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Currently, plastic materials are an integral part of our lives, but their production mostly bases on fossil fuels or derivatives, which resources are decreasing. Extraction and processing of non-renewable resources have also negative impact on environment. One of the most promising and environmentally friendly approaches is use of microorganism. This PhD dissertation presents the non-conventional yeast Arxula adeninivorans as a host for production of bio-based and biodegradable poly(hydroxyalkanoates) plastics poly(hydroxybutyrate) and co-polymer poly(hydroxybutyrate-co-hydroxyvalerate). Additionally, the constructed yeast strain was able to secrete enantiomerically pure (R)-3-hydroxybutyric acid.
The production of PHAs requires three enzymes: β-ketothiolase, acetoacetyl-CoA reductase and PHA synthase. The strategy followed in this project was divided into two parts. While all three enzymes are responsible for intracellular production of PHA polymer, first two only lead to secretion of (R)-3-HB into culture media, which was used in a first stage of work to establish and optimize polymer production. Both, different bacterial strains and yeast A. adeninivorans were taken into account in screening of the genes encoding aforementioned enzymes. Bacterial genes were chemically synthesized using codon optimization pattern and endogenous genes were obtained using PCR and genomic DNA template from A. adeninivorans LS3 wild-type strain. Each gene was cloned into Xplor2 vector between TEF1 constitutive promoter and PHO5 terminator. Vector containing both thiolase and reductase genes was used for A. adeninivorans transformation.
The best combination of heterologous genes was overexpression of β-ketothiolase gene from Clostridium acetobutylicum and acetoacetyl-CoA reductase gene from Cupriavidus necator which led to secretion of 4.84 g L−1 (R)-3-HB, at a rate of 0.023 g L−1 h−1 over 214 h in shaking flask cultivation. Further optimization by fed-batch culturing with glucose as a carbon source did not improve (R)-3-HB secretion, but the rate of production was doubled to 0.043 g L−1 h−1 [3.78 g L−1 of (R)-3-HB at 89 h].
The product of acetoacetyl-CoA reductase is (R)-3-HB-CoA and further removing of CoA moiety is needed for acid secretion into culture media. A. adeninivorans is able to conduct this process without any additional modification but the conversion rate is unknown. Two thioesterases, cytosolic TesBp encoded by TesB gene from E. coli and mitochondrial ATes1p encoded by ATES1 gene from A. adeninivorans, were analysed to enhance secretion process. Additionally, a cytosolic version of ATES1 gene (ATES1cyt) was tested. All three genes were expressed in A. adeninivorans cells under TEF1 constitutive promoter together with thiolase and reductase genes. Despite detected enzymatic activity the yield of (R)-3-HB synthesis and secretion was not increased. Moreover, overexpressed thioesterases negatively influenced cell growth, indicating that they act on other metabolic components. The results provided two sets of information, first, the endogenous secretion system is sufficient for (R)-3-HB production; second, further screening of suitable genes needs to be performed.
Based on optimization of (R)-3-HB synthesis, thiolase gene (thl) from C. acetobutylicum and reductase gene (phaB) from C. necator were chosen to combine with PHA synthase gene (phaC) for creating the PHB-V producing strain. The PHA synthase expression module, containing TEF1 promoter and PHO5 terminator, was cloned into Xplor2 vector together with thiolase and reductase expression modules and used for A. adeninivorans transformation. The engineered strain accumulated up to 7.47% PHB of dcw. During the set of cells passaging A. adeninivorans lost the ability to accumulate polymer with maximal 23.1 % of primary accumulation level. Additionally, use of a vector including hygromycin B antibiotic resistance marker (instead of auxotrophic marker in Xplor2) did not improve polymer accumulation and stability.
To counteract the effect of loss of accumulation stability, phasin gene (phaP1), originated from C. necator, was introduce together with PHA pathway genes. First screening cultivations resulted in stabilizing of polymer production reaching 9.58 % PHB of dcw and only 12.0 % loss of production ability. Further experiments increased PHB content with 19.9% PHB of dcw (3.85 g L-1) after 180 h of cultivation using rich medium. Use of another thiolase gene, the second thiolase from C. necator (bktB), which theoretically should induce production of PHBV copolymer, led to accumulation only 11.4% PHB of dcw after 139 h and no PHV fraction was detected.
Variation of the ratio between flask volume and amount of media influences the level of aeration. Importantly, decrease of aeration level significantly increased polymer synthesis. Additionally, PHB-V copolymer accumulation has been induced by use of different carbon source co-substrates. Use of rich media supplemented with ethanol allow the strain with thl thiolase to accumulate up to 42.9 % PHB of dcw without PHV fraction and with bktB thiolase to 30.5 % PHB of dcw. Nevertheless, despite of lower total amount of polymer, supplementation with 1-propanol allow both strains to accumulate PHB-V copolymer with 7.30 %mol and 22.5 %mol of PHV for thl and bktB strains, respectively.
Optimization based on genetic engineering further enhanced polymer production yield led to exceeding of 50 % PHB-V of dcw. For doubling the gene dosage, PHA synthesizing strains of A. adeninivorans were again transformed with Xplor2 vector containing PHA pathway genes. Resulting strains exhibited twice the level of enzymatic activities of thiolase and reductase compared with strains transformed once with expression vector. In a shaking flask experiment the strain transformed twice with vector containing bktB thiolase reached after 240 h 52.1% PHB-V of dcw (10.8 g L-1) with 12.3 %mol of PHV fraction which is the highest level found in yeast. As another genetic approach, a fusion strain has been created. Two different strains have been established and merged using protoplast fusion technique. Doubling of genetic material resulted in similar level of copolymer produced by Arxula as in former experiments (50.2% of dcw, 10.7 g L-1).
Culture conditions were optimized in controllable cultivation using fed-batch mode. Although optimal oxygen and pH level and continuous carbon source and nitrogen feeding were maintained, final polymer level in % of dry mass was around three times lower than for shaking flask experiment. Nevertheless, efficient growth of Arxula in fed-batch mode led to increase of total copolymer level in g L-1 (16.5 g L-1 compare to 10.8 g L-1 for shaking flasks) showing the feasibility of using Arxula strain for up-scaling production of copolymer.
Acetyl-CoA is a main precursor in synthesis of PHB-V copolymer and change of its pool was investigated. ATP citrate lyase is a cytosolic enzyme converting citrate into oxaloacetate and acetyl-CoA, supporting the biosynthesis of fatty acids. Two genes encoding Acl subunits from Aspergillus nidulans (AnAcl1 and AnAcl2) were again cloned into Xplor2 vector and transformed into A. adeninivorans PHA producing strain. Despite of higher enzymatic activity of AnAclp, accumulation of polymer was around three times higher for control without expression of lyase genes. Expectedly, the strain expressing AnAcl1/2 genes accumulated larger amount of each stearic, palmitic and oleic acid in both standard and fatty acid inducing conditions (lower nitrogen level). Thus, overexpression of AnAcl1/2 genes in A. adeninevorans cells may improve biosynthesis of fatty acids but is ineffective for PHB polymer accumulation.
The aim of the project was use of starch-based media, manufactured as by-products, for polymer production. Genetically engineered Arxula strains were cultivated using these media instead of glucose-based media. Although yeast cells were both able to secrete (R)-3-HB and to accumulate PHB, the yield was lower than for previous media. Additionally, only trace of PHV was found at the end of cultivation time when 1-propanol was supplemented. Obtained results showed that use of cheaper media is a promising approach to decrease production costs but further optimization needs to be performed especially for extended scale of production.
Determination of produced copolymer has been done based on microscopic analysis and studies of physical and chemical properties. Results revealed that Arxula accumulated PHA polymer in cytosolic granules with a similar size range compared to the ones produced by bacteria. The physicochemical study showed that produced polymer exhibited slightly different properties in comparison to bacterial polymer with similar content of PHV, i.e. very-low molecular mass, higher melting and glass transition temperature.
All above results showed that A. adeninivorans is a promising host for PHB-V production. Expression of phasin greatly increased production and stability of polymer, which led to an accumulation level never found before in yeast. Further optimization in higher production scale using cheap starch-based media may establish Arxula strain as a valuable tool for industrial production of PHB-V copolymer.
Polysaccharide is a major constituent of the total organic carbon that is generated by photosynthetic eukaryotes. In the marine realm, where approximately half of annual global carbon fixation occurs, algae can produce large amounts of polysaccharide during bloom events. Phytoplankton blooms are frequently seasonal phenomena, and spring blooms in particular have been a focus of study as they are predictable in space and time. This makes them much more amenable model systems in which to explore the processes that occur as organic carbon is recycled.
It is assumed that the bulk of the polysaccharides algae produce serve one of two primary functions - namely acting as an energy storage molecule, or they serve as structural polymers in the cell walls. Other polysaccharides may also have protective functions as exudates. Regardless of function in algae, the polysaccharides are a valuable energy source for heterotrophic bacteria. The combination of abundance and predictable or semi-predictable structure of the polysaccharides has led to proliferation of variations on a particular sequestration and degradation strategy among the Bacteroidetes and Gammaproteobacteria that is frequently characterised as being ‘selfish’. The strategy is based on uptake of poly- and especially oligosaccharides into the periplasm via the use of TonB-dependent transporters. Once in the periplasmic space, oligomers can be further degraded to monomers that can then be transported into the cytosol. This mechanism is beneficial to the cell as it needn’t then lose the nutritive benefit of the polysaccharide to other cells, which may or may not have manufactured their own degradative carbohydrate active enzymes (CAZymes).
The research articles that make up this thesis are thus based around attempts to find and elucidate the polysaccharide preferences of heterotrophic bacteria that become abundant following phytoplankton blooms.The first article is a study into the abundance of TonB-dependent transporter proteins in metaproteomes and metagenomes across a single spring phytoplankton bloom at the long term research station at Helgoland. This investigation identifies transporters for laminarin and alpha-glucans, the two most abundant glucose-based storage polysaccharides, are the most abundant predicted polysaccharide transporting TonB-dependent transporters during the bloom. However, as the bloom progressed, and particularly following a doubling of bacterial cell numbers, the proportion of predicted polysaccharide transporters dedicated to laminarin and alpha-glucan transport declined relative to transporters for less readily degraded mannose-, xylose-, and fucose-containing polysaccharides. The inference is that this change is an active response to the availability of the different polysaccharides, or their relative attractiveness as growth substrates during the period.
The second article is an in-depth look at one of the most abundant Bacteroidetes clades, which was previously unnamed, and has not to date been cultivated. The most abundant species in this clade grows rapidly and often peaks earlier than other heterotrophic clades. It was found to be limited in predicted polysaccharide consumption capability, having only PULs for predicted laminarin degradation. It is also detectable in many locations at higher latitudes where phytoplankton blooms are expected to occur, indicating this is a globally successful consumer of algal organic matter, and may have an outsize significance for global laminarin degradation given its high abundance.
The third article is a more holistic study of phytoplankton bloom associated Gammaproteobacteria, which have otherwise been rather ignored compared to the Bacteroidetes. Gammaproteobacteria overlap with Bacteroidetes to some extent in being clear consumers of laminarin, but fewer of them are clearly capable of consuming the more complex cell-wall derived polysaccharides. Some may, however, be producers of alginate, an otherwise mysteriously popular polysaccharide with Bacteroidetes, given that it is not known to be produced by bloom forming microalgae.
The fourth article then goes into detail on the PUL content of Bacteroidetes, based on metagenomic data. It finds five substrates, alpha- and beta-glucans, xylose and mannose rich polysaccharides, and alginate, are the most frequent predicted polysaccharide substrates for Bacteroidetes PULs among populations responding to the Helgoland spring blooms.
This thesis thus summarises multiple metagenomic and metaproteomic investigations into the polysaccharide consumption capabilities of marine heterotrophic bacteria. These bacteria have a profound impact on the overall carbon cycle in coastal regions, and are critical for understanding how changes in atmospheric carbon concentrations impact carbon turnover and storage in the world's oceans.
Microbial infections can be either caused by a single species or complex multi-species consortia. One of the most prominent opportunistic human pathogens leading to mono- or mixed-species infections is the Gram-negative bacterium Pseudomonas aeruginosa. Understanding the molecular basis of its adaptation to infection-related stresses is an essential prerequisite for the prevention and treatment of P. aeruginosa infections. We therefore employed state-of-the-art proteomics approaches to elucidate the molecular adaptation mechanisms of P. aeruginosa to infection-related conditions. Moreover, structure, function and interaction of complex microbial consortia containing P. aeruginosa and causing catheter-associated urinary tract infections were investigated by metaproteomics analyses. Our investigations revealed that the adaptation of P. aeruginosa during infection is either based on gene expression changes caused by environmental signal integration or by gene mutations leading to a selective advantage in a particular host environment. In study I, investigating the proteome response of P. aeruginosa biofilms to the clinical relevant antibiotic ciprofloxacin, global changes in the protein profile were observed. Ciprofloxacin induced the expression of proteins involved in the Lex-induced SOS-response, drug efflux pumps and gene products of the ciprofloxacin-responsive prophage cluster and repressed the expression of porins and DNA-binding proteins. In study II the transcriptome and proteome of two clonal P. aeruginosa lineages during long-term colonization of cystic fibrosis (CF) patient’s lungs were analyzed. Point mutations in global regulator genes, i.e. retS, gacS, and gacA, were identified by genomic sequencing. Inactivation of RetS, found two years after the initial colonization, induced the expression of genes involved in chronic infections and coding for the type 6-secretion system (T6SS). Additional mutations in the GacS/GacA two-component regulatory system (TCS) were found to repress the expression of T6SS proteins and to induce the expression of proteins belonging to the type 3-secretion system (T3SS). In study III we elucidated the niche-specific adaptation of P. aeruginosa isolates from different infection sites by investigating their protein expression patterns and glucose metabolic fluxes. We could show that isolates from the urinary tract express a higher amount of proteins involved in the acquisition of micronutrients (i.e. iron) and carbohydrates compared to isolates from the CF lung. In study IV 16S rDNA sequencing and metaproteomics were employed to demonstrate that the investigated CAUTI-related biofilms consisted of two to five different species with one or two species dominating the mixed community. Following this line of research, we investigated in study V structure and function of a biofilm of a long-term catheterized patient, which was predominantly composed of P. aeruginosa and Morganella morganii, but also contained a minor proportion of the obligate anaerobe Bacteroides sp.. The comparison of in vivo and in vitro protein expression profiles of P. aeruginosa and M. morganii indicated that iron and carbohydrates are the major growth-limiting factors in the bladder. These results indicate different nutritional strategies of the two pathogens in the bladder environment. A comparison of urinary protein profiles of healthy persons and catheterized patients suggested that the human innate immune system is induced by CAUTIs. Moreover, numerous proteins involved in nutritional immunity, e.g. iron-, calcium- and magnesium-binding proteins, were found to be more abundant in the urine of catheterized patients. A follow-up (meta)proteomics study (study VI) aiming at the elucidation of interspecies interactions during multi-species infections indicated that the urease-positive uropathogen Proteus mirabilis induces the precipitation of metal ions by urine alkalization and thereby limits the availability of these important micronutrients for other co-infecting bacteria. This limitation seems to be sensed by the P. aeruginosa PhoP-PhoQ two-component system (TCS) leading to an increased resistance to antimicrobial peptides and biofilm-forming capacity of the pathogen. Also during co-cultivation of P. aeruginosa with Staphylococcus aureus a slight increase in the expression of the PhoP-PhoQ TCS and the alkaline protease could be observed (study VII). In study VIII a combined metagenomics and metaproteomics approach was employed to investigate structure and function of the lichen Lobaria pulmonaria, a complex consortium consisting of a fungus, an algal partner, cyanobacteria, and a highly diverse bacterial microbiome. The results presented in this work contribute to a better understanding of the manifold and complex bacterial adaptation mechanisms to infection-related and environmental stress and thereby foster the development of novel treatment and prevention strategies.
Das Ziel dieser Arbeit war die Entwicklung und Etablierung von Methoden zur absoluten und relativen Proteinquantifizierung. In darauf aufbauenden Studien sollten diese Methoden für die Untersuchung physiologisch relevanter Fragestellungen in Bakterien genutzt werden. Zum tieferen Verständnis der Bakterienphysiologie ist es unabdingbar, Mengenänderungen von Proteinen hochaufgelöst darstellen zu können. Relative Proteinquantifizierung erlaubt dabei die Untersuchung von Änderungen der Menge eines Proteins zwischen verschiedenen Proben eines Experiments. Im Rahmen der hier vorgelegten Arbeit wurden 2D PAGE und gelfreie massenspektrometrische Methoden in einer Studie (Tefon et al. 2011, Artikel I) angewendet, um Oberflächen- und Immunoproteine zweier Vakzinationsstämme des humanpathogenen Bakteriums Bordetella pertussis zu charakterisieren. Die relative Proteinquantifizierung erlaubt zwar Rückschlüsse auf die Mengenänderung eines Proteins zwischen verschiedenen Bedingungen, ermöglicht aber nur bedingt Aussagen über die absolute Menge der Proteine. Gerade absolute Proteinmengen und damit Proteinkonzentrationen sind jedoch Grundvoraussetzung für ein zielorientiertes Verwenden der gewonnenen Daten nicht nur im Kontext der Systembiologie. Im Rahmen dieser Arbeit wurde eine Methode entwickelt, in der durch Kombination zweier etablierter Proteomik-Methoden die absolute Quantifizierung für einen großen Teil der cytosolischen Proteine eines Organismus ermöglicht wird. In dieser Methode werden ausgewählte Proteine, deren genaue Konzentration durch gerichtete Massenspektrometrie bestimmt wurde, für die Kalibration von hoch auflösenden 2D Gelen genutzt (Maass et al. 2011, Artikel II). Um das Potential dieses Verfahrens zu verdeutlichen, wurde es für die Analyse der Anpassung von Bacillus subtilis und Staphylococcus aureus an Glukosehunger angewendet. Dabei konnten für 467 Proteine von B. subtilis in drei Zeitpunkten Proteinkonzentrationen bestimmt werden. Für die Etablierung der Methoden waren verschiedene Vorarbeiten nötig: I) Selektion geeigneter Kalibrationsproteine, II) Selektion geeigneter Standardpeptide und Optimierung der massenspektrometrischen Parameter zu deren absoluten Quantifizierung, III) Selektion eines geeigneten, proteinunspezifischen und hoch sensitiven Gelfarbstoffes, IV) Testung verschiedener Zellaufschlussmethoden und Etablierung einer Methode zur Bestimmung der Zellaufschlusseffizienz, V) Testung verschiedener Proteinbestimmungsmethoden zur genauen Bestimmung der Gesamtproteinkonzentration im komplexen cytosolischen Extrakt und VI) Optimierung der vollständigen enzymatischen Spaltung aller Proteine vor der massenspektrometrischen Analyse. Im Rahmen dieser Arbeit konnte außerdem gezeigt werden, dass sich die Kalibration der 2D Gele für die Ermittlung absoluter Daten zwischen Gelen übertragen lässt, was den Aufwand für große Zeitreihenexperimente deutlich reduziert. Die Genauigkeit und der dynamische Bereich 2D-gelbasierter relativer und absoluter Proteinquantifizierung kann durch eine erhöhte Reproduzierbarkeit, Auflösung und Sensitivität der Gele verbessert werden. Die Etablierung von HPE-Gelen führte zu 25 % mehr detektierbaren und damit quantifizierbaren Proteinspots und Proteinen bei deutlich erhöhter Reproduzierbarkeit (Moche et al. 2013, Artikel III). Die zusätzlich höhere Anzahl von Gelen mit quantifizierbarer Qualität verringert außerdem den Zeit- und Kostenaufwand vor allem für komplexe experimentelle Ansätze. Die neue Methode zur gelbasierten absoluten Proteinquantifizierung wurde in einer Folgestudie angewendet, um die Konzentrationen von mehr als 700 Proteinen von B. subtilis während der physiologisch relevanten Anpassung an verschiedene Stressbedingungen, nämlich Glukosehunger und Hitzestress, zu bestimmen (Maaß et al. 2014, Artikel IV). Der Vergleich der beiden Stressbedingungen ermöglicht eine Unterscheidung der generellen von der spezifischen Stressantwort, wobei die Analyse der Daten durch Berechnung der Proteinkosten und der Ressourcenverteilung auf verschiedene metabolische Pfade und regulatorische Einheiten unterstützt wurde. Da die Nutzung von 2D PAGE zur Proteinquantifizierung auf im Gel detektierbare Proteine beschränkt ist, ist es für eine höhere Proteomabdeckung sinnvoll, gelbasierte Methoden mit gelfreien Methoden zu ergänzen. Deshalb wurde eine Methode zur labelfreien MS-basierten absoluten Quantifizierung von Proteinen im großen Maßstab entwickelt und etabliert. In dieser gel- und labelfreien Quantifizierungstechnik wurde datenunabhängige, parallele Fragmentierung aller zeitgleich eluierenden Vorläufermoleküle (LC-MSE) genutzt. Auch für diese Methode der absoluten Proteinquantifizierung bildeten die im Rahmen dieser Arbeit entwickelten Probenaufbereitungsverfahren die Grundlage (Muntel et al. 2014, Artikel V).
Untersuchungen zur Assoziation von Enterovirus und Adenovirus Infektionen mit Typ- 1- Diabetes
(2006)
Typ 1-Diabetes ist eine Autoimmunerkrankung, die zur Zerstörung der insulinproduzierenden Betazellen durch zytotoxische T-Lymphozyten führt. Es wird postuliert, dass der Prozeß durch verschiedene genetische Marker und Millieu-Cofaktoren beeinflusst wird. Es gibt Hinweise, dass Virusinfektionen einen T1D triggern können. Es wurden molekularbiologische Methoden zur molekularen Identifikation und Charakterisierung von Enterovirus RNA bzw. Adenovirus DNA etabliert. Es wurden signifikant erhöhte EV-RNA-Sequenzen in Autoantikörper-positiven Kindern und in Kindern mit neu diagnostizierten T1D nachgewiesen. Die Charakterisierung der Enterovirus-Amplicons zeigte eine hohe Homologie mit den Coxsackieviren B2, B4, B6 sowie mit ECHO 6. Für Adenovirus wurden keine Hinweise für eine Assoziation mit T1D gefunden. Die Daten stützen die Hypothese, dass verschiedene Enteroviren ätiologisch bedeutsam als Trigger und/oder Akzellerationsfaktor im Prozeß der T1D-Entwicklung sein können. Im Unterschied zu anderen Studien basieren diese Untersuchungen erstmalig auf einer normalen Schulkindpopulation ohne Verwandschaft ersten Grades zu T1D-Patienten. Unsere Ergebnisse unterstreichen die Notwendigkeit Konzepte für die Präventation und/oder Behandlung von Enterovirusinfektionen zu entwickeln.