@phdthesis{Liaqat2022, author = {Liaqat, Anam}, title = {Artificial Evolution of Nucleic Acid Catalysts and their Use for Studying RNA}, doi = {10.25972/OPUS-28311}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-283111}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2022}, abstract = {RNA molecules play diverse roles in biological systems. Post-transcriptional RNA modifications and dynamic structures enhance the functional diversity of RNA. A prerequisite for studying their biological significance is the availability of reliable methods for the detection of RNA modifications and structures. Several promising approaches have been developed in the last few decades; however, efficient, and versatile tools are still required to study the dynamic features of RNA. This thesis focuses on the development of nucleic acid catalysts as a tool to address the current needs in studying RNA. The major part of this thesis aimed at the development of deoxyribozymes as a tool for the detection of RNA modifications. Using in vitro selection from a random DNA library, we found deoxyribozymes that are sensitive to N 6 -isopentenyladenosine (i6A), a native tRNA modification and structural analogue of m6A. The in vitro evolution identified three classes of DNA enzymes: AA, AB08, and AC17 DNAzymes that showed distinct response to i6A modification and showed strong discrimination between structural analogues, i.e., m6A and i6A. In the continuation of the project, we attempted to develop RNA-cleaving deoxyribozymes that differentially respond to monomethylated cytidine isomers, 3-methylcytidine (m3C), N4 - methylcytidine (m4C), and 5-methylcytidine (m5C). Several deoxyribozymes were identified from in vitro selection, which are selective for a specific methylated cytidine isomer. The characterization of AL112, AM101, AN05, and AK104 catalysts confirmed the successful evolution of modification-specific and general deoxyribozymes that showed a broad substrate scope. In order to accelerate the DNAzymes discovery, a high throughput sequencing method (DZ-seq) was established that directly quantifies the RNA cleavage activity and cleavage site from deep sequencing data. The libraries contained information about cleavage status, cleavage site and sequence of deoxyribozymes and RNA substrate. The fraction cleaved (FC) data obtained from Dz-seq was validated for a subset of deoxyribozmes using conventional gel based kinetic assay and showed a good linear correlation (R2 = 0.91). Dz-seq possesses a great potential for the discovery of novel deoxyribozymes for the analysis of various RNA modifications in the future. The second objective of the current study was the development of structure-specific RNA labeling ribozymes. Here, we attempted to develop ribozymes that targets RNA of interest by structure-specific interaction rather than base-pairing and focused on a specific RNA G-quadruplex as the target. Two subsequent selection experiments led to the identification of the adenylyltransferase ribozymes AO10.2 and AR9. The partial characterization of these catalysts showed that A010.2 was unable to recognize intact BCL2 structure, but it turned out as the first reported trans-active ribozyme that efficiently labeled uridine in a defined substrate RNA hybridized to the ribozyme. The other ribozyme AR9 was shown to serve as a trans-active, self-labeling ribozyme that catalyzed adenylyl transferase reaction in the presence of the intact BCL2 sequence. Based on these preliminary findings, we envision that AR9 could potentially serve as a reporter RNA by self-labeling in the presence of an RNA G-quadruplex. However, both AO10.2 and AR9 still require more detailed characterization for their potential applications.}, 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} }