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Fossile Rohstoffe dienen in unserer heutigen Gesellschaft als Energiequelle und als Rohstofflieferant für Grund-, Feinchemikalien und Pharmazeutika. Sie tragen jedoch zum Klimawandel und Umweltverschmutzung bei. Lignocellulosische Biomasse ist eine erneuerbare und nachhaltige Alternative, die durch biotechnologische Prozesse erschlossen werden kann. Die Bäckerhefe Saccharomyces cerevisiae ist ein sehr gut untersuchter Modellorganismus, für den es zahlreiche genetische Werkzeuge und Analysemethoden gibt. Zudem wird S. cerevisiae häufig in biotechnologischen Prozessen eingesetzt, da diese Hefe robust gegenüber industriellen Bedingungen wie niedrigen pH-Werten, toxischen Chemikalien, osmotischem und mechanischem Stress ist. Die Pentose D-Xylose ist ein wesentlicher Bestandteil von lignocellulosischer Biomasse, die aber nicht natürlicherweise von der Bäckerhefe verwerten werden kann. Für eine kommerzielle Herstellung von Produkten aus lignocellulosischer Biomasse muss S. cerevisiae D-Xylose effektiv verwerten. Für die Bäckerhefe konnten heterologe Stoffwechselwege etabliert werden, damit diese D-Xylose verwerten kann. Für eine effiziente Xyloseverwertung bleiben dennoch zahlreiche Herausforderungen bestehen. Unter anderem nehmen die Zellen D-Xylose über ihre endogenen Hexosetransporter nur langsam auf. Die heterologe Xylose-Isomerase (XI) besitzt in S. cerevisiae eine geringe Aktivität für die Isomerisierung von D-Xylose. Unspezifische Aldosereduktasen konkurrieren mit der Xylose-Isomerase um das gleiche Substrat und produzieren Xylitol, ein starker Inhibitor der Xylose-Isomerase. Eine Möglichkeit die Umsatzrate von Enzymen zu steigern und Substrate vor Nebenreaktionen zu schützen, ist die Anwendung von Substrate Channeling Strategien. Bei Substrate Channeling befinden sich die beteiligten Enzyme in einem Komplex, wodurch die Substrate lokal angereichert werden und von einem aktiven Zentrum zum nächsten weitergeleitet werden, ohne Diffusion in den restlichen Reaktionsraum. In dieser Arbeit wurde untersucht, ob ein Komplex zwischen einem membranständigen Transporter und einem löslichen Enzym konstruiert werden kann, um durch Substrate Channeling eine verbesserte Substrat-Verwertung zu erreichen. Die Xylose-Isomerase aus C. phytofermentans und die endogene Hexose-Permease Gal2 sollten in dieser Arbeit als Modellproteine in S. cerevisiae-Zellen mit Hilfe von Protein-Protein-Interaktionsmodulen (PPIM) in räumliche Nähe zueinander gebracht werden.
Die Expression verschiedener PPIM konnte in S. cerevisiae mittels Western Blot nachgewiesen werden. Auch Fusionsproteine aus unterschiedlichen PPIM wurden in dieser Hefe exprimiert. Die PPIM binden komplementäre PPIM oder kurze Peptidliganden, welche an die Xylose-Isomerase und an den Gal2-Transporter fusioniert wurden. Die Funktionalität beider Proteine wurde mittels in vivo und in vitro Tests untersucht. Die Xylose-Isomerase mit N-terminalen Liganden des WH1-Protein-Protein-Interaktionsmoduls (WH1L-XI) und der Gal2-Transporter mit N-terminalen SYNZIP2-Protein-Protein-Interaktionsmodul (SZ2-Gal2) erwiesen sich als geeignete Kandidaten für weitere Untersuchungen. Mittels indirekter Immunfluoreszenz konnte die Ko-Lokalisierung von SZ2-Gal2 und WH1L-XI, die einander über ein Scaffold-Protein binden, nachgewiesen werden.
Transformanten, in denen ein Komplex aus Transporter, Scaffold-Protein und Xylose-Isomerase gebildet wurde, zeigten bessere Fermentationseigenschaften gegenüber der Scaffold-freien Kontrolle und dem Wildtyp: Sie verwerteten Xylose schneller, bildeten weniger vom unerwünschten Nebenprodukt Xylitol, produzierten mehr Ethanol und wiesen eine höhere Ethanolausbeute auf. Der beobachtete Substrate Channeling Effekt kompensierte die geringere Enzymaktivität der WH1L-XI im Vergleich zum Wildtyp-Protein. Die Wirksamkeit des Substrate Channeling wurde verringert, wenn die Bildung des Komplexes aus Transporter, Scaffold-Protein und Xylose-Isomerase gestört wurde, indem ein getaggtes GFP mit dem Scaffold-Protein um die Bindungsstelle an Gal2 konkurrierte. Dies zeigt, dass die positive Wirkung auf die Komplex-Bildung zwischen XI und Gal2 zurück zu führen ist. Die Fermentationseigenschaften konnten gesteigert werden, indem der zuvor zwischen SZ2-Zipper und Gal2-Transporter verwendete Linker, der aus zehn Aminosäuren von Glycin, Arginin und Prolin (GRP10) bestand, durch einen aus Glycin und Alanin (GA10) ersetzt wurde. Die verbesserten Fermentationseigenschaften beruhten auf einem Substrate Channeling Effekt und einer gesteigerten Aufnahmerate des SZ2-GA10-Gal2-Transporters. Ein Vergleich der Strukturvorhersagen von SZ2-GRP10-Gal2 und SZ2-GA10-Gal2 zeigte, dass der GRP10-Linker einen unstrukturierten, flexiblen Linker ausbildet, während der GA10-Linker eine starre α-Helix ausbildet. Die Struktur und der Transportprozess von Gal2 sind nicht aufgeklärt. Bei verwandten Transportern geht man davon aus, dass Substrate durch Konformationsänderungen ins Innere der Zelle transportiert werden, indem die beiden Domänen gegeneinander klappen. Die α-Helix könnte die Geschwindigkeit der Konformationsänderungen begünstigen.
Durch Kontrollexperimente konnte ausgeschlossen werden, dass die gesteigerten Fermentationseigenschaften eine Folge der Stabilisierung der XI- und Gal2-Fusionsproteine durch das Anfügen des Liganden oder durch Komplexbildung mit dem Scaffold-Protein waren. Substrate Channeling zwischen Gal2 und XI entsteht durch die Komplexbildung mit dem Scaffold-Protein, wodurch sich Gal2 und XI in räumlicher Nähe zueinander befinden. Dieser Effekt beruht möglicherweise zusätzlich aufgrund einer hohen örtlichen Ansammlung dieser Proteine, da die tetramere XI weitere Scaffold-Proteine binden könnte, welche weitere Gal2-Transporter binden könnte. Darüber hinaus sammeln sich Transporter an bestimmten Orten der Membran an und Transporter mit ähnlicher oder gleicher Transmembransequenz tendieren dazu zu ko-lokalisieren. Hierdurch könnten Gal2-XI-Agglomerate entstehen und Xylose wird mit hoher Wahrscheinlichkeit von einer der vielen Xylose-Isomerasen umgesetzt.
Mitochondria are the "power plants" of eukaryotic cells involved cellular energy metabolism and lead the generation of most of the cellular "energy currency" adenosine triphosphate (ATP). In addition, they have other crucial functions including the control of programmed cell death, iron/sulfur cluster biogenesis and copper and calcium homeostasis. Mitochondrial dysfunction is deleterious and leads to degeneration, disease and aging. A number of individual pathways are active in keeping mitochondria functional over longer periods of time and thereby have a strong impact on lifespan. These mitochondrial quality control (mtQC) pathways occur at different molecular and cellular levels and are all limited in their capacity. They do not all work at the same time. Some of them are induced when others fail. Currently, the underlying molecular interaction of pathways and their regulation is only initially elucidated. ...
Ziel dieser Dissertation war es, die biologische Rolle der Autophagie für die Entwicklung, Alterung und mitochondriale Qualitätskontrolle in dem Ascomyceten Podospora anserina zu untersuchen. Folgende Ergebnisse wurden dabei erzielt:
1. Der Verlust einer funktionalen Autophagie-Maschinerie ist in P. anserina mit einem Defekt der Sporen-Entwicklung bzw. -Keimung charakterisiert.
2. Es konnten drei Methoden zur Untersuchung der Autophagie in P. anserina etabliert werden: 1) Die Verwendung eines Gfp::PaAtg8-Stamms ermöglicht die Fluoreszenzmikroskopische Bestimmung der Autophagosomen-Anzahl; 2) Die phänotypische Charakterisierung des PaAtg1-Deletionsstamms unter verschiedenen Stressbedingungen (z. B. Stickstoffmangel, Rapamycin) liefert Hinweise auf eine mögliche Autophagie-abhängige Stressadaption; 3) Die Verwendung des „GFPcleavage assays“ ermöglicht einen quantitativen Nachweis genereller und selektiver Autophagie (hier: Mitophagie).
3. In zwei voneinander unabhängigen Experimenten wurde ein altersabhängiger Anstieg der Autophagie für P. anserina demonstriert: Das Autophagie-Niveau nimmt in gealterten P. anserina-Kulturen zu. Gleichzeitig resultiert der Verlust der Autophagie in ∆PaAtg1 in eine reduzierte Lebensspanne. Unter Stressbedingungen (hier: Stickstoffmangel) wird dieser positive Einfluss der Autophagie auf die Lebensspanne im Wildtyp sogar noch verstärkt.
4. Der unerwartet „gesunde“ Phänotyp der PaSod3-Deletionsmutante ist abhängig von einer funktionalen Autophagie-Maschinerie. Der Mitophagie wurde eine besondere Rolle als Kompensationsmechanismus für den Verlust von PaSOD3 zugeteilt, da das Mitophagie-Niveau in dieser Mutante erhöht ist. Am Beispiel dieser Mutante, für die ein erhöhter Superoxid-Ausstoß nachgewiesen wurde, konnte eine Dosis-abhängige Wirkung von ROS in P. anserina identifiziert werden. Eine geringe zelluläre ROSMenge verursacht eine mitohormetische Reaktion, die eine Induktion der Mitophagie zur Folge hat und sich positiv auf den Organismus auswirkt. Übersteigt die zelluläre ROS-Dosis einen kritischen Punkt, kommt es zur Induktion des autophagischen Zelltods und damit zum vorzeitigen Tod des Individuums.
5. Der Verlust der PaCLPXP-Protease führt zu Beeinträchtigungen in der Funktion und Zusammensetzung der mitochondrialen Atmungskette. Dieses Defizit im Energiemetabolismus wird über eine Induktion der AOX, vor allem aber über eine ZUSAMMENFASSUNG 127 gesteigerte Autophagie kompensiert. Die deutlich verlängerte Lebensspanne der verschiedenen PaClpXP-Deletionsmutanten (∆PaClpX, ∆PaClpP und ∆PaClpXP) ist abhängig von einer funktionalen Autophagie-Maschinerie. Interessanterweise konnte keine kompensatorische Funktion der Autophagie oder Mitophagie für den Verlust der mitochondrialen i-AAA-Protease PaIAP in P. anserina nachgewiesen werden.
Autophagie/Mitophagie stellt einen übergeordneten Qualitätskontrollmechanismus in P. anserina dar, der den Organismus sehr effektiv vor zellulären Schäden und Dysfunktionen bewahrt und einen positiven Einfluss auf die Alterung, Entwicklung und Energieversorgung einnimmt.
The degradation of nonfunctional mitochondrial proteins is of fundamental relevance for maintenance of cellular homeostasis. The heteromeric CLPXP protein complex in the mitochondrial matrix is part of this process. In the fungal aging model Podospora anserina, ablation of CLPXP leads to an increase in healthy lifespan. Here, we report that this counterintuitive increase depends on a functional autophagy machinery. In PaClpXP mutants, autophagy is involved in energy conservation and the compensation of impairments in respiration. Strikingly, despite the impact on mitochondrial function, it is not mitophagy but general autophagy that is constitutively induced and required for longevity. In contrast, in another long-lived mutant ablated for the mitochondrial PaIAP protease, autophagy is neither induced nor required for lifespan extension. Our data provide novel mechanistic insights into the capacity of different forms of autophagy to compensate impairments of specific components of the complex mitochondrial quality control network and about the biological role of mitochondrial CLPXP in the control of cellular energy metabolism.
The mammalian thalamocortical system generates intrinsic activity reflecting different states of excitability, arising from changes in the membrane potentials of underlying neuronal networks. Fluctuations between these states occur spontaneously, regularly, and frequently throughout awake periods and influence stimulus encoding, information processing, and neuronal and behavioral responses. Changes of pupil size have recently been identified as a reliable marker of underlying neuronal membrane potential and thus can encode associated network state changes in rodent cortex. This suggests that pupillometry, a ubiquitous measure of pupil dilation in cognitive neuroscience, could be used as an index for network state fluctuations also for human brain signals. Considering this variable may explain task-independent variance in neuronal and behavioral signals that were previously disregarded as noise.
Parkinson's disease (PD) is a frequent neurodegenerative process in old age. Accumulation and aggregation of the lipid-binding SNARE complex component α-synuclein (SNCA) underlies this vulnerability and defines stages of disease progression. Determinants of SNCA levels and mechanisms of SNCA neurotoxicity have been intensely investigated. In view of the physiological roles of SNCA in blood to modulate vesicle release, we studied blood samples from a new large pedigree with SNCA gene duplication (PARK4 mutation) to identify effects of SNCA gain of function as potential disease biomarkers. Downregulation of complexin 1 (CPLX1) mRNA was correlated with genotype, but the expression of other Parkinson's disease genes was not. In global RNA-seq profiling of blood from presymptomatic PARK4 indviduals, bioinformatics detected significant upregulations for platelet activation, hemostasis, lipoproteins, endocytosis, lysosome, cytokine, Toll-like receptor signaling and extracellular pathways. In PARK4 platelets, stimulus-triggered degranulation was impaired. Strong SPP1, GZMH and PLTP mRNA upregulations were validated in PARK4. When analysing individuals with rapid eye movement sleep behavior disorder, the most specific known prodromal stage of general PD, only blood CPLX1 levels were altered. Validation experiments confirmed an inverse mutual regulation of SNCA and CPLX1 mRNA levels. In the 3′-UTR of the CPLX1 gene we identified a single nucleotide polymorphism that is significantly associated with PD risk. In summary, our data define CPLX1 as a PD risk factor and provide functional insights into the role and regulation of blood SNCA levels. The new blood biomarkers of PARK4 in this Turkish family might become useful for PD prediction.
SR proteins function in nuclear pre-mRNA processing, mRNA export, and translation. To investigate their cellular dynamics, we developed a quantitative assay, which detects differences in nucleocytoplasmic shuttling among seven canonical SR protein family members. As expected, SRSF2 and SRSF5 shuttle poorly in HeLa cells but surprisingly display considerable shuttling in pluripotent murine P19 cells. Combining individual-resolution cross-linking and immunoprecipitation (iCLIP) and mass spectrometry, we show that elevated arginine methylation of SRSF5 and lower phosphorylation levels of cobound SRSF2 enhance shuttling of SRSF5 in P19 cells by modulating protein-protein and protein-RNA interactions. Moreover, SRSF5 is bound to pluripotency-specific transcripts such as Lin28a and Pou5f1/Oct4 in the cytoplasm. SRSF5 depletion reduces and overexpression increases their cytoplasmic mRNA levels, suggesting that enhanced mRNA export by SRSF5 is required for the expression of pluripotency factors. Remarkably, neural differentiation of P19 cells leads to dramatically reduced SRSF5 shuttling. Our findings indicate that posttranslational modification of SR proteins underlies the regulation of their mRNA export activities and distinguishes pluripotent from differentiated cells.
Characterizing the hologenome of Lasallia pustulata and tracing genomic footprints of lichenization
(2017)
The lichen symbiosis – consisting of fungal mycobionts and photoautotroph photobionts (green algae or cyanobacteria) – is globally successful. It covers an estimated 6% of the global surface with habitats ranging from deserts to the arctic. This success is reflected in the diversity of the mycobionts, with around 21% of all fungal species participating in lichen symbioses that can be facultative or obligate. Lichenization is furthermore evolutionary old, with fossil evidence for lichens reaching back 415 million years. For an individual fungal lineage, the Lecanoromycetes, the lichenization happened around 300 million years ago. This longstanding symbiotic relationship and the diversity of observed symbiotic dependency make them promising models to study the genomic consequences that follow the establishment of symbioses. Despite this, only little is known about the genomic effects of lichenization and extreme symbiotic dependency. To fill this gap we sequenced the hologenome of the lichen Lasallia pustulata, where the mycobiont could so far not been cultivated, suggesting that it might be more dependent on its symbionts.
As the poor culturability of lichen symbionts renders their genomes inaccessible to standard sequencing practices, we evaluated the extent to which different metagenome sequencing- and de novo assembly-strategies can be used to sequence and reconstruct the genomes of the individual symbionts. We find that the abundances of individual genomes present in the L. pustulata hologenome vary substantially, with the mycobiont being most abundant. Using in silico generated data sets and real Illumina sequencing data for L. pustulata we observe that the skewed abundances prevent a contiguous assembly of the underrepresented genomes when using only short-read sequencing. We conclude that short-read sequencing can offer first insights into lichen hologenomes. The fragmentation of the reconstructions hinders downstream analyses into the genomic consequences of lichenization though, as these are focused on identifying the gain and loss of genes.
We thus demonstrate a hybrid genome assembly strategy that is based on both short- and long-read sequencing. We show that this strategy is capable of creating highly contiguous genome reconstructions, not only for the L. pustulata mycobiont but also its photobiont Trebouxia sp., along with substantial amounts of the bacterial microbiome. A subsequent analysis of the microbiome of L. pustulata – performed over nine different samples collected in Germany and Italy – showed a stable taxonomic composition across the geographic range. We find that Acidobacteriaceae, which are known to thrive in nutrient poor habitats, are the dominant taxa. These would make them well adapted for the co-habitation with L. pustulata, which largely grows on rocks. Whether the Acidobacteriaceae are functionally involved in the lichen symbiosis is unclear so far.
As further comparative genomic studies rely on comprehensive genome annotations, we evaluate the completeness and fidelity of the gene annotations for the mycobiont L. pustulata as well as four further Lecanoromycetes. This reveals that un- and mis-annotated genes impact all evaluated genomes, with artificially joined genes and unannotated genes having the largest impact. In addition to these factors we find that the sequence composition – especially G/C-rich inverted repeats – lead to sequencing errors that interfere with the gene prediction. We minimize the effects of these artifacts through a rigorous curation.
Given the extremely sparse taxon sampling of available green alga genomes, we focus our search for the genomic footprints of lichenization on the mycobionts. We compare the genomes of the Lecanoromycetes to their closest relatives, the Eurotiomycetes and Dothideomycetes. This reveals that the last common ancestor of the Lecanoromycetes has lost around 10% of its genes after they split from the non-lichenized ancestor they share with the Eurotiomycetes. These losses are furthermore enriched, showing an excessive loss of genes involved with the degradation of polysaccharides. The loss of these genes fits a change from an ancestral saprotrophic lifestyle that depends on degrading complex plant matter, to the symbiotic lifestyle that relies on simpler nutrients provided by the photobionts. While the last common ancestor of the Lecanoromycetes additionally gained around 400 genes these could so far not be further characterized due to a lack of functionally annotated reference data.
As the mycobiont L. pustulata could so far not been grown in axenic culture, we initially expected to find an extensive genomic remodeling compared to the other mycobionts that easily grow in culture. We do not find evidence for this. Analyzing both the contraction of gene families and the loss of genes, we observe that L. pustulata and Umbilicaria muehlenbergii – its close relative that is easily grown in culture – share most of these. Furthermore, L. pustulata does not show an excessive loss of evolutionary old and well-conserved genes. These effects are mirrored on the functional level, as neither gene family contractions nor gene losses show a functional enrichment. This is partially due to the lack of functional reference data, analogous to the genes gained in the Lecanoromycetes, rendering their characterization hard. Thus, further studies on the genomic consequences of lichenization and differences in symbiotic dependence will have to be conducted, including larger taxon sets. This will be even more important for the photobionts, as the Chlorophyta are even more sparsely sampled today, hindering an effective functional and evolutionary study.
The red yeast Xanthophyllomyces dendrorhous is an established platform for the synthesis of carotenoids. It was used for the generation of novel multi oxygenated carotenoid structures. This was achieved by a combinatorial approach starting with the selection of a β-carotene accumulating mutant, stepwise pathway engineering by integration of three microbial genes into the genome and finally the chemical reduction of the resulting 4,4’-diketo-nostoxanthin (2,3,2’,3’-tetrahydroxy-4,4’-diketo-β-carotene) and 4-keto-nostoxanthin (2,3,2’,3’-tetrahydroxy-4-monoketo-β-carotene). Both keto carotenoids and the resulting 4,4’-dihydroxy-nostoxanthin (2,3,4,2’,3’,4’-hexahydroxy-β-carotene) and 4-hydroxy-nostoxanthin (2,3,4,2’3’-pentahydroxy-β-carotene) were separated by high-performance liquid chromatography (HPLC) and analyzed by mass spectrometry. Their molecular masses and fragmentation patterns allowed the unequivocal identification of all four carotenoids.
The fruit fly Drosophila melanogaster is one of the most important biological model organisms, but only the comparative approach with closely related species provides insights into the evolutionary diversification of insects. Of particular interest is the live imaging of fluorophores in developing embryos. It provides data for the analysis and comparison of the threedimensional morphogenesis as a function of time. However, for all species apart from Drosophila, for example the red flour beetle Tribolium castaneum, essentially no established standard operation procedures are available and the pool of data and resources is sparse. The goal of my PhD project was to address these limitations. I was able to accomplish the following milestones:
- Development of the hemisphere and cobweb mounting methods for the non-invasive imaging of Tribolium embryos in light sheet-based fluorescence microscopes and characterization of most crucial embryogenetic events.
- Comprehensive documentation of methods as protocols that describe (i) beetle rearing in the laboratory, (ii) preparation of embryos, (ii) calibration of light sheet-based fluorescence microscopes, (iv) recording over several days, (v) embryo retrieval as a quality control as well as (vi) data processing.
- Adaption of the methods to record and analyze embryonic morphogenesis of the Mediterranean fruit fly Ceratitis capitata and the two-spotted cricket Gryllus bimaculatus as well as integration of the data into an evolutionary context.
- Further development of the hemisphere method to allow the bead-based / landmark-based registration and fusion of three-dimensional images acquired along multiple directions to compensate the shadowing effect.
- Development of the BugCube, a web-based computer program that allows to share image data, which was recorded by using light sheet-based fluorescence microscopy, with colleagues.
- Invention and experimental proof-of-principle of the (i) AGameOfClones vector concept that creates homozygous transgenic insect lines systematically. Additionally, partial proof-of-principle of the (ii) AClashOfStrings vector concept that creates double homozygous transgenic insect lines systematically, as well as preliminary evaluation of the (iii) AStormOfRecords vector concept that creates triple homozygous transgenic insect lines systematically.
- Creation and performance screening of more than fifty transgenic Tribolium lines for the long-term imaging of embryogenesis in fluorescence microscopes, including the first Lifeact and histone subunit-based lines.
My primary results contribute significantly to the advanced fluorescence imaging approaches of insect species beyond Drosophila. The image data can be used to compare different strategies of embryonic morphogenesis and thus to interpret the respective phylogenetic context. My technological developments extend the methodological arsenal for insect model organisms considerably.
Within my perspective, I emphasize the importance of non-invasive long-term fluorescence live imaging to establish speciesspecific morphogenetic standards, discuss the feasibly of a morphologic ontology on the cellular level, suggest the ‘nested linearly decreasing phylogenetic relationship’ approach for evolutionary developmental biology, propose the live imaging of species hybrids to investigate speciation and finally outline how light sheet-based fluorescence microscopy contributes to the transition from on-demand to systematic data acquisition in developmental biology.
During my PhD project, I wrote a total of ten manuscripts, six of which were already published in peer-reviewed scientific journals. Additionally, I supervised four Master and two Bachelor projects whose scientific questions were inspired by the topic of my PhD work.