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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.
Carotinoide sind Pigmente, die in Pflanzen, Algen, einigen Pilzen und Bakterien vorkommen. Sie spielen eine wichtige Rolle bei der Photosynthese durch Absorption von Licht und beim Lichtschutz. Sie sind verantwortlich für die braunen, roten, orangen und gelben Farben von Obst, Gemüse, Herbstblättern und die Farbe einiger Blumen und Algen. Tiere können keine Carotinoide synthetisieren, daher ist ihre Anwesenheit auf die Nahrungsaufnahme zurückzuführen. Carotinoide sind Tetraterpenoide (40C), die aus Isoprenoidmolekülen (5C) synthetisiert werden. Der Methylerythritol-phosphatweg ist der Carotinoid-Vorläuferweg, der die Isoprenoideinheiten bildet. Carotinoide haben aufgrund ihrer gesundheitlichen Vorteile das Interesse der Nutrazeutika-Industrie geweckt.
Fucoxanthin ist ein Carotinoid, das nur in Kieselalgen, Braunalgen, Haptophyten und einigen Dinoflagellaten vorkommt. Aufgrund seiner Vorteile zur Vorbeugung von Krebs, kognitiven Erkrankungen und Fettleibigkeit sowie seiner antioxidativen Eigenschaften ist Fucoxanthin ein sehr interessantes Molekül fur die Nutrazeutikabranche.
Fucoxanthin hat eine komplexe chemische Struktur mit einer Allenbindung und einer Epoxyketogruppe. Daher wäre seine chemische Synthese kompliziert, da es auch eine stereokontrollierte Synthese erfordert86. Aus diesem Grund ist die Extraktion aus Makroalgen oder Mikroalgen die Methode der Wahl für die kommerzielle Herstellung von Fucoxanthin.
In dieser Arbeit bestand das Ziel darin, die Fucoxanthin-Produktivität in Kieselalgen mit gentechnischen Methoden zu steigern, damit die Zellen mehr Fucoxanthin produzieren. Zu diesem Zweck wurde der Effekt der Insertion zusätzlicher Kopien von Genen in das Genom untersucht, die für geschwindigkeitsbestimmende oder Schlüsselenzyme im Carotinoid- und MEP-Weg kodieren.
Zu Beginn wurden diese Effekte bei einzelnen Mutanten beobachtet. Letztendlich ist es jedoch das Ziel, eine Mutante zu erzeugen, die mehrere geschwindigkeitsbestimmende Enzyme überexprimiert, um auf diese Weise Engpässe zu vermeiden. In früheren Studien erreichten Eilers et al.54 durch die einmalige Überexpression der psy- und dxs-Gene in der Kieselalge P. tricornutum einen 2.4- und 1.8-fachen Anstieg der Fucoxanthin-Spiegel.
In dieser Arbeit führte die Insertion zusätzlicher Kopien der Gene idi und pds2 nicht dazu, dass die Zellen mehr Fucoxanthin produzieren. Im Gegensatz dazu erreichten die Mutanten mit zusätzlichen Kopien der Gen ggpps und mit zusätzlichen Kopien sowohl von psy als auch von dxs seine um 28% bzw. 10% höhere Fucoxanthin-Produktivität pro Million Zellen. Bei diesen Mutanten ist die Gesamtproduktivität jedoch geringer als beim Wildtyp, da ihr Wachstum langsamer als beim Wildtyp ist.
Unter Berücksichtigung der besten Zielgene wurden Mutanten erzeugt, die gleichzeitig zusätzliche Kopien von psy, dxs und ggpps enthielten. Die Mutanten hatten unter sehr niedriegen Lichtbedingungen eine um bis zu 61% höhere Produktivität pro Million Zellen als der Wildtyp. Ausnahmsweise wurden diese Mutanten bei sehr schwachem Licht (10 µE m-2 s-1) gezüchtet, da sie sehr gestresst waren und als Zellklumpen wuchsen. Obwohl die Gesamt-Fucoxanthin-Spiegel in diesen Mutanten unter diesen Bedingungen höher sind als im Wildtyp, sind sie daher niedriger als die Fucoxanthin-Spiegel bei den in anderen Experimenten verwendeten Lichtbedingungen (50 µE m-2 s-1). Als Ergebnis dieser Experimente kann gesagt werden, dass die Belastung der Zellen nach den genetischen Veränderungen untersucht werden muss, da dies zu einer Abnahme der Biomasse und folglich zu einer Abnahme der Fucoxanthinproduktion führt. Alternativ könnte auch eine 2-Stufen-Kultur etabliert werden, in der in einem ersten Schritt eine hohe Biomasse erreicht wird und im zweiten Schritt die Expression der interessierenden Gene induziert wird.
Aufgrund der antioxidativen Eigenschaften von Carotinoiden besteht eine übliche Strategie zur Akkumulation von Carotinoiden darin, die Zellen unter oxidative Stressbedingungen zu setzen. Diese Strategie ist jedoch nicht wirksam für die Anreicherung von Fucoxanthin unter hohen Salzkonzentrationen oder hohen Lichtbedingungen. Bessere Versuchspläne könnten jedoch eine 2-Stufen-Kultur oder adaptive Laborbedingungen gewesen sein.
Eine andere mögliche Strategie zur Erhöhung des Fucoxanthinspiegels wäre die Durchführung einer zufälligen Mutagenese der Zellen. Auf diese Weise sind keine Vorkenntnisse über den Carotinoidsyntheseweg und seine Regulation erforderlich und es kann zu Veränderungen in Genen führen, die keine offensichtlichen Ziele sind.
Experimente mit zufälliger Mutagenese erfordern ein Hochdurchsatz-Screeningsystem, da Hunderte oder sogar Tausende von Mutanten erhalten werden. Eine mögliche Strategie, um die Kultivierung der hohen Anzahl von Mutanten zu vereinfachen, ist die Einkapselung dieser Mutanten in Alginatkügelchen. Auf diese Weise können alle Mutanten in demselben Gefäß kultiviert werden. Die eingekapselten Zellen können dann beispielsweise mit einem Durchflusszytometer auf große Partikel durch Fluoreszenz- oder Absorptionsmessungen gescreent werden.
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Get3 in Arabidopsis
(2021)
Der guided entry of tail-anchored proteins (GET) Biogenese-Weg vermittelt den Transport und die Insertion von tail-anchor (TA) Proteinen in die Doppellipidschicht des Endoplasmatischen Retikulums (ER). TA Proteine sind dadurch gekennzeichnet, dass sie eine Transmembran Domäne (TMD) in den letzten 50 Aminosäuren ihrer Sequenz beherbergen. Diese TMD enthält die notwendigen Informationen, mit denen die Proteine an ihren jeweiligen subzellulären Zielort transportiert werden können. TA Proteine erfüllen eine Vielzahl von essentiellen biologischen Prozessen, sie fungieren zum Beispiel als Rezeptoren, sind maßgeblich an der Fusion von Vesikeln beteiligt sowie an der Initiation von Apoptose. Durch ihren modularen Aufbau können TA Proteine nicht mit dem Signalerkennungspartikel interagieren und müssen deshalb posttranslational zum ER geleitet werden. Im Modellorganismus Bäckerhefe (Saccharomyces cerevisiae) ist der GET Biogenese-Weg am besten beschrieben und läuft wie folgt ab: Nach der Termination der Translation bindet das Protein SgtA das TA Protein und händigt es über den Adapter-Komplex, bestehend aus Get4 und Get5, an die zytosolische ATPase Get3 aus. Get3 ist der zentrale Zielsteuerungsfaktor des GET Biogenese-Weges. Sobald sich ein Komplex aus Zeilsteuerungsfaktor und TA Protein gebildet hat, wird dieses zur Membran des ERs überführt. Dort wird das TA Protein an den Rezeptorkomplex bestehend aus Get1 und Get2 übergeben, welcher anschließend die Insertion des TA Proteins in die Doppellipidschicht des ERs initiiert.
Get3 hat im zellulären Kontext noch eine weitere Funktion. Unter oxidativem Stress oder Energie depletierenden Bedingungen wird Get3 zu spezifischen Foci rekrutiert, an denen sich noch weitere durch Stress -induzierbare Proteine, wie z.B. die der Familie der Hitze Stress Proteine (HSPs) versammeln. Analysen haben gezeigt, dass Get3 unter den oben genannten Bedingungen, Konformationsänderungen durchläuft und dann als ATP unabhängige Holdase fungiert. Diese kann die exponierten, hydrophoben Anteile von Proteinen binden, um dadurch die Proteostasis aufrechtzuhalten.
Durch die Bedeutsamkeit der TA Proteinen ist die zentrale ATPase Get3 in allen Domänen des Lebens hochgradig konserviert. Phylogenetische Analysen ergaben, dass sich Get3 im Allgemeinen in eine „A“ Gruppe sowie eine „BC“ Gruppe aufspaltet. Im Modellorganismus Arabidopsis thaliana (Ackerschmalwand) wurden drei Orthologe zu Get3 identifiziert. Eins davon gehört zu der „A“ Gruppe und befindet sich im Zytoplasma. Die anderen zwei Orthologe befinden sich in den Organellen endo-symbiotischen Ursprungs und gehören der „BC“ Gruppe an. Untersuchungen an verschiedenen Deletionsmutanten in A. thaliana haben gezeigt, dass die Mutationen einzelner GET Komponenten zu einer signifikanten Verkürzung der Haarwurzeln führen, obwohl der restliche Habitus der Pflanze unverändert bleibt. Diesbezüglich wurde SYP123 als einziges TA Proteine identifiziert, dessen Abundanz durch die Deletion von GET Komponenten beeinflusst werden kann. Von den anderen beiden Orthologen organellären Ursprungs ist, abgesehen von ihrer Lokalisation nichts weiter bekannt
Vier Orthologe Gruppen in Pflanzen
Da bislang nicht mehr als zehn Pflanzenarten für phylogenetische Analysen herangezogen wurden, wurden in dieser Arbeit die taxonomischen Beziehungen von Get3 zu einander in 50 Spezies der Viridiplantae auf Basis der Orthologie sowie Homologie untersucht. Dies führte zur Identifizierung einer zytolischen (AtGet3a), einer plastidären (AtGet3b), einer mitochondriellen (AtGet3c) sowie einer Monokotyledone spezifischen Gruppe (SBGet3). Die Lokalisation der ersten drei Gruppen wurde in selektierten Pflanzen, sowohl homolog als auch heterolog, der unterschiedlichen Spezies mittels saGFP untersucht, und es konnte gezeigt werden, dass mehrere Get3 Orthologe mit unterschiedlichen subzellulären Lokalisationen eine unter Pflanze häufig auftretende Eigenschaft ist. Das Weitern konnte gezeigt werden, dass manche Komponenten des Präzielsteuerungskomplexes (SgtA und Get4) sowie des Rezeptorkomplexes (Get1) in fast allen der 50 untersuchten Pflanzenarten vorhanden sind. Dies weist auf eine Konservierung des gesamten GET Biogenese-Weges in Pflanzen hin.
Get3a in Arabidopsis thaliana
Da die molekulare Zusammensetzung des Präzielsteuerungskomplexes für AtGet3a in A. thaliana nicht bekannt ist, habe ich Co-Immunpräzipitationen mit Zellextrakten aus weißer Zellkultur und einen von mir selbst aufgereinigten Antikörper gegen AtGet3a durchgeführt. Nach anschließender Gelelektrophorese und einer Anfärbung mit Coomassie Brilliant Blue ließ sich ein reproduzierbares Muster aus Proteinbanden erkennen, welche ausgeschnitten und mittels LC-MS/MS analysiert wurden. Dadurch wurde ein putativer Kandidat für Get5 identifiziert sowie eine Assoziation mit Chaperonen und proteasomalen Untereinheiten.
Um die Zielsteuerungseffizienz und Topologie von ER-Membranproteinen zu analysieren habe ich (i) die rekombinante Synthese eines Modell-TA Proteins mit glykosylierbarem opsin bovine glycosylation Tag (OPG) etabliert sowie (ii) eine Methode etabliert um in isolierten Protoplasten die Richtigkeit der Insertion zu überprüfen. Mit Hilfe dieser Methoden können nun verschiedene Mutanten auf ihre Insertions-Wirksamkeit untersucht werden. Desweitern können durch Mutationsanalysen die notwendigen physikochemischen Eigenschaften für die Erkennung des Substrates ermittelt werden.
Eine weit verbreitete Methode im GET Feld ist die tail-anchor translocation (TAT). Bei dieser Methode werden isolierte mikrosomale Fraktionen des rauen ERs mit rekombinanten Komplexen bestehend aus Zielsteuerungsfaktor und TA Protein inkubiert. Durch einen rekombinanten OPG, der im Lumen des ERs post-translational modifiziert werden kann, ist die Beobachtung einer zeitabhängigen Kinetik der Glykosylierung möglich. Dieses System wurde bislang nur für Komponenten aus Säugern oder Hefen benutzt, aber noch nie mit einem System auf pflanzlicher Basis. Um dies zu verwirklichen, habe ich die rekombinante Proteinexpression soweit optimiert, dass der Großteil des synthetisierten Proteins sich im löslichen Anteil des Lysats statt in den Inclusion Bodies befand. Mittels dieser Optimierung konnte ich die Ko-Expression von Zielsteuerungsfaktor mit TA Protein als löslichen Komplex etablieren. Ergänzend zu den löslichen Komplexen habe ich eine geeignete Methode etabliert um mittels Saccharosegradienten mikrosomale Fraktionen aufzutrennen in denen AtGet3a angereichert ist. Leider müssen noch die Parameter der Reaktion optimiert werden, aber die Akquirierung alle nötigen Bestandteile ist etabliert.
Lizards of Paraguay: an integrative approach to solve taxonomic problems in central South America
(2018)
Paraguay is located in the center of South America with drier and warmer climatic conditions in the western part of the country, and more temperate and humid in the eastern region. Biogeographically, Paraguay is a key spot in South America, where several ecoregions converge. In my study, I sampled most of the ecoregions of Paraguay. The main objective of my work is to solve taxonomic problems, identified through genetic barcoding analyses, in the central region of South America. To achieve this objective, I used selected taxa of the Paraguayan Squamata as models taking into consideration the crucial geographic position of the country, plus the scarce available genetic data of Paraguayan reptiles.
The collecting activities were performed in the framework of a barcoding inventory project of the Paraguayan herpetofauna and carried out mostly in rural areas searching for animals in different types of habitats using active search as the sampling technique.
For genetics, the extraction of DNA was performed with DNeasy® Blood & Tissue Kit of Qiagen® for sets of few samples, and the fiber glass plate protocol for sets of 96 samples. I assessed the quality of sequences after amplification in agarose gel electrophoresis. The first marker sequenced was 16S mtDNA, used for barcoding analysis. A DNA barcode is a genetic identifier for a species. Once a taxonomic problem was detected, I generate more gene sequences to target the issue.
All the analyses to test phylogenetic hypotheses (based on single genes or concatenated datasets) were performed under Maximum Likelihood and Bayesian approaches. To root the phylogenetic trees, I chose the available taxon (or taxa) most closely related to the respective studied group as outgroups. For the general tree of Paraguayan Squamata, based on barcodes of 16S, I chose Sphenodon punctatus.
I generated a total of 142 sequences of 64 species of Squamata from Paraguay (Appendix I). The final alignment of 615 bp comprised 249 samples. The best substitution model for the Barcoding dataset based on the gene 16S was GTR+G, according to the BIC.
To complement molecular evidence generated with the ML grouping of 16S barcodes, I took a morphological approach based on voucher specimens collected during fieldwork (usually the same specimens that I used for genetic analysis), supplemented by the revision of museum collections.
Summarizing my results, samples of Colobosaura exhibit large genetic distances, and accordingly I revalidated Colobosaura kraepelini (Appendix II). Tropidurus of the spinulosus group show two clades and among them there is little genetic and morphological variation, I synonymized T. tarara and T. teyumirim with T. lagunablanca, and T. guarani with T. spinulosus (Appendix III). I detected the presence of candidate species of Homonota, and I restricted the name H. horrida for Argentina, and described two new species of Homonota (Appendices IV and V), and a new species of Phyllopezus also in the Family Phyllodactylidae (Appendix VI).
In this work I present the most comprehensive analysis of genetic samples of Squamata from Paraguay. The results obtained here will be useful to help to clarify further taxonomic issues regarding the squamate fauna from the central region of South America. Moreover, the data generated for this study will have a positive impact in a larger geographic context, beyond Paraguayan borders.
Regarding the conservation of the Paraguayan reptiles, and considering the taxonomic changes accomplished here, it is important to note that many species lack legal protection. In Paraguay, the major problem for conservation is habitat loss due to extensive crop farming. Thus, currently, the protected areas are the best strategy for conservation of biodiversity in the country. However, many such areas face legal problems (e.g., lack of official measurements, management plans, forest guards, infrastructure, etc.) so that the maintenance of their biodiversity over time is not guaranteed.
In conclusion, in this study I present contributions on the taxonomy of mostly lizards from Paraguay. Due to lack of samples, I was not able to deal with a deep taxonomic revision of the country's snakes. Based on my results, I can argue that analyses of Xenodontini and Pseudoboini are currently a pressing research issue. This barcoding project may continue since some colleagues in Paraguay are interested in collaboration. Given that the sequenced specimens are yet a small portion of the actual diversity of Paraguay, it will be of utmost importance to continue and expand these studies that will further improve our taxonomic knowledge. Furthermore, it is desirable to have Paraguayan scientists not only involved, but to see them taking the lead of high quality taxonomic research.
Light is one of the most important abiotic factors for plant physiological processes. In addition to light intensity, the spectral quality of light can also influence the plant morphology and the content of secondary metabolites. In the horticultural industry, artificial light is used in to enable year-round production of herbs, ornamental plants and vegetables in winter terms.
Until today, discharge lamps like high-pressure sodium (HPS) lamps, emitting predominantly orange and red light and high amounts of infrared radiation, are the most common lamp systems in greenhouses. In the last decades, light-emitting diodes (LEDs) emerged as an efficient alternative light source. LEDs have the advantage of distinct adjustments to the light spectrum. For a usage in horticultural industry LEDs are often too expensive. Furthermore, reduced plant growth can occur due to incorrectly adjusted light spectra and lower leaf temperatures caused by the lack of infrared radiation.
In a research project (LOEWE, funding no. 487/15-29) funded by the Hessen State Ministry of Higher Education, Research and Arts, Microwave plasma lamps (MPL) were tested as new light sources for horticultural industry and plant research. The electrodeless lamp systems emit light in similar properties like sun light. The aim of the study was to determine the influence of artificial sunlight of the MPL on the accumulation of secondary metabolites, plant architecture and plant physiology of three different species (coleus, basil and potted roses). The MPL was compared with other light systems such as commercial HPS lamps, LEDs or ceramic metal halide lamps (CDM). In addition to morphological parameters such as plant height, internode length or fresh and dry weight, the phenolic content of leaves grown under the respective light sources were examined.
Overall an increased far-red light content in the emission spectra of the MPL showed high influence on the plant architecture which was observed in all three plant species. Artificial sunlight from MPL induced stem elongation in coleus and basil plants, compared to the other tested light sources. In potted roses a reduced branching degree was observed under MPL light compared to HPS grown plants.
In addition to the impact of far-red light also the blue light content of the emission spectra was found to be a strong influencing factor for plant physiological processes. A positive correlation between blue light content and leaf thickness was determined in coleus cultivated under MPL, LED, HPS and CDM lamps. Low blue light content in HPS emission spectra resulted in shade-adapted leaves with low photosynthetic capacity and susceptibility to high irradiances. Blue light was assumed to increase phenolic metabolites in basil and rose leaves. Furthermore, the different light treatments resulted in an alteration of the composition of essential oils of basil.
Experiments with coleus plants demonstrated that besides light color also the infrared radiation, had an influence on secondary metabolites by causing different leaf temperatures. Coleus plants grown with MPL showed the lowest content of phenolic compounds such as rosmarinic acid per dry weight. Infrared radiation resulted in a faster plant development indicated by increased biomass production and higher leaf formation rate as observed in coleus and basil plants.
The results obtained in this study show that the influence of leaf temperature should always be considered when comparing different lamp systems. Especially when LEDs are compared to discharge lamps an overestimation of light color can be a consequence since also infrared radiation influences the content of phenolic compounds and plant growth.
Mikroalgen wird aufgrund ihrer photoautotrophen Lebensweise, ihrer meist einfachen Anzucht und ihres schnellen Wachstums ein großes Potential als Produzenten verschiedener Stoffe, wie beispielsweise den Sekundärmetaboliten der Carotinoidbiosynthese, zugesprochen. Zur Produktion solcher Stoffe bedarf es der Aufklärung der in einem Biosyntheseweg operierenden Enzyme und ihrer zugehörigen Gene.
In dieser Arbeit sollte einerseits durch genetische Modifikation der Carotinoidbiosynthese der Fucoxanthingehalt erhöht und andererseits die Produktion von Astaxanthin in P. tricornutum erreicht werden. Bisher fehlen experimentelle Nachweise über die Funktion, Regulation und die limitierenden Eigenschaften daran beteiligter Gene und deren Enzyme. Um dem Ziel der Arbeit näher zu kommen, wurden zuerst potentiell an der Regulation der Carotinoidbiosynthese beteiligte Gene ausgewählt und deren Enzyme funktionell charakterisiert. Eines dieser Enzyme ist das Eingangsenzym der Carotinoidbiosynthese, die Phytoen-Synthase. Die entsprechend annotierte putative Sequenz (psy #Pt56881) wurde zur Analyse herangezogen. Nachdem im Rahmen dieser Arbeit über die Komplementation in einem dafür ausgerichteten E. coli Stamm der funktionelle Nachweis der Phytoen-Synthase erbracht werden konnte, wurde untersucht, ob die Phytoen-Synthase einer lichtabhängigen Expression unterliegt und somit die Carotinoidsynthese im WT von P. tricornutum limitiert. Durch die Inhibierung der Phytoen-Desaturase mittels Norflurazon konnte die verstärkte Akkumulation des Produktes der Phytoen-Synthase, Phytoen, bei einem Transfer der P. tricornutum-Kulturen von Schwach- in Starklicht gezeigt werden. Die Expression der Phytoen-Synthase von P. tricornutum wird demnach durch die Lichtbedingungen reguliert und limitiert auch die Carotinoidsynthese. Ein weiteres an der Carotinoidsynthese beteiligtes Enzym ist die Zeaxanthin-Epoxidase. Sie bietet zugleich eine Möglichkeit, an dieser Stelle die Carotinoidsynthese in Richtung Astaxanthinproduktion umzulenken. Für P. tricornutum sind drei potentielle Genkandidaten (zep1: #Pt45845; zep2: #Pt56488; zep3: #Pt56792) annotiert, welche ebenfalls im Rahmen dieser Arbeit funktionell charakterisiert wurden. Der funktionelle Nachweis erfolgte dabei ebenfalls mittels eines Komplementationsansatzes in einem damit neu etablierten Expressionssystem mit npq2-Mutanten aus der Modellpflanze A. thaliana. Die Analyse der Transformanden zeigte eine Epoxidase-Aktivität des Produktes aus zep2 und zep3. Das Enzym Zeaxanthin-Epoxidase 2 weist dabei eine andere Spezifität auf als die Zeaxanthin-Epoxidase 3, welche funktionell betrachtet der Zeaxanthin-Epoxidase aus A. thaliana am nächsten kommt. Die Zeaxanthin-Epoxidase 2 akzeptiert im Unterschied zu Zeaxanthin-Epoxidase 3 neben Zeaxanthin auch andere Substrate wie Lutein mit nur einem 3 Hydroxy-β-Iononring und stellt damit einen validen Kandidaten für die Umwandlung von Diatoxanthin in Diadinoxanthin in P. tricornutum dar. Obwohl die Transkriptanalysen ausreichende Mengen an RNA von zep1 in A. thaliana zeigen und anhand eines zusätzlichen mit der Sequenz für GFP markierten zep1-Konstruktes in WT-Protoplasten von A. thaliana der Import in den Chloroplasten und die Expression nachgewiesen werden konnte, weist die Zeaxanthin-Epoxidase 1 zumindest in den A. thaliana-Transformanden keine Epoxidase-Aktivität auf. Des Weiteren zeigt die diurnale Expression in P. tricornutum, dass die Regulation der Zeaxanthin-Epoxidasen an den Bedarf photoprotektiver Pigmente angepasst wird. Während die Regulation des Transkript-Levels von zep2 und zep3 nahezu parallel laufen und ein gemeinsames Maximum aufweisen, zeigt das Transkript-Level von zep1 ein anderes Maximum.
Die gewonnenen Erkenntnisse wurden dann zur Steigerung der Synthesekapazität mittels genetischer Modifikation des Carotinoidsyntheseweges in P. tricornutum angewendet. Durch das Einbringen zusätzlicher Genkopien der Phytoen-Synthase in P. tricornutum konnte dabei eine deutliche Steigerung des Fucoxanthingehalts unter Schwachlichtbedingungen erreicht werden. Gleichzeitig konnte durch weitere inhibitorische Versuche mittels Norflurazon beim Transfer von Schwach- zu Starklicht demonstriert werden, dass die Carotinoidsynthese durch die Kombination der genetischen Modifikation mit der Phytoen-Synthase und Starklicht per se weiterhin gesteigert werden kann. Zusammen mit den Transkriptanalysen zeigen die Pigmentanalysen, dass es einen nicht-linearen Zusammenhang zwischen RNA-Menge und gebildeter Phytoenmenge gibt, welcher durch eine zusätzliche Substratlimitierung der Phytoen-Synthase erklärt werden kann.
Bevor das Herunterregulieren der Zeaxanthin-Epoxidasen in P. tricornutum durchgeführt und damit ein verstärkter Fluss zur Astaxanthinbildung erreicht werden sollte, wurde das Potential von P. tricornutum zur Astaxanthinproduktion überprüft. Hierfür wurde die β-Carotin-Ketolase (bkt #CrAEA35045.1) aus C. reinhardtii einmal ohne und zusätzlich mit verschiedenen Präsequenzen fusioniert separat in P. tricornutum eingebracht. Astaxanthin konnte trotz Nutzung funktionell bestätigter Präsequenzen aus der Literatur nicht nachgewiesen werden. Die Versuche zeigen damit, dass hier noch weitere Untersuchungen nötig sind, um mittels eines geeigneten Transportsystems Fremd-Proteine in den Chloroplasten von P. tricornutum einzubringen. Das Ausbleiben der Astaxanthinproduktion konnte an dieser Stelle nicht hinreichend geklärt werden.
Insgesamt schaffen die Ergebnisse dieser Arbeit eine weitere Grundlage, um die Carotinoidbiosynthese in P. tricornutum besser zu verstehen und diese mittels genetischer Modifikationen biotechnologisch nutzbar zu machen.
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.
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)