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1. Halobacillus halophilus akkumuliert zum Ausgleich geringer, extrazellulärer Wasserpotentiale kompatible Solute. Bei Anzuchten in Gegenwart von 0,4 – 1,5 M NaCl wurden Glutamin und Glutamat als die dominierenden kompatiblen Solute identifiziert, während zwischen 2,0 und 3,0 M NaCl Prolin das dominierende Solut darstellt. Außerdem wurde Ectoin als zweites kompatibles Solut gefunden, das spezifisch bei hohen Salzgehalten akumuliert wird. Die Konzentrationen während der exponentiellen Wachstumsphase war jedoch um den Faktor 6 – 7 geringer im Vergleich zu Prolin. 2. Aus Wachstumsexperimenten in Gegenwart unterschiedlicher Anionen war bekannt, dass Glutamat, im Gegensatz zu Gluconat und Nitrat, in der Lage ist, das Wachstum von H. halophilus auch in Abwesenheit von Chlorid zu ermöglichen. Um der Frage nachzugehen, ob die wachstumsfördernde Wirkung von unphysiologisch hohen Glutamat-Konzentrationen im Medium auf die Verwendung von Glutamat als kompatiblem Solut in den Zellen zurückzuführen ist, wurden Gesamtsolutepools von Chlorid-, Nitrat-, Gluconat- und Glutamat-gezogenen Zellen gemessen. In NaCl-gezogenen Zellen zeigte sich Glutamat als dominantes Solut, während Prolin und Glutamin einen geringeren Teil am Gesamtpool ausmachten. In Nitrat-gezogenen Zellen betrug der Gesamtpool nur noch 83% und in Gluconat-gezogenen Zellen nur noch 27% im Vergleich zu Chlorid-gezogenen Zellen. Zellen, die mit Glutamat gezogen wurden, zeigten jedoch eine Gesamtkonzentration an Soluten, die ca. 100% über dem Vergleichswert aus Chlorid-gezogenen Zellen lag. Die Konzentration an Glutamin in den Zellen stieg dabei um 168%, die Konzentration an Glutamat sogar um 299%. Die Prolinkonzentration verringerte sich um 32%. Diese Daten belegen, dass der wachstumsstimulierende Effekt von Glutamat auf die Verwendung als kompatibles Solut zurückzuführen ist. 3. Zur Untersuchung der molekularen Grundlage der Salzadaptation sowie der Abhängigkeit von Chlorid in H. halophilus wurde in Zusammenarbeit mit der Gruppe von Prof. D. Oesterhelt (MPI für Biochemie, Martinsried) die Sequenzierung des Genoms begonnen. Das Projekt ist zur Zeit noch nicht abgeschlossen und befindet sich in der „Lückenschluß-Phase“. Die bisherigen Sequenzdaten konnten dennoch für die in dieser Arbeit beschriebenen Untersuchungen herangezogen werden. Das Genom besitzt eine Größe von ca. 4,1 Mbp mit einem ungefähren GC-Gehalt von 40%. Außerdem wurden 2 Plasmide identifiziert mit einer Größe von 16047 und 3329 bp. 4. Die Schlüsselgene bekannter Biosynthesewege für Glutamin und Glutamat konnten identifiziert werden. Darunter befinden sich zwei Isogene für eine Glutamatdehydrogenase (gdh1 und gdh2), ein Gen für die große Untereinheit einer Glutamatsynthase (gltA), zwei Gene für die kleine Untereinheit einer Glutamat-Synthase (gltB1 und gltB2) und zwei Isogene für eine Glutaminsynthetase (glnA1 und glnA2). glnA1 befindet sich in einem Cluster zusammen mit einem Gen, das für einen Regulator kodiert (glnR), wie er auch aus B. subtilis bekannt ist. Über reverse Transkription von mRNA und anschließender PCR-Analyse konnte gezeigt werden, dass sowohl gltA/gltB1 als auch glnA1/glnR in einem Operon organisiert sind. 5. Wurde die Transkriptmenge der in Punkt 4 erwähnten Biosynthesegene in Zellen quantifiziert, die in Gegenwart unterschiedlicher Salzkonzentrationen (0,4 – 3,0 M NaCl) gezogen wurden, so zeigte sich keine Abhängigkeit von der Salzkonzentration für die Gene gltA, glnA1 und gdh1. Über die Transkriptmengen von gdh2 ließ sich keine abschließende Aussage treffen, da die gefundenen Transkriptmengen sehr gering waren und daher zu sehr großen Varianzen bei der Quantifizierung führten. Eine klare Abhängigkeit der Transkriptmenge von der im Medium zugesetzten Salzkonzentration konnte für glnA2 gezeigt werden. Die glnA2 mRNA-Menge stieg dabei mit steigender Salzkonzentration an und erreichte bei 1,5 – 2.0 M NaCl ein Maximum. Bei diesen Salzkonzentrationen war die Menge an mRNA ca. 4 mal höher als der Vergleichswert bei 0,4 M NaCl. Bei höhern Salzkonzentrationen sank die Menge an Transkript wieder leicht und war dann ca. nur noch 3 mal so hoch wie bei 0,4 M NaCl. 6. Die zelluläre Konzentration der glnA2-Transkripte in Abhängigkeit unterschiedlicher Anionen im Anzuchtmedium wurde untersucht. Die Quantifizierung der glnA2–mRNA ergab eine 2 mal höhere Transkriptmenge in Gegenwart von Chlorid verglichen mit Nitrat oder Gluconat. 7. Es wurde nach Enzymaktivitäten der bekannten Schlüsselenzyme im Glutamat und Glutamin-Biosyntheseweg gesucht. Eine Glutamatdehydrogenase und eine Glutamatsynthase – Aktivität konnte nicht oder nur in vernachlässigbarem Maße nachgewiesen werden. Im Gegensatz dazu konnt eine Glutaminsynthetase – Aktivität eindeutig belegt werden. Diese Aktivität erwies sich abhängig von der Art und der Konzentration des angebotenen Anions im Medium. Maximale Aktivitäten wurden mit NaCl in einer Konzentration von 2,5 – 3,0 M erreicht. Interessanterweise erwies sich die Glutaminsynthetase – Aktivität auch abhängig von der Art des im Testpuffers verwendeten Anions. Hier zeigte sich eine deutliche Stimulierung der Aktivität durch das Anion Chlorid. [Die für diesen Punkt zugrunde liegenden Daten wurden im Rahmen einer von mir mitbetreuten Diplomarbeit von Jasmin F. Sydow erhoben und sind aus Gründen der vollständigen Darstellung des Projektverlaufes mitaufgeführt!] 8. Wie im Punkt 1 dargelegt, wird Prolin vor allem bei hohen Salzkonzentrationen in H. halophilus - Zellen akkumuliert. Neben der Abhängigkeit von der Salzkonzentration wurde außerdem die Abhängigkeit von der Wachstumsphase untersucht. Die Analyse der Prolinkonzentrationen während verschiedener Wachstumsphasen in Kulturen, die bei 1,0 bzw. 2,5 M NaCl angezogen wurden, zeigte, (i) dass die Prolinkonzentration während der frühen exponentiellen Phase ca. 2,5-fach erhöht war im Vergleich zu Niedrigsalz-Zellen, (ii) dass die Prolinkonzentration beim Übergang von der frühen in die späte exponentielle Phase dramatisch abnahm (um 64% bei 2,5 M NaCl) und dass (iii) in der stationären Phase Prolin praktisch nicht mehr nachzuweisen war. 9. Die Biosynthesegene für die Herstellung von Prolin aus Glutamat konnten im Genom von H. halophilus identifiziert werden. Es handelt sich dabei um ein Cluster von 3 Genen, die für eine putative Pyrrolin-5-carboxylatreductase (proH), eine Glutamat-5-kinase (proJ), und eine Glutamat-5-semialdehyd-dehydrogenase (proA) kodieren. Mittels reverser Transkription von mRNA und anschließenden PCR-Analysen konnte gezeigt werden, dass die drei Gene ein Operon bilden. 10. Eine Quantifizierung der Transkriptmengen der Biosynthesegene proH, proJ und proA mittels quantitativer PCR in Zellen, die bei unterschiedlichen NaCl-Konzentrationen gezogen wurden, zeigte einen deutlichen Zusammenhang zwischen der Salinität des Mediums und der Menge an Transkript. Diese war umso höher, je höher die Salinität des Mediums war. Die maximale Transkriptmenge (6-fach) wurde bei einer Salzkonzentration von 2,5 M NaCl erreicht. Bei noch höherer Salzkonzentration sank die Transkriptmenge auf die ca. 5-fache Menge des Kontrollwertes ab. 11. Um die Regulation und Dynamik der Osmoregulation unabhängig vom Wachstum untersuchen zu können, wurde ein Zellsuspensions-System für H. halophilus etabliert, bei dem eine konzentrierte Zellsuspension direkt von geringen auf hohe Salzkonzentrationen überführt wurde und bei dem die Prozesse der Transkription, Translation und Solut-Biosynthese erhalten blieben. Beispielhaft wurde dieses System an der Produktion von Prolin nach einem Salzschock von 0,8 auf 2,0 M NaCl getestet. Es zeigte sich bei der Analyse, dass sich die Transkriptmengen unmittelbar nach dem Salzschock deutlich erhöhten und bereits nach 1,5 Stunden ein Maximum erreicht wurde. Verglichen mit dem Wert zu Beginn des Versuches waren die Transkriptmengen ca. 13-fach erhöht, sanken im weiteren Verlauf jedoch wieder ab und blieben bei einer 4-fachen Transkriptmenge konstant. Mit der Erhöhung der Transkriptmenge ging auch eine Erhöhung der Prolinkonzentration einher, die ein Maximum von ca. 6 μmol/mg Protein nach 6 Stunden erreichte. Auch diese Konzentration verringerte sich im weiteren Verlauf wieder und erreichte nach 20 Stunden den Ausgangswert. 12. Um den Einfluß diverser Anionen bzw. Osmolyte im Medium auf die Produktion von Prolin zu untersuchen, wurden Zellsuspensionen von H. halophilus einer Erhöhung der Osmolarität von 0,8 M auf 2,0 M unterzogen. Es zeigte sich dabei, dass die maximale Akkumulation von Prolin in Anwesenheit von Chlorid am höchsten war. Nitrat und Glutamat führten zu ähnlichen, aber leicht geringeren maximalen Konzentrationen (92 bzw. 83% des Chloridwertes). Gluconat führte noch zu einer Akkumulation von ca. 51%, während die anderen Osmolyte zu keiner Akkumulation führten. Eine Analyse der Transkriptmengen zeigte jedoch ein völlig anderes Bild. Während Chlorid, Nitrat und Gluconat zu vergleichbaren Anstiegen der Transkripmengen führten, war die maximale Transkriptmenge der Glutamatinkubierten Zellen 3-9 mal höher als in Vergleichszellen mit Chlorid. In anschließenden Titrationsexperimenten mit verschiedenen Glutamatkonzentrationen konnte gezeigt werden, dass eine minimale Konzentration von 0,2 M Glutamat ausreichend ist, um eine 90-fache Steigerung der Transkriptmenge herbeizuführen. 13. Als Antwort auf Hochsalz-Bedingungen akkumuliert H. halophilus neben Prolin auch Ectoin. Die Ectoinkonzentration bei 2,5 M NaCl war ca. 2-3 mal höher als in Zellen, die bei 1,0 M gezogen wurden. Die Bestimmung der intrazellulären Ectoin-Konzentrationen während des Wachstums zeigte außerdem, dass die Produktion von Ectoin wachstumsphasenabhängig ist. Die Konzentration in der stationären Phase war ca. 5-fach höher als in der exponentiellen Phase. Die Entwicklung der Ectoin- Konzentration verhielt sich somit reziprok zur Entwicklung der Prolin-Konzentration während des Wachstums. 14. Es wurde ein Cluster von drei Genen im Genom von H. halophilus identifiziert, deren Genprodukte die Biosynthese von Ectoin aus Aspartatsemialdehyd katalysieren. ectA kodiert dabei für eine putative Diaminobutyrat-Acetyltransferase, ectB für eine putative Diaminobutyrat-2-oxoglutarat-Transaminase und ectC für eine putative Ectoin-Synthase. Mittels reverser Transkription von mRNA und anschließenden PCR-Analysen konnte gezeigt werden, dass die drei Gene ein Operon bilden. 15. Die Transkription der ect-Gene war abhängig von der Salinität des Mediums. Ab 2,0 M stieg die Menge an RNA um das 10-fache an und erreichte bei 3,0 M ein Maximum mit der 23,5-fachen Menge. 16. Nach einem osmotischen Schock stieg die Konzentration an ect-mRNA signifikant und erreichte ein Maximum nach 3 - 4 Stunden. Das Maximum wurde somit 1,5 – 2,5 Stunden später erreicht als bei anderen Genen der Solute-Biosynthese wie etwa gdh1, das für eine Glutamatdehydrogenase, glnA2, das für eine Glutamin-Synthetase oder proH, das für eine Pyrrolin-5-Carboxylase kodiert. Die maximal erreichten Wert lagen 13-fach (ectA), 6,5-fach (ectB) und 3-fach (ectC) über dem Wert vor dem Salzschock. Gegen EctC wurden polyklonale Antikörper generiert. Western-Blot Analysen mit diesem Antikörper zeigten, dass die EctC-Menge nach 4 Stunden um das 2,5-fache stieg, dann aber wieder abfiel auf das 1,6 – 1,7-fache des Ausgangswertes. Der Rückgang an EctC fand keine Entsprechung in der gemessenen Ectoin-Konzentration, welche über einen Zeitraum von 18 Stunden kontinuierlich anstieg. Die maximale Konzentration nach 18 Stunden betrug das ca. 6,3-fache des Ausgangswertes. 17. Wurden H. halophilus Zellen mit anderen Osmolyten außer NaCl geschockt, so ergab sich folgendes Bild der Regulation der Ectoin-Biosynthese: (i) die Transkription der ect-Gene zeigte keine Chlorid-abhängige Regulation. Die maximale Transkriptmenge wurde in Gegenwart von Nitrat erreicht, wohingegen Gluconat zu vergleichbachen mRNA-Mengen führte wie Chlorid. Glutamat führte nur zu schwacher Stimulierung der Transkription. (ii) auf Ebene der Proteinmenge war zu sehen, dass die Menge an EctC nach osmotischem Schock vergleichbar war in Zellen, die mit Chlorid oder Nitrat inkubiert wurden. Gluconat führte nur zu einer 40%-igen Zunahme während andere Osmolyte nahezu wirkungslos auf die Menge an EctC blieben. (iii) die höchste Akkumulation an Ectoin nach einer plötzlichen Erhöhung der Osmolarität wurde erreicht mit Chlorid (6-fache Zunahme) gefolgt von Nitrat (5,6-fache Zunahme). Gluconat führte lediglich zu einer 3,3-fachen und Glutamat nur noch zu einer 2-fachen Steigerung der Ectoinkonzentration. Glutamat hat somit ähnliche Effekte wie Tartrat, Saccharose oder Sulfat. Succinat führte zu keiner Akkumulation und Glycin sogar zu einer deutlichen Abnahme. Die Produktion von Ectoin ist somit hauptsächlich abhängig vom Anion/Osmolyt und nur untergeordnet von der Osmolarität.
Today the structure of photosystem II, which is the enzyme responsible for the evolution of molecular oxygen by plants, algae and cyanobacteria, is known up to a resolution of about 3.0 Å in cyanobacteria (Loll et al., 2005). Photosystem II of higher plants, which shows some differences compared to the photosystem II of cyanobacteria, is not resolved in such high detail, yet (8-10 Å) (Rhee et al., 1998; Hankamer et al., 2001a). Therefore, the molecular structure of PSII of higher plants and its adjacent antenna complexes remains in the focus of the current research. One of the major problems when working with photosystem II is its relative instability during isolation. Together with the antenna proteins and several other proteins, some of which still have an unclear function, PSII forms a huge multi-protein-complex, which tends to fall apart during classical preparation methods. In order to achieve a faster and milder method of purification for PSII, four different His-tags have been added to one of the subunits of PSII. The gene targeted in this study is called psbE and codes for the α-chain of cytochrome b559, an integral part of PSII. The gene for PsbE is encoded in the chloroplast genome. The His-tags, which were employed in this work, consist of six or ten consecutive histidine aminoacid residues, which were fused to the N-terminus of the protein, either with or without a cleavage site for the protease “Factor Xa”. The N-terminus of PsbE is located on the more accessible stromal side of the thylakoid membrane. After inserting the psbE gene in a vector plasmid, in which the recognition site for the restriction endonuclease SacI had been eliminated, the different His-tags were generated by PCR with purposefully altered primers. In a final cloning step, a gene, which confers resistance to the antibiotics spectinomycin and streptomycin, was added to the DNA construct. Subsequently, the so-called biolistic transformation method (“gene gun”) was applied to introduce this genetically engineered plasmid DNA to Nicotiana tabacum chloroplasts (Bock & Hagemann, 2000). Through the processes of homologous recombination that take place in the chloroplast, the plastid encoded wildtype psbE gene was replaced by its His-tag containing counterparts. After several rounds of regenerating plants on antibiotic-containing medium, successful transformation was confirmed through PCR methods. By self fertilisation of fully regenerated plants, seeds were produced from tobacco strains, which carried only the mutated psbE gene. Plants cultivated from these seeds showed no distinctive phenotype under the chosen growth conditions, in respect to wildtype plants. The presence of the His-tag in this F1 generation was again confirmed with PCR methods. Measurements of oxygen evolution and pulse amplitude modulated fluorescence (PAM), carried out with preparations of wildtype and transgenic tobacco strains, revealed no differences for photochemical or non-photochemical quenching between both types. However, the oxygen evolution capacity of transgenic tobacco thylakoids compared to the wildtype was significantly reduced, although the chlorophyll content in relation to the leaf area was almost identical. This hints at a reduced amount of photosystem II complexes in the thylakoid membranes of transgenic tobacco. This alteration could be related to the mutation of cytochrome b559, because, amongst other functions, this subunit was shown to be important for the assembly of photosystem II (Morais et al., 1998). If solubilised thylakoid preparations of His-tagged plant strains were applied to a Ni-NTA column, photosystem II was selectively bound to the matrix. After washing away most of the contaminations, photosystem II core complexes could be eluted with imidazole-containing buffer. Photosystem II prepared in this way, displayed a drastic reduction of the peripheral light-harvesting complexes (LHCI & LHCII) and photo-system I reaction centres. This could be demonstrated by the loss of chlorophyll b and xanthophyll bands (LHCs) in absorption spectra, a small blue-shift of the chlorophyll a Qy absorption (PSI) and the respective band patterns in polyacrylamide gel electro-phoresis. The photosystem II complexes prepared in this way can now be put to use in different structural studies, like two-dimensional or three-dimensional crystallisation and spectroscopic measurements. Another photosynthetic pigment-protein complex of interest is the fucoxanthin-chlorophyll a/c-binding protein of diatoms, because eukaryotic algae, like diatoms, are important factors of oceanic ecosystems and account for a large part of marine biomass production. In order to facilitate ultra-fast time-resolved transient absorption spectroscopy and subsequent modelling of the kinetic traces, FCPs were prepared by sucrose-gradient ultra-centrifugation and their pigment stoichiometries determined by HPLC. Combining the spectroscopic data (Papagiannakis et al., 2005) with protein sequence alignments (Eppard & Rhiel, 1998) and the structure of the homologous higher plant LHCIIb (Kühlbrandt et al., 1994), a hypothetical model for the structure of FCP could be proposed (Fig. IV.3)
Photosystem (PS) I is a huge membrane protein complex which coordinates around 200 co-factors. Upon light excitation a charge separation at the PS I reaction centre is induced which leads to an electron transport across the thylakoid membrane and the generation of redox equivalents needed for several biochemical reactions, e.g. the synthesis of sugars. For higher plants and cyanobacteria the crystal structure of PS I complexes were resolved to resolutions of 4.4 Å and 2.5 Å. Furthermore, supramolecular structures of PS I of eukaryotic algae, mainly of the green line, were obtained recently. However, up to now, no structure of diatoms is available yet. Diatoms are key players in global primary production and derived from a secondary endosymbiosis event. Their chloroplasts are surrounded by four envelope membranes and their thylakoids are evenly arranged in bands of three, i.e. no separation in grana and stroma regions is apparent. In this thesis a protocol was developed to isolate a functional PS I complex of diatoms which can be used for structural analysis by transmissional electron microscopy (TEM). A photosystem I-fucoxanthin chlorophyll protein (PS I-FCP) complex was isolated from the pennate diatom Phaeodactylum tricornutum by ion exchange chromatography. Spectroscopic analysis proved that bound Fcp polypeptides function as a light-harvesting complex. An active light energy transfer from Fcp associated pigments, Chl c and fucoxanthin, towards the PS I core was proven by fluorescence spectroscopy. Oxidised minus reduced difference spectroscopy evidenced the activity of the PS I reaction centre P700 and yielded a chlorophyll a/P700 ratio of approximately 200:1. These data indicate that the isolated PS I-FCP complex exceeds the PS I cores from cyanobacteria and higher plants in the numbers of chlorophyll a molecules. Because of the strict conservation of PS I cores among organisms the additional 100 chlorophyll a molecules must either be coordinated by Fcps or function as linker molecules between the Fcp antenna and the PS I core as shown for the PS I-LHC I complex of higher plants. To tell something about the structural organisation, the PS I-FCP complex was compared with its cyanobacterial and higher plant counterparts. Whereas cyanobacterial PS I cores aggregate to trimers, usually without associated antennae, higher plant PS I is a monomer and binds additionally two LHC I heterodimers. BN-PAGE and gel filtration experiments showed that also diatoms contain PS I monomers associated with Fcps as light-harvesting antenna. First TEM studies evidenced these observations. Negatively stained PS I-FCP particles had an increased size compared to PS I cores of other organisms. No PS I trimers or higher oligomers have been found. The calculated diameter and shape of the particles correspond to PS I-LHC I particles obtained from green algae, which also comprise of a higher number of LHC I polypeptides compared to the higher plant x-ray structure. Additionally, the analysis of polypeptides indicates that the PS I associated Fcps differ from the free Fcp pool and also from Fcps of a PS II enriched fraction. The assumption that diatoms harbour just one Fcp antenna that serve both Photosystems equally seems to be wrong. To further study the association of Fcps with the two Photosystems, both complexes plus the free FCP complexes were isolated from the centric diatom Cyclotella meneghiniana. Because of the availability of antibodies directed against specific Fcp polypeptides of Cyclotella the PS I-FCP complex of Phaeodactylum could not be used. A trimeric FCP complex, FCPa, and a higher FCP oligomer, FCPb, have already been described for C. meneghiniana. The latter is assumed to be composed of only Fcp5, whereas the FCPa contains Fcp2 and Fcp6. Biochemical and spectroscopical evidences revealed a different subset of associated Fcp polypeptides within the isolated photosystem complexes. Whereas the PS II associated Fcp antenna resembles FCPa, at least three different Fcp polypeptides are associated with PS I. By re-solubilisation of the PS I complex and a further purification step Fcp polypeptides were partially removed from PS I and both fractions were analysed again by biochemical and spectroscopical means, as well as by HPLC. Thereby Fcp4 and a so far undescribed 17 kDa Fcp were found to be strongly coupled to PS I, whereas another Fcp, presumably Fcp5, is only loosely bound to the PS I core. Thus an association of FCPb and PS I is assumed.
Diatoms contribute largely to the total primary production of the ecosphere and are key players in global biogeochemical cycles. Their chloroplasts are surrounded by four membranes owing to their secondary endosymbiotic origin. Their thylakoids are arranged into three parallel bands and differentiation of thylakoid membranes into grana or stroma is not observed. The fucoxanthin chlorophyll a/c binding proteins act as the light harvesting proteins and play a role in photoprotection during excess light as well. The diatom genome encodes three different families of antenna proteins. Family I are the classical light harvesting proteins called "Lhcf". Family II are the red algae related Lhca-R1/2 proteins called "Lhcr" and family III are the photoprotective LI818 related proteins called "Lhcx".
All known Fcps have a molecular weight in the range of 17-23 kDa. They are membrane proteins and have shorter loops and termini compared to LHCs of higher plants and are therefore extremely hydrophobic. This makes the isolation of single specific Fcps using routine protein purification techniques difficult.
The purification of a specific Fcp containing complex has not been achieved so far and until this is done several questions concerning light harvesting antenna systems of diatoms cannot be answered. For e.g. Which proteins interact specifically? Are various Fcps differently pigmented? Which pigments interact with each other and how? Which proteins contribute to photosystem specific antenna systems? Can pure Fcps be reconstituted into crystals like LHCII proteins? In order to answer these questions specific Fcp containing complexes have to be purified. ...
Lipopolysaccharide (LPS) is a major glycolipid component in the outer leaflet of the outer membrane of Gram-negative bacteria and known as endotoxin exhibited by the lipid A moiety, which serves as a membrane anchor. The effective permeability barrier properties of the outer membrane contributed by the presence of LPS in the extracellular layer of the outer membrane confer Gram-negative bacteria a high resistance against hydrophobic compounds such as antibiotics, bile salts and detergents to survive in harsh environments. The biogenesis of LPS is well studied in Escherichia coli (herewith E. coli) and the LPS transport (Lpt) is carried out by a transenvelope complex composed of seven essential proteins (LptABCDEFG), which are located in the three compartments of the cell such as the outer membrane, the inner membrane and the periplasm. The Lpt system also exists in Anabaena sp. PCC 7120 (herewith Anabaena sp.), however, homologues of LptC and LptE are still missing. BLAST search failed to identify a homologue of LptC, in contrast, the secondary structure analysis using the Pfam database based on the existing ecLptC secondary structure identified one open reading frame All0231 as the putative Anabaena sp. homologue of LptC, which is designated anaLptC. Despite the low sequence similarity, the secondary structure alignment between anaLptC and ecLptC using the HHpred server showed that both proteins share high secondary structural similarities. The genotypic analysis of the insertion mutant anaLptC did not identify a fully segregated genome and its phenotypic analysis revealed that it was sensitive against chemicals, suggesting that the analptC gene is essential for the growth of Anabaena sp. and involved in the outer membrane biogenesis. This is further supported by the observation of the small cell phenotype in the anaLptC mutant via transmission electron microscopy. Moreover, physical interactions between the anaLptC periplasmic domain with anaLptA as well as with anaLptF were established, indicating that the anaLptC periplasmic domain is correctly folded and alone functional and that the transmembrane helix is not required for the interaction with anaLptA and anaLptF. Furthermore, the reduction of the O-antigen containing LPS was observed in the insertion mutant anaLptC and the dissociation constant Kd of the anaLptC periplasmic domain for ecLPS was determined.The three-dimensional structure of the periplasmic domain of anaLptC was solved by X-ray crystallography with a resolution of 2.8 Å. The structural superposition between the ecLptC crystal structure (PDB number 3my2) and the crystal structure of anaLptC periplasmic domain obtained by this study showed the similarity in the folding of the two proteins with a Cα r.m.s.d value of about 1 Å and confirmed that the length of anaLptC is more than two times longer than that of ecLptC. The structural comparison also revealed that both structures share the typical β-jellyroll fold and conserved amino acids, which were shown in ecLptC to bind to LPS in vivo and found in anaLptC. Overall, these data strongly suggest that anaLptC is involved in the transport of LPS and support the model whereby the bridge spanning the inner membrane and the outer membrane would be assembled via interactions of the structurally conserved β-jellyroll domains shared by five (LptACDFG) out of seven Lpt proteins.
Heat stress transcription factors (Hsfs) have an essential role in heat stress response (HSR) and thermotolerance by controlling the expression of hundreds of genes including heat shock proteins (Hsps) with molecular chaperone functions. Hsf family in plants shows a striking multiplicity, with more than 20 members in many species. In Solanum lycopersicum HsfA1a was reported to act as the master regulator of the onset of HSR and therefore is essential for basal thermotolerance. Evidence for this was provided by the analysis of HsfA1a co-suppression (A1CS) transgenic plants, which exhibited hypersensitivity upon exposure to heat stress (HS) due to the inability of the plants to induce the expression of many HS-genes including HsfA2, HsfB1 and several Hsps. Completion of tomato genome sequencing allowed the completion of the Hsf inventory, which is consisted of 27 members, including another three HsfA1 genes, namely HsfA1b, HsfA1c and HsfA1e.
Consequently, the suppression effect of the short interference RNA in A1CS lin e was re-evaluated for all HsfA1 genes. We found that expression of all HsfA1 proteins was suppressed in A1CS protoplasts. This result suggested that the model of single master regulator needs to be re-examined.
Expression analysis revealed that HsfA1a is constitutively expressed in different tissues and in response to HS, while HsfA1c and HsfA1e are minimally expressed in general, and show an induction during fruit ripening and a weak upregulation in late HSR. Instead HsfA1b shows preferential expression in specific tissues and is strongly and rapidly induced in response to HS. At the protein level HsfA1b and HsfA1e are rapidly degraded while HsfA1a and HsfA1c show a higher stability. In addition, HsfA1a and HsfA1c show a nucleocytosolic distribution, while HsfA1b and HsfA1e a strong nuclear retention.
A major property of a master regulator in HSR is thought to be its ability to cause a strong transactivation of a wide range of genes required for the initial activation of protective mechanisms. GUS reporter assays as well as analysis of transcript levels of several endogenous transcripts in protoplasts transiently expressing HsfA1 proteins revealed that HsfA1a can stimulate the transcription of many genes, while the other Hsfs have weaker activity and only on limited set of target genes. The low activity of HsfA1c and HsfA1e can be attributed to the lower DNA capacity of the two factors as judged by a GUS reporter repressor assay.
HsfA1a has been shown to have synergistic activity with the stress induced HsfA2 and HsfB1. The formation of such complexes is considered as important for stimulation of transcription and long term stress adaptation. All HsfA1 members show synergistic activity with HsfA2, while only HsfA1a act as co-activator of HsfB1 and HsfA7. Interestingly, HsfA1b shows an exceptional synergistic activity with HsfA3, suggesting that different Hsf complexes might regulate different HS-related gene networks. Altogether these results suggest that HsfA1a has unique characteristics within HsfA1 subfamily. This result is interesting considering the very high sequencing similarity among HsfA1s, and particularly among HsfA1a and HsfA1c.
To understand the molecular basis of this discrepancy, a series of domain swapping mutants between HsfA1a and HsfA1c were generated. Oligomerization domain and C-terminal swaps did not affect the basal activity or co-activity of the proteins. Remarkably, an HsfA1a mutant harbouring the N-terminus of HsfA1c shows reduced activity and co-activity, while the reciprocal HsfA1c with the N-terminus of HsfA1a cause a gain of activity and enhanced DNA binding capacity.
Sequence analysis of the DBD of HsfA1 proteins revealed a divergence in the highly conserved C-terminus of the turn of β3-β4 sheet. As the vast majority of HsfA1 proteins, HsfA1a at this position comprises an Arg residue (R107), while HsfA1c a Leu and HsfA1e a Cys. An HsfA1a-R107L mutant has reduced DNA binding capacity and consequently activity. Therefore, the results presented here point to the essential function of this amino acid residue for DNA binding function. Interestingly, the mutation did not affect the activity of the protein on Hsp70-1, suggesting that the functionality of the DBD and consequently the transcription factor on different promoters with variable heat stress element number and architecture is dependent on structural peculiarities of the DBD.
In conclusion, the unique properties including expression pattern, transcriptional activities, stability, DBD-peculiarities are likely responsible for the dominant function of HsfA1a as a master regulator of HSR in tomato. Instead, other HsfA1-members are only participating in HSR or developmental regulations by regulating a specific set of genes. Furthermore, HsfA1b and HsfA1e are likely function as stress primers in specific tissues while HsfA1c as a co-regulator in mild HSR. Thereby, tomato subclass A1 presents another example of function diversity not only within the Hsf family but also within the Hsf-subfamily of closely related members. The diversification based on DBD peculiarities is likely to occur in potato as well. Therefore this might have eliminated the functional redundancy observed in other species such as Arabidopsis thaliana but has probably allowed the more refined regulation of Hsf networks possibly under different stress regimes, tissues and cell types.
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.
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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.
Many metabolic pathways of eukaryotes are carried out in form of interconnected pathways, which take place in organelles. The organelle membrane separates the reaction compartments from each other, making it a key feature of organelle existence in the cell. To maintain cellular homeostasis, organelle positioning in and transport through the cell as well as organelle interaction are important for the organisms. In plants, organellar movement of peroxisomes, Golgi stacks and mitochondria was shown to be mediated by the actin-myosin machinery. The molecular mechanisms are not elucidated, but working models comprise classical movement mechanisms of motor proteins pulling their cargo on cytoskeletal filaments. In contrast, many mechanisms of chloroplasts movement, which are regulated by blue and red light, are deciphered but follow a different molecular mechanism. Plastidal relatives of the chloroplast have long been disregarded by scientific research but carry out important metabolic reactions to maintain cellular homeostasis. The cellular transport and movement mechanisms of root plastids have not been described in detail until now. Additionally, all plastid subspecies can form tubular structures, called stromules. Those are thought to be involved in the organelle communication and metabolite exchange. Since they are very mobile structures, they influence the organellar dynamic of plastids. This work aimed for an in-detail description of the cellular movements of root plastids in the plant Arabidopsis thaliana to elucidate underlying mechanisms of their movement. Additionally, the dynamics of root plastid stromules were investigated, led by the questions, if and how stromules are involved in the mediation of plastidal movement and their overall dynamics. Plastidal movement in Arabidopsis thaliana was captured using light sheet-based fluorescence microscopy. 4D image data was automatically analyzed using the program Arivis Vision 4D with subsequent manual correction. Additionally to the 4D approach, a manual 3D analysis of plastid and stromule dynamics was performed. The results of the semiautomated analysis displayed heterologous distribution of the plastidal movement. Using a combination of the vector length of each motion event and the angle in relation to previous motion vectors, the proportions of different movement patterns were determined. Main fractions of the data showed undirected motion of plastids, whereas small proportions displayed directed movement with speed up to 8.5 µm/sec. Directed motion was shown to be carried out on defined routes in the cell. Salt stress did not affect plastidal motion, whereas drought stress lead to its reduction. Sucrose depletion led to a drastic decrease of plastidal movement. Additionally, stromule dynamics were investigated using the acquired image data. Stromules were observed in high frequency mainly at stationary plastids giving them the opportunity of dynamic interaction in their cellular surrounding. Stromules reached lengths of up to 60 µm. Additionally, they displayed a variety of movement patterns that contributed greatly to the overall plastid dynamics. Stromule related motion events were captured reaching up to 3.2 µm/sec. Similar to determined plastid dynamics, stromule motions were reduced during drought stress and sucrose depletion, but also were negatively influenced by salt stress. Those results strongly favor an actin-myosin mediated movement machinery mediating the plastidal and stromule movement. This stands in contrast to previous results describing the movement mechanisms of light induced chloroplast movement.
In an additional approach, the molecular mechanisms underlying stromule formation were analyzed. Previous results describe that stromule formation can be induced at isolated chloroplasts of the plant Nicotiana benthamiana by mixing it with concentrated cell extract. During this work, a variation of the described assay was established using the plant Pisum sativum. It was shown that an unknown protein factor presumably undergoing protein-lipid interaction is responsible for in vitro stromule formation. Using a combination of sucrose gradient centrifugation and anion exchange chromatography, the desired factor could be enriched, while the majority of unwanted proteins could be reduced drastically. A following LC-MS analysis revealed a selection of proteins with membrane interaction- and unknown functions that might be involved in in vitro stromule formation.
The growing number of infections with multi-resistant bacteria or the current COVID-19 pandemic put compounds with therapeutic properties into the public focus. Non-ribosomal peptides (NRPs) are natural products that are already marketed as antibiotics, cytotoxic agents or immunosuppressants. Their biological activities rely on the structural diversity including non-proteinogenic amino acids (AAs), heterocycles or modifications like methylation or acylation.
The biosynthesis of NRPs is carried out by non-ribosomal peptide synthetases (NRPSs). These multifunctional megaenzymes show a modular architecture like in an assembly-line. Each module is thereby responsible for the incorporation and modification of one AA and therefore contains different catalytic domains. The adenylation (A) domain recognizes and activates its specific substrate in an ATP-dependent manner which is transferred to a 4’-phosphopantetheine cofactor post-translationally attached to the thiolation (T) domain. Peptide bond formation between two T domain bound substrates catalysed by the condensation (C) domain transfers the growing peptide chain to the following module. Such a C-A-T module can be extended with optional domains to integrate structural diversity and a terminal thioesterase (TE) domain usually releases the peptide via hydrolysis or intramolecular attack of nucleophiles. Inspired by the modular architecture, NRPS engineering deals with the modification of NRPs in order to increase biological activities, circumvent bacterial resistances or create de novo peptides. This can be achieved by mutasynthesis or modification of the substrate binding pocket as well as single and multiple domain substitution. However, the few successful approaches led to impaired enzymes and did not establish a general applicable guideline. In the first publication as part of this work, the development of such a guideline comprising three rules is addressed. First, the A-T-C tridomain named exchange unit (XU) is seen as a catalytic unit instead of a module. When using them as building blocks, the C domain’s specificity for the AA of the following XU has to be considered as second rule. Third, a conserved WNATE motif within the C-A linker depicts the fusion point of the XUs. Upon heterologous expression of the cloned plasmids in E. coli and high performance liquid chromatography coupled mass spectrometry-based analysis of the extracts, the ambactin-producing NRPS from Xenorhabdus was reprogrammed with one and two XUs. This only leads to a moderate loss of production titre or an even higher one when the AA configuration was changed by introducing a dual condensation/epimerization (C/E) domain. The pentamodular GameXPeptide-producing NRPS was reconstructed using up to five XUs of four different NRPSs and even completely de novo synthetases were created. The second publication describes the exchange unit condensation domain (XUC) concept and relies on a fusion point between the two subdomains (N-terminal CDsub and C-terminal CAsub) of the C domain’s V-shaped pseudodimeric structure which generates A-T didomains with flanking CAsub and CDsub. These hybrid C domain-forming building blocks depict an improvement to the XU concept by avoiding the drawback of C domain specificity. This allows a more flexible NRPS engineering that can e.g. enable peptide library design. Furthermore, beside a combination of both concepts within one NRPS and a transfer to Bacillus NRPSs, the use of XUC with relaxed A domain specificity allowed further peptide modifications by introducing non-natural AAs. The third publication deals with aldehyde and alcohol-generating reductase (R) domains which depict an alternative for peptide release in NRPSs. A promoter exchange in X. indica identified a pyrazine-producing NRPS with a minimal architecture of an A, T and R domain and was therefore termed ATRed. R domains were additionally used in engineered NRPSs to produce pyrazinones and derivatives thereof by XU substitution although most constructs failed to show production. Beyond that, an R domain has been shown to replace a TE domain in wild type synthetases leading to slightly modified NRPs and the postulated biosynthesis was incidentally revised. Furthermore, an NRPS with terminal R domain was engineered to produce a free peptide aldehyde, which are known to be potent proteasome inhibitors. For the above mentioned ATReds, the presence of up to three coding regions was further identified in 20 different Xenorhabdus strains but only six of them were verified to produce pyrazines. All ATReds share variable sequence similarities among each other and were subsequently divided into three subtypes. One subtype is supposed to perform the pyrazine biosynthesis via a non-canonical catalytic triad.