@phdthesis{Alzheimer2023, author = {Alzheimer, Mona}, title = {Development of tissue-engineered three-dimensional infection models to study pathogenesis of \(Campylobacter\) \(jejuni\)}, doi = {10.25972/OPUS-19344}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-193440}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2023}, abstract = {Infectious diseases caused by pathogenic microorganisms are one of the largest socioeconomic burdens today. Although infectious diseases have been studied for decades, in numerous cases, the precise mechanisms involved in the multifaceted interaction between pathogen and host continue to be elusive. Thus, it still remains a challenge for researchers worldwide to develop novel strategies to investigate the molecular context of infectious diseases in order to devise preventive or at least anti-infective measures. One of the major drawbacks in trying to obtain in-depth knowledge of how bacterial pathogens elicit disease is the lack of suitable infection models to authentically mimic the disease progression in humans. Numerous studies rely on animal models to emulate the complex temporal interactions between host and pathogen occurring in humans. While they have greatly contributed to shed light on these interactions, they require high maintenance costs, are afflicted with ethical drawbacks, and are not always predictive for the infection outcome in human patients. Alternatively, in-vitro two-dimensional (2D) cell culture systems have served for decades as representatives of human host environments to study infectious diseases. These cell line-based models have been essential in uncovering virulence-determining factors of diverse pathogens as well as host defense mechanisms upon infection. However, they lack the morphological and cellular complexity of intact human tissues, limiting the insights than can be gained from studying host-pathogen interactions in these systems. The focus of this thesis was to establish and innovate intestinal human cell culture models to obtain in-vitro reconstructed three-dimensional (3D) tissue that can faithfully mimic pathogenesis-determining processes of the zoonotic bacterium Campylobacter jejuni (C. jejuni). Generally employed for reconstructive medicine, the field of tissue engineering provides excellent tools to generate organ-specific cell culture models in vitro, realistically recapitulating the distinctive architecture of human tissues. The models employed in this thesis are based on decellularized extracellular matrix (ECM) scaffolds of porcine intestinal origin. Reseeded with intestinal human cells, application of dynamic culture conditions promoted the formation of a highly polarized mucosal epithelium maintained by functional tight and adherens junctions. While most other in-vitro infection systems are limited to a flat monolayer, the tissue models developed in this thesis can display the characteristic 3D villi and crypt structure of human small intestine. First, experimental conditions were established for infection of a previously developed, statically cultivated intestinal tissue model with C. jejuni. This included successful isolation of bacterial colony forming units (CFUs), measurement of epithelial barrier function, as well as immunohistochemical and histological staining techniques. In this way, it became possible to follow the number of viable bacteria during the infection process as well as their translocation over the polarized epithelium of the tissue model. Upon infection with C. jejuni, disruption of tight and adherens junctions could be observed via confocal microscopy and permeability measurements of the epithelial barrier. Moreover, C. jejuni wildtype-specific colonization and barrier disruption became apparent in addition to niche-dependent bacterial localization within the 3D microarchitecture of the tissue model. Pathogenesis-related phenotypes of C. jejuni mutant strains in the 3D host environment deviated from those obtained with conventional in-vitro 2D monolayers but mimicked observations made in vivo. Furthermore, a genome-wide screen of a C. jejuni mutant library revealed significant differences for bacterial factors required or dispensable for interactions with unpolarized host cells or the highly prismatic epithelium provided by the intestinal tissue model. Elucidating the role of several previously uncharacterized factors specifically important for efficient colonization of a 3D human environment, promises to be an intriguing task for future research. At the frontline of the defense against invading pathogens is the protective, viscoelastic mucus layer overlying mucosal surfaces along the human gastrointestinal tract (GIT). The development of a mucus-producing 3D tissue model in this thesis was a vital step towards gaining a deeper understanding of the interdependency between bacterial pathogens and host-site specific mucins. The presence of a mucus layer conferred C. jejuni wildtype-specific protection against epithelial barrier disruption by the pathogen and prevented a high bacterial burden during the course of infection. Moreover, results obtained in this thesis provide evidence in vitro that the characteristic corkscrew morphology of C. jejuni indeed grants a distinct advantage in colonizing mucous surfaces. Overall, the results obtained within this thesis highlight the strength of the tissue models to combine crucial features of native human intestine into accessible in-vitro infection models. Translation of these systems into infection research demonstrated their ability to expose in-vivo like infection outcomes. While displaying complex organotypic architecture and highly prismatic cellular morphology, these tissue models still represent an imperfect reflection of human tissue. Future advancements towards inclusion of human primary and immune cells will strive for even more comprehensive model systems exhibiting intricate multicellular networks of in-vivo tissue. Nevertheless, the work presented in this thesis emphasizes the necessity to investigate host-pathogen interactions in infection models authentically mimicking the natural host environment, as they remain among the most vital parts in understanding and counteracting infectious diseases.}, subject = {Campylobacter jejuni}, language = {en} } @phdthesis{Fiore2023, author = {Fiore, Elisabetta}, title = {Global mapping of pseudouridine in the transcriptomes of \(Campylobacter\) \(jejuni\) and \(Helicobacter\) \(pylori\) and functional characterization of pseudouridine synthases}, doi = {10.25972/OPUS-28873}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-288736}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2023}, abstract = {More than 150 different RNA modifications have been detected in all kingdoms of life and 60 are known to decorate bacterial RNA. Among them, pseudouridine is universally conserved and one of the most abundant modifications present in bacterial stable RNAs such as tRNAs and rRNAs. In bacteria, the nucleotide is posttranscriptionally generated by dedicated enzymes called pseudouridine synthases (PUSs). With the advent of sophisticated deep-sequencing technologies, this modification has been identified in different types of RNA classes (tRNAs, rRNAs, mRNAs, snRNAs, and lncRNAs) in diverse eukaryotic organisms. However, these techniques have never been applied to bacteria, generating a knowledge gap about the location of the modified nucleotide in prokaryotic RNAs. Mutations or deletions of specific eukaryotic PUS enzymes are linked to human diseases and therefore their absence is deleterious for the correct function of the cell. However, deletion of tRNA or rRNA PUS enzymes in the bacterial model organism E. coli have not revealed any such drastic phenotypes, suggesting a different role and function of the modification itself and of the enzymes in different kingdoms of life. Since the roles of tRNA PUS enzymes in bacteria is still poorly understood, a functional characterization of these proteins is pursued in the Epsilonproteobacteria Campylobacter jejuni and Helicobacter pylori. While C. jejuni is the leading cause of bacterial foodborne gastroenteritis in humans, infection with H. pylori is associated with the development of gastric cancer. In particular, phenotypes were explored for the tRNA PUS enzymes TruA, TruB, and TruD in C. jejuni as well as TruA and TruD in H. pylori. Upon deletion of truD, a severe growth defect is observed for C. jejuni but not for H. pylori, highlighting a potential difference in function of the enzyme in the two related bacterial pathogens. Moreover, a genome-wide approach called Pseudo-seq is established and applied for RNA of these two pathogens, which allows, for the first time, the global identification of pseudouridine modifications at single-nucleotide resolution in the bacterial transcriptome. Applying Pseudo-seq in RNAs of wildtype and diverse PUS enzyme deletion mutants enabled the identification of the distinct RNA substrates of tRNA PUS enyzmes in C. jejuni and H. pylori. Hereby, the tRNA-Glu was determined to be the major tRNA substrate of TruD in C. jejuni. Interestingly, the tRNA-Glu is expressed as a single copy in the C. jejuni genome. To link the growth defect observed for a C. jejuni ∆truD mutant strain to the pseudouridine modification of the tRNA-Glu, a catalytically inactive TruD complementation was generated. This strain is unable to restore the tRNA-Glu modification but surprisingly, was able to complement the growth defect. The same observation was made for a cross-complementation with a copy of H. pylori TruD. This indicates that there is a potential additional function of the TruD PUS enzyme in C. jejuni that is independent of the pseudouridine modification. Using a combination of deep-sequencing technologies (RIP-seq, RNA-seq, Ribo-seq, and CLIP-seq), the dual function of TruD is investigated. Overall, this study provides the first in-depth investigation into pseudouridylation of bacteria in general and the bacterial pathogens C. jejuni and H. pylori in particular. The work presented in this thesis reveals not only a global map of pseudouridine in tRNAs and rRNAs of the two bacteria but it also explores the function of the responsible tRNA PUS enzymes. In addition, this study provides evidence for a dual function of the C. jejuni PUS enzyme TruD that goes beyond its RNA modifying function. Future research could focus on unravelling the function of TruD and its potential interaction partners and thus reveal new mechanisms of regulation of a protein previously only described as an RNA modification enzyme.}, subject = {Pseudouridin}, language = {en} } @article{SvenssonSharma2022, author = {Svensson, Sarah L. and Sharma, Cynthia M.}, title = {Small RNAs that target G-rich sequences are generated by diverse biogenesis pathways in Epsilonproteobacteria}, series = {Molecular Microbiology}, volume = {117}, journal = {Molecular Microbiology}, doi = {10.1111/mmi.14850}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-259602}, pages = {215-233}, year = {2022}, abstract = {Bacterial small RNAs (sRNAs) are widespread post-transcriptional regulators that control bacterial stress responses and virulence. Nevertheless, little is known about how they arise and evolve. Homologs can be difficult to identify beyond the strain level using sequence-based approaches, and similar functionalities can arise by convergent evolution. Here, we found that the virulence-associated CJnc190 sRNA of the foodborne pathogen Campylobacter jejuni resembles the RepG sRNA from the gastric pathogen Helicobacter pylori. However, while both sRNAs bind G-rich sites in their target mRNAs using a C/U-rich loop, they largely differ in their biogenesis. RepG is transcribed from a stand-alone gene and does not require processing, whereas CJnc190 is transcribed from two promoters as precursors that are processed by RNase III and also has a cis-encoded antagonist, CJnc180. By comparing CJnc190 homologs in diverse Campylobacter species, we show that RNase III-dependent processing of CJnc190 appears to be a conserved feature even outside of C. jejuni. We also demonstrate the CJnc180 antisense partner is expressed in C. coli, yet here might be derived from the 3'UTR (untranslated region) of an upstream flagella-related gene. Our analysis of G-tract targeting sRNAs in Epsilonproteobacteria demonstrates that similar sRNAs can have markedly different biogenesis pathways.}, language = {en} } @article{DugarSvenssonBischleretal.2016, author = {Dugar, Gaurav and Svensson, Sarah L. and Bischler, Thorsten and Waldchen, Sina and Reinhardt, Richard and Sauer, Markus and Sharma, Cynthia M.}, title = {The CsrA-FliW network controls polar localization of the dual-function flagellin mRNA in Campylobacter jejuni}, series = {Nature Communications}, volume = {7}, journal = {Nature Communications}, doi = {10.1038/ncomms11667}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-173201}, year = {2016}, abstract = {The widespread CsrA/RsmA protein regulators repress translation by binding GGA motifs in bacterial mRNAs. CsrA activity is primarily controlled through sequestration by multiple small regulatory RNAs. Here we investigate CsrA activity control in the absence of antagonizing small RNAs by examining the CsrA regulon in the human pathogen Campylobacter jejuni. We use genome-wide co-immunoprecipitation combined with RNA sequencing to show that CsrA primarily binds flagellar mRNAs and identify the major flagellin mRNA (flaA) as the main CsrA target. The flaA mRNA is translationally repressed by CsrA, but it can also titrate CsrA activity. Together with the main C. jejuni CsrA antagonist, the FliW protein, flaA mRNA controls CsrA-mediated post-transcriptional regulation of other flagellar genes. RNA-FISH reveals that flaA mRNA is expressed and localized at the poles of elongating cells. Polar flaA mRNA localization is translation dependent and is post-transcriptionally regulated by the CsrA-FliW network. Overall, our results suggest a role for CsrA-FliW in spatiotemporal control of flagella assembly and localization of a dual-function mRNA.}, language = {en} } @phdthesis{Dugar2016, author = {Dugar, Gaurav}, title = {Comparative transcriptomics and post-transcriptional regulation in \(Campylobacter\) \(jejuni\)}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-146180}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2016}, abstract = {The transcriptome is defined as the set of all RNA molecules transcribed in a cell. These include protein-coding messenger RNAs (mRNAs) as well as non-coding RNAs, such as ribosomal RNAs (rRNAs), transfer RNAs (tRNAs), and small non-coding RNAs (sRNAs). sRNAs are known to play an important role in regulating gene expression and virulence in pathogens. In this thesis, the transcriptome of the food-borne pathogen Campylobacter jejuni was characterized at single nucleotide resolution by use of next-generation sequencing approaches. The first genome of a C. jejuni strain was published in the year 2000. However, its transcriptome remained uncharacterized at large. C. jejuni can survive in a variety of ecological niches and hosts. However, how strain-specific transcriptional changes contribute to such adaptation is not known. In this study, the global transcriptome maps of four closely related C. jejuni strains were defined using a differential RNA-seq (dRNA-seq) approach. This analysis also included a novel automated method to annotate the transcriptional start sites (TSS) at a genome-wide scale. Next, the transcriptomes of four strains were simultaneously mapped and compared by the use of a common coordinate system derived from whole-genome alignment, termed as SuperGenome. This approach helped to refine the promoter maps by comparison of TSS within strains. Most of the TSS were found to be conserved among all four strains, but some single-nucleotide-polymorphisms (SNPs) around promoter regions led to strain-specific transcriptional output. Most of these SNPs altered transcription only slightly, but some others led to a complete abrogation of transcription leading to differential molecular phenotypes. These in turn might help the strains to adapt to their specific host or microniche. The transcriptome also unveiled a plethora of sRNAs, some of which were conserved among the four strains while others were strain specific. Furthermore, a Cas9-dependent minimal type-II CRISPR-Cas system with only three Cas genes and multiple promoters to drive the transcription of the CRISPR locus was also characterized in C. jejuni using the dRNA-seq dataset. Apart from sRNAs, the role of global RNA binding proteins (RBPs) is also unclear in C. jejuni. Aided by the global transcriptome data, the role of RBPs in post-transcriptional regulation of C. jejuni was studied at a global scale. Two of the most widely studied RNA binding proteins in bacteria are Hfq and CsrA. The RNA interactome of the translational regulator CsrA was defined using another global deep-sequencing technique that combines co-immunoprecipitation (coIP) with RNA sequencing (RIP-seq). Using this interactome dataset, the direct targets of this widespread global post-transcriptional regulator were defined, revealing a significant enrichment for mRNAs encoding genes involved in flagella biosynthesis. Unlike Gammaproteobacteria, where sRNAs such as CsrB/C, antagonize CsrA activity, no sRNAs were enriched in the CsrA-coIP in C. jejuni, indicating absence of any sRNA antagonists and novel modes of CsrA activity regulation. Instead, the CsrA regulatory pathway revealed flaA mRNA, encoding the major flagellin, as a dual-function mRNA. flaA mRNA was the main target of CsrA but it also served to antagonize CsrA activity along with the protein antagonist FliW previously identified in the Gram-positive bacterium Bacillus subtilis. Furthermore, this regulatory mRNA was also shown in this thesis to localize to the poles of elongating C. jejuni cells in a translation-dependent manner. It was also shown that this localization is dependent on the CsrA-FliW regulon, which controls the translation of flaA mRNA. The role and mechanism of flaA mRNA localization or mRNA localization in general is not yet clear in bacteria when compared to their eukaryotic counterparts. Overall, this study provides first insights into riboregulation of the bacterial pathogen C. jejuni. The work presented in this thesis unveils several novel modes of riboregulation in C. jejuni, which could be applicable more generally. Moreover, this study also lays out several unsolved intriguing questions, which may pave the way for interesting studies to come.}, subject = {Campylobacter jejuni}, language = {en} }