TY - THES A1 - Frömmel, Ulrike T1 - Vergleichende geno- und phänotypische Charakterisierung von Escherichia coli aus Menschen, Hausschweinen und Wildtieren T1 - Comparative genotypic and phenotypic characterization of Escherichia coli from humans, domestic pigs and wild animals N2 - Escherichia (E.) coli ist als kommensales Bakterium ein wichtiger Bestandteil des Mikrobioms von Säugern, jedoch zudem der häufigste Infektionserreger des Menschen. Entsprechend des Infektionsortes werden intestinal (InPEC) und extraintestinal pathogene E. coli (ExPEC) unterschieden. Die Pathogenese von E. coli-Infektionen ist durch Virulenzfaktoren determiniert, welche von jeweils spezifischen virulenzassoziierten Genen (inVAGs und exVAGs) kodiert werden. Häufig werden exVAGs auch in E. coli-Isolaten aus dem Darm gesunder Wirte nachgewiesen. Dies führte zu der Vermutung, dass exVAGs die intestinale Kolonisierung des Wirtes durch E. coli unterstützen. Das Hauptziel dieser Arbeit bestand darin, das Wissen über den Einfluss von exVAGs auf die Besiedlung und damit die Adhäsion von E. coli an Epithelzellen des Darmtraktes zu erweitern. Die Durchführung einer solch umfassenden E. coli-Populationsstudie erforderte die Etablierung neuer Screeningmethoden. Für die genotypische Charakterisierung wurden mikropartikelbasierte Multiplex-PCR-Assays zum Nachweis von 44 VAGs und der Phylogenie etabliert. Für die phänotypische Charakterisierung wurden Adhäsions- und Zytotoxizitätsassays etabliert. Die Screeningmethoden basieren auf der VideoScan-Technologie, einem automatisierten bildbasierten Multifluoreszenzdetektionssystem. Es wurden 398 E. coli-Isolate aus 13 Wildsäugerarten und 5 Wildvogelarten sowie aus gesunden und harnwegserkrankten Menschen und Hausschweinen charakterisiert. Die Adhäsionsassays hatten zum Ziel, sowohl die Adhäsionsraten als auch die Adhäsionsmuster der 317 nicht hämolytischen Isolate auf 5 Epithelzelllinien zu bestimmen. Die Zytotoxizität der 81 hämolytischen Isolate wurde in Abhängigkeit der Inkubationszeit auf 4 Epithelzelllinien geprüft. In den E. coli-Isolaten wurde eine Reihe von VAGs nachgewiesen. Potentielle InPEC, insbesondere shigatoxinproduzierende und enteropathogene E. coli wurden aus Menschen, Hausschweinen und Wildtieren, vor allem aus Rehen und Feldhasen isoliert. exVAGs wurden mit stark variierender Prävalenz in Isolaten aus allen Arten detektiert. Die größte Anzahl und das breiteste Spektrum an exVAGs wurde in Isolaten aus Urin harnwegserkrankter Menschen, gefolgt von Isolaten aus Dachsen und Rehen nachgewiesen. In Isolaten der phylogenetischen Gruppe B2 wurden mehr exVAGs detektiert als in den Isolaten der phylogenetischen Gruppen A, B1 und D. Die Ergebnisse der Adhäsionsassays zeigten, dass die meisten Isolate zelllinien-, gewebe- oder wirtsspezifisch adhärierten. Ein Drittel der Isolate adhärierte an keiner Zelllinie und nur zwei Isolate adhärierten stark an allen Zelllinien. Grundsätzlich adhärierten mehr Isolate an humanen sowie an intestinalen Zelllinien. Besonders Isolate aus Eichhörnchen und Amseln sowie aus Urin harnwegserkrankter Menschen und Hausschweine waren in der Lage, stark zu adhärieren. Hierbei bildeten die Isolate als Adhäsionsmuster diffuse Adhäsion, Mikrokolonien, Ketten und Agglomerationen. Mittels statistischer Analysen wurden Assoziationen zwischen exVAGs und einer hohen Adhäsionsrate ersichtlich. So war beispielsweise das Vorkommen von afa/dra mit einer höheren Adhäsionsrate auf Caco-2- und 5637-Zellen und von sfa/foc auf IPEC-J2-Zellen assoziiert. Die Ergebnisse der Zytotoxizitätsassays zeigten eine sehr starke und zeitabhängige Zerstörung der Monolayer aller Epithelzelllinien durch die α-Hämolysin-positiven Isolate. Auffallend war die hohe Toxizität hämolytischer Isolate aus Wildtieren gegenüber den humanen Zelllinien. Mit den innerhalb dieser Arbeit entwickelten Screeningmethoden war es möglich, große Mengen an Bakterien zu charakterisieren. Es konnte ein Überblick über die Verbreitung von VAGs in E. coli aus unterschiedlichen Wirten gewonnen werden. Besonders Wildtiere wurden sowohl durch den Nachweis von VAGs in den entsprechenden Isolaten, verbunden mit deren Adhäsionsfähigkeit und ausgeprägter Zytotoxizität als Reservoire pathogener E. coli identifiziert. Ebenso wurde eine zelllinienspezifische Adhäsion von Isolaten mit bestimmten exVAGs deutlich. Damit konnte der mögliche Einfluss von exVAGs auf die intestinale Kolonisierung bestätigt werden. In weiterführenden Arbeiten sind jedoch Expressions- und Funktionsanalysen der entsprechenden Proteine unerlässlich. Es wird anhand der Mikrokoloniebildung durch kommensale E. coli vermutet, dass Adhäsionsmuster und demzufolge Kolonisierungsstrategien, die bisher pathogenen E. coli zugeschrieben wurden, eher als generelle Kolonisierungsstrategien zu betrachten sind. Das E. coli-α-Hämolysin wirkt im Allgemeinen zytotoxisch auf Epithelzellen. Ein in der Fachliteratur diskutierter adhäsionsunterstützender Mechanismus dieses Toxins ist demnach fragwürdig. Innerhalb dieser Arbeit konnte gezeigt werden, dass die entwickelten Screeningmethoden umfassende Analysen einer großen Anzahl an E. coli-Isolaten ermöglichen. N2 - Escherichia (E.) coli is as commensal bacterium an important component of the microbiome of humans and animals, but also the most common infectious agent of human. According to the site of infection intestinal pathogenic (InPEC) and extraintestinal pathogenic E. coli (ExPEC) are differentiated. The pathogenesis of E. coli infections is determined by virulence factors encoded by specific virulence-associated genes (inVAGs and exVAGs). Frequently, exVAGs also be detected in E. coli isolates from the intestine of clinically healthy hosts. This led to the assumption that exVAGs support the intestinal colonization of the host by E. coli. The main objective of this work was to extend the knowledge about the influence of exVAGs on the settlement and adhesion of E. coli to epithelial cells of the intestinal tract. The implementation of such a comprehensive E. coli population study required the establishment of new screening methods. For the genotypic characterization novel microbead-based multiplex PCR assays were established to detect 44 VAGs and phylogeny. For the phenotypic characterization novel in vitro adhesion and cytotoxicity assays were established. These screening methods based on the VideoScan technology, which is an automated image-based multi-fluorescence detection system. There have been characterized 398 E. coli isolates from 13 wild mammal species and 5 species of wild birds as well as from healthy and urinary diseased humans and domestic pigs. The adhesion assays were aimed at both the adhesion rates and the adhesion patterns of the 317 non-hemolytic isolates on intestinal human Caco-2 and porcine IPEC-J2 cells and on human urinary bladder 5637, porcine kidney PK-15 epithelial and HEp-2 cells. The cytotoxicity of 81 hemolytic isolates was compared on the human intestinal epithelium LoVo, and on 5637, IPEC-J2 and PK-15 according to the incubation period. The E. coli isolates showed a series of VAGs. Potential InPEC, especially shigatoxin-producing and enteropathogenic E. coli were isolated from humans, domestic pigs and wild animals, especially from deers (Capreolus capreolus) and hares (Lepus europaeus). exVAGs were detected with widely varying prevalence in E. coli isolates from all species studied. The largest number and the widest range of exVAGs were shown in isolates from urine of urinary diseased patients, followed by isolates from badgers (Meles meles) and deer. Within the isolates of the phylogenetic group B2 more exVAGs were detected as within the isolates of the phylogenetic groups A, B1, and D. Adhesion of the E. coli isolates was specific to cells, host, and tissue, though it was also unspecific. A third of the isolates adhered to any cell line and only two isolates adhered strongly to all cell lines. Basically, more bacteria adhered to human as well as to intestinal cell lines. Especially isolates from squirrels (Sciurus vulgaris) and blackbirds (Turdus merula) and from the urine of urinary diseased humans and domestic pigs were able to strongly adhere. Commensal and pathogenic isolates can adhere in various forms, including diffuse distribution, microcolonies, chains and clumps. Using statistical analyzes associations between the occurrence of some VAGs and a high adhesion rates were seen. Several known adhesins were associated with host cell specific adhesion. Other new potential adhesion genes were described. The results of the cytotoxicity assays showed a very strong and time-dependent degradation of the epithelial cell monolayer of all the α-hemolysin-positive E. coli isolates. The high toxicity of hemolytic isolates from wild animals against the human cell lines was striking. The screening methods enabled both, the genotypic and phenotypic characterisation of large amounts of bacterial isolates. An overview of the distribution of VAGs in E. coli from different hosts was obtained. Especially wild animals were either by the detection of VAGs in the corresponding E. coli isolates, combined with the adhesion and marked cytotoxicity identified as reservoirs of pathogenic E. coli. As well, a cell-line specific adhesion of E. coli isolates with certain exVAGs became clear. Thus, the possible influence on the intestinal colonization of exVAGs could be confirmed. In further work, however, expression and functional analysis of the corresponding proteins are essential. It is suspected on the basis of microcolony formation by commensal E. coli that adhesion patterns and consequently colonization strategies that were previously attributed to pathogenic E. coli, are to be regarded rather as a general colonization strategy. The E. coli α-hemolysin acts generally cytotoxic to epithelial cells. An in the literature discussed adhesion supporting mechanism of this toxin is therefore questionable. Within this work it was shown that the developed screening methods enable comprehensive analyzes of a large number of E. coli isolates. KW - Escherichia coli KW - Adhäsion KW - virulenzassoziierte Gene KW - Hämolyse KW - ExPEC KW - Escherichia coli KW - adhesion KW - virulence-associated genes KW - hemolysis KW - ExPEC Y1 - 2013 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus-69147 ER - TY - GEN A1 - Yan, Robert A1 - Friemel, Martin A1 - Aloisi, Claudia A1 - Huynen, Martijn A1 - Taylor, Ian A. A1 - Leimkühler, Silke A1 - Pastore, Annalisa T1 - The eukaryotic-specific Isd11 is a complex- orphan protein with ability to bind the prokaryotic IscS T2 - Postprints der Universität Potsdam : Mathematisch-Naturwissenschaftliche Reihe N2 - The eukaryotic protein Isd11 is a chaperone that binds and stabilizes the central component of the essential metabolic pathway responsible for formation of iron-sulfur clusters in mitochondria, the desulfurase Nfs1. Little is known about the exact role of Isd11. Here, we show that human Isd11 (ISD11) is a helical protein which exists in solution as an equilibrium between monomer, dimeric and tetrameric species when in the absence of human Nfs1 (NFS1). We also show that, surprisingly, recombinant ISD11 expressed in E. coli co-purifies with the bacterial orthologue of NFS1, IscS. Binding is weak but specific suggesting that, despite the absence of Isd11 sequences in bacteria, there is enough conservation between the two desulfurases to retain a similar mode of interaction. This knowledge may inform us on the conservation of the mode of binding of Isd11 to the desulfurase. We used evolutionary evidence to suggest Isd11 residues involved in the interaction. T3 - Zweitveröffentlichungen der Universität Potsdam : Mathematisch-Naturwissenschaftliche Reihe - 551 KW - sulfur cluster formation KW - Escherichia coli KW - cysteine desulfurase KW - interacting protein KW - bacterial frataxin KW - statistical-model KW - biogenesis KW - biosynthesis KW - NFS1 KW - deficiency Y1 - 2019 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-411906 SN - 1866-8372 IS - 551 ER - TY - THES A1 - Kubis, Armin T1 - Synthetic carbon neutral photorespiration bypasses BT - implementation and testing in Escherichia coli N2 - With populations growing worldwide and climate change threatening food production there is an urgent need to find ways to ensure food security. Increasing carbon fixation rate in plants is a promising approach to boost crop yields. The carbon-fixing enzyme Rubisco catalyzes, beside the carboxylation reaction, also an oxygenation reaction that generates glycolate-2P, which needs to be recycled via a metabolic route termed photorespiration. Photorespiration dissipates energy and most importantly releases previously fixed CO2, thus significantly lowering carbon fixation rate and yield. Engineering plants to omit photorespiratory CO2 release is the goal of the FutureAgriculture consortium and this thesis is part of this collaboration. The consortium aims to establish alternative glycolate-2P recycling routes that do not release CO2. Ultimately, they are expected to increase carbon fixation rates and crop yields. Natural and novel reactions, which require enzyme engineering, were considered in the pathway design process. Here I describe the engineering of two pathways, the arabinose-5P and the erythrulose shunt. They were designed to recycle glycolate-2P via glycolaldehyde into a sugar phosphate and thereby reassimilate glycolate-2P to the Calvin cycle. I used Escherichia coli gene deletion strains to validate and characterize the activity of both synthetic shunts. The strains’ auxotrophies can be alleviated by the activity of the synthetic route, thus providing a direct way to select for pathway activity. I introduced all pathway components to these dedicated selection strains and discovered inhibitions, limitations and metabolic cross talk interfering with pathway activity. After resolving these issues, I was able to show the in vivo activity of all pathway components and combine them into functional modules.. Specifically, I demonstrate the activity of a new-to-nature module of glycolate reduction to glycolaldehyde. Also, I successfully show a new glycolaldehyde assimilation route via arabinose-5P to ribulose-5P. In addition, all necessary enzymes for glycolaldehyde assimilation via L-erythrulose were shown to be active and an L-threitol assimilation route via L-erythrulose was established in E. coli. On their own, these findings demonstrate the power of using an easily engineerable microbe to test novel pathways; combined, they will form the basis for implementing photorespiration bypasses in plants. KW - Synthetic Biology KW - Photorespiration KW - Metabolic Engineering KW - Escherichia coli Y1 - 2020 ER - TY - JOUR A1 - Zaccheus, Mona V. A1 - Bröker, Nina Kristin A1 - Lundborg, Magnus A1 - Uetrecht, Charlotte A1 - Barbirz, Stefanie A1 - Widmalm, Goran T1 - Structural studies of the O-antigen polysaccharide from Escherichia coli TD2158 having O18 serogroup specificity and aspects of its interaction with the tailspike endoglycosidase of the infecting bacteriophage HK620 JF - Carbohydrate research N2 - We have analyzed the O-antigen polysaccharide of the previously uncharacterized Escherichia coli strain TD2158 which is a host of bacteriophage HK620. This bacteriophage recognizes and cleaves the polysaccharide with its tailspike protein (TSP). The polysaccharide preparation as well as oligosaccharides obtained from HK620TSP endoglycosidase digests were analyzed with NMR spectroscopy. Additionally, sugar analysis was performed on the O-antigen polysaccharide and MALDI-TOF MS was used in oligosaccharide analysis. The present study revealed a heterogeneous polysaccharide with a hexasaccharide repeating unit of the following structure: alpha-D-Glcp-(1 -> 6) vertical bar vertical bar 2)-alpha-L-Rhap-(1 -> 6)-alpha-D-Glcp-(1 -> 4)-alpha-D-Galp-(1 -> 3)-alpha-D-GlcpNAc- (1 ->vertical bar beta-D-Glcp/beta-D-GlcpNAc-(1 -> 3) A repeating unit with a D-GlcNAc substitution of D-Gal has been described earlier as characteristic for serogroup O18A1. Accordingly, we termed repeating units with D-Glc substitution at D-Gal as O18A2. NMR analyses of the polysaccharide confirmed that O18A1- and O18A2-type repeats were present in a 1:1 ratio. However, HK620TSP preferentially bound the D-GlcNAc- substituted O18A1-type repeating units in its high affinity binding pocket with a dissociation constant of 140 mu M and disfavored the O18A2-type having a beta-D-Glcp-(1 -> 3)-linked group. As a result, in hexasaccharide preparations, O18A1 and O18A2 repeats were present in a 9: 1 ratio stressing the clear preference of O18A1- type repeats to be cleaved by HK620TSP. KW - Escherichia coli KW - Tailspike KW - Endoglycosidase KW - Lipopolysaccharide KW - NMR KW - Mass spectrometry Y1 - 2012 U6 - https://doi.org/10.1016/j.carres.2012.05.022 SN - 0008-6215 VL - 357 IS - 8 SP - 118 EP - 125 PB - Elsevier CY - Oxford ER - TY - GEN A1 - Del Campo, Cristian A1 - Bartholomäus, Alexander A1 - Fedyunin, Ivan A1 - Ignatova, Zoya T1 - Secondary Structure across the Bacterial Transcriptome Reveals Versatile Roles in mRNA Regulation and Function T2 - Postprints der Universität Potsdam : Mathematisch Naturwissenschaftliche Reihe N2 - Messenger RNA acts as an informational molecule between DNA and translating ribosomes. Emerging evidence places mRNA in central cellular processes beyond its major function as informational entity. Although individual examples show that specific structural features of mRNA regulate translation and transcript stability, their role and function throughout the bacterial transcriptome remains unknown. Combining three sequencing approaches to provide a high resolution view of global mRNA secondary structure, translation efficiency and mRNA abundance, we unraveled structural features in E. coli mRNA with implications in translation and mRNA degradation. A poorly structured site upstream of the coding sequence serves as an additional unspecific binding site of the ribosomes and the degree of its secondary structure propensity negatively correlates with gene expression. Secondary structures within coding sequences are highly dynamic and influence translation only within a very small subset of positions. A secondary structure upstream of the stop codon is enriched in genes terminated by UAA codon with likely implications in translation termination. The global analysis further substantiates a common recognition signature of RNase E to initiate endonucleolytic cleavage. This work determines for the first time the E. coli RNA structurome, highlighting the contribution of mRNA secondary structure as a direct effector of a variety of processes, including translation and mRNA degradation. T3 - Zweitveröffentlichungen der Universität Potsdam : Mathematisch-Naturwissenschaftliche Reihe - 520 KW - Escherichia coli KW - in vivo KW - translation initiation KW - crystal-structure KW - single ribosomes KW - gene-expression KW - global analysis KW - codon usage KW - E-cleavage KW - genome Y1 - 2019 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-409662 SN - 1866-8372 IS - 520 ER - TY - THES A1 - Rothe, Monique T1 - Response of intestinal Escherichia coli to dietary factors in the mouse intestine T1 - Anpassung von Escherichia coli an Ernährungsfaktoren im Intestinaltrakt der Maus N2 - Diet is a major force influencing the intestinal microbiota. This is obvious from drastic changes in microbiota composition after a dietary alteration. Due to the complexity of the commensal microbiota and the high inter-individual variability, little is known about the bacterial response at the cellular level. The objective of this work was to identify mechanisms that enable gut bacteria to adapt to dietary factors. For this purpose, germ-free mice monoassociated with the commensal Escherichia coli K-12 strain MG1655 were fed three different diets over three weeks: a diet rich in starch, a diet rich in non-digestible lactose and a diet rich in casein. Two dimensional gel electrophoresis and electrospray tandem mass spectrometry were applied to identify differentially expressed proteins of E. coli recovered from small intestine and caecum of mice fed the lactose or casein diets in comparison with those of mice fed the starch diet. Selected differentially expressed bacterial proteins were characterised in vitro for their possible roles in bacterial adaptation to the various diets. Proteins belonging to the oxidative stress regulon oxyR such as alkyl hydroperoxide reductase subunit F (AhpF), DNA protection during starvation protein (Dps) and ferric uptake regulatory protein (Fur), which are required for E. coli’s oxidative stress response, were upregulated in E. coli of mice fed the lactose-rich diet. Reporter gene analysis revealed that not only oxidative stress but also carbohydrate-induced osmotic stress led to the OxyR-dependent expression of ahpCF and dps. Moreover, the growth of E. coli mutants lacking the ahpCF or oxyR genes was impaired in the presence of non-digestible sucrose. This indicates that some OxyR-dependent proteins are crucial for the adaptation of E. coli to osmotic stress conditions. In addition, the function of two so far poorly characterised E. coli proteins was analysed: 2 deoxy-D gluconate 3 dehydrogenase (KduD) was upregulated in intestinal E. coli of mice fed the lactose-rich diet and this enzyme and 5 keto 4 deoxyuronate isomerase (KduI) were downregulated on the casein-rich diet. Reporter gene analysis identified galacturonate and glucuronate as inducers of the kduD and kduI gene expression. Moreover, KduI was shown to facilitate the breakdown of these hexuronates, which are normally degraded by uronate isomerase (UxaC), altronate oxidoreductase (UxaB), altronate dehydratase (UxaA), mannonate oxidoreductase (UxuB) and mannonate dehydratase (UxuA), whose expression was repressed by osmotic stress. The growth of kduID-deficient E. coli on galacturonate or glucuronate was impaired in the presence of osmotic stress, suggesting KduI and KduD to compensate for the function of the regular hexuronate degrading enzymes under such conditions. This indicates a novel function of KduI and KduD in E. coli’s hexuronate metabolism. Promotion of the intracellular formation of hexuronates by lactose connects these in vitro observations with the induction of KduD on the lactose-rich diet. Taken together, this study demonstrates the crucial influence of osmotic stress on the gene expression of E. coli enzymes involved in stress response and metabolic processes. Therefore, the adaptation to diet-induced osmotic stress is a possible key factor for bacterial colonisation of the intestinal environment. N2 - Sowohl Humanstudien als auch Untersuchungen an Tiermodellen haben gezeigt, dass die Ernährung einen entscheidenden Einfluss auf die Zusammensetzung der Darmmikrobiota hat. Aufgrund der Komplexität der Mikrobiota und der inter individuellen Unterschiede sind die zellulären Mechanismen, die dieser Beobachtung zugrunde liegen, jedoch weitgehend unbekannt. Das Ziel dieser Arbeit war deshalb, Anpassungsmechanismen von kommensalen Darmbakterien auf unterschiedliche Ernährungsfaktoren mittels eines simplifizierten Modells zu untersuchen. Dazu wurden keimfreie Mäuse mit Escherichia coli MG1655 besiedelt und drei Wochen mit einer stärkehaltigen, einer laktosehaltigen oder einer kaseinhaltigen Diät gefüttert. Mittels zwei dimensionaler Gelelektrophorese und Elektrospray Ionenfallen-Massenspektrometrie wurde das Proteom der intestinalen E. coli analysiert und differentiell exprimierte bakterielle Proteine in Abhängigkeit der gefütterten Diät identifiziert. Die Funktion einiger ausgewählter Proteine bei der Anpassung von E. coli auf die jeweilige Diät wurde im Folgenden in vitro untersucht. E. coli Proteine wie z.B. die Alkylhydroperoxid Reduktase Untereinheit F (AhpF), das DNA Bindeprotein Dps und der eisenabhängige Regulator Fur, deren Expression unter der Kontrolle des Transkriptionsregulators OxyR steht, wurden stärker exprimiert, wenn die Mäuse mit der laktosehaltigen Diät gefüttert wurden. Reportergenanalysen zeigten, dass nicht nur oxidativer Stress, sondern auch durch Kohlenhydrate ausgelöster osmotischer Stress zu einer OxyR abhängigen Expression der Gene ahpCF and dps führte. Weiterhin wiesen E. coli Mutanten mit einer Deletion der ahpCF oder oxyR Gene ein vermindertes Wachstum in Gegenwart von nicht fermentierbarer Saccharose auf. Das spricht dafür, dass OxyR abhängige Proteine eine wichtige Rolle bei der Anpassung von E. coli an osmotischen Stress spielen. Weiterhin wurde die Funktion von zwei bisher wenig charakterisierten E. coli Proteinen untersucht: die 2 Deoxy D Glukonate 3 Dehydrogenase (KduD) wurde im Darm von Mäusen, die mit der laktosehaltigen Diät gefüttert wurden, induziert, während dieses Protein und die 5 Keto 4 Deoxyuronate Isomerase (KduI) nach Fütterung der kaseinhaltigen Diät herunterreguliert wurden. Mittels Reportergenanalysen wurde gezeigt, dass Galakturonat und Glukuronat die kduD und kduI Expression induzierten. KduI begünstigte die Umsetzung dieser Hexuronate. In E. coli wird die Umsetzung von Galakturonat und Glukuronat typischerweise von den Enzymen Uronate Isomerase (UxaC), Altronate Oxidoreduktase (UxaB), Altronate Dehydratase (UxaA), Mannonate Oxidoreduktase (UxuB) und Mannonate Dehydratase (UxuA) katalysiert. Weitere Experimente verdeutlichten, dass osmotischer Stress die Expression der Gene uxaCA, uxaB und uxuAB verminderte. Darüber hinaus zeigten kduID defiziente E. coli Mutanten in Gegenwart von Galakturonat oder Glukuronat und durch Saccharose ausgelösten osmotischen Stress eine Verlangsamung des Wachstums. Das deutet darauf hin, dass KduI und KduD die durch osmotischen Stress bedingten Funktionseinschränkungen der regulären hexuronatabbauenden Enzyme kompensieren. Die beobachtete Bildung von intrazellulären Hexuronaten während des Laktosekatabolismus in vitro stellt eine Verbindung zu dem ursprünglichen Tierexperiment her und deutet darauf hin, dass der Ernährungsfaktor Laktose die Verfügbarkeit von Hexuronat für intestinale E. coli beeinflusst. Diese Studie weist somit den Einfluss von osmotischem Stress auf die Expression von OxyR abhängigen Genen, die für Stressantwortproteine sowie für metabolische Enzymen kodieren, in E. coli nach. Durch Nahrungsfaktoren entstandener osmotischer Stress stellt demnach einen entscheidenden Faktor für die bakterielle Kolonisation des Darmes dar. KW - Mikrobiota KW - Escherichia coli KW - Proteom KW - Ernährungsfaktoren KW - OxyR KW - microbiota KW - Escherichia coli KW - proteome KW - dietary factors KW - OxyR Y1 - 2013 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus-66387 ER - TY - GEN A1 - Hess, Anne-Katrin A1 - Saffert, Paul A1 - Liebeton, Klaus A1 - Ignatova, Zoya T1 - Optimization of translation profiles enhances protein expression and solubility T2 - Postprints der Universität Potsdam : Mathematisch-Naturwissenschaftliche Reihe N2 - mRNA is translated with a non-uniform speed that actively coordinates co-translational folding of protein domains. Using structure-based homology we identified the structural domains in epoxide hydrolases (EHs) and introduced slow-translating codons to delineate the translation of single domains. These changes in translation speed dramatically improved the solubility of two EHs of metagenomic origin in Escherichia coli. Conversely, the importance of transient attenuation for the folding, and consequently solubility, of EH was evidenced with a member of the EH family from Agrobacterium radiobacter, which partitions in the soluble fraction when expressed in E. coli. Synonymous substitutions of codons shaping the slow-transiting regions to fast-translating codons render this protein insoluble. Furthermore, we show that low protein yield can be enhanced by decreasing the free folding energy of the initial 5'-coding region, which can disrupt mRNA secondary structure and enhance ribosomal loading. This study provides direct experimental evidence that mRNA is not a mere messenger for translation of codons into amino acids but bears an additional layer of information for folding, solubility and expression level of the encoded protein. Furthermore, it provides a general frame on how to modulate and fine-tune gene expression of a target protein. T3 - Zweitveröffentlichungen der Universität Potsdam : Mathematisch-Naturwissenschaftliche Reihe - 518 KW - transfer-RNA genes KW - codon usage KW - Escherichia coli KW - Epoxide hydrolases KW - messenger-RNA KW - sequence KW - elongation KW - Ribosome KW - mechanism KW - Membrane Y1 - 2019 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-409574 SN - 1866-8372 IS - 518 ER - TY - JOUR A1 - Grunzel, Petra A1 - Pilarek, Maciej A1 - Steinbrueck, Doerte A1 - Neubauer, Antje A1 - Brand, Eva A1 - Kumke, Michael Uwe A1 - Neubauer, Peter A1 - Krause, Mirja T1 - Mini-scale cultivation method enables expeditious plasmid production in Escherichia coli JF - Biotechnology journal : systems & synthetic biology, nanobiotech, medicine N2 - The standard procedure in the lab for plasmid isolation usually involves a 2-mL, 16 h over-night cultivation in 15-mL bioreaction tubes in LB medium. This is time consuming, and not suitable for high-throughput applications. This study shows that it is possible to produce plasmid DNA (pDNA) in a 1.5-mL microcentrifuge tube with only 100 L cultivation volume in less than 7 h with a simple protocol. Compared with the standard LB cultivation for pDNA production reaching a final pDNA concentration range of 1.5-4 mu g mL(-1), a 6- to 10-fold increase in plasmid concentration (from 10 up to 25 mu g mL(-1) cultivation volume) is achieved using an optimized medium with an internal substrate delivery system (EnBase (R)). Different strains, plasmids, and the applicability of different inoculation tools (i.e. different starting ODs) were compared, demonstrating the robustness of the system. Additionally, dissolved oxygen was monitored in real time online, indicating that under optimized conditions oxygen limitation can be avoided. We developed a simple protocol with a significantly decreased procedure time, enabling simultaneous handling of more samples, while a consistent quality and a higher final pDNA concentration are ensured. KW - Escherichia coli KW - High-cell-density culture KW - Miniaturized cultivations KW - Optical oxygen sensor KW - Plasmid DNA production Y1 - 2014 U6 - https://doi.org/10.1002/biot.201300177 SN - 1860-6768 SN - 1860-7314 VL - 9 IS - 1 SP - 128 EP - 136 PB - Wiley-VCH CY - Weinheim ER - TY - JOUR A1 - Zupok, Arkadiusz A1 - Górka, Michał Jakub A1 - Siemiatkowska, Beata A1 - Skirycz, Aleksandra A1 - Leimkühler, Silke T1 - Iron-Dependent Regulation of Molybdenum Cofactor Biosynthesis Genes in Escherichia coli JF - Journal of bacteriology N2 - Molybdenum cofactor (Moco) biosynthesis is a complex process that involves the coordinated function of several proteins. In recent years it has become obvious that the availability of iron plays an important role in the biosynthesis of Moco. First, the MoaA protein binds two (4Fe-4S] clusters per monomer. Second, the expression of the moaABCDE and moeAB operons is regulated by FNR, which senses the availability of oxygen via a functional NFe-4S) cluster. Finally, the conversion of cyclic pyranopterin monophosphate to molybdopterin requires the availability of the L-cysteine desulfurase IscS, which is a shared protein with a main role in the assembly of Fe-S clusters. In this report, we investigated the transcriptional regulation of the moaABCDE operon by focusing on its dependence on cellular iron availability. While the abundance of selected molybdoenzymes is largely decreased under iron-limiting conditions, our data show that the regulation of the moaABCDE operon at the level of transcription is only marginally influenced by the availability of iron. Nevertheless, intracellular levels of Moco were decreased under iron-limiting conditions, likely based on an inactive MoaA protein in addition to lower levels of the L-cysteine desulfurase IscS, which simultaneously reduces the sulfur availability for Moco production. IMPORTANCE FNR is a very important transcriptional factor that represents the master switch for the expression of target genes in response to anaerobiosis. Among the FNR-regulated operons in Escherichia coli is the moaABCDE operon, involved in Moco biosynthesis. Molybdoenzymes have essential roles in eukaryotic and prokaryotic organisms. In bacteria, molybdoenzymes are crucial for anaerobic respiration using alternative electron acceptors. This work investigates the connection of iron availability to the biosynthesis of Moco and the production of active molybdoenzymes. KW - Escherichia coli KW - FNR KW - iron regulation KW - iron-sulfur cluster KW - anaerobic respiration KW - molybdenum cofactor Y1 - 2019 U6 - https://doi.org/10.1128/JB.00382-19 SN - 0021-9193 SN - 1098-5530 VL - 201 IS - 17 PB - American Society for Microbiology CY - Washington ER - TY - THES A1 - Steinhauser, Dirk T1 - Inferring hypotheses from complex profile data - by means of CSB.DB, a comprehensive systems-biology database T1 - Generierung von Hypothesen aus komplexen Profildaten mittels CSB.DB, a comprehensive systems-biology database N2 - The past decades are characterized by various efforts to provide complete sequence information of genomes regarding various organisms. The availability of full genome data triggered the development of multiplex high-throughput assays allowing simultaneous measurement of transcripts, proteins and metabolites. With genome information and profiling technologies now in hand a highly parallel experimental biology is offering opportunities to explore and discover novel principles governing biological systems. Understanding biological complexity through modelling cellular systems represents the driving force which today allows shifting from a component-centric focus to integrative and systems level investigations. The emerging field of systems biology integrates discovery and hypothesis-driven science to provide comprehensive knowledge via computational models of biological systems. Within the context of evolving systems biology, investigations were made in large-scale computational analyses on transcript co-response data through selected prokaryotic and plant model organisms. CSB.DB - a comprehensive systems-biology database - (http://csbdb.mpimp-golm.mpg.de/) was initiated to provide public and open access to the results of biostatistical analyses in conjunction with additional biological knowledge. The database tool CSB.DB enables potential users to infer hypothesis about functional interrelation of genes of interest and may serve as future basis for more sophisticated means of elucidating gene function. The co-response concept and the CSB.DB database tool were successfully applied to predict operons in Escherichia coli by using the chromosomal distance and transcriptional co-responses. Moreover, examples were shown which indicate that transcriptional co-response analysis allows identification of differential promoter activities under different experimental conditions. The co-response concept was successfully transferred to complex organisms with the focus on the eukaryotic plant model organism Arabidopsis thaliana. The investigations made enabled the discovery of novel genes regarding particular physiological processes and beyond, allowed annotation of gene functions which cannot be accessed by sequence homology. GMD - the Golm Metabolome Database - was initiated and implemented in CSB.DB to integrated metabolite information and metabolite profiles. This novel module will allow addressing complex biological questions towards transcriptional interrelation and extent the recent systems level quest towards phenotyping. N2 - Die vergangenen Jahrzehnte waren gekennzeichnet durch umfangreiche Bemühungen, die Genomsequenz verschiedener Organismen vollständig zu entschlüsseln. Die Verfügbarkeit vollständiger genomischer Daten löste die Entwicklung von modernen Hochdurchsatzmethoden aus, welche die gleichzeitige Messung von verschiedenen Transkripten, Proteinen und Metaboliten erlauben. Mittels genomischer Informationen und Hochdurchsatztechnologien erlaubt eine hoch parallelisierte experimentelle Biologie die Erforschung von Gesetzmäßigkeiten, welchen biologischen Systemen zugrunde liegen. Das Verständnis biologischer Komplexität durch Modellierung zellulärer Systeme repräsentiert die treibende Kraft, welche heutzutage den Element-zentrierten Focus auf integrative und ganzheitliche Untersuchungen lenkt. Das sich entwickelnde Feld der Systembiologie integriert Entdeckungs- und Hypothesen-getriebene Wissenschaft um ein umfangreiches Wissen durch Computermodelle biologischer Systeme bereitzustellen. Im Kontext der sich neu entwickelnden Systembiologie investierte ich in umfangreiche Computeranalysen zur Transkript Co-Response bezüglich ausgewählter prokaryotischer und pflanzlicher eukaryotischer Organismen. CSB.DB - a comprehensive systems-biology database - (http://csbdb.mpimp-golm.mpg.de/) wurde initiiert, um freien Zugang zu den biostatistischen Ergebnissen als auch zu weiterem biologischem Wissen zu bieten. Die Datenbank CSB.DB ermöglicht potentiellen Anwendern die Hypothesengenerierung bezüglich der funktionalen Wechselbeziehungen von Genen von Interesse und kann zukünftig die Grundlage für einen fortgeschrittenen Weg der Zuordnung von Genfunktionen darstellen. Unter Verwendung chromosomaler Distanzen und Transkript Co-Response konnte das Konzept und CSB.DB angewandt werden, um bakterielle Operons in Escherichia coli erfolgreich vorherzusagen. Darüber hinaus werden Beispiele gezeigt, die andeuten, dass die Transkript Co-Response Analyse eine Identifizierung differentieller Promoteraktivität in verschiedenen experimentellen Bedingungen ermöglicht. Das Co-Response Konzept wurde, mit dem Schwerpunkt auf die eukaryotische Modellpflanze Arabidopsis thaliana, erfolgreich auf komplexere Organismen angewandt. Die durchgeführten Untersuchungen ermöglichten die Identifizierung neuer Gene hinsichtlich physiologischer Prozesse und darüber hinaus die Zuweisung von Genfunktionen, welche nicht durch Sequenzhomologie ermöglicht werden kann. GMD - The Golm Metabolome Database - wurde initiiert und in CSB.DB implementiert, um Metaboliten Informationen als auch Metaboliten Profile zu integrieren. Dieses neue Modul ermöglicht die Ausrichtung auf komplexere biologische Fragen und erweitert die derzeitige systembiologische Fragestellung in Richtung Phänotypus-Zuordnung. T2 - Inferring hypotheses from complex profile data - by means of CSB.DB, a comprehensive systems-biology database KW - Datenbank KW - Korrelation KW - Korrelationsanalyse KW - Escherichia coli KW - Saccharomyces cerevisiae KW - Ackerschmalwand KW - Operon KW - Brassinosteroide KW - Transkript KW - database KW - correlation KW - co-response KW - metabolite KW - transcript Y1 - 2004 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus-2467 ER -