TY - JOUR A1 - Groma, Michaela A1 - Horst, Sarah A. A1 - Das, Sudip A1 - Huettel, Bruno A1 - Klepsch, Maximilian A1 - Rudel, Thomas A1 - Medina, Eva A1 - Fraunholz, Martin T1 - Identification of a Novel LysR-Type Transcriptional Regulator in Staphylococcus aureus That Is Crucial for Secondary Tissue Colonization during Metastatic Bloodstream Infection JF - mbio N2 - Staphylococcus aureus is a common cause of bacteremia that can lead to severe complications once the bacteria exit the bloodstream and establish infection in secondary organs. Despite its clinical relevance, little is known about the bacterial factors facilitating the development of these metastatic infections. Here, we used an S. aureus transposon mutant library coupled to transposon insertion sequencing (Tn-Seq) to identify genes that are critical for efficient bacterial colonization of secondary organs in a murine model of metastatic bloodstream infection. Our transposon screen identified a LysR-type transcriptional regulator (LTTR), which was required for efficient colonization of secondary organs such as the kidneys in infected mice. The critical role of LTTR in secondary organ colonization was confirmed using an isogenic mutant deficient in the expression of LTTR. To identify the set of genes controlled by LTTR, we used an S. aureus strain carrying the LTTR gene in an inducible expression plasmid. Gene expression analysis upon induction of LTTR showed increased transcription of genes involved in branched-chain amino acid biosynthesis, a methionine sulfoxide reductase, and a copper transporter as well as decreased transcription of genes coding for urease and components of pyrimidine nucleotides. Furthermore, we show that transcription of LTTR is repressed by glucose, is induced under microaerobic conditions, and required trace amounts of copper ions. Our data thus pinpoints LTTR as an important element that enables a rapid adaptation of S. aureus to the changing host microenvironment. IMPORTANCE Staphylococcus aureus is an important pathogen that can disseminate via the bloodstream and establish metastatic infections in distant organs. To achieve a better understanding of the bacterial factors facilitating the development of these metastatic infections, we used in this study a Staphylococcus aureus transposon mutant library in a murine model of intravenous infection, where bacteria first colonize the liver as the primary infection site and subsequently progress to secondary sites such as the kidney and bones. We identified a novel LysR-type transcriptional regulator (LTTR), which was specifically required by S. aureus for efficient colonization of secondary organs. We also determined the transcriptional activation as well as the regulon of LTTR, which suggests that this regulator is involved in the metabolic adaptation of S. aureus to the host microenvironment found in secondary infection sites. KW - Staphylococcus aureus KW - metabolic adaptation KW - secondary site infection KW - transcriptional regulation Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-230473 VL - 11 IS - 4 ER - TY - JOUR A1 - Blättner, Sebastian A1 - Das, Sudip A1 - Paprotka, Kerstin A1 - Eilers, Ursula A1 - Krischke, Markus A1 - Kretschmer, Dorothee A1 - Remmele, Christian W. A1 - Dittrich, Marcus A1 - Müller, Tobias A1 - Schuelein-Voelk, Christina A1 - Hertlein, Tobias A1 - Mueller, Martin J. A1 - Huettel, Bruno A1 - Reinhardt, Richard A1 - Ohlsen, Knut A1 - Rudel, Thomas A1 - Fraunholz, Martin J. T1 - Staphylococcus aureus Exploits a Non-ribosomal Cyclic Dipeptide to Modulate Survival within Epithelial Cells and Phagocytes JF - PLoS Pathogens N2 - Community-acquired (CA) Staphylococcus aureus cause various diseases even in healthy individuals. Enhanced virulence of CA-strains is partly attributed to increased production of toxins such as phenol-soluble modulins (PSM). The pathogen is internalized efficiently by mammalian host cells and intracellular S. aureus has recently been shown to contribute to disease. Upon internalization, cytotoxic S. aureus strains can disrupt phagosomal membranes and kill host cells in a PSM-dependent manner. However, PSM are not sufficient for these processes. Here we screened for factors required for intracellular S. aureus virulence. We infected escape reporter host cells with strains from an established transposon mutant library and detected phagosomal escape rates using automated microscopy. We thereby, among other factors, identified a non-ribosomal peptide synthetase (NRPS) to be required for efficient phagosomal escape and intracellular survival of S. aureus as well as induction of host cell death. By genetic complementation as well as supplementation with the synthetic NRPS product, the cyclic dipeptide phevalin, wild-type phenotypes were restored. We further demonstrate that the NRPS is contributing to virulence in a mouse pneumonia model. Together, our data illustrate a hitherto unrecognized function of the S. aureus NRPS and its dipeptide product during S. aureus infection. KW - cell death KW - cytotoxicity KW - Staphylococcus aureus KW - host cells KW - neutrophils KW - macrophages KW - transposable elements KW - epithelial cells Y1 - 2016 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-180380 VL - 12 IS - 9 ER - TY - THES A1 - Das, Sudip T1 - Genome-wide identification of virulence-associated genes in Staphylococcus aureus using Transposon insertion-site deep sequencing T1 - Genomweite Identifizierung Virulenz-assoziierter Gene in Staphylococcus aureus mittels Transposon-Sequenzierung N2 - Staphylococcus aureus asymptomatically colonises one third of the healthy human population, finding its niche in the nose and on skin. Apart from being a commensal, it is also an important opportunistic human pathogen capable of destructing tissue, invading host cells and killing them from within. This eventually contributes to severe hospital- and community-acquired infections. Methicillin-resistant Staphylococcus aureus (MRSA), resistant to commonly used antibiotics are protected when residing within the host cell. This doctoral thesis is focused on the investigation of staphylococcal factors governing intracellular virulence and subsequent host cell death. To initiate an unbiased approach to conduct this study, complex S. aureus mutant pools were generated using transposon insertional mutagenesis. Genome-wide infection screens were performed using these S. aureus transposon mutant pools in vitro and in vivo, followed by analysis using Transposon insertion site deep sequencing (Tn-seq) technology. Amongst several other factors, this study identified a novel regulatory system in S. aureus that controls pathogen-induced host cytotoxicity and intra-host survival. The primary components of this system are an AraC-family transcription regulator called Repressor of surface proteins (Rsp) and a virulence associated non-coding RNA, SSR42. Mutants within rsp exhibit enhanced intra-host survival in human epithelial cells and delayed host cytotoxicity. Global gene-expression profiling by RNA-seq demonstrated that Rsp controls the expression of SSR42, several cytotoxins and other bacterial factors directed against the host immune system. Rsp enhances S. aureus toxin response when triggered by hydrogen peroxide, an antimicrobial substance employed by neutrophils to destroy pathogens. Absence of rsp reduces S. aureus-induced neutrophil damage and early lethality during mouse pneumonia, but still permits blood stream infection. Intriguingly, S. aureus lacking rsp exhibited enhanced survival in human macrophages, which hints towards a Trojan horse-like phenomenon and could facilitate dissemination within the host. Hence, Rsp emerged as a global regulator of bacterial virulence, which has an impact on disease progression with prolonged intra-cellular survival, delayed-lethality but allows disseminated manifestation of disease. Moreover, this study exemplifies the use of genome-wide approaches as useful resources for identifying bacterial factors and deduction of its pathogenesis. N2 - Staphylococcus aureus ist ein fakultativ pathogener Kommensale des Menschen und besiedelt bei etwa einem Drittel der Bevölkerung überwiegend den Nasen-Rachenraum sowie die Haut ohne klinische Symptome auszulösen. Darüber hinaus zählen diese Bakterien zu den wichtigsten Vertretern der Kranken- hauskeime, die schwerwiegende Infektionen besonders im Bereich der Intensivstationen in Kranken- häusern hervorrufen können. Methicillin-resistente Staphylococcus aureus (MRSA) sind dabei resistent gegen übliche Antibiotika und daher schlecht therapierbar. Neuere Forschungsarbeiten zeigten, dass S. aureus von Zellen des Wirts aufgenommen wird und diese von innen heraus abzutöten vermag. Über die zugrunde liegenden molekularen Mechanismen dieser Zelltoxizität ist jedoch nicht viel bekannt. In der vorliegenden Arbeit sollten daher Faktoren von S. aureus identifiziert und charakterisiert wer- den, die die intrazelluläre Virulenz des Bakteriums und das darauf folgende Absterben der Wirtszelle beeinflussen. Dafür wurden mittels Transposon-Insertionsmutagenese S. aureus Mutanten-Bibliotheken erstellt, welche für genomweite Infektionsscreens in vitro und in vivo genutzt wurden. Die Auswertung dieser Analysen erfolgte dabei durch Hochdurchsatz-Sequenzierung der Transposon-Insertionsstellen (Tn-seq). In diesen Studien wurde neben zahlreichen bakteriellen Faktoren ein neuartiges Virulenzreg- ulator - System identifiziert. Dieses System besteht aus dem Transkriptionsregulator der AraC-Familie Repressor of surface proteins (Rsp) und einer nicht-kodierenden RNA, SSR42. rsp-Mutanten zeigten eine erhöhte intrazelluläre Überlebensrate in menschlichen Epithelzellen sowie eine verzögerte Cytotoxizität im Wirt. Durch RNA-Sequenzierung (RNA-seq) wurde der Einfluss von Rsp auf die globale Genexpres- sion ermittelt. Dabei zeigte sich, dass Rsp die Expression von SSR42, sowie Cytotoxinen und anderen immunmodulatorischen Faktoren von S. aureus kontrolliert. Wasserstoffperoxid, ein Molekül, welches durch Neutrophile zur Bekämpfung von Pathogenen gebildet wird, führt dabei Rsp-abhängig zu einer Erhöhung der bakteriellen Toxinproduktion. Die Abwesenheit von Rsp in bakteriellen Mutanten res- ultiert in einer Reduktion S. aureus-induzierter Zerstörung von Neutrophilen sowie zum Überleben von Versuchstieren im Lungeninfektionsmodell. Eine systemische Infektion ist dabei jedoch weiterhin mög- lich. Interessanterweise führt ein Fehlen des rsp zu einer erhöhten Überlebensrate von Makrophagen, welches auf eine Verbreitung der Bakterien im Organismus in diesem Zelltyp hindeuten könnte. Rsp ist demnach ein neuartiger globaler Regulator bakterieller Virulenz, der zwar die infektions- bedingte Letalität verzögert, jedoch damit eine Disseminierung der Infektion mit S. aureus begünstigt. KW - Staphylococcus aureus KW - Transposon KW - insertion-site deep sequencing Y1 - 2018 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-143362 ER -