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The sequencing of several ant genomes within the last six years open new research avenues for understanding not only the genetic basis of social species but also the complex systems such as immune responses in general. Similar to other social insects, ants live in cooperative colonies, often in high densities and with genetically identical or closely related individuals. The contact behaviours and crowd living conditions allow the disease to spread rapidly through colonies. Nevertheless, ants can efficiently combat infections by using diverse and effective immune mechanisms. However, the components of the immune system of carpenter ant Camponotus floridanus and also the factors in bacteria that facilitate infection are not well understood.
To form a better view of the immune repository and study the C. floridanus immune responses against the bacteria, experimental data from Illumina sequencing and mass-spectrometry (MS) data of haemolymph in normal and infectious conditions were analysed and integrated with the several bioinformatics approaches. Briefly, the tasks were accomplished in three levels. First, the C. floridanus genome was re-annotated for the improvement of the existing annotation using the computational methods and transcriptomics data. Using the homology based methods, the extensive survey of literature, and mRNA expression profiles, the immune repository of C. floridanus were established. Second, large-scale protein-protein interactions (PPIs) and signalling network of C. floridanus were reconstructed and analysed and further the infection induced functional modules in the networks were detected by mapping of the expression data over the networks. In addition, the interactions of the immune components with the bacteria were identified by reconstructing inter-species PPIs networks and the interactions were validated by literature. Third, the stage-specific MS data of larvae and worker ants were analysed and the differences in the immune response were reported.
Concisely, all the three omics levels resulted to multiple findings, for instance, re-annotation and transcriptome profiling resulted in the overall improvement of structural and functional annotation and detection of alternative splicing events, network analysis revealed the differentially expressed topologically important proteins and the active functional modules, MS data analysis revealed the stage specific differences in C. floridanus immune responses against bacterial pathogens.
Taken together, starting from re-annotation of C. floridanus genome, this thesis provides a transcriptome and proteome level characterization of ant C. floridanus, particularly focusing on the immune system responses to pathogenic bacteria from a biological and a bioinformatics point of view. This work can serve as a model for the integration of omics data focusing on the immuno-transcriptome of insects.
Chlamydia are Gram-negative obligate intracellular bacteria responsible for a wide spectrum of relevant diseases. Due to their biphasic developmental cycle Chlamydia depend on an intact host cell for replication and establishment of an acute infection. Chlamydia have therefore evolved sophisticated strategies to inhibit programmed cell death (PCD) induced by a variety of stimuli and to subvert the host immune system. This work aimed at elucidating whether an infection with C. trachomatis can influence the cellular response to double-stranded RNA (dsRNA). The synthesis of dsRNA is a prominent feature of viral replication inside infected cells that can induce both PCD and the activation of a cellular innate immune response. In order to mimic chlamydial and viral co-infections, Chlamydia-infected cells were transfected with polyinosinic:polycytidylic acid (polyI:C), a synthetic dsRNA. In the first part of this work it was investigated whether C. trachomatis-infected host cells could resist apoptosis induced by polyI:C. A significant reduction in apoptosis, determined by PARP cleavage and DNA fragmentation, could be observed in infected cells. It could be shown that processing of the initiator caspase-8 was inhibited in infected host cells. This process was dependent on early bacterial protein synthesis and was specific for dsRNA because apoptosis induced by TNFalpha was not blocked at the level of caspase-8. Interestingly, the activation of cellular factors involved in apoptosis induction by dsRNA, most importantly PKR and RNase L, was not abrogated in infected cells. Instead, RNA interference experiments revealed the crucial role of cFlip, a cellular caspase-8 inhibitor, for chlamydial inhibition of dsRNA-induced apoptosis. First data acquired by co-immunoprecipitation experiments pointed to an infection-induced concentration of cFlip in the dsRNA-induced death complex of caspase-8 and FADD. In the second part of this work, the chlamydial influence on the first line of defense against viral infections, involving expression of interferons and interleukins, was examined. Activation of the interferon regulatory factor 3 (IRF-3) and the NF-kappaB transcription factor family member p65, both central regulators of the innate immune response to dsRNA, was altered in Chlamydia-infected epithelial cells. polyI:C-induced degradation of IkappaB-alpha, the inhibitor of NF-kappaB, was accelerated in infected cells which was accompanied by a change in nuclear translocation of the transcription factor. Translocation of IRF-3, in contrast, was significantly blocked upon infection. Together the data presented here demonstrate that infection with C. trachomatis can drastically alter the cellular response to dsRNA and imply an impact of chlamydial infections on the outcome of viral super-infections.
Listeria monocytogenes, ein Gram-positives, fakultativ intrazelluläres Bakterium, kann bei immunsupprimierten Menschen schwere Infektionen des Zentralnervensystems auslösen. In Folge seines ubiquitären Vorkommens, sowie seiner hohen Resistenz gegenüber Lebensmittel-Konservierungsmethoden besteht ein großes Interesse an seiner raschen Identifizierung und Differenzierung gegenüber den apathogenen Spezies seiner Gattung. Sein P60 als essentielles Housekeeping-Gen bietet sich auf Grund der zwischen den einzelnen Spezies konservierten und variablen Bereiche für die Etablierung gattungs- und speziesspezifischer Nachweissysteme an. Mit Hilfe des EPITOP-SPOT-Mappings wurde eine Immunogenitätskarte des P60 von L. innocua bzw. L. monocytogenes erstellt, P60-spezifische CD4-T-Zellinien charakterisiert und das Epitop eines dieser T-Zellklone exakt bestimmt. Transferexperimente mit diesen T-Zelllinien und Boosterinfektionen mit L. monocytogenes bzw. L. innocua zeigten, dass L. innocua alleine zwar nicht in der Lage ist, einen Immunschutz gegen L. monocytogenes zu etablieren, diesen jedoch in vitro und in vivo erhalten kann, indem es durch kreuzreaktive Epitope Gedächtnis-T-Zellen stimuliert. Die in vitro-Transkription von Phly, PplcA und PactA erfolgt strikt PrfA-abhängig, während Piap, PprfA1/2 und - unerwarteter Weise - auch Pmpl PrfA-unabhängig transkribiert werden. Sie erfolgt - ausgenommen bei PprfA - nur bei ausreichender Verfügbarkeit von ATP nicht jedoch GTP. Um eine effiziente Transkription zu gewährleisten, müssen die ersten drei initiierenden Nukleotide in höherer Konzentration vorliegen. Die verschiedenen, über eine Heparinsäule aufgetrennten RNAP-Fraktionen von L. monocytogenes zeigten je nachdem, ob die Kulturen einer Hitzeschockbehandlung bei 48°C (RNAP48) ausgesetzt, in MEM geshiftet (RNAPMEM) oder aber direkt aus dem BHI-Medium (RNAPBHI) geerntet wurden, mit den oben genannten Promotoren unterschiedliche Aktivitätsprofile. Demnach benötigen actA und hly für ihre optimale Transkription womöglich einen alternativen Sigmafaktor (als Sigma-43).