- concentration as well as an increase of the NO3- and ONOO- concentration in the PTW. Microbiological assays, i.e. quantification of colony-forming units (CFU), fluorescence and XTT assays, revealed a significant reduction of the proliferation ability of the cells, membrane damages and metabolic activity have been demonstrated for planktonic cultures as well as mono- and multispecies biofilms. PTW effects on biofilm structures were investigated using microscopic methods such as fluorescence microscopy, confocal laser scanning microscopy (CLSM), atomic force microscopy (AFM), and scanning electron microscopy (SEM), as well as physical methods such as contact angle measurements. Significant changes in the biofilm structure have been shown, which indicate an ablation of the biofilm mass from top to bottom by approximately 2/3 of the biofilm mass and a destruction of the extracellular matrix (ECM) by the reactive species within the PTW. Subsequently, fresh-cut lettuce has been treated with PTW produced by up-scaled plasma sources. Apart from qualitative parameters of the lettuce after PTW treatment such as texture and color, the concentration of PTW reactive species have been determined. These experiments showed that the composition of the reactive species were slightly different from that of the laboratory-scaled plasma source MidiPLexc. Notably, the PTW treatment did not cause significant changes in texture and color of the fresh-cut lettuce. Finally, a synergistic effect of PTW treatment followed by plasma-processed air (PPA) drying was demonstrated application-specific.
Ebolaviruses are dependent on host cell proteins for almost all steps in their viral life cycle. While some cellular factors with crucial roles in the ebolavirus life cycle have been identified, many of them remain to be identified or fully characterised. This thesis focuses on the characterisation and identification of host cell interactions of the highly pathogenic Ebola virus (EBOV), probing host-virus interaction at various stages of the viral life cycle. Beginning with viral budding, the function of a recently proposed late domain motif within the EBOV matrix protein VP40 was examined using an EBOV transcription and replication-competent virus-like particle (trVLP) system. Although this motif has been suggested to interact with the endosomal sorting complex required for transport (ESCRT), we could show that this late domain motif does not contribute to EBOV budding.
While many host cell proteins have been identified so far that are important for viral budding, only a few proteins are known that are necessary for EBOV RNA synthesis. Thus, to identify host proteins that are involved in viral replication and transcription, we performed a genome-wide siRNA screen in the context of an EBOV minigenome assay. Using this approach, we identified several proteins that appear to be important for viral RNA synthesis or protein expression. Two of the most prominent hits in our screen were CAD (Carbamoyl-phosphate synthetase 2, aspartate transcarbamylase and dihydroorotase) and NXF1 (nuclear RNA export factor 1). CAD catalyses the first three steps in the de novo pyrimidine biosynthesis, while NXF1 is the main nuclear export protein for cellular mRNAs. In subsequent characterisation studies, using a range of life cycle modelling systems as well as molecular analyses, we could demonstrate that the canonical function of CAD during the pyrimidine biosynthesis is necessary for EBOV replication and transcription. In contrast to this, for NXF1 we discovered a so-far unknown function: Again, by applying different life cycle modelling alongside with molecular assays, we provided evidence that the EBOV nucleoprotein recruits NXF1 into inclusion bodies, the site of EBOV RNA synthesis, where it binds viral mRNAs to export them from these structures. Importantly, for both CAD and NXF1 we were able to recapitulate key data in the context of live EBOV infection, confirming their roles in the viral life cycle.
Both of these identified host factors are promising targets for antiviral therapies and indeed de novo pyrimidine synthesis is emerging as a possible antiviral target for a number of viruses. Similarly, as we could show NXF1 to be important in the life cycle of the highly pathogenic Junín virus, this raises the possibility that disruption of this interaction may result in broad-spectrum antiviral activity. Moreover, for an increasing number of negative-sense RNA viruses inclusion bodies as site of viral RNA synthesis are described to have a liquid organelle character. Therefore, our findings on NXF1 also provide an intriguing model to explain how negative-sense RNA viruses in general overcome this obstacle and export viral mRNAs from inclusion bodies.
An Innovative Protocol for Metaproteomic Analyses of Microbial Pathogens in Cystic Fibrosis Sputum
(2021)
Hallmarks of cystic fibrosis (CF) are increased viscosity of mucus and impaired mucociliary clearance within the airways due to mutations of the cystic fibrosis conductance regulator gene. This facilitates the colonization of the lung by microbial pathogens and the concomitant establishment of chronic infections leading to tissue damage, reduced lung function, and decreased life expectancy. Although the interplay between key CF pathogens plays a major role during disease progression, the pathophysiology of the microbial community in CF lungs remains poorly understood. Particular challenges in the analysis of the microbial population present in CF sputum is (I) the inhomogeneous, viscous, and slimy consistence of CF sputum, and (II) the high number of human proteins masking comparably low abundant microbial proteins. To address these challenges, we used 21 CF sputum samples to develop a reliable, reproducible and widely applicable protocol for sputum processing, microbial enrichment, cell disruption, protein extraction and subsequent metaproteomic analyses. As a proof of concept, we selected three sputum samples for detailed metaproteome analyses and complemented and validated metaproteome data by 16S sequencing, metabolomic as well as microscopic analyses. Applying our protocol, the number of bacterial proteins/protein groups increased from 199-425 to 392-868 in enriched samples compared to nonenriched controls. These early microbial metaproteome data suggest that the arginine deiminase pathway and multiple proteases and peptidases identified from various bacterial genera could so far be underappreciated in their contribution to the CF pathophysiology. By providing a standardized and effective protocol for sputum processing and microbial enrichment, our study represents an important basis for future studies investigating the physiology of microbial pathogens in CF in vivo – an important prerequisite for the development of novel antimicrobial therapies to combat chronic recurrent airway infection in CF.
Technological advances in light microscopy have always gone hand in hand with unprecedented biological insight. For microbiology, light microscopy even played a founding role in the conception of the entire discipline. The ability to observe pathogens that would otherwise evade human observation makes it a critical necessity and an indispensable tool to infectious disease research. Thus, the aim of this thesis was to optimize, extend, and functionally apply advanced light microscopy techniques to elucidate spatio-temporal and spatio-morphological components of bacterial and viral infection in vitro and in vivo.
Pathogens are in a constant arms race with the host’s immune system. By finding ways to circumvent host-mediated immune responses, they try to evade elimination and facilitate their own propagation. The first study (publication I) demonstrated that the obligate intracellular pathogen Coxiella burnetii is not just able to infect natural killer (NK) cells, but is actually capable of surviving the harsh degradative conditions in the cytotoxic lymphocyte’s granules. Using live-cell imaging of reporter-expressing Coxiella burnetii, the transient NK cell passage was closely monitored to provide detailed spatio-temporal information on this dynamic process in support of a range of static analyses. Bacterial release from NK cells was pinpointed to a time frame between 24 to 48 hours post-infection and the duration of release to about 15 minutes.
The second approach (publications II-V) aimed at shedding light on the greater spatio-morphological context of virus infection. Thus far, most studies investigating the distribution or tropism of viruses in vivo have used conventional immunohistochemistry in thin sections. Omitting the native spatial context of the infection site in vivo inherently bears the risk of incomplete description. While the microscopic tools and sample preparation protocols needed for volumetric 3D immunofluorescence imaging have recently been made available, they had not gained a foothold in virus research yet. An integral part of this thesis was concerned with the assessment and optimization of available tissue optical clearing protocols to develop an immunofluorescence-compatible 3D imaging pipeline for the investigation of virus infection inside its intact spatio-morphological environment (publication II). This formed the basis for all subsequent volumetric analyses of virus infection in vivo presented here. Consequently, this thesis provided a valuable proof of concept and blueprints for future virus research on the mesoscopic scale of host-pathogen interactions in vivo (publications II-V), using rabies virus (RABV; publications II-IV) and the newly-emerged severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2; publication V) as infection models for the nervous system and the respiratory tract, respectively.
Applying and further improving this volumetric 3D imaging workflow enabled unprecedented insights into the comprehensive in vivo cell tropism of RABV in the central (CNS) (publication III) and peripheral nervous system (PNS) (publication IV). Accordingly, differential infection of CNS-resident astrocytes by pathogenic and lab-attenuated RABV was demonstrated (publication III). While either virus variant showed equal capacity to infect neurons, as demonstrated by quantitative image analysis, only pathogenic field RABVs were able to establish non-abortive infection of astrocytes via the natural intramuscular inoculation route. A combined 3D LSFM-CLSM workflow further identified peripheral Schwann cells as a relevant target cell population of pathogenic RABV in the PNS (publication IV). This suggested that non-abortive infection of central and peripheral neuroglia by pathogenic RABV impairs their immunomodulatory function and thus represents a key step in RABV pathogenesis, which may contribute significantly to the establishment of lethal rabies disease.
Finally, utilizing the full volumetric acquisition power of LSFM, a further refined version of the established 3D imaging pipeline facilitated a detailed mesoscopic investigation of the distribution of SARS-CoV-2 in the respiratory tract of the ferret animal model (publication V). Particularly for this newly-emerged pathogen of global concern, in-depth knowledge of host-pathogen interactions is critical. By preserving the complete spatio-morphological context of virus infection in the ferret respiratory tract, this thesis provided the first specific 3D reconstruction of SARS-CoV-2 infection and the first report of 3D visualization of respiratory virus infection in nasal turbinates altogether. 3D object segmentation of SARS-CoV-2 infection in large tissue volumes identified and emphasized a distinct oligofocal infection pattern in the upper respiratory tract (URT) of ferrets. Furthermore, it corroborated a preferential replication of SARS-CoV-2 in the ferret URT, as only debris-associated virus antigen was detected in the lower respiratory tract of ferrets, thus providing crucial information on the spatial distribution of SARS-CoV-2.