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Nearly 170 million people are chronically infected with HCV and thus at risk of developing liver cirrhosis and hepatocellular carcinoma. Although new and effective oral antiviral drugs are available, there is still the need for a preventive vaccine. In addition, in light of the high number of patients who are chronically infected with HCV the development of a therapeutic vaccine will present a support or even an alternative to the expensive medications.
To induce HCV-specific immune responses in a vaccine model, the HBV capsid is used as a carrier to deliver HCV antigens. Due to its icosahedral structure, the HBV capsid is highly immunogenic and helps to elicit a strong B cell response against the delivered antigens. In addition, the translocation motif (TLM) from the HBV surface protein is fused to the core protein. The TLM conveys membrane-permeability to the carrier capsid, enabling antigen transfer into the cytoplasm, and thus allows immunoproteasomal processing and MHC class I-mediated presentation of the antigen. To load the capsid with foreign antigens, a strep-Tag/streptavidin system is utilized. Recombinant capsids and antigens were purified from the E. coli production system. Detailed characterization of the carrier capsid demonstrated the proper assembly, adequate thermal stability and the successful loading of the foreign antigens onto the capsid surface.
As a further step, seven different HCV-derived proteins were produced and purified for the coupling on the surface of TLM-core particles. The characterization of their immunogenicity using this system is being performed.
Using ovalbumin as a model antigen, which is coupled to the carrier capsids via strep-Tag/streptavidin binding, shows that this system is suitable to efficiently deliver antigens into the cytoplasm of antigen-presenting cells (APCs), leading to the activation of APCs. This activation was assessed by measuring the secretion of IL-6 and TNF-α, in addition to the upregulation of activation markers (CD40, CD80, CD69, and MHC class I). Upon activation, the APCs were able to activate ova-specific CD8+ T cells measured by secreted IFN-γ, which was up to 20-folds more than IFN-γ secreted upon incubation with free ovalbumin. These data indicate that the TLM-capsid is suitable to serve as a carrier to deliver foreign antigens into the cytoplasm of APCs leading to MHC class I-mediated presentation and induction of an antigen-specific CTLs response.
For thousands of years, S. cerevisiae has been employed by humans in brewing and baking. Nowadays, this budding yeast is more than that: it is a well investigated model organism and an established workhorse in biotechnology. S. cerevisiae serves as a production host for various applications such as i) bioethanol production ii) the biosynthesis of hormones including insulin or iii) cannabinoid biosynthesis. Hereby, the robustness of S. cerevisiae and its high tolerances regarding pH and salt concentrations qualifies it for a wide range of industrial applications. Moreover, products of S. cerevisiae are generally recognised as safe (GRAS), enabling diverse biotechnological applications. Various mechanisms for genetic engineering of S. cerevisiae are applicable and the engineering process itself is straightforward since methods are established and widely known. Due to the wide range of industrial applications of S. cerevisiae, this organism is an ideal candidate for applied research and implementation of the recombinant biosynthesis of tocochromanols in this study.
Tocochromanols encompass tocotrienols and tocopherols, which are lipid-soluble compounds that are commonly associated with vitamin E activity. Hereby, α-tocopherol is the most prevalent form, as it is an essential nutrient in the diet of humans and animals. Naturally, tocochromanols are almost exclusively synthesised by photoautotrophic organisms such as plants or cyanobacteria. They consist of an aromatic head group and a polyprenyl side chain which is saturated in tocopherols and 3-fold unsaturated in tocotrienols. The methylation status of the chromanol ring distinguishes α-, β-, γ- and δ-tocochromanol. All forms of tocochromanols represent a group of powerful antioxidants, scavenging reactive oxygen species (ROS) and preventing the propagation of lipid oxidation in lipophilic environments. Recently, attention has been drawn to tocotrienols, due to their benefits in neuroprotection as well as cholesterol-lowering and anti-cancer properties. Consequently, tocochromanols are valuable additives in the food, feed, cosmetic and pharmaceutical industries.
The metabolic engineering strategy of S. cerevisiae to enable tocochromanol biosynthesis was started in a preceding master thesis with the provision of the aromatic moiety, homogentisic acid (HGA), from the aromatic amino acid biosynthesis. Hereby, the upregulation and redirection of the native pathway was essential. Therefore, a strain with an engineered aromatic amino acid pathway for improved 4 hydroxyphenylpyruvate (HPP) production (MRY33) was utilised from Reifenrath and Boles (2018). Furthermore, a heterologous hydroxyphenylpyruvate dioxygenase (HPPD) was required to convert HPP into HGA. Thus, several heterologous HPPDs were expressed and characterised regarding their HGA production within the previous study. The best variant originated from Yarrowia lipolytica, YlHPPD, and was integrated into the genome of MRY33. The resulting strain JBY2, produced 435 mg/L HGA in a shake flask fermentation.
This work was started with the genetically highly modified strain JBY2, whose genome already contained a large number of genes artificially expressed behind strong promoters. For further strain development, it was advantageous to maintain a high degree of sequence variability in order to prevent genomic instabilities due to sequence homologies. Thus, 17 artificial promoters (AP1-AP17) were characterised regarding their strength of expression by the yellow fluorescent protein (YFP). These sequences were also part of a patent that was filed during this work (WO2023094429A1).
The key point of this study was the development of a metabolic engineering strategy for the strain JBY2. First, the sufficient supply of the second precursor, the polyprenyl side chain, was investigated. Natively, S. cerevisiae produces the precursor, geranylgeranyl diphosphate (GGPP), from the isopentenyl diphosphate pathway. However, without further engineering, GGPP was barely detectable in JBY2 (< 0.1 mg/L). Thus, engineering of the isopentenyl diphosphate biosynthesis was necessary. The limiting enzyme of the mevalonate pathway was the 3-hydroxy-3-methylglutaryl coenzyme A reductase (HMGCR), which is encoded by HMG1. Therefore, a truncation for feedback-resistance and its overexpression by a promoter exchange was performed. Furthermore, the promoter of the gene for the squalene synthase (pERG9) was exchanged by the ergosterol sensitive promoter pERG1 to limit the metabolic flux of the mevalonate pathway into the ergosterol pathway. The native GGPP synthase (BTS1) was another limitation that was observed throughout this study. To overcome this bottleneck, plasmid-based and integrative overexpression of the native BTS1 and a codon optimised BTS1 were investigated. Other strategies to improve GGPP production were the deletion of the gene for the diacylglycerol pyrophosphate phosphatase (DPP1) to prevent excessive dephosphorylation of GGPP to geranylgeraniol (GGOH), and the overexpression of the farnesyl pyrophosphate synthetase, encoded by ERG20. However, the best improvements of the GGPP biosynthesis, inferred through GGOH measurements, were achieved from the screening of several heterologous GGPP synthases in S. cerevisiae. The best performing strain was JBY61 (JBY2, hmg1Δ::pTDH3-HMG1tr[1573–3165], pERG9Δ::pERG1, ChrIV-49293-49345Δ::pTDH3-XdcrtE-tSSA1_LEU2), bearing the heterologous GGPP synthase crtE of Xanthophyllomyces dendrorhous and produced 64.23 mg/L GGOH. Consequently, this engineering strategy improved the GGOH production by a factor of 642 compared to the parent strain JBY2.
Octanoic acid (C8 FA) is a medium-chain fatty acid which, in nature, mainly occurs in palm kernel oil and coconuts. It is used in various products including cleaning agents, cosmetics, pesticides and herbicides as well as in foods for preservation or flavoring. Furthermore, it is investigated for medical treatments, for instance, of high cholesterol levels. The cultivation of palm oil plants has surged in the last years to satisfy an increasing market demand. However, concerns about extensive monocultures, which often come along with deforestation of rainforest, have driven the search for more environmentally friendly production methods. A biotechnological production with microbial organisms presents an attractive, more sustainable alternative.
Traditionally, the yeast Saccharomyces cerevisiae has been utilized by mankind in bread, wine, and beer making. Based on comprehensive knowledge about its metabolism and genetics, it can nowadays be metabolically engineered to produce a plethora of compounds of industrial interest. To produce octanoic acid, the cytosolic fatty acid synthase (FAS) of S. cerevisiae was utilized and engineered. Naturally, the yeast produces mostly long-chain fatty acids with chain lengths of C16 and C18, and only trace amounts of medium-chain fatty acids, i.e. C8-C14 fatty acids. To generate an S. cerevisiae strain that produces primarily octanoic acid, a mutated version of the FAS was generated (Gajewski et al., 2017) and the resulting S. cerevisiae FASR1834K strain was utilized in this work as a starting strain.
The goal of this thesis was to develop and implement strategies to improve the production level of this strain. The current mode of quantification of octanoic acid includes labor-intensive, low-throughput sample preparation and measurement – a main obstacle in generating and screening for improved strain variants. To this end, a main objective of this thesis was the development of a biosensor. The biosensor was based on the pPDR12 promotor, which is regulated by the transcription factor War1. Coupling pPDR12 to GFP as the reporter gene on a multicopy plasmid allowed in vivo detection via fluorescence intensity. The developed biosensor enabled rapid and facile quantification of the short- and medium-chain fatty acids C6, C7 and C8 fatty acids (Baumann et al., 2018). This is the first biosensor that can quantify externally supplied octanoic acid as well as octanoic acid present in the culture supernatant of producer strains with a high linear and dynamic range. Its reliability was validated by correlation of the biosensor signal to the octanoic acid concentrations extracted from culture supernatants as determined by gas chromatography. The biosensor’s ability to detect octanoic acid in a linear range of 0.01-0.75 mM (≈1-110 mg/L), which is within the production range of the starting strain, and a response of up to 10-fold increase in fluorescence after activation was demonstrated.
A high-throughput FACS (fluorescence-activated cell sorting) screening of an octanoic acid producer strain library was performed with the biosensor to detect improved strain variants (Baumann et al., 2020a). For this purpose, the biosensor was genomically integrated into an octanoic acid producer strain, resulting in drastically reduced single cell noise. The additional knockout of FAA2 successfully prevented medium-chain fatty acid degradation. A high-throughput screening protocol was designed to include iterative enrichment rounds which decreased false positives. The functionality of the biosensor on single cell level was validated by adding octanoic acid in the range of 0-80 mg/L and subsequent flow cytometric analysis. The biosensor-assisted FACS screening of a plasmid overexpression library of the yeast genome led to the detection of two genetic targets, FSH2 and KCS1, that in combined overexpression enhanced octanoic acid titers by 55 % compared to the parental strain. This was the first report of an effect of FSH2 and KCS1 on fatty acid titers. The presented method can also be utilized to screen other genetic libraries and is a means to facilitate future engineering efforts.
In growth tests, the previously reported toxicity of octanoic acid on S. cerevisiae was confirmed. Different strategies were harnessed to create more robust strains. An adaptive laboratory evolution (ALE) experiment was conducted and several rational targets including transporter- (PDR12, TPO1) and transcription factor-encoding genes (PDR1, PDR3, WAR1) as well as the mutated acetyl-CoA carboxylase encoding gene ACC1S1157A were overexpressed or knocked out in producer or non-producer strains, respectively. Despite contrary previous reports for other strain backgrounds, an enhanced robustness was not observable. Suspecting that the utilized laboratory strains have a natively low tolerance level, four industrial S. cerevisiae strains were evaluated in growth assays with octanoic acid and inherently more robust strains were detected, which are suitable future production hosts.
...
Biotechnological processes offer better production conditions for a wide variety of goods of industrial interest. The production of aromatic compounds, for example, involves molecules of great value for cosmetic, plastic, agrochemical and pharmaceutic industries. However, the yield of such processes frequently prevents a proper implementtation that would allow the replacement of traditional production processes.
Numerous rational engineering approaches have been attempted to enhance metabolic pathways associated with desired products. Unfortunately, genetic modifications and heterologous pathway expression often lead to a higher metabolic burden on the producing organisms, ultimately leading to reduced production levels and fitness.
This project utilised adaptive laboratory evolution to better understand the development of synthetic cooperative consortia, using S. cerevisiae as a model organism. Specifically, a synthetic cooperative consortium was developed around the exchange of lysine and tyrosine, which was subjected to adaptive laboratory evolution aiming to induce mutations that would improve the system’s fitness either by enhanced production or upgraded stress resistance. Consequently, the mutant strains isolated after the evolution rounds were sequenced to identify relevant variations that could be related to the growth and production phenotypes observed.
The insights derived from this project are expected to contribute to further developing synthetic cooperative consortia with utilitarian purposes.
Genetic engineering of Saccharomyces cerevisiae for improved cytosolic isobutanol biosynthesis
(2021)
The finite nature of fossil resources and the environmental problems caused by their excessive usage requires alternative approaches. The transformation from a fossil based economy to one based on renewable biomass is called a “bioeconomy”. To substitute fossil resources, various microorganisms have already been modified for the biosynthesis of valuable chemicals from biomass. However, the development of such efficient microorganisms at an industrial scale, remains a major challenge. The most prominent and robust microorganism for industrial production is the yeast Saccharomyces cerevisiae, which is known to produce ethanol that is used as renewable biofuel. However, S. cerevisiae is also naturally able to produce isobutanol in small amounts. Isobutanol is favoured as a biofuel compared to ethanol due to its higher octane number and lower hygroscopicity, which makes it more suitable for application in conventional combustion engines. In S. cerevisiae, the biosynthesis of isobutanol is permitted by the combination of mitochondrial valine synthesis (catalysed by Ilv2, Ilv5 and Ilv3) and its cytosolic degradation (catalysed by Aro10 and Adh2). The different compartmentalisation of the two pathways limit isobutanol biosynthesis. Thus, Brat et al. (2012) were able to increase the isobutanol yield up to 15 mg/gGlc by cytosolic re localisation of the enzymes Ilv2Δ54, Ilv5Δ48 and Ilv3Δ19 (cyt-ILV), with simultaneous deletion of ilv2. This corresponds to approximately 3.7% of the theoretical yield of 410 mg/gGlc, implying existing limitations in isobutanol biosynthesis, which have been investigated in this work.
For yet unknown reasons, isobutanol was only produced by S. cerevisiae in a valine free medium, according to Brat et al. (2012). This work shows that this can be attributed to the catalytic activity of Ilv2Δ54, which acted as growth inhibitor to S. cerevisiae. By this logic, a negative selection on the ILV2∆54 gene was exerted, which made the ilv2 deletion and simultaneous valine exclusion necessary to maintain the functional expression of toxic ILV2∆54. Furthermore, it was shown that valine exclusion is not mandatory due to the feedback regulation of Ilv2, permitted by Ilv6. Rather, increased isobutanol yield was observed when cytosolic Ilv6∆61 was expressed in the valine free medium, which is explained by the enhanced regulation of Ilv2Δ54 by Ilv6∆61 when BCAA are absent. Isobutanol biosynthesis is neither redox nor NAD(P)H co factor balanced. It was seen that co factor imbalance could be mitigated by the expression of an NADH oxidase (NOX), but not by expression of the NADH dependent ilvC6E6, since the latter showed low in vivo activity. Furthermore, it was seen that NAD(H) imbalance did already limit isobutanol biosynthesis, but the NADP(H) imbalance did not. Another limitation of cytosolic isobutanol biosynthesis is the secretion of the intermediate 2‑dihydroxyisovalerate, which then no longer is taken up by S. cerevisiae, causing a reduced isobutanol yield. This is attributed to insufficient Ilv3∆19 activity, due to poor iron sulphur cluster apo protein maturation. Therefore, it was aimed to replace Ilv3∆19 by heterologous dihydroxyacid dehydratases. Even though some of the enzymes were functionally expressed, none showed better in vivo activity than Ilv3∆19. Therefore, the Ilv3∆19 apo protein maturation was improved. This was achieved by the genomic deletion of fra2 or pim1 as well as by the cytosolic expression of Grx5∆29.
In addition to the isobutanol pathway, S. cerevisiae was optimised for isobutanol biosynthesis by rational and evolutionary engineering. For this purpose, the genes which are necessary for isobutanol production were integrated into the ilv2 locus, and the resulting strain was evolved in a medium containing the toxic amino acid analogue norvaline. Evolved single colonies were isolated, which presented improved growth and increased isobutanol yields (0.59 mg/gGlc) in a valine free medium, as compared to the initial strain. This is explained by a gene dosage effect which occurred during the evolutionary engineering experiment. In collaboration with Dr. Wess, the genes ilv2, bdh1/2, leu4/9, ecm31, ilv1, adh1, gpd1/2 and ald6 were cumulatively deleted in CEN.PK113 7D to block competing metabolic pathways. The resulting strain JWY23 achieved isobutanol yields up to 67.3 mg/gGlc, when expressing the cyt ILV enzymes from a multi copy vector. The most promising approaches of this work, namely the deletion of fra2 and the expression of Grx5∆29, Ilv6∆61, and NOX, were confirmed in this JWY23 strain. The highest isobutanol yield from this work was observed at 72 mg/gGlc for Ilv6∆61 and cyt ILV enzymes expressing JWY23, which corresponds to 17.6% of the theoretical isobutanol yield.
Isobutyric acid (IBA) is a by product of isobutanol biosynthesis, but it is also considered a valuable platform chemical. Therefore, the approaches that improved isobutanol biosynthesis were applied to the biosynthesis of IBA in S. cerevisiae. The highest IBA yield of 9.8 mg/gGlc was observed in a valine free medium by expression of cyt ILV enzymes, NOX and Ald6 in JWY04 (CEN.PK113 7D Δilv2; Δbdh1; Δbdh2; Δleu4; Δleu9; Δecm31; Δilv1). This corresponded to an 8.9 fold increase compared with the control and is, to our best knowledge, the highest IBA yield reported to date for S. cerevisiae.
Im Rahmen der vorliegenden Dissertation sollte der Sphingolipid-Biosyntheseweg der Hefe Pichia ciferrii näher charakterisiert werden, um die Entwicklung einer fermentativen Route zur Sphingosin-Produktion zu ermöglichen. Darüber hinaus galt es patentierbare Selektionssysteme für diese Hefe zu etablieren. Durch Sequenzvergleiche mit nahe verwandten Hefen und das Ableiten degenerierter Primer wurden elf für die Sphingolipid-Biosynthese von Pichia ciferrii relevante Gene isoliert und sequenziert: LCB1 (codiert für eine UE der Serin-Palmitoyltransferase), TSC10 (3-Ketosphinganin-Reduktase), LAG1 und LAF1 (Ceramid-Synthasen), LIP1 (UE der Ceramid-Synthasen), DES1 (Dihydroceramid-delta4-Desaturase), YXC1 (Ceramidase), 8DES (Sphingolipid-delta8-Desaturase), 9MTR (Sphingolipid-C9-Methyltransferase), GCS1 (Ceramid-Glycosyltransferase) und LCB4 (LCB-Kinase). Bioinformatische Analysen, sowie in vivo-Experimente dienten der Einordnung der korrespondierenden Genprodukte in den Stoffwechselweg. Die Bestimmung der Substratspezifität einzelner Enzyme aus der Sphingolipid-Biosynthese erfolgte durch Überexpression der korrespondierenden Gene und anschließende Analyse des Einflusses auf die Zusammensetzung der Sphingolipidfraktion von Pichia ciferrii. Zusammengenommen wurde durch die Ergebnisse ein deutlich geschärftes Bild der Biosynthese von Sphingolipiden in Pichia ciferrii erstellt. Die gewonnenen Erkenntnisse über die Sphingolipid-Biosynthese in Pichia ciferrii fanden Anwendung auf die rationale Stammentwicklung eines Sphingosin-Produzenten. Durch die kombinierte Überexpression der die Dihydroceramid-delta4-Desaturase aus Pichia ciferrii, die Ceramid-Synthase aus Coccolithovirus und eine alkalische Ceramidase aus Mus musculus kodierenden Gene wurde eine 8,5-fache Erhöhung der Sphingosin-Konzentration von 7,5 mg/L in vom Wildtyp abgeleiteten Syringomycin-E-resistenten Stämmen auf 64,0 mg/L erzielt. Die Codon-Optimierung der heterolog exprimierten Gene zur Anpassung an die sehr eingeschränkte Codon-Verwendung von Pichia ciferrii erwies sich hierbei als essentiell. Zur Nutzbarmachung von rekombinanten Pichia ciferrii-Stämmen für die industrielle Anwendung wurden darüber hinaus drei neue Selektionssysteme etabliert. Zum einen wurde eine codon-optimierte Form des nat1-Gens genutzt, um eine Nourseothricin-Resistenz zu vermitteln. Zum anderen wurden stabile Uracil- bzw. Lysin-auxotrophe Pichia ciferrii-Stämme erzeugt, die mittels eines entsprechenden Integrationsvektors mit den Auxotrophie-Markergenen URA3 bzw. LYS2 aus Pichia ciferrii zu prototrophen Stämmen komplementiert werden konnten. Zusammengenommen mit der ersten gezielten Disruption eines Gens in Pichia ciferrii (SYR2, codiert für die Sphinganin-Hydroxylase) konnte somit auch die molekularbiologische Handhabbarkeit von Pichia ciferrii deutlich verbessert werden.
Saccharomyces cerevisiae is a natural producer of isobutanol, which has more advantages as biofuel than ethanol, i.e. superior combustion energy, weaker corrosive action and reduced aqueous miscibility. Isobutanol is produced by the combination of the valine biosynthesis and the Ehrlich pathway. In this work, an industrial strain was employed for isobutanol production, in which the valine pathway was relocated into the cytosol. The valine pathway in yeast has a cofactor imbalance, since the glycolysis produces NADH, while Ilv5 employs NADPH for the reaction. Therefore, the cofactor specificity of the pathway was rebalanced with exchange of Ilv5 by an NADH-consuming mutant, IlvC6E6. Furthermore, Ilv6, which regulates the feed-back inhibition of the valine biosynthesis, was tested to boost isobutanol production; however, none of these Ilv6 alternatives could greatly enhance isobutanol production. Therefore, due to a still low production yield, the bottlenecks of the isobutanol pathway were deeper studied.
The major observed bottleneck concerned the conversion of DIV into KIV, since high concentrations of acetoin, 2,3-butandiol and, specially, DIV were observed in the fermentation supernatant, while neither KIV nor isobutyraldehyde were detected. This step is performed by the dihydroxy-acid dehydratase, Ilv3, which needs iron-sulfur clusters for its activity. Therefore, the first approach to circumvent this limitation was to increase the FeS assembly and its transference into the cytoplasm; however, Ilv3Δ19 activity was not improvement. Afterwards, Ilv3 alternatives were screened for substitution of Ilv3Δ19. Heterologous ILV3 orthologous with possible advantages were investigated, but Ilv3Δ19 was still the most promising alternative. Furthermore, sugar-acid enolases were tested as Ilv3Δ19 substitutes. These enolases also catalyze the dehydration of the substrate in the same way as Ilv3, but uses Mg2+ as cofactor. One of the employed enolases could complement valine auxotrophy; however, it allowed just a very slow growth of the Δilv3 strain and its activity could not be enhanced by mutagenesis studies.
Interestingly, we observed that once DIV is secreted out of the cell, it cannot be re-uptaken from the medium and this possibly further aggravates the pathway flux and Ilv3Δ19 activity. In order to suppress DIV waste, two strategies were formulated: the deletion of the possible DIV transporter, and the substrate channeling of DIV from IlvC6E6 to Ilv3Δ19. In order to find possible DIV export proteins, a transcriptome analysis of a strain producing high amounts of DIV against a strain producing no detected DIV were compared. Several transporters were found upregulated in the DIV producing strain, but, alone, none of these were responsible for the DIV efflux. For the substrate channeling, an artificial enzymatic net was constructed by the fusion of IlvC6E6 and Ilv319 with synthetic zippers, which have high affinity to each other, and as both enzymes are alone organized as oligomers. The use of this enzymatic net enhanced not only the isobutanol production in about 17%, but also 3-methyl-butanol production yield was 25% increased.
Nevertheless, together with bottlenecks arising from Ilv3 activity, the isobutanol production is limited by the ethanol production, which is the main product of S. cerevisiae. Therefore, in order to abolish ethanol production, PDC1 and PDC5 were deleted. Moreover, BDH1 and BDH2 were also deleted to create an NADH-driving force towards isobutanol production. However, the isobutanol yield of this mutant was even lower than that of the strain without the mentioned deletions. As a high production of isobutyric acid was observed, and it could be produced directly from KIV, different KIV decarboxylases and isobutanol dehydrogenases were investigated; but without improvement. Then, alternative pathways were abolished in other to favor isobutanol production, e.g. valine, leucine, isoleucine and panthotenate biosyntheses. Nevertheless, isobutanol yields were still low and the main byproducts were glycerol, acetoin, DIV and isobutyric acid. Despite the outcomes were not enough to enhance isobutanol production up to commercially required yields, these results help in the comprehension of the bottlenecks surrounding the isobutanol production pathway and serve as basis for further studies within the branched-chain amino acids biosynthesis and Ehrlich pathway.
Terpenes are one of the largest and most diverse class of natural products, produced by organisms from all kingdoms of life and with important applications in the pharma, flavor and fragrance industries. Well-known examples of terpenes are the pharmaceuticals artemisinin and taxol, the flavor and fragrance compounds menthol, santalol and sclareol, the structural material polyisoprene and the biofuel precursor farnesene. The methods and results presented in this work offer a variety of ways to modify terpene precursors for the creation of new terpene molecules. The application of these methodologies in well-established production systems could lead to the production of new substances, with applications in the industrial fields of pharmaceuticals, flavors and fragrances, and biofuels.
Die Zuckertransporterfamilie ist eine Unterfamilie der MFS („major facilitator superfamily“), wobei die MFS wiederum als Überfamilie von Transportproteinen definiert wurde, die sich aus Proteinen mit 12 Transmembran-Domänen zusammensetzt. Im Rahmen dieser Doktorarbeit sollte die subzelluläre Lokalisation und physiologische Funktion der uncharakterisierten Mitglieder der Zuckertransporterfamilie Ybr241 und Ygl104 untersucht werden. Mittels Zellfraktionierung durch Saccharosedichtegradienten-Zentrifugation und Fluoreszenzmikroskopie konnte eine Lokalisation von Ybr241 und Ygl104 in der vakuolären Membran festgestellt werden. Da Plasmamembran-Proteine zur Degradation ubiquitiniert, über Endocytose internalisiert und in der Vakuole abgebaut werden, wurden weitere Lokalisationsstudien sowohl in Endocytose-Mutanten als auch in einer Mutante mit Defekten in der Ubiquitinierung durchgeführt. Diese ergaben, daß die vakuoläre Lokalisation nicht auf Degradation zurückzuführen war. Somit handelt es sich bei Ybr241 und Ygl104 um residente vakuoläre Membranproteine. Lokalisationsstudien in vps-Mutanten erbrachten Hinweise darauf, daß zumindest Ygl104, wie die meisten vakuolären Proteine, über den CPY-Weg zur Vakuole befördert wird. Weder durch Wachstumsanalysen noch mit Hilfe von Phenotype MicroArrays™ (Biolog, Inc.) konnten Phänotypen der Deletionsmutanten von Ybr241 und Ygl104 identifiziert werden. Allerdings zeigte sich im Verlauf der Arbeit, daß die Deletionsmutanten einen Vorteil beim Wachstum mit geringen Glucosekonzentrationen bei 37°C haben. Des weiteren bestanden aufgrund von Datenbankanalysen Anhaltspunkte auf eine Beteiligung am Trehalosestoffwechsel. Durch Hitzeschockexperimente konnte eine essentielle Rolle von Ybr241 und Ygl104 bei der Resistenz von Zellen gegenüber schwerem Hitzestreß identifiziert werden. Die verminderte Thermotoleranz der Deletionsmutanten war aber nicht auf einen geringeren Gehalt der Zellen am Streßschutzmolekül Trehalose zurückzuführen. Zudem deckte ein SGA („synthetic genetic array“) eine synthetisch kranke Interaktion von YBR241C und YGL104C mit dem Gen der Trehalose-6-Phosphat-Synthase TPS1 auf. Diese Interaktion sprach gegen eine Beteiligung der Genprodukte am Trehalosestransport, da tps1-Mutanten keine Trehalose enthalten. tps1-Mutanten haben einen Wachstumsdefekt mit schnell fermentierbaren Kohlenstoffquellen, der höchstwahrscheinlich auf einen Mangel an freiem Phosphat zurückzuführen ist. Somit scheinen die Proteine Ybr241 und Ygl104 die intrazelluläre Phosphatkonzentration zu beeinflussen. Eine Analyse ergab, daß der Phosphat- und Polyphosphatgehalt der Mutanten teilweise stark herabgesetzt war. Der Einfluß könnte direkt durch Phosphatimport in die Vakuole stattfinden oder sekundär über eine Verminderung der Glycerinproduktion, da durch die Synthese von Glycerin wieder Phosphat freigesetzt wird. Somit handelt es sich bei Ybr241 und Ygl104 möglicherweise um vakuoläre Phosphat- oder Glycerintransporter. Ferner konnte gezeigt werden, daß die saure Trehalase Ath1 sekretiert wird und Trehalose extrazellulär in Glucose hydrolysiert. Die Glucosemoleküle werden dann von der Hefezelle aufgenommen und verstoffwechselt. Somit spielt Ath1 eine essentielle Rolle beim Wachstum der Hefe mit Trehalose als Kohlenstoffquelle. Ziel des zweiten Teils dieser Doktorarbeit war die Entwicklung eines genomweiten Screens nach ER-Verpackungschaperonen, durch den bisher unbekannte Verpackungschaperone identifiziert werden sollten. Durch Testen verschiedener Varianten des Screens konnte ein Verfahren entwickelt werden, das prinzipiell funktionierte. Für den Einsatz im genomweiten Maßstab war es jedoch ungeeignet, da mit einer hohen Rate an falsch negativen Ergebnissen zu rechnen gewesen wäre.
Natural products (NPs) have been a rich source for pharmaceutically used anti-infectives and other drugs. However, the application of anti-infectives inevitably causes the development of resistant and multiresistant pathogens, which have to be treated with novel anti-infectives. The industrial research for novel anti-infectives has been concentrating on members of the bacterial Actinomycetales for a long time. Due to several reasons, e.g. the rediscovery of already known NPs, pharmaceutical companies abandoned their NP-research and focused on drug development based on combinatorial chemistry. However, the limited structural diversity of merely synthetic compound libraries has not been a fruitful source for bioactive compounds. Hence the discovery of novel bioactive NPs as a source for anti-infectives is still of economical and humanitarian interest and will remain to be an important branch of research in the future. One strategy to circumvent the rediscovery of bioactive NPs is the analysis of yet unexplored bacterial taxa. Based on this assumption, this work aimed at the discovery of novel NPs from the entomopathogenic bacterial genera Xenorhabdus and Photorhabdus and other promising taxa, as well as the investigation of their biosynthesis. ...