@phdthesis{Deutschmann2023, author = {Deutschmann, Sally}, title = {Prävalenz und Epidemiologie von Infektionen mit \(Neisseria\) \(gonorrhoeae\) und deren Resistenzlage gegen{\"u}ber Cephalosporinen der dritten Generation bei tansanischen Patientinnen und Patienten mit bestehender HIV-Infektion eines Referenzkrankenhauses im Nordwesten Tansanias}, doi = {10.25972/OPUS-31773}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-317735}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2023}, abstract = {Die Prävalenz von Infektionen mit Neisseria gonorrhoeae (NG) bei HIV-positiven Patientinnen und Patienten einer auf HIV-Infektionen spezialisierten Klinik in Mwanza im Nordwesten Tansani- as erwies sich mit 0,4\% bei Männern und 3,9\% bei Frauen als relativ niedrig. In dieser aktuellen Studie gab es unter Verwendung molekularer Antibiotikaresistenz(AMR)-Tests keine Hinweise auf eine Resistenz gegen Cephalosporine der dritten Generation. Weitere Kontrollen und Entwicklungen von NG- und AMR-Tests m{\"u}ssen implementiert werden. Molekulare Diagnoseverfahren auf der Basis von Urinproben als diagnostisches Material zum Nachweis von NG weisen wesentliche Vorteile f{\"u}r das Screening auf. Die Durchf{\"u}hrung eines Urinstreifentests hatte keinen positiven Vorhersagewert bez{\"u}glich einer Infektion mit NG oder einer AMR. K{\"u}nftige Untersuchungen sind anzuregen, um einerseits eine exaktere Angabe der Prävalenzraten und Risikofaktoren von Infektionen mit NG sowie deren Resistenzlage zu ermöglichen und andererseits eine effizientere Versorgung bzw. Behandlung der Gonorrhoe gewährleisten zu können.}, subject = {HIV}, language = {de} } @phdthesis{Heydarian2021, author = {Heydarian, Motaharehsadat}, title = {Development of human 3D tissue models for studying \(Neisseria\) \(gonorrhoeae\) infection}, doi = {10.25972/OPUS-20496}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-204967}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2021}, abstract = {Gonorrhea is the second most common sexually transmitted infection worldwide and is caused by Gram-negative, human-specific diplococcus Neisseria gonorrhoeae. It colonizes the mucosal surface of the female reproductive tract and the male urethra. A rapid increase in antibiotic resistance makes gonorrhea a serious threat to public health worldwide. Since N. gonorrhoeae is a human-specific pathogen, animal infection models are not able to recapitulate all the features of infection. Therefore, a realistic in vitro cell culture model is urgently required for studying the gonorrhea infection. In this study, we established and characterized three independent 3D tissue models based on the porcine small intestinal submucosa (SIS) scaffold by co-culturing human dermal fibroblasts with human colorectal carcinoma, endometrial epithelial, and male uroepithelial cells. The histological, immunohistochemical, and ultra-structural analysis showed that the 3D SIS scaffold-based models closely mimic the main characteristics of the site of gonococcal infection in the human host including the formation of epithelial monolayer, underlying connective tissue, mucus production, tight junction (TJ), and microvilli. In addition, functional analysis such as transepithelial electrical resistance (TEER) and barrier permeability indicated high barrier integrity of the cell layer. We infected the established 3D tissue models with different N. gonorrhoeae strains and derivatives presenting various phenotypes regarding adhesion and invasion. The results showed disruption of TJs and growing the interleukins production in response to the infection, which depends on the type of strain and cell. In addition, the 3D tissue models supported bacterial survival, which provided an appropriate in vitro model for long-term infection study. This could be mainly because of the high resilience of the 3D tissue models based on the SIS scaffold to the infection in terms of alteration in permeability, cell destruction, and bacterial transmigration. During gonorrhea infection, a high level of neutrophils migrates to the site of infection. The studies also showed that N. gonorrhoeae can survive or even replicate inside the neutrophils. Therefore, studying the interaction between neutrophils and N. gonorrhoeae is substantially under scrutiny. For this purpose, we generated a 3D tissue model by triple co-culturing of human primary fibroblast cells, human colorectal carcinoma cells, and human umbilical vein endothelial cells. The tissue model was subsequently infected by N. gonorrhoeae. A perfusion-based bioreactor system was employed to recreate blood flow in the side of endothelial cells and consequently study human neutrophils transmigration to the site of infection. We observed neutrophils activation upon the infection. Furthermore, we demonstrated the uptake of N. gonorrhoeae by human neutrophils and reverse transmigration of neutrophils to the basal side carrying N. gonorrhoeae. In summary, the introduced 3D tissue models in this research represent a promising tool to investigate N. gonorrhoeae infections under close-to-natural conditions.}, subject = {3D-Gewebemodell}, language = {en} } @article{HeydarianRuehlRawaletal.2022, author = {Heydarian, Motaharehsadat and R{\"u}hl, Eva and Rawal, Ravisha and Kozjak-Pavlovic, Vera}, title = {Tissue models for Neisseria gonorrhoeae research — from 2D to 3D}, series = {Frontiers in Cellular and Infection Microbiology}, volume = {12}, journal = {Frontiers in Cellular and Infection Microbiology}, issn = {2235-2988}, doi = {10.3389/fcimb.2022.840122}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-263046}, year = {2022}, abstract = {Neisseria gonorrhoeae is a human-specific pathogen that causes gonorrhea, the second most common sexually transmitted infection worldwide. Disease progression, drug discovery, and basic host-pathogen interactions are studied using different approaches, which rely on models ranging from 2D cell culture to complex 3D tissues and animals. In this review, we discuss the models used in N. gonorrhoeae research. We address both in vivo (animal) and in vitro cell culture models, discussing the pros and cons of each and outlining the recent advancements in the field of three-dimensional tissue models. From simple 2D monoculture to complex advanced 3D tissue models, we provide an overview of the relevant methodology and its application. Finally, we discuss future directions in the exciting field of 3D tissue models and how they can be applied for studying the interaction of N. gonorrhoeae with host cells under conditions closely resembling those found at the native sites of infection.}, language = {en} } @article{HeydarianSchweinlinSchwarzetal.2021, author = {Heydarian, Motaharehsadat and Schweinlin, Matthias and Schwarz, Thomas and Rawal, Ravisha and Walles, Heike and Metzger, Marco and Rudel, Thomas and Kozjak-Pavlovic, Vera}, title = {Triple co-culture and perfusion bioreactor for studying the interaction between Neisseria gonorrhoeae and neutrophils: A novel 3D tissue model for bacterial infection and immunity}, series = {Journal of Tissue Engineering}, volume = {12}, journal = {Journal of Tissue Engineering}, doi = {10.1177/2041731420988802}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-259032}, pages = {2041731420988802}, year = {2021}, abstract = {Gonorrhea, a sexually transmitted disease caused by the bacteria Neisseria gonorrhoeae, is characterized by a large number of neutrophils recruited to the site of infection. Therefore, proper modeling of the N. gonorrhoeae interaction with neutrophils is very important for investigating and understanding the mechanisms that gonococci use to evade the immune response. We have used a combination of a unique human 3D tissue model together with a dynamic culture system to study neutrophil transmigration to the site of N. gonorrhoeae infection. The triple co-culture model consisted of epithelial cells (T84 human colorectal carcinoma cells), human primary dermal fibroblasts, and human umbilical vein endothelial cells on a biological scaffold (SIS). After the infection of the tissue model with N. gonorrhoeae, we introduced primary human neutrophils to the endothelial side of the model using a perfusion-based bioreactor system. By this approach, we were able to demonstrate the activation and transmigration of neutrophils across the 3D tissue model and their recruitment to the site of infection. In summary, the triple co-culture model supplemented by neutrophils represents a promising tool for investigating N. gonorrhoeae and other bacterial infections and interactions with the innate immunity cells under conditions closely resembling the native tissue environment.}, language = {en} } @article{HeydarianYangSchweinlinetal.2019, author = {Heydarian, Motaharehsadat and Yang, Tao and Schweinlin, Matthias and Steinke, Maria and Walles, Heike and Rudel, Thomas and Kozjak-Pavlovic, Vera}, title = {Biomimetic human tissue model for long-term study of Neisseria gonorrhoeae infection}, series = {Frontiers in Microbiology}, volume = {10}, journal = {Frontiers in Microbiology}, number = {1740}, issn = {1664-302X}, doi = {10.3389/fmicb.2019.01740}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-197912}, year = {2019}, abstract = {Gonorrhea is the second most common sexually transmitted infection in the world and is caused by Gram-negative diplococcus Neisseria gonorrhoeae. Since N. gonorrhoeae is a human-specific pathogen, animal infection models are only of limited use. Therefore, a suitable in vitro cell culture model for studying the complete infection including adhesion, transmigration and transport to deeper tissue layers is required. In the present study, we generated three independent 3D tissue models based on porcine small intestinal submucosa (SIS) scaffold by co-culturing human dermal fibroblasts with human colorectal carcinoma, endometrial epithelial, and male uroepithelial cells. Functional analyses such as transepithelial electrical resistance (TEER) and FITC-dextran assay indicated the high barrier integrity of the created monolayer. The histological, immunohistochemical, and ultra-structural analyses showed that the 3D SIS scaffold-based models closely mimic the main characteristics of the site of gonococcal infection in human host including the epithelial monolayer, the underlying connective tissue, mucus production, tight junction, and microvilli formation. We infected the established 3D tissue models with different N. gonorrhoeae strains and derivatives presenting various phenotypes regarding adhesion and invasion. The results indicated that the disruption of tight junctions and increase in interleukin production in response to the infection is strain and cell type-dependent. In addition, the models supported bacterial survival and proved to be better suitable for studying infection over the course of several days in comparison to commonly used Transwell® models. This was primarily due to increased resilience of the SIS scaffold models to infection in terms of changes in permeability, cell destruction and bacterial transmigration. In summary, the SIS scaffold-based 3D tissue models of human mucosal tissues represent promising tools for investigating N. gonorrhoeae infections under close-to-natural conditions.}, language = {en} } @phdthesis{Kuespert2007, author = {K{\"u}spert, Katharina}, title = {Interaktion pathogener Neisserien mit zellul{\"a}ren Rezeptoren: Molekulare Untersuchungen zu neisseriellen Adh{\"a}sinen und ihrer Wechselwirkung mit humanen CEACAMs}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-25946}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2007}, abstract = {Neisseria meningitidis und Neisseria gonorrhoeae sind humanpathogene Vertreter der Gattung Neisseria. Diese Erreger verf{\"u}gen {\"u}ber eine Reihe von Virulenzfaktoren, um erfolgreich den menschlichen K{\"o}rper zu besiedeln. Dabei spielen die neisseriellen OpaCEA-Proteine eine wichtige Rolle. Diese Adh{\"a}sine binden an bestimmte Rezeptoren der humanen CEACAM-Familie, die auf unterschiedlichen Zelltypen im menschlichen K{\"o}rper exprimiert werden. Die Interaktion der OpaCEA-Proteine mit der stark konservierten aminoterminalen Dom{\"a}ne von bestimmten CEACAMs f{\"u}hrt zu einer Aufnahme der Bakterien in die Zellen. Dort k{\"o}nnen sie, vor der humoralen Immunantwort gesch{\"u}tzt, persistieren oder sich durch Transzytose in tiefer gelegene Gewebe weiter ausbreiten und letztendlich eine disseminierte Krankheit ausl{\"o}sen. Da CEACAMs eine entscheidende Rolle bei der Infektion mit pathogenen Neisserien spielen, wurde in der vorliegenden Arbeit die Interaktion dieser zellul{\"a}ren Rezeptoren mit pathogenen Neisserien und die daraus resultierenden molekularen Ereignisse auf bakterieller bzw. zellul{\"a}rer Seite n{\"a}her untersucht. Zun{\"a}chst wurde eine neuartige Methode entwickelt, die im Gegensatz zu herk{\"o}mmlichen Strategien eine schnelle und quantitative Erfassung von Neisserien-CEACAM-Interaktionen erm{\"o}glicht. Bei dieser Methode wurden GFP-fusionierte, l{\"o}sliche aminoterminale CEACAM-Dom{\"a}nen eingesetzt, die spezifisch an OpaCEA-exprimierende Bakterien binden. Einzelne Bakterien einer Population, die mit den fluoreszierenden Rezeptordom{\"a}nen assoziierten, konnten aufgrund ihrer erh{\"o}hten Fluoreszenz im Durchflußzytometer sehr schnell und quantitativ bestimmt werden. Diese Rezeptordom{\"a}nen wurden außerdem als molekulares Werkzeug zur Erstellung eines OpaCEA-induzierten Transkriptionsprofils von Opa-positiven Meningokokken verwendet. Transkriptomanalysen mittels Mikroarrays zeigten, dass die Interaktion OpaCEA-exprimierender Meningokokken mit der l{\"o}slichen, aminoterminalen Dom{\"a}ne von CEACAM1 eine Herrunterregulation von 56 Genen sowie eine Hochregulation von sieben Genen in Neisseria meningitidis MC58 zur Folge hatte. Dabei konnte ein hochreguliertes Gen identifiziert werden, dessen Genprodukt aufgrund seiner Homologie zu einem bakteriellen \&\#61537;-H{\"a}molysin m{\"o}glicherweise virulenz-assoziiert ist. Die Erstellung dieses Transkriptionsprofils beruhte auf der Interaktion zwischen der aminoterminalen Dom{\"a}ne von CEACAM1 und seinen bis heute einzig bekannten neisseriellen Liganden, den OpaCEA-Proteinen. Bemerkenswerterweise konnte im Rahmen der vorliegenden Arbeit ein Opa-negativer Meningokokkenstamm isoliert werden, der ebenfalls an CEACAM1 bindet und von CEACAM1-exprimierenden Zellen internalisiert wird. Da dieser Meningokokkenstamm keine Opa-Proteine exprimierte, muß er {\"u}ber ein weiteres Adh{\"a}sin verf{\"u}gen, das mit CEACAM1 assoziiert. Interessanterweise konnte gezeigt werden, dass f{\"u}r die CEACAM1-vermittelte Aufnahme dieser Opa-negativen Meningokokken mehrere extrazellul{\"a}re Dom{\"a}nen des Rezeptors notwendig sind. Im Gegensatz zur Aufnahme OpaCEA-exprimierender Bakterien war die aminoterminale Dom{\"a}ne essentiell, aber nicht ausreichend f{\"u}r diesen phagozytischen Vorgang, der unabh{\"a}ngig vom Aktinzytoskelett erfolgte. Auch bei Bindungsstudien mit l{\"o}slichen CEACAM1 Konstrukten gab es Differenzen zwischen den opaquen und nicht-opaquen Bakterienst{\"a}mmen. So zeigte sich, dass im Gegensatz zu OpaCEA-exprimierenden Meningokokken, die mit monomeren Formen des l{\"o}slichen Rezeptors assoziieren konnten, Opa-negativen Meningokokken nur mit multimerisierten Formen des Rezeptors interagierten. CEACAM1 stellt den einzigen Rezeptor aus der CEACAM-Familie dar, mit dem Opa-negative Meningokokken interagieren k{\"o}nnen. Demgegen{\"u}ber assoziieren OpaCEA-exprimierende Neisserien mit mehreren Mitgliedern der CEACAM-Familie, unter anderem mit CEACAM3. In der vorliegenden Arbeit konnte gezeigt werden, dass die c-Jun N-terminale Kinase an Signaltransduktionswegen, die durch Interaktion von OpaCEA-exprimierenden Neisserien mit CEACAM3 ausgel{\"o}st wurden, beteiligt ist. Erstaunlicherweise konnte durch Inhibition der c-Jun N-terminalen Kinase CEACAM3-vermittelte Aufnahme der opaquen Bakterien in die Zelle reduziert werden. Da die Aktivierung der c-Jun N-terminalen Kinase unabh{\"a}ngig von der Phosphorylierung der ITAM-{\"a}hnlichen Sequenz erfolgte, scheint dieses Molek{\"u}l an einem neuartigen Signalweg beteiligt zu sein, der komplement{\"a}r zu bereits bekannten CEACAM3-vermittelten Signalprozessen abl{\"a}uft. Die in der vorliegenden Arbeit zusammengefassten Befunde liefern neue Einblicke in die Wechselwirkung zwischen pathogenen Neisserien und ihren Wirtszellen und k{\"o}nnen als Ausgangspunkt f{\"u}r interessante weiterf{\"u}hrende Analysen dienen.}, subject = {Neisseria gonorrhoeae}, language = {de} } @article{PetersFohmannRudeletal.2021, author = {Peters, Simon and Fohmann, Ingo and Rudel, Thomas and Schubert-Unkmeir, Alexandra}, title = {A Comprehensive Review on the Interplay between Neisseria spp. and Host Sphingolipid Metabolites}, series = {Cells}, volume = {10}, journal = {Cells}, number = {11}, issn = {2073-4409}, doi = {10.3390/cells10113201}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-250203}, year = {2021}, abstract = {Sphingolipids represent a class of structural related lipids involved in membrane biology and various cellular processes including cell growth, apoptosis, inflammation and migration. Over the past decade, sphingolipids have become the focus of intensive studies regarding their involvement in infectious diseases. Pathogens can manipulate the sphingolipid metabolism resulting in cell membrane reorganization and receptor recruitment to facilitate their entry. They may recruit specific host sphingolipid metabolites to establish a favorable niche for intracellular survival and proliferation. In contrast, some sphingolipid metabolites can also act as a first line defense against bacteria based on their antimicrobial activity. In this review, we will focus on the strategies employed by pathogenic Neisseria spp. to modulate the sphingolipid metabolism and hijack the sphingolipid balance in the host to promote cellular colonization, invasion and intracellular survival. Novel techniques and innovative approaches will be highlighted that allow imaging of sphingolipid derivatives in the host cell as well as in the pathogen.}, language = {en} } @phdthesis{Peterson2008, author = {Peterson, Lisa}, title = {CEACAM3-mediated phagocytosis of human-specific bacterial pathogens involves the adaptor molecule Nck}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-46378}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2008}, abstract = {Carcinoembryonic antigen-related cell adhesion molecules (CEACAMs) are exploited by human-specific pathogens to anchor themselves to or invade host cells. Interestingly, human granulocytes express a specific isoform, CEACAM3, that can direct efficient, opsonin-independent phagocytosis of CEACAM-binding Neisseria, Moraxella and Haemophilus species. As opsonin-independent phagocytosis of CEACAM-binding Neisseria depends on Src-family protein tyrosine kinase (PTK) phosphorylation of the CEACAM3 cytoplasmic domain, we hypothesized that an SH2-containing protein might be involved in CEACAM3-initiated, phagocytosis-promoting signals. Accordingly, we screened glutathione-S-transferase (GST) fusion proteins containing SH2 domains derived from a panel of signaling and adapter molecules for their ability to associate with CEACAM3. In vitro pull-down assays demonstrated that the SH2 domain of the adapter molecule Nck (GST-Nck SH2), but not other SH2 domains such as the Grb2 SH2 domain, interact with CEACAM3 in a phosphotyrosine-dependent manner. Either deletion of the cytoplasmic tail of CEACAM3, or point-mutation of a critical arginine residue in the SH2 domain of Nck (GST-NckSH2R308K) that disrupts phosphotyrosine binding, both abolished CEACAM3-Nck-SH2 interaction. Upon infection of human cells with CEACAM-binding Neisseria, full-length Nck comprising an SH2 and three SH3 domains co-localized with tyrosine phosphorylated CEACAM3 and associated bacteria as analyzed by immunofluorescence staining and confocal microscopy. In addition, Nck could be detected in CEACAM3 immunoprecipitates confirming the interaction in vivo. Importantly, overexpression of a GFP-fusion protein of the isolated Nck SH2 domain (GFP-Nck-SH2), but not GFP or GFP-Nck SH2 R308K reduced CEACAM3-mediated phagocytosis of CEACAM-binding Neisseria suggesting that the adaptor molecule Nck plays an important role in CEACAM3-initiated signaling leading to internalization and elimination of human-specific pathogens.}, subject = {Adaptorproteine}, language = {en} } @phdthesis{Reimer2017, author = {Reimer, Anastasija}, title = {Search for novel antimicrobials against \(Neisseria\) \(gonorrhoeae\) and \(Chlamydia\) \(trachomatis\)}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-143168}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2017}, abstract = {The obligate human pathogen Neisseria gonorrhoeae is responsible for the widespread sexually transmitted disease gonorrhoea, which in rare cases also leads to the development of disseminated gonococcal infection (DGI). DGI is mediated by PorBIA-expressing bacteria that invade host cells under low phosphate condition by interaction with the scavenger receptor-1 (SREC-I) expressed on the surface of endothelial cells. The interaction of PorBIA and SREC-I was analysed using different in vitro approaches, including surface plasmon resonance experiments that revealed a direct phosphate-independent high affinity interaction of SREC-I to PorBIA. However, the same binding affinity was also found for the other allele PorBIB, which indicates unspecific binding and suggests that the applied methods were unsuitable for this interaction analysis. Since N. gonorrhoeae was recently classified as a "super-bug" due to a rising number of antibiotic-resistant strains, this study aimed to discover inhibitors against the PorBIA-mediated invasion of N. gonorrhoeae. Additionally, inhibitors were searched against the human pathogen Chlamydia trachomatis, which causes sexually transmitted infections as well as infections of the upper inner eyelid. 68 compounds, including plant-derived small molecules, extracts or pure compounds of marine sponges or sponge-associated bacteria and pipecolic acid derivatives, were screened using an automated microscopy based approach. No active substances against N. gonorrhoeae could be identified, while seven highly antichlamydial compounds were detected. The pipecolic acid derivatives were synthesized as potential inhibitors of the virulence-associated "macrophage infectivity potentiator" (MIP), which exhibits a peptidyl prolyl cis-trans isomerase (PPIase) enzyme activity. This study investigated the role of C. trachomatis and N. gonorrhoeae MIP during infection. The two inhibitors PipN3 and PipN4 decreased the PPIase activity of recombinant chlamydial and neisserial MIP in a dose-dependent manner. Both compounds affected the chlamydial growth and development in epithelial cells. Furthermore, this work demonstrated the contribution of MIP to a prolonged survival of N. gonorrhoeae in the presence of neutrophils, which was significantly reduced in the presence of PipN3 and PipN4. SF2446A2 was one of the compounds that had a severe effect on the growth and development of C. trachomatis. The analysis of the mode of action of SF2446A2 revealed an inhibitory effect of the compound on the mitochondrial respiration and mitochondrial ATP production of the host cell. However, the chlamydial development was independent of proper functional mitochondria, which excluded the connection of the antichlamydial properties of SF2446A2 with its inhibition of the respiratory chain. Only the depletion of cellular ATP by blocking glycolysis and mitochondrial respiratory chain inhibited the chlamydial growth. A direct effect of SF2446A2 on C. trachomatis was assumed, since the growth of the bacteria N. gonorrhoeae and Staphylococcus aureus was also affected by the compound. In summary, this study identified the severe antichlamydial activity of plant-derived naphthoquinones and the compounds derived from marine sponges or sponge-associated bacteria SF2446A2, ageloline A and gelliusterol E. Furthermore, the work points out the importance of the MIP proteins during infection and presents pipecolic acid derivatives as novel antimicrobials against N. gonorrhoeae and C. trachomatis.}, subject = {Neisseria gonorrhoeae}, language = {en} } @article{RemmeleXianAlbrechtetal.2014, author = {Remmele, Christian W. and Xian, Yibo and Albrecht, Marco and Faulstich, Michaela and Fraunholz, Martin and Heinrichs, Elisabeth and Dittrich, Marcus T. and M{\"u}ller, Tobias and Reinhardt, Richard and Rudel, Thomas}, title = {Transcriptional landscape and essential genes of Neisseria gonorrhoeae}, doi = {10.1093/nar/gku762}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-113676}, year = {2014}, abstract = {The WHO has recently classified Neisseria gonorrhoeae as a super-bacterium due to the rapid spread of antibiotic resistant derivatives and an overall dramatic increase in infection incidences. Genome sequencing has identified potential genes, however, little is known about the transcriptional organization and the presence of non-coding RNAs in gonococci. We performed RNA sequencing to define the transcriptome and the transcriptional start sites of all gonococcal genes and operons. Numerous new transcripts including 253 potentially non-coding RNAs transcribed from intergenic regions or antisense to coding genes were identified. Strikingly, strong antisense transcription was detected for the phase-variable opa genes coding for a family of adhesins and invasins in pathogenic Neisseria, that may have regulatory functions. Based on the defined transcriptional start sites, promoter motifs were identified. We further generated and sequenced a high density Tn5 transposon library to predict a core of 827 gonococcal essential genes, 133 of which have no known function. Our combined RNA-Seq and Tn-Seq approach establishes a detailed map of gonococcal genes and defines the first core set of essential gonococcal genes.}, language = {en} }