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Bei Cryptochromen handelt es sich um Blaulichtrezeptoren der Cryptochrom-Photolyase-Proteinfamilie (CPF). Mitglieder dieser Proteinfamilie sind in allen Domänen des Lebens zu finden und haben eine essentielle Rolle in der Reparatur der DNA sowie der lichtgesteuerten Regulation der Expression. Cryptochrome sind in der Regel keine DNA-reparierenden Proteine. Sie sind regulativ an der Steuerung der inneren Uhr und des Zellzyklus der Organismen beteiligt. In der Kieselalge Phaeodactylum tricornutum konnten bisher sechs phylogenetisch unterschiedliche Mitglieder der CPF identifiziert werden. Bei CryP handelt es sich um das einzige pflanzenähnliche Cryptochrom der photoautotrophen Diatomee. Für das Protein CryP konnte bereits ein blaulichtinduzierter Photozyklus durch die Absorption der Chromophore 5-Methenlytetrahydrofolat (MTHF) und Flavinadenindinukleotid (FAD) gezeigt werden. Außerdem ist eine regulative Wirkung des Proteins auf die Lichtsammelkomplexe (Lhc) der Diatomee bekannt. Für eine weitere Charakterisierung des CryPs wurde in dieser Arbeit zunächst das Absorptionsverhalten unter verschiedenen Wellenlängen beobachtet, um so einen Einblick in eine mögliche Aktivierung und Deaktivierung des Proteins durch Licht unterschiedlicher Wellenlängen zu erlangen. Es zeigte sich hierbei eine mit pflanzlichen Cryptochromen vergleichbare Anreicherung verschiedener Redoxzustände des FADs in Abhängigkeit von der Wellenlänge.
Für eine Aufklärung der Wirkungsweise des CryP-Proteins wurden verschiedene Hypothesen untersucht: Die phylogenetische Nähe und ein ähnliches Absorptionsverhalten des CryPs zu Cryptochromen mit Reparaturfähigkeit für einzelsträngige DNA (Cry-DASH) führte zu einer Untersuchung des Proteins als möglicher Transkriptionsfaktor. Hierfür konnte eine Kernlokalisation des Proteins nachgewiesen werden, was Rückschlüsse auf eine potentielle Regulation der Expression mittels DNA-Bindung zulässt. Außerdem wurde gezeigt, dass CryP DNA-Bindefähigkeit besitzt. Die bisher nachgewiesenen Bindungen waren jedoch unspezifischer Art. Dies konnte auch für die Promotersequenz eines der durch CryP regulierten Gene lhcf1 festgestellt werden. Auf Grund der unspezifischen DNA-Bindung wurde eine zweite Hypothese für CryP untersucht: CryP wirkt regulativ auf die Expression verschiedener Gene durch Protein-Protein-Interaktionen und ist Teil einer Reaktionskaskade zur Signalweiterleitung in P. tricornutum.
Durch die Untersuchung der zweiten Hypothese konnten drei Interaktionspartner für CryP identifiziert und eine Interaktion verifiziert werden. Hierbei handelt es sich um das Protein AAA mit einer bisher unbekannten Funktion und das Protein BolA, welches Teil der zuerst in Escherichia coli identifizierten BolA-like-Proteinfamilie ist. Außerdem konnte eine Interaktion mit dem Cold-Shock-Domänen-Protein CSDP gezeigt werden. Bei den Proteinen BolA und CSDP handelt es sich um potentiell regulierende Faktoren der Transkription und Translation, was Teil einer Reaktionskaskade sein kann. Die aus anderen Organismen bekannten Funktionen des BolA-Proteins überschneiden sich mit den in CryP-Knockdown-Mutanten beobachteten Effekten. Sie zeigen eine erhöhte Sensitivität für Stresssituationen wie abweichende Nährstoffkonzentration, Osmolaritäten und Temperaturen. Diese Beobachtungen stellen einen Zusammenhang der durch einen CryP-Knockdown beobachteten Effekte und der CryP-BolA-Interaktion her. Durch Homologien zu Cold-Shock-Proteinen aus Chlamydomonas reinhardtii gibt die CryP-Interaktion mit dem Protein CSDP Hinweise auf einen potentiellen Mechanismus zur Regulation der Lhc-Proteine, für welche zuvor ein CryP-abhängiger Effekt beschrieben war.
Über die Protein-Protein-Interaktionen hinaus wurde die Phosphorylierung des CryPs als Möglichkeit der Signalweiterleitung untersucht. Es konnte eine reversible Phosphorylierung des heterolog aus E. coli isolierten CryPs gezeigt werden. Diese zeigt Ähnlichkeiten zu bekannten Phosphorylierungen pflanzlicher Cryptochrome und gibt Hinweise auf einen Mechanismus der Signalweiterleitung.
Durch die Untersuchung der CryP-regulierten Transkription mit P. tricornutum CryP-Knockdown-Mutanten durch Next-Generation-Sequencing (NGS) konnte die Hypothese der regulativen Proteinkaskade und der Signalweiterleitung weiter bestätigt werden. Die Auswirkungen des CryPs auf die Transkription erwiesen sich als nicht auf einen Teilbereich des Metabolismus begrenzt, sondern sind in einem großen Teil der funktionellen Gengruppen in P. tricornutum zu sehen. Außerdem konnten drei Klassen CryP-regulierter Gene festgestellt werden. Kategorie 1: die ausschließlich unter Blaulicht regulierten Gene; Kategorie 2: die sowohl unter Blaulicht als auch im Dunkeln regulierten Gene und Kategorie 3: die ausschließlich im Dunkeln regulierten Gene. Ein im Dunkeln und unter Blaulicht jeweils unterschiedlicher regulativer Effekt deutet auf eine Doppelfunktion des CryPs hin. Möglicherweise hat das Cryptochrom unterschiedliche lichtabhängige und lichtunabhängige Funktionen.
Durch die Analyse der CryP-regulierten Genexpression konnte außerdem ein Zusammenhang zwischen CryP und weiteren Photorezeptoren gezeigt werden. Der CryP-Proteingehalt in der Zelle hat einen regulativen Einfluss auf das CPF1-Protein, eine Photolyase mit dualer Funktion aus der gleichen Proteinfamilie. Zusätzlich konnte auch ein Einfluss auf die Lichtsensitivität der Genexpression des Rotlichtrezeptors Phytochrom (DPH) durch CryP gezeigt werden. Vergleichbar mit höheren Pflanzen scheint ein regulatives Netzwerk der Photorezeptoren auch in der Diatomee P. tricornutum vorhanden zu sein.
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.
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.
This thesis describes the adaptation of Acinetobacter species to dry environments with the soil bacterium A. baylyi and the opportunistic hospital pathogen A. baumanii in its focus. The adaptation of A. baylyi and A. baumannii to osmotic stress was investigated. Compatible solutes that were uptaken from the environment or synthesized de novo to cope with the loss of water at high salinity were identified. The corresponding transporters and enzymes involved were characzerized. In addition, the desiccation resistance of A. baumannii was analyzed to elucidate its survival in hospital environments. The usage of compatible solutes during desiccation stress was analyzed and proteins that were produced were identified.
The availability of water is essential for bacterial life and if environmental conditions are awkward, bacteria have to cope with high salinitiy to prevent loss of water. In this thesis it was shown that A. baylyi synthesizes glutamate and mannitol de novo as compatible solutes in response to osmotic stress to balance the osmotic potential. The pathway for mannitol biosynthesis from Fructose-6-Phosphate (F-6-P) via Mannitol-1-Phosphate (Mtl-1-P) was elucidated and the isolation and characterization of a novel type of biofunctional enzyme was described. Interestingly, the unique bifunctional enzyme MtlD, acting as dehydrogenase and phosphatase, mediates both steps of the mannitol biosynthesis pathway. This enzyme catalyzes the reduction of F-6-P to Mtl-1-P with NADPH as reducing equivalent. The dehydrogenase activity of MtlD was salt dependent and the phosphatase activity was dependent on Mg2+ as cofactor. Phylogenetic analyses revealed that MtlD is broadly distributed among other Acinetobacter strains but not in other phylogenetic tribes.
In this thesis it is also described that, besides de novo synthesis of compatible solutes, A. baylyi takes up glycine betaine (GB) or its precursor choline by different transport systems and uses this solutes as osmoprotectants. The uptake of GB occurs via a secondary transporter (ACIAD3460) of the BCCT family. Choline is taken up as precursor and oxidized to GB by two dehydrogenases. The uptake and use of choline as GB precursor involves two transporters, whose genes are encoded in the bet cluster (BetT1, BetT2), two dehydrogenases (BetA, BetB) and a regulatory protein (BetI). Both transporters differ from each other in structure and function: BetT1 is osmo-independent and active independently of osmotic stress. BetT2 contains - in contrast to BetT1 - a long C-terminal domain for osmo-sensing and its activity highly increases in the presence of high osmolarity. The oxidation of choline occurs independently of the osmolarity of the medium but in the absence of salt stress, GB is exported. In contrast, in the presence of high salinity, GB is accumulated in the cytoplasm to balance the osmotic potential in order to prevent loss of water. The regulation of both transporters, the uptake of choline independently of the osmolarity and the export of GB under isoosmotic conditions are regulated by the transcriptional regulator BetI.
A. baumannii ATCC 19606 was also shown to cope with high salinity. Analogously to A. baylyi, A. baumannii ATCC19606 synthesizes glutamate and mannitol de novo in response to osmotic stress. The genes for the synthesis of these compatible solutes are identical to those found in A. baylyi. This suggests that the solute biosynthesis pathways of A. baumannii and A. baylyi are identical. A. baumannii was also able to take up GB and choline in response to osmotic stress and growth at high salinity was restored upon addition of GB and its precursor choline. The bet cluster was also present in the genome A. baumannii and also contains the two different choline transporters BetT1 and BetT2.
Our suggestion that choline or GB or the utilization of phosphatidylcholine as carbon source led to an increase in the survival under desiccation stress was not confirmed. However, 2D analysis of proteins produced during desiccation stress in A. baumannii led to elevated amounts of proteins implicated in biofilm formation, regulation, cell morphology and general stress response, such as Hsp60 or superoxide dismutase, both might play a role in general stress protection.
The baker’s yeast Saccharomyces cerevisiae is a valuable and increasingly important microorganism for industrial applications (Hong and Nielsen, 2012). Its robustness concerning process conditions like low pH, osmotic and mechanical stress as well as toxic compounds is an advantage. Moreover, S. cerevisiae is ‘generally regarded as safe’ (GRAS). The model organism has been studied intensively. The collected data, including genomic, proteomic and metabolic information, can be used to genetically modify and improve its metabolism. Fatty acids and fatty acid derivatives have wide applications as biofuels, biomaterials, and other biochemicals. Several studies have been dealing with the overproduction of fatty acids and derivatives thereof in S. cerevisiae. The fatty acid biosynthesis starting with acetyl-CoA requires two enzymes, the acetyl-CoA carboxylase (Acc1p) and the fatty acid synthase complex (FAS), to produce acyl-CoA esters with predominantly 16 to 18 carbon atoms chain length (Lynen et al., 1980). For the synthesis of monounsaturated fatty acids in S. cerevisiae the ER bound acyl-CoA desaturase, Ole1p is essential (Tamura et al., 1976; Certik and Shimizu, 1999).
Using S. cerevisiae, the first section of this work dealt with the heterologous characterization of potential ω1-desaturases. Due to the fact that unsaturated fatty compounds can be modified further by hydrosilylations, hydrovinylations, oxidations to epoxides, acids, aldehydes, ketones or metathesis reactions, the interest in ω1-fatty acids is tremendous (Behr and Gomes, 2010). With the intention to find enzymes in fungi, that have a terminal desaturase activity a search in different genome databases was performed. The sequences of Pex-Desat3 and Obr-TerDes were used as reference sequences. The analysed proteins from Schizophyllum commune (EFI94599.1), Schizosaccharomyces octosporus (EPX72095.1), Wallemia mellicola (EIM20316.1), Wallemia ichthyophaga (EOR00207.1) and Agaricus bisporus var. bisporus (EKV44635.1), however, finally turned out to be Δ9 desaturases. A fungal desaturase with ω1-activity could not be found. The Δ9 desaturase SCD1 from Mus musculus was crystallized by Bai et al. (2015) and the information for specific amino acids responsible for the substrate specificity or enzyme activity were allocated. In combination with sequence and enzyme activity data form ChDes1 from Calanus hyperboreus, Desat2 from Drosophila melanogaster, Pex-Desat3 from Planotortrix excessana and Obr-TerDes from Operophtera brumata single amino acid exchanges were performed in the Δ9 desaturase Ole1p from S. cerevisiae. For all mutants, only fatty acids (C16 - C18) with a double bond between carbon C9 and C10 could be found. This indicates, that all inserted amino acid exchanges do not affect the substrate specificity or the position of the introduced double bond.
In the second section the focus was in the development of a production system for fatty acids in S. cerevisiae with regard to the previously established procedures by metabolic engineering. The combination of cytosolic malate dehydrogenase (MDH3), cytosolic malate enzyme (MAE1) and a citrate- α-ketoglutarate- carrier (YHM2) should improve the availability of acetyl-CoA in the cytosol, which is an important precursor for the fatty acid biosynthesis. If the major pathway (acetyl-CoA carboxylase and fatty acid synthase) was already optimized by high expression levels than no positive effect on increased fatty acid synthesis was detectable. Only non-optimized strains, with the additional overexpression of ATP-citrate lyase and cytosolic malate dehydrogenase, lead to a 41 % (20 mg/g dcw) improvement of fatty acid synthesis. In order to increase the fatty acid content further, the additional overexpression of DGA1 and TGL3 was performed. Hence, the highest amount of fatty acids could be observed with the strain S. cerevisiae WRY1ΔFAA1ΔFAA4 (2.5 g/L ± 0.8 g/L). The additional elimination of acyl-CoA synthetase Fat1p did not improve the yield.
It was recently reported, that chain length control of the fatty acid synthesis of bacterial FAS can be changed by rational engineering (Gajewski et al., 2017a). The knowledge about bacterial FAS was transferred in this work to S. cerevisiae FAS. Mutating up to five amino acids in the FAS complex enabled S. cerevisiae to produce medium chain fatty acids (C6 - C12). Further improvement was done by metabolic pathway engineering (promoter of alcohol dehydrogenase II from S. cerevisiae (pADH2), deletion of acyl-CoA synthetase FAA2) and optimization of fermentation conditions (YEPD-bacto medium buffered with potassium phosphate). The production of medium chain fatty acids resulted in the highest yield of 464 mg/L (C6 to C12 fatty acids). Furthermore, strains were created specifically overproducing hexanoic acid (158 mg/L) and octanoic acid (301 mg/L). The characterization of transferases, which could be responsible for the de-esterification of CoA-bound fatty acids, was analysed in an additional approach. It could be shown, that the genes EHT1, EEB1 and MGL2 have an influence on the MCFA yield in the supernatant. Generally speaking, the data from the single and double deletion strains suggest that Eeb1p has a selective hydrolytic activity for hexanoic acid-CoA ester, while Eht1p shows selective hydrolytic activity for octanoic acid-CoA ester, which is in line with Saerens et al. (2006).