@phdthesis{Eckart2006, author = {Eckart, Martin}, title = {Analyse einer chromosomalen Deletion und Entdeckung einer neuartigen nicht-translatierten RNA in Staphylococcus epidermidis}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-21448}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2006}, abstract = {Staphylococcus epidermidis ist ein wichtiger Bestandteil der gesunden Hautflora des Menschen, gleichzeitig aber auch der h{\"a}ufigste Erreger nosokomialer Infektionen bei immunsupprimierten Patienten. Die Forschungsarbeiten haben sich in den vergangenen Jahren besonders auf Faktoren und Mechanismen konzentriert, welche zur Etablierung der Spezies als Pathogen beigetragen haben. Eine typische Eigenschaft klinischer Isolate ist die F{\"a}higkeit, auf k{\"u}nstlichen Oberfl{\"a}chen Biofilme zu bilden. Gegenstand der vorliegenden Arbeit war die Untersuchung der IS-vermittelten Genomflexibilit{\"a}t und der Vergleich der Genomstruktur nosokomialer und kommensaler Isolate von S. epidermidis. Dazu wurde eine 260 kb große spontane Deletion im Chromosom des Biofilm-bildenden Stammes S. epidermidis 307 sequenziert und annotiert, von der bekannt war, dass sie durch eine homologe Rekombination zweier IS256-Kopien ausgel{\"o}st wurde. Auf dem deletierten Fragment fanden sich neben dem ica-Operon zahlreiche potentielle Virulenz-assoziierte Gene. Das {\"u}berraschende Ergebnis dieser Analyse war jedoch die Identifizierung eines neuartigen SCC-Elementes, das den rechten Rand der Deletion begrenzt. Dies ist die erste Beschreibung eines SSC-Elementes mit einer CcrC-Rekombinase, dem das Methicillin-Resistenzgen mecA fehlt. In der N{\"a}he des Rekombinasegens fand sich S.-haemolyticus-spezifische DNA. Weitere Untersuchungen zeigten, dass das SCC-Element durch die IS256/Tn4001 -vermittelte Deletion in der Mutante verk{\"u}rzt wurde. Genomvergleiche ica-positiver und ica-negativer St{\"a}mme von S. epidermidis mittels Microarrays, sowie in-silico-Analysen zweier vollst{\"a}ndiger S.-epidermidis-Genome ergaben, dass sich kommensale und pathogene St{\"a}mme in nur wenigen Faktoren unterscheiden. Diese befinden sich jedoch fast alle in einer Region um den oriC, in dessen N{\"a}he auch die Insertionsstelle f{\"u}r die SCCmec-Inseln lokalisiert ist. Das deletierte DNA-Fragment von S. epidermidis 307 konnte ebenfalls dieser Region zugeordnet werden, die offenbar eine Zone hoher genomischer Flexibilit{\"a}t darstellt, in der fremde DNA integriert werden kann. Im Rahmen dieser Arbeit konnte außerdem gezeigt werden, dass das ica-Operon diesen variablen Genomabschnitt begrenzt. Die exakte Grenze zwischen ica-positiven und ica-negativen St{\"a}mmen bildet eine Thr-tRNA, die in einer 1,4 kb großen intergenischen Region stromabw{\"a}rts des icaR-Regulatorgens lokalisiert ist. In unmittelbarer Nachbarschaft konnte ein Transkript nachgewiesen werden, welches nur in ica-positiven S. epidermidis vorkommt. Gest{\"u}tzt auf bioinformatische Analysen wurden zun{\"a}chst die Polarit{\"a}t und L{\"a}nge des Transkriptes, sowie der korrespondierende Promotor experimentell bestimmt. Demnach handelt es sich um eine 487 nt lange RNA, die entgegengesetzt zur Thr-tRNA orientiert ist und mit dieser teilweise {\"u}berlappt. Da die Nukelotid-Sequenz weder eine Ribosomen- Bindungsstelle noch einen gr{\"o}ßeren Leserahmen aufweist, ist es sehr wahrscheinlich, dass es sich um eine nicht-translatierte RNA handelt. Qualitative RT-PCR-Experimente zeigten, dass die IGRica-RNA kostitutiv exprimiert wird. Spontane IS256 -Insertionsmutanten in der Promotorregion der IGRica-RNA wiesen ph{\"a}notypisch eine deutlich verminderte Biofilmbildung auf. Daher ist zu vermuten, dass die IGRica-RNA in die Regulation dieses wichtigen Virulenzfaktors involviert ist. In der vorliegenden Arbeit konnte weiterhin gezeigt werden, dass S. epidermidis das in vielen Spezies konservierte Hfq-Protein exprimiert, welches ein Bindungspartner und Chaperon f{\"u}r zahlreiche regulatorische RNAs darstellt. gel-shift-Experimente mit rekombinantem Hfq-Protein aus S. epidermidis ergaben jedoch keine nachweisbare Wechselwirkung der IGRica-RNA mit diesem Faktor in vitro. Insgesamt hat die Studie gezeigt, dass S. epidermidis eine Spezies mit einer außerordentlich hohen Genomflexibilit{\"a}t ist, die sich haupts{\"a}chlich in einer bestimmten Genomregion abspielt und f{\"u}r die IS-Elemente von besonderer Bedeutung sind. Die Identifizierung von DNA aus anderen Staphylokokken-Arten in dieser Region zeigt, dass S. epidermidis zu horizontalem Gentransfer {\"u}ber Speziesgrenzen hinweg in der Lage ist. Dies, sowie die Daten zur neuen SCC-Kassette, unterstreichen die Bedeutung von S. epidermidis als Reservoir f{\"u}r die Entwicklung neuartiger Resistenz- und Virulenzdeterminanten, die gerade im Krankenhausmilieu auf Spezies mit h{\"o}herem Virulenzpotential {\"u}bertragen werden k{\"o}nnen und so einen wichtigen Faktor f{\"u}r die anhaltende Problematik nosokomialer Infektionen mit S. aureus darstellen. Die Entdeckung einer RNA mit m{\"o}glicherweise regulatorischer Funktion ist der erste Faktor dieser Art, der - abgesehen von einigen phylogenetisch hoch konservierten RNAs - bisher in S. epidermidis nachgewiesen wurde. Die funktionale Analyse der IGRica-RNA und die Suche nach weiteren regulatorischen RNAs in Staphylokokken er{\"o}ffnen ein Forschungsfeld, das zum besseren Verst{\"a}ndnis der Lebensweise dieser bedeutenden Erreger beitragen kann.}, subject = {Staphylococcus epidermis}, language = {de} } @article{PernitzschSharma2012, author = {Pernitzsch, Sandy R. and Sharma, Cynthia M.}, title = {Transcriptome Complexity and Riboregulation in the Human Pathogen Helicobacter pylori}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-75096}, year = {2012}, subject = {Medizin}, language = {en} } @article{PapenfortVogel2014, author = {Papenfort, Kai and Vogel, J{\"o}rg}, title = {Small RNA functions in carbon metabolism and virulence of enteric pathogens}, series = {Frontiers in Cellular and Infection Microbiology}, volume = {4}, journal = {Frontiers in Cellular and Infection Microbiology}, number = {91}, issn = {2235-2988}, doi = {10.3389/fcimb.2014.00091}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-197520}, year = {2014}, abstract = {Enteric pathogens often cycle between virulent and saprophytic lifestyles. To endure these frequent changes in nutrient availability and composition bacteria possess an arsenal of regulatory and metabolic genes allowing rapid adaptation and high flexibility. While numerous proteins have been characterized with regard to metabolic control in pathogenic bacteria, small non-coding RNAs have emerged as additional regulators of metabolism. Recent advances in sequencing technology have vastly increased the number of candidate regulatory RNAs and several of them have been found to act at the interface of bacterial metabolism and virulence factor expression. Importantly, studying these riboregulators has not only provided insight into their metabolic control functions but also revealed new mechanisms of post-transcriptional gene control. This review will focus on the recent advances in this area of host-microbe interaction and discuss how regulatory small RNAs may help coordinate metabolism and virulence of enteric pathogens.}, language = {en} } @article{FroehlichHanekePapenfortetal.2016, author = {Fr{\"o}hlich, Kathrin S. and Haneke, Katharina and Papenfort, Kai and Vogel, J{\"o}rg}, title = {The target spectrum of SdsR small RNA in Salmonella}, series = {Nucleic Acids Research}, volume = {44}, journal = {Nucleic Acids Research}, number = {21}, doi = {10.1093/nar/gkw632}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-175365}, pages = {10406-10422}, year = {2016}, abstract = {Model enteric bacteria such as Escherichia coli and Salmonella enterica express hundreds of small non-coding RNAs (sRNAs), targets for most of which are yet unknown. Some sRNAs are remarkably well conserved, indicating that they serve cellular functions that go beyond the necessities of a single species. One of these 'core sRNAs' of largely unknown function is the abundant ∼100-nucleotide SdsR sRNA which is transcribed by the general stress σ-factor, σ\(^{S}\) and accumulates in stationary phase. In Salmonella, SdsR was known to inhibit the synthesis of the species-specific porin, OmpD. However, sdsR genes are present in almost all enterobacterial genomes, suggesting that additional, conserved targets of this sRNA must exist. Here, we have combined SdsR pulse-expression with whole genome transcriptomics to discover 20 previously unknown candidate targets of SdsR which include mRNAs coding for physiologically important regulators such as the carbon utilization regulator, CRP, the nucleoid-associated chaperone, StpA and the antibiotic resistance transporter, TolC. Processing of SdsR by RNase E results in two cellular SdsR variants with distinct target spectra. While the overall physiological role of this orphan core sRNA remains to be fully understood, the new SdsR targets present valuable leads to determine sRNA functions in resting bacteria.}, language = {en} } @article{BabskiHaasNaetherSchindleretal.2016, author = {Babski, Julia and Haas, Karina A. and N{\"a}ther-Schindler, Daniela and Pfeiffer, Friedhelm and F{\"o}rstner, Konrad U. and Hammelmann, Matthias and Hilker, Rolf and Becker, Anke and Sharma, Cynthia M. and Marchfelder, Anita and Soppa, J{\"o}rg}, title = {Genome-wide identification of transcriptional start sites in the haloarchaeon Haloferax volcanii based on differential RNA-Seq (dRNA-Seq)}, series = {BMC Genomics}, volume = {17}, journal = {BMC Genomics}, number = {629}, doi = {10.1186/s12864-016-2920-y}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-164553}, year = {2016}, abstract = {Background Differential RNA-Seq (dRNA-Seq) is a recently developed method of performing primary transcriptome analyses that allows for the genome-wide mapping of transcriptional start sites (TSSs) and the identification of novel transcripts. Although the transcriptomes of diverse bacterial species have been characterized by dRNA-Seq, the transcriptome analysis of archaeal species is still rather limited. Therefore, we used dRNA-Seq to characterize the primary transcriptome of the model archaeon Haloferax volcanii. Results Three independent cultures of Hfx. volcanii grown under optimal conditions to the mid-exponential growth phase were used to determine the primary transcriptome and map the 5′-ends of the transcripts. In total, 4749 potential TSSs were detected. A position weight matrix (PWM) was derived for the promoter predictions, and the results showed that 64 \% of the TSSs were preceded by stringent or relaxed basal promoters. Of the identified TSSs, 1851 belonged to protein-coding genes. Thus, fewer than half (46 \%) of the 4040 protein-coding genes were expressed under optimal growth conditions. Seventy-two percent of all protein-coding transcripts were leaderless, which emphasized that this pathway is the major pathway for translation initiation in haloarchaea. A total of 2898 of the TSSs belonged to potential non-coding RNAs, which accounted for an unexpectedly high fraction (61 \%) of all transcripts. Most of the non-coding TSSs had not been previously described (2792) and represented novel sequences (59 \% of all TSSs). A large fraction of the potential novel non-coding transcripts were cis-antisense RNAs (1244 aTSSs). A strong negative correlation between the levels of antisense transcripts and cognate sense mRNAs was found, which suggested that the negative regulation of gene expression via antisense RNAs may play an important role in haloarchaea. The other types of novel non-coding transcripts corresponded to internal transcripts overlapping with mRNAs (1153 iTSSs) and intergenic small RNA (sRNA) candidates (395 TSSs). Conclusion This study provides a comprehensive map of the primary transcriptome of Hfx. volcanii grown under optimal conditions. Fewer than half of all protein-coding genes have been transcribed under these conditions. Unexpectedly, more than half of the detected TSSs belonged to several classes of non-coding RNAs. Thus, RNA-based regulation appears to play a more important role in haloarchaea than previously anticipated.}, language = {en} } @article{HershkoShalevOdenheimerBergmanElgrablyWeissetal.2016, author = {Hershko-Shalev, Tal and Odenheimer-Bergman, Ahuva and Elgrably-Weiss, Maya and Ben-Zvi, Tamar and Govindarajan, Sutharsan and Seri, Hemda and Papenfort, Kai and Vogel, J{\"o}rg and Altuvia, Shoshy}, title = {Gifsy-1 Prophage IsrK with Dual Function as Small and Messenger RNA Modulates Vital Bacterial Machineries}, series = {PLoS Genetics}, volume = {12}, journal = {PLoS Genetics}, number = {4}, doi = {10.1371/journal.pgen.1005975}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-166717}, pages = {e1005975}, year = {2016}, abstract = {While an increasing number of conserved small regulatory RNAs (sRNAs) are known to function in general bacterial physiology, the roles and modes of action of sRNAs from horizontally acquired genomic regions remain little understood. The IsrK sRNA of Gifsy-1 prophage of Salmonella belongs to the latter class. This regulatory RNA exists in two isoforms. The first forms, when a portion of transcripts originating from isrK promoter reads-through the IsrK transcription-terminator producing a translationally inactive mRNA target. Acting in trans, the second isoform, short IsrK RNA, binds the inactive transcript rendering it translationally active. By switching on translation of the first isoform, short IsrK indirectly activates the production of AntQ, an antiterminator protein located upstream of isrK. Expression of antQ globally interferes with transcription termination resulting in bacterial growth arrest and ultimately cell death. Escherichia coli and Salmonella cells expressing AntQ display condensed chromatin morphology and localization of UvrD to the nucleoid. The toxic phenotype of AntQ can be rescued by co-expression of the transcription termination factor, Rho, or RNase H, which protects genomic DNA from breaks by resolving R-loops. We propose that AntQ causes conflicts between transcription and replication machineries and thus promotes DNA damage. The isrK locus represents a unique example of an island-encoded sRNA that exerts a highly complex regulatory mechanism to tune the expression of a toxic protein.}, language = {en} } @article{SteinerZacharyBaueretal.2023, author = {Steiner, Thomas and Zachary, Marie and Bauer, Susanne and M{\"u}ller, Martin J. and Krischke, Markus and Radziej, Sandra and Klepsch, Maximilian and Huettel, Bruno and Eisenreich, Wolfgang and Rudel, Thomas and Beier, Dagmar}, title = {Central Role of Sibling Small RNAs NgncR_162 and NgncR_163 in Main Metabolic Pathways of Neisseria gonorrhoeae}, series = {mBio}, volume = {14}, journal = {mBio}, doi = {10.1128/mbio.03093-22}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-313323}, year = {2023}, abstract = {Small bacterial regulatory RNAs (sRNAs) have been implicated in the regulation of numerous metabolic pathways. In most of these studies, sRNA-dependent regulation of mRNAs or proteins of enzymes in metabolic pathways has been predicted to affect the metabolism of these bacteria. However, only in a very few cases has the role in metabolism been demonstrated. Here, we performed a combined transcriptome and metabolome analysis to define the regulon of the sibling sRNAs NgncR_162 and NgncR_163 (NgncR_162/163) and their impact on the metabolism of Neisseria gonorrhoeae. These sRNAs have been reported to control genes of the citric acid and methylcitric acid cycles by posttranscriptional negative regulation. By transcriptome analysis, we now expand the NgncR_162/163 regulon by several new members and provide evidence that the sibling sRNAs act as both negative and positive regulators of target gene expression. Newly identified NgncR_162/163 targets are mostly involved in transport processes, especially in the uptake of glycine, phenylalanine, and branched-chain amino acids. NgncR_162/163 also play key roles in the control of serine-glycine metabolism and, hence, probably affect biosyntheses of nucleotides, vitamins, and other amino acids via the supply of one-carbon (C\(_1\)) units. Indeed, these roles were confirmed by metabolomics and metabolic flux analysis, which revealed a bipartite metabolic network with glucose degradation for the supply of anabolic pathways and the usage of amino acids via the citric acid cycle for energy metabolism. Thus, by combined deep RNA sequencing (RNA-seq) and metabolomics, we significantly extended the regulon of NgncR_162/163 and demonstrated the role of NgncR_162/163 in the regulation of central metabolic pathways of the gonococcus.}, language = {en} }