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- Theodor-Boveri-Institut für Biowissenschaften (173)
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Schriftenreihe
Sonstige beteiligte Institutionen
- Cologne Game Lab (3)
- DFG Forschungsgruppe 2757 / Lokale Selbstregelungen im Kontext schwacher Staatlichkeit in Antike und Moderne (LoSAM) (2)
- Klinikum Fulda (2)
- Open University of the Netherlands (2)
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- Akademie der Wissenschaften und der Literatur, Mainz (1)
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- Biomedical Center Munich, Department of Physiological Chemistry, Ludwig-Maximilians-Universität München (1)
- Birmingham City University (1)
Ciliary neurotrophic factor (Cntf) acts as a differentiation and survival factor for different types of neurons and glial cells. It is expressed by peripheral Schwann cells and astrocytes in the central nervous system and mediates its effects via a receptor complex involving CntfRα, LifRß and gp130, leading to downstream activation of Stat3. Recent studies by our group have shown that Cntf modulates neuronal microtubule dynamics via Stat3/stathmin interaction. In a mouse model for motor neuron disease, i.e. pmn, Cntf is able to rescue axonal degeneration through Stat3/stathmin signaling. While these findings suggest a role of Cntf in controlling axonal functions in the neuromuscular system, additional data indicate that Cntf might also play a role in synaptic plasticity in the hippocampus. Electrophysiological recordings in hippocampal organotypic cultures and acute slices revealed a deficit in long-term potentiation (LTP) in Cntf -/- mice. This deficit was rescued by 24 h stimulation with Cntf, combined with an acute application of Cntf during LTP-measurements indicating that Cntf is both necessary and sufficient for hippocampal LTP, and possibly synaptic plasticity. Therefore, Cntf knockout mice were investigated to elucidate this possible role of Cntf in hippocampal LTP and synaptic plasticity.
First, we validated the presence of Cntf in the target tissue: in the hippocampus, Cntf was localized in Gfap-positive astrocytes surrounding small blood vessels in the fissure and in meningeal areas close to the dentate gyrus. Laser micro-dissection and qPCR analysis showed a similar distribution of Cntf-coding mRNA validating the obtained immunofluorescent results. Despite the strong LTP deficit in organotypic cultures, in vivo behavior of Cntf -/- mice regarding hippocampus-dependent learning and anxiety-related paradigms was largely inconspicuous. However, western blot analysis of hippocampal organotypic cultures revealed a significant reduction of pStat3 levels in Cntf -/- cultures under baseline conditions, which in turn were elevated upon Cntf stimulation. In order to resolve and examine synaptic structures we turned to in vitro analysis of cultured hippocampal neurons which indicated that pStat3 is predominantly located in the presynapse. In line with these findings, presynapses of Cntf -/- cultures were reduced in size and when in contact to astrocytes, contained less pStat3 immunoreactivity compared to presynapses in wildtype cultures.
In conclusion, our findings hypothesize that despite of a largely inconspicuous behavioral phenotype of Cntf -/- mice, Cntf appears to have an influence on pStat3 levels at hippocampal synapses. In a next step these two key questions need to be addressed experimentally: 1) is there a compensatory mechanism by members of the Cntf family, possibly downstream of pStat3, which explains the in vivo behavioral results of Cntf -/- mice and can likewise account for the largely inconspicuous phenotype in CNTF-deficient humans? 2) How exactly does Cntf influence LTP through Stat3 signaling? To unravel the underlying mechanism further experiments should therefore investigate whether microtubule dynamics downstream of Stat3 and stathmin signaling are involved in the Cntf-induced modulation of hippocampal synaptic plasticity, similar to as it was shown in motoneurons.
Ziel der Untersuchung:
Verglichen wurden die räumlichen Abweichungen der Bohrpfade nach virtueller Planung von Schablonen geführten Trepanationen mit Hilfe der Softwaresysteme SicatEndo (SE) und coDiagnostiX (CDX) und der benötigte Arbeitsaufwand.
Material und Methode:
Basierend auf µCT-Datensätzen von humanen obliterierten Frontzähnen wurden identische Kunststoffzähne und acht Zahnmodelle (4 Ober-, 4 Unterkiefer) hergestellt. Es wurde jeweils ein DVT und ein Oberflächenscan angefertigt. Diese Datensätze (DICOM; STL) wurden in die Softwaresysteme importiert und fusioniert. Anschließend wurden die Bohrpfade für je 16 Probenzähne pro Software geplant. Mit Hilfe der erstellten Schablonen wurden alle Trepanationen an den im Phantomkopf fixierten Modellen von einem Behandler durchgeführt. Nach Erschließung des apikalen Wurzelkanalanteils wurde ein DVT angefertigt und mit dem präoperativen DVT überlagert. Die räumliche drei-dimensionale (3D) Abweichung zwischen virtuell geplantem und tatsächlichem Bohrpfad wurde über die Vektorlänge bestimmt und der Arbeitsaufwand anhand der Planungszeit und der Anzahl der Mausklicks pro Kiefer erfasst.
Ergebnisse:
Für die Trepanationen mit SE zeigten sich signifikant geringe Abweichungen an der Bohrerspitze vestibulär-oral [CDX 0,54mm ± 0,32mm; SE 0,12mm ± 0,11mm; p < 0.05], 3D [CDX 0,74mm ± 0,26 mm; SE 0,35mm ± 0,17mm; p < 0.05] und hinsichtlich des Winkels [CDX 1,57° ± 0,76°; SE 0,68° ± 0,41°; p < 0.05] als mit CDX. Für CDX war der Planungsaufwand signifikant geringer als für SE hinsichtlich Planungszeit [CDX Ø 10min 50sec; SE Ø 20min 28sec] und hinsichtlich der Anzahl der Klicks pro Kiefer [CDX Ø 107; SE Ø 341].
Zusammenfassung:
Beide Planungssysteme ermöglichen ausreichend präzise Schablonen geführte Bohrungen zur Erschließung apikaler Wurzelkanalanteile.
Analysis of \(Trypanosoma\) \(brucei\) motility and the infection process in the tsetse fly vector
(2021)
African trypanosomes are protist pathogens that are infective for a wide spectrum of mammalian hosts. Motility has been shown to be essential for their survival and represents an important virulence factor. Trypanosoma brucei is transmitted by the bite of the bloodsucking tsetse fly, the only vector for these parasites. The voyage through the fly is complex and requires several migration, proliferation and differentiation steps, which take place in a defined order and in specific fly tissues.
The first part of this doctoral thesis deals with the establishment of the trypanosome tsetse system as a new model for microswimmer analysis. There is an increasing interdisciplinary interest in microbial motility, but a lack of accessible model systems. Therefore, this work introduces the first enclosed in vivo host parasite system that is suitable for analysis of diverse microswimmer types in specific microenvironments. Several methods were used and adapted to gain unprecedented insights into trypanosome motion, the fly´s interior architecture and the physical interaction between host and parasite. This work provides a detailed overview on trypanosome motile behavior as a function of development in diverse host surroundings. In additional, the potential use of artificial environments is shown. This can be used to partly abstract the complex fly architecture and analyze trypanosome motion in defined nature inspired geometries.
In the second part of the thesis, the infection of the tsetse fly is under investigation. Two different trypanosome forms exist in the blood: proliferative slender cells and cell cycle arrested stumpy cells. Previous literature states that stumpy cells are pre adapted to survive inside the fly, whereas slender cells die shortly after ingestion. However, infection experiments in our laboratory showed that slender cells were also potentially infective. During this work, infections were set up so as to minimize the possibility of stumpy cells being ingested, corroborating the observation that slender cells are able to infect flies. Using live cell microscopy and fluorescent reporter cell lines, a comparative analysis of the early development following infection with either slender or stumpy cells was performed. The experiments showed, for the first time, the survival of slender trypanosomes and their direct differentiation to the procyclic midgut stage, contradicting the current view in the field of research. Therefore, we can shift perspectives in trypanosome biology by proposing a revised life cycle model of T. brucei, where both bloodstream stages are infective for the vector.
Insight into molecular mechanisms of folding and self-association of spider silk protein domains
(2021)
Spider silk is a biomaterial of extraordinary toughness paired with elasticity. The assembly of silk proteins, so-called spidroins (from “spider” and “fibroin”), generates the silk threads we typically see in our garden or the corners of our houses. Although spider webs from different species vary considerably in geometry and size, many sections of spidroin sequences are conserved. Highly conserved regions, found in all spidroins, relate to the terminal domains of the protein, i.e., the N-terminal (NTD) and C-terminal domains (CTD). Both have an essential function in the silk fibre association and polymerisation.
The NTD is a 14 kDa five-helix bundle, which self-associates via a pH-driven mechanism. This process is critical for starting the polymerisation of the fibre. However, detailed insights into how conserved this mechanism is in different species and the quantitative thermodynamic comparison between homologous NTDs was missing. For this reason, four homologous NTDs of the major ampullate gland (MaSp) from spider species Euprosthenops australis, Nephila clavipes, Latrodectus hesperus, and Latrodectus geometricus were investigated. I analysed and quantified equilibrium thermodynamics, kinetics of folding, and self-association. Methods involved dynamic light scattering (MALS), stopped-flow fluorescence and circular dichroism spectroscopy in combination with thermal and chemical denaturation experiments. The results showed conserved, cooperative two-state folding on a sub-millisecond time scale. All homologous NTDs showed a similarly fast association in the order of 10^9 M^−1 s^−1, while the resulting equilibrium dissociation constants were in the low nanomolar range. Electrostatic forces were found to be of great importance for protein association. Monomeric protein stability increased with salt concentration while enhancing its folding speed. However, due to Debye-Hückel effects, we found intermolecular electrostatics to be shielded, which reduced the NTDs association capacity significantly at high ionic strength. Altogether, the energetics and kinetics of the NTD dimerisation was conserved for all analysed homologs.
Comparable to the NTD, the spider silks CTD is also a α-helix bundle, which covalently links two spidroins. The orientation of the domains predetermines the future fibre geometry. Here again, the detailed quantitative characterisation of the folding and dimerisation was missing. Therefore, the CTD from the E. australis was analysed in-depth. The protein folded via a three-state mechanism and was placed in the family of knotted proteins.
By analysing the amino acid composition of the NTD of the MaSp1 of the Euprosthenops australis, we found an unusually high content of methionine residues (Met). To elucidate why this protein exhibits so many Met residues, I mutated all core Mets simultaneously to leucine (Leu). Results revealed a dramatically stabilised NTD, which now folded 50 times faster. After solving the tertiary structure of the mutant by NMR (nuclear magnetic resonance) spectroscopy, the structure of the monomeric mutant was found to be identical with the wild-type protein. However, when probing the dimerisation of the NTD, I could show that the association capacity was substantially impaired for the mutant. Our findings lead to the conclusion that Met provides the NTD with enhanced conformational dynamics and thus mobilises the protein, which results in tightly associated dimers. In additional experiments, I first re-introduced new Met residues into the Met-depleted protein at sequence positions containing native Leu. Hence, the mutated NTD protein was provided with the same number of Leu, which were previously removed by mutation. However, the protein did not regain wild-type characteristics. The functionality was not restored, but its stability was decreased as expected. To probe our hypothesis gained from the MaSp NTD, I transferred the experiment to another protein, namely the Hsp90 chaperone. Therefore, I incorporated methionine residues in the protein, which resulted in a slight improvement of its function.
Finally, trial experiments were performed aiming at the synthesis of shortened spidroin constructs containing less repetitive middle-segments than the wild-type protein. The objective was to study the findings of the terminal domains in the context of an intact spidroin. The synthesis of these engineered spidroins was challenging. Nevertheless, preliminary results encourage the assumption that the characteristics observed in the isolated domains hold true in the context of a full-length spidroin.
Because of its complexity and intricacy, studying the nervous system is often challenging. Fortunately, the small nematode roundworm Caenorhabditis elegans is well established as a model system for basic neurobiological research. The C. elegans model is also the only organism with a supposedly complete connectome, an organism-wide map of synaptic connectivity resolved by electron microscopy, which provides some understanding of how the nervous system works as a whole. However, the number of available data-sets is small and the connectome contains errors and gaps. One example of this concerns electrical synapses. Electrical synapses are formed by gap junctions and difficult to map due to their often ambiguous morphology in electron micrographs, leading to misclassification or omission. On the other hand, chemical synapses are more easily mapped, but many aspects of their mode of operation remain elusive and their role in the C. elegans connectome is oversimplified. A comprehensive understanding of signal transduction of neurons between each other and other cells will be indispensable for a comprehensive understanding of the nervous system. In this thesis, I approach these challenges with a combination of advanced light and electron microscopy techniques.
First, this thesis describes a strategy to increase synaptic specificity in connectomics. Specifically, I classify gap junctions with a high degree of confidence. To achieve this, I utilized array tomography (AT). In this thesis, AT is adapted for high-pressure freezing to optimize for structure preservation and for super-resolution light microscopy; in this manner, I aim to bridge the gap between light and electron microscopy resolutions. I call this adaptation super-resolution array tomography (srAT). The srAT approach made it possible to clearly identify and map gap junctions with high precision and accuracy. The results from this study showcased the feasibility of incorporating electrical synapses into connectomes in a systematic manner, and subsequent studies have used srAT for other models and questions.
As mentioned above, the C. elegans connectomic model suffers from a shortage of datasets. For most larval stages, including the special dauer larval stage, connectome data is completely missing up to now. To obtain the first partial connectome data-set of the C. elegans dauer larva, we used focused ion-beam scanning electron microscopy (FIB-SEM). This technique offers an excellent axial resolution and is useful for acquiring large volumes for connectomics. Together with our collaborators, I acquired several data-sets which enable the analysis of dauer stage-specific “re-wiring” of the nervous system and thus offer valuable insights into connectome plasticity/variability.
While chemical synapses are easy to map relative to electrical synapses, signal transduction via chemical transmitters requires a large number of different proteins and molecular processes acting in conjunction in a highly constricted space. Because of the small spatial scale of the synapse, investigating protein function requires very high resolution, which electron tomography provides. I analyzed electron tomograms of a worm-line with a mutant synaptic protein, the serine/threonine kinase SAD-1, and found remarkable alterations in several architectural features. My results confirm and re-contextualize previous findings and provide new insight into the functions of this protein at the chemical synapse.
Finally, I investigated the effectiveness of our methods on “malfunctioning,” synapses, using an amyotrophic lateral sclerosis (ALS) model. In the putative synaptopathy ALS, the mechanisms of motor neuron death are mostly unknown. However, mutations in the gene FUS (Fused in Sarcoma) are one known cause of the disease. The expression of the mutated human FUS in C. elegans was recently shown to produce an ALS-like phenotype in the worms, rendering C. elegans an attractive disease model for ALS. Together with our collaboration partners, I applied both srAT and electron tomography methods to “ALS worms” and found effects on vesicle docking. These findings help to explain electrophysiological recordings that revealed a decrease in frequency of mini excitatory synaptic currents, but not amplitudes, in ALS worms compared to controls. In addition, synaptic endosomes appeared larger and contained electron-dense filaments in our tomograms. These results substantiate the idea that mutated FUS impairs vesicle docking and also offer new insights into further molecular mechanisms of disease development in FUS-dependent ALS. Furthermore, we demonstrated the broader applicability of our methods by successfully using them on cultured mouse motor neurons.
Overall, using the C. elegans model and a combination of light and electron microscopy methods, this thesis helps to elucidate the structure and function of neuronal synapses, towards the aim of obtaining a comprehensive model of the nervous system.
Arid environments cover almost one-third of the land over the world. Plant life in hot arid regions is prone to the water shortage and associated high temperatures. Drought-stressed plants close the stomata to reduce water loss. Under such conditions, the remaining water loss exclusively happens across the plant cuticle. The cuticular water permeability equals the minimum and inevitable water loss from the epidermal cells to the atmosphere under maximally stomatal closure. Thus, low cuticular water permeability is primordial for plant survival and viability under limited water source. The assumption that non-succulent xerophytes retard water loss due to the secretion of a heavier cuticle is often found in the literature. Intuitively, this seems to be plausible, but few studies have been conducted to evaluate the cuticular permeability of xerophilous plants. In chapter one, we investigated whether the cuticular permeability of Quercus coccifera L. grown in the aridest Mediterranean-subtype climate is indeed lower than that of individuals grown under temperate climate conditions. Also, the cuticular wax chemical compositions of plants grown in both habitats were qualitatively and quantitatively analysed by gas-chromatography. In few words, our findings showed that although the cuticular wax deposition increased in plants under Mediterranean climate, the cuticular permeability remained unaltered, regardless of habitat.
The associated high temperatures in arid regions can drastically increase the cuticular water permeability. Thereby, the thermal stability of the cuticular transpirational barrier is decisive for safeguarding non-succulent xerophytes against desiccation. The successful adaptation of plants to hot deserts might be based on finding different solutions to cope with water and heat stresses. Water-saver plants close the stomata before the leaf water potential drastically changes in order to prevent damage, whereas water-spender plants reduce the leaf water potential by opening the stomata, which allow them to extract water from the deep soil to compensate the high water loss by stomatal transpiration. In chapter two, we compare the thermal stability of the cuticular transpiration barrier of the desert water-saver Phoenix dactylifera L. and the water-spender Citrullus colocynthis (L.) Schrad. In short, the temperature-dependent increase of the cuticular permeability of P. dactylifera was linear over the whole temperature range (25-50°C), while that of C. colocynthis was biphasic with a steep increase at temperatures ≥ 40°C. This drastic increase of cuticular permeability indicates a thermally induced breakdown of the C. colocynthis cuticular transpiration barrier, which does not occur in P. dactylifera. We further discussed how the specific chemical composition of the cutin and cuticular waxes might contribute to the pronounced thermal resistance of the P. dactylifera cuticular transpiration barrier.
A multitude of morpho and physiological modifications, including photosynthetic thermal tolerance and traits related to water balance, led to the successful plant colonisation of hot arid regions over the globe. High evaporative demand and elevated temperatures very often go along together, thereby constraining the plant life in arid environments. In chapter 3, we surveyed cuticular permeability, leaf thermal tolerance, and cuticular wax chemical composition of 14 non-succulent plant species native from some of the hottest and driest biomes in South-America, Europe, and Asia. Our findings showed that xerophilous flowering plants present high variability for cuticular permeability and leaf thermal tolerance, but both physiological features could not be associated with the species original habitat. We also provide substantial evidence that non-succulent xerophytes with more efficient cuticular transpirational barrier have higher leaf thermal tolerance, which might indicate a potential coevolution of these features in hot arid biomes. We further discussed the efficiency of the cuticular transpiration barrier in function to the cuticular wax chemical composition in the general discussion section.
The integrity of its DNA is fundamental for every living cell. However, DNA is constantly threatened by exogenous and endogenous damaging agents that can cause a variety of different DNA lesions. The severe consequences of an accumulation of DNA lesions are reflected in cancerogenesis and aging. Several DNA repair mechanisms ensure the repair of DNA lesions and thus maintain DNA integrity. One of these DNA repair mechanisms is nucleotide excision repair (NER), which is famous for its ability to address a large variety of structurally unrelated DNA lesions. A key component of eukaryotic NER is the transcription factor II H (TFIIH) complex, which is not only essential for DNA repair but also for transcription. The TFIIH complex is composed of ten subunits. How these subunits work together during NER to unwind the DNA around the lesion is, however, not yet fully understood. High-resolution structural data and biochemical insights into the function of every subunit are thus indispensable to understand the functional networks within TFIIH. The importance of an intact TFIIH complex is reflected in the severe consequences of patient mutations in the TFIIH subunits XPB, XPD or p8 leading to the hallmark diseases xeroderma pigmentosum, Cockayne syndrome and trichothiodystrophy. Defects in the NER pathway are further associated with several types of cancer including skin cancer.
The herein described work focused on five TFIIH subunits derived from the thermophilic fungus Chaetomium thermophilum, the p34/p44 pair and the ternary XPB/p52/p8 complex. The interaction between p34 and p44 was characterized based on a high-resolution structure of the p34_vWA/p44_RING minimal complex. Biochemical studies of the p34/p44 interaction led to the disclosure of an additional interaction between the p34 and p44 subunits, which had not been characterized so far. The p34/p44 interaction was shown to be central to TFIIH, which justifies the presence of several redundant interfaces to safeguard the interaction between the two proteins and might explain why so far, no patient mutations in these subunits have been identified. The p52 subunit of TFIIH was known to be crucial to stimulate the ATPase activity of XPB, which is required during NER. This work presents the first entire atomic resolution structural characterization of p52, which was derived of several crystal structures of p52 variants and a p52/p8 variant thereby demonstrating the interaction between p52 and p8. The precise structural model of p52 offered the possibility to investigate interactions with other TFIIH subunits in more detail. The middle domain 2 of p52 and the N-terminal domain of XPB were shown to mediate the main interaction between the two subunits. An analysis of the p52 crystal structures within recently published cryo-electron microscopy structures of TFIIH provides a model of how p52 and p8 stimulate the ATPase activity of XPB, which is essential for NER and transcription. The structural and biochemical findings of this work provide an additional building block towards the uncovering of the architecture and function of this essential transcription factor.
The eukaryotic gene expression requires extensive regulations to enable the homeostasis of the cell and to allow dynamic responses due to external stimuli. Although many regulatory mechanisms involve the transcription as the first step of the gene expression, intensive regulation occurs also in the post-transcriptional mRNA metabolism. Thereby, the particular composition of the mRNPs plays a central role as the components associated with the mRNA form a specific “mRNP code” which determines the fate of the mRNA. Many proteins which are involved in this regulation and the mRNA metabolism are affected in diseases and especially neurological disorders often result from an aberrant mRNP code which leads to changes in the regulation and expression of mRNPs.
The focus of this work was on a trimeric protein complex which is termed TTF complex based on its subunits TDRD3, TOP3β and FMRP. Biochemical investigations revealed that the three components of the TTF complex are nucleo-cytosolic shuttle proteins which localize in the cytoplasm at the steady-state, associate with mRNPs and are presumably connected to the translation. Upon cellular stress conditions, the TTF components concentrate in stress granules. Thus, the TTF complex is part of the mRNP code, however its target RNAs and function are still completely unknown. Since the loss of functional FMRP results in the fragile X syndrome and TOP3β is associated with schizophrenia and intellectual disability, the TTF complex connects these phenotypically related neuro-psychiatric disorders with each other on a molecular level.
Therefore, the aim of this work was to biochemically characterize the TTF complex and to define its function in the mRNA metabolism. In this work, evidence was provided that TDRD3 acts as the central unit of the TTF complex and directly binds to FMRP as well as to TOP3β. Thereby, the interaction of TDRD3 and TOP3β is very stable, whereas FMRP is a dynamic component. Interestingly, the TTF complex is not bound directly to mRNA, but is recruited via the exon junction complex (EJC) to mRNPs. This interaction is mediated by a specific binding motif of TDRD3, the EBM. Upon biochemical and biological investigations, it was possible to identify the interactome of the TTF complex and to define the role in the mRNA metabolism. The data revealed that the TTF complex is mainly associated with “early” mRNPs and is probably involved in the pioneer round of translation. Furthermore, TOP3β was found to bind directly to the ribosome and thus, establishes a connection between the EJC and the translation machinery. A reduction of the TTF components resulted in selective changes in the proteome in cultured cells, whereby individual protein subsets seem to be regulated rather than the global protein expression.
Moreover, the enzymatic analysis of TOP3β indicated that TOP3β is a type IA topoisomerase which can catalytically attack not only DNA but also RNA. This aspect is particularly interesting with regard to the connection between early mRNPs and the translation which has been revealed in this work.
The data obtained in this work suggest that the TTF complex plays a role in regulating the metabolism of an early mRNP subset possibly in the course of the pioneer round of translation. Until now, the link between an RNA topoisomerase and the mRNA metabolism is thereby unique and thus provides a completely new perspective on the steps in the post-transcriptional gene expression and its regulation.
The human pathogen Chlamydia trachomatis is the main cause of sexually transmitted infections worldwide. The obligate intracellular bacteria are the causative agent of several diseases that reach from conjunctivitis causing trachoma and blindness as well as salpingitis and urethritis which can lead to infertility if left untreated.
In order to gain genetically engineered Chlamydia that inducible knock down specific gene expression, the CRISPRi system was established in C. trachomatis. In a proof of principle experiment it was shown that C. trachomatis pCRISPRi:gCdu1III target ChlaDUB1 expression and reduce the protein amount up to 50 %. Knock-down of the DUB did not influence protein levels of anti-apoptotic Mcl-1 and did not make cells susceptible for apoptosis. However, reduced dCas9 protein size, bacterial growth impairment and off target effects interfering with the GFP signal, form obstacles in CRISPRi system in Chlamydia. For routinely use of the CRISPRi method in C. trachomatis further investigation is needed.
Since the bacterial life cycle includes two morphological and functional distinct forms, it is essential for chlamydial spread to complete the development cycle and form infectious progeny. Therefore, Chlamydia has evolved strategies to evade the host immune system in order to stay undetected throughout the developmental cycle. The bacteria prevent host cell apoptosis via stabilization of anti-apoptotic proteins like Mcl-1, Survivin and HIF-1α and activate pro-survival pathways, inhibiting invasion of immune cells to the site of infection. The host cell itself can destroy intruders via cell specific defense systems that involve autophagy and recruitment of professional immune cells. In this thesis the role of the chlamydial deubiuqitinase ChlaDUB1 upon immune evasion was elucidated. With the mutant strain Ctr Tn-cdu1 that encodes for a truncated DUB due to transposon insertion, it was possible to identify ChlaDUB1 as a potent opponent of the autophagic system. Mutant inclusions were targeted by K48 and K63 chain ubiquitination. Subsequently the inclusion was recognized by autophagic receptors like p62, NBR1 and NDP52 that was reversed again by complementation with the active DUB. Xenophagy was promoted so far as LC3 positive phagosomes formed around the inclusion of Ctr Tn-cdu1, which did not fuse with the lysosome. The detected growth defect in human primary cells of Chlamydia missing the active DUB was not traced back to autophagy, but was due to impaired development and replication. It was possible to identify Ankib1, the E3 ligase, that ubiquitinates the chlamydial inclusion in a siRNA based screen. The activating enzyme Ube1 and the conjugating enzyme Ube2L3 are also essential in this process. Chlamydia have a reduced genome and depend on lipids and nutrients that are translocated from the host cell to the inclusion to proliferate. Recruitment of fragmented Golgi stacks to the inclusion surface was prevented when ChlaDUB1 was inactive, probably causing diminished bacterial growth. Additionally, the modification of the inclusion by Ankib1 and subsequent decoration by autophagic markers was not only present in human but also murine cells. Comparison of other Chlamydia strains and species revealed Ankib1 to be located at the proximity of the inclusion in C. trachomatis strains only but not in C. muridarum or C. pneumoniae, indicating that Ankib1 is specifically the E3 ligase of C. trachomatis. Moreover, the role of ChlaDUB1 in infected tissue was of interest, since ChlaDUB1 protein was also found in early EB stage and so might get in contact with invading immune cells after cell lysis. While bacteria spread and infect new host cells, Chlamydia can also infect immune cells. Infection of human neutrophils with Ctr Tn-cdu1 shows less bacterial survival and affirms the importance of the DUB for bacterial fitness in these cells.
Die wahrscheinlich größten Probleme des 21. Jahrhunderts sind der Klimawandel und die Sicherstellung der Nahrungsmittelversorgung für eine steigende Zahl an Menschen. Durch die Zunahme von extremen Wetterbedingungen wie Trockenheit und Hitze wird der Anbau konventioneller, wenig toleranter Nutzpflanzen erschwert und die dadurch notwendige, steigende Bewässerung der Flächen führt darüber hinaus zu einer zusätzlichen Versalzung der Böden mit für Pflanzen toxischen Natrium- und Chlorid-Ionen. Kenntnisse über Anpassungsstrategien salztoleranter Pflanzen an Salzstress, aber auch detailliertes Wissen über die Steuerung der Transpiration und damit des Wasserverlusts von Pflanzen sind daher wichtig, um auch künftig ertragreiche Landwirtschaft betreiben zu können. In dieser Arbeit habe ich verschiedene Aspekte der pflanzlichen Stressphysiologie bearbeitet, die im Folgenden getrennt voneinander zusammengefasst werden.
I. Funktionelle Unterschiede der PYR/PYL-Rezeptoren von Schließzellen
Entscheidend für den Wasserstatus von Pflanzen ist die Kontrolle des Wasserverlusts durch Spaltöffnungen (Stomata), die von einem Paar Schließzellen gebildet werden. Externe Faktoren wie Licht, Luftfeuchtigkeit und CO2, sowie interne Faktoren wie das Phytohormon Abszisinsäure (ABA) regulieren über Signalkaskaden die Stomaweite und dadurch den Wasserverlust. Die zugrunde liegenden Signalkaskaden überlappen teilweise. Vor allem der Stomaschluss durch erhöhtes CO2 und ABA weisen viele Gemeinsamkeiten auf und die Identifizierung des Konvergenzpunktes beider Signale ist immer noch aktueller Gegenstand der Forschung. Von besonderem Interesse sind dabei die in Schließzellen exprimierten ABA-Rezeptoren der PYR/PYL-Familie. Denn obwohl bislang nicht nachgewiesen werden konnte, dass CO2 zu einem Anstieg des ABA-Gehalts von Schließzellen führt deuten einige Studien darauf hin, dass die ABA-Rezeptoren selbst am CO2-Signalweg beteiligt sind.
Durch Untersuchungen der Stomareaktion von Arabidopsis ABA-Rezeptormutanten konnte ich in dieser Arbeit zeigen, dass die in Schließzellen exprimierten ABA-Rezeptoren der PYR/PYL-Familie funktionale Unterschiede aufweisen. Fünffach-Verlustmutanten der ABA-Rezeptoren PYR1, PYL2, 4, 5 und 8 (12458) waren in ihrem ABA-induzierten Stomaschluss beeinträchtigt und nur die Komplementation mit PYL2 und in geringerem Maße PYR1 konnte die ABA-Sensitivität wiederherstellen. Die Stomata von 12458-Verlustmutanten waren außerdem insensitiv gegenüber erhöhtem CO2, was auf eine Beteiligung der ABA-Rezeptoren am CO2-induzierten Stomaschluss hindeutet und diese Sensitivität konnte nur durch die Komplementation mit PYL4 oder PYL5, nicht aber mit PYL2 wiederhergestellt werden. Somit konnten in dieser Arbeit erstmals funktionelle Unterschiede der PYR/PYLs beim Stoma-Schluss nachgewiesen werden.
Alle externen und internen Stomaschluss-Signale haben außerdem Einfluss auf die Genexpression der Schließzellen und führen zu individuellen expressionellen Adaptionen. In vorangegangenen Microarray Studien konnte gezeigt werden, dass jeder Stimulus auch die Expression eines distinkten Sets an ABA-Rezeptoren beeinflusst. Im Rahmen dieser Arbeit konnte ich außerdem zeigen, dass die Expression der ABA-Rezeptoren bereits auf kleine Änderungen der ABA-Konzentration der Schließzellen reagiert und dass diese sich außerdem in ihrer Sensitivität gegenüber ABA unterschieden. Geringe Änderungen der ABA-Konzentration von Schließzellen haben demnach Auswirkungen auf deren Rezeptor-zusammensetzung. Darüber hinaus konnte ich zeigen, dass die Rezeptoren die Expression unterschiedlicher nachgeschalteter Gene beeinflussen, was darauf hindeutet, dass Anpassungen des Rezeptorpools durch geringe Änderungen des ABA-Gehalts von Schließzellen schlussendlich auf genexpressioneller Ebene zur längerfristigen Adaption an externe Bedingungen führen und die Rezeptoren auch hier funktional verschieden sind.
II. Stomatäre Besonderheiten der toleranten Dattelpalme (Phoenix dactylifera)
Dattelpalmen kommen natürlicherweise an besonders trockenen und heißen Standorten vor, an denen es aufgrund der harschen Bedingungen nur sehr wenigen Pflanzen möglich ist überhaupt zu wachsen. Ein naheliegender Grund für die herausragende Toleranz dieser Art gegenüber wasserlimitierenden Bedingungen ist eine Anpassung der stomatären Regulation zu Gunsten des Wasserhaushalts.
In dieser Arbeit konnte ich durch vergleichende Untersuchungen der lichtabhängigen Transpiration sowie dem ABA-induzierten Stomaschluss grundlegende Unterschiede in der Stomaphysiologie der Dattelpalmen und der eher sensitiven Modellpflanze Arabidopsis thaliana nachweisen. Blattgaswechselmessungen zeigten, dass Dattelpalmen in der Lage sind die Spaltöffnungen bei niedrigen Lichtintensitäten, bei denen Arabidopsis bereits deutlich geöffnete Stomata aufwies, geschlossen zu halten. Der bedeutendste Unterschied in der Stomaphysiologie von Dattelpalmen und Arabidopsis lag aber im ABA-induzierten Stomaschluss. Während über die Petiole verabreichtes ABA bei Arabidopsis innerhalb von 15 Minuten zu einem vollständigen Stomaschluss führte, konnte ich in dieser Arbeit zeigen, dass der ABA-induzierte Stomaschluss der Datteln nitratabhängig ist. ABA allein führte nur zu einem sehr langsamen Stomaschluss der innerhalb einer Stunde nicht vollständig abgeschlossen war. Nur in Gegenwart von Nitrat führte die ABA-Gabe in den Transpirationsstrom der Fiederblätter der Datteln zu einem schnellen und vollständigen Stomaschluss. In Arabidopsis wird der in Schließzellen vorkommende Anionenkanal AtSLAC1 durch eine über den ABA-Signalweg vermittelte Phosphorylierung aktiviert, was schlussendlich zur Aktivierung spannungsabhängiger Kationenkanäle und zum Ausstrom von Kalium aus den Schließzellen führt. Es konnte gezeigt werden, dass die Nitratabhängigkeit der ABA-Antwort der Schließzellen von Dattelpalmen auf Eigenschaften von PdSLAC1 zurückzuführen ist und dieser Kanal nur in Anwesenheit von extrazellulärem Nitrat aktivierbar ist. Mittlerweile konnte, unter anderem basierend auf diesen Ergebnissen, eine Tandem-Aminosäuresequenz identifiziert werden, die die SLAC-Homologe monokotyler Pflanzen wie der Dattelpalme von der dikotyler Pflanzen unterscheidet und zumindest teilweise für die nitratabhängige Aktivierung des Stomaschlusses vieler monokotyler verantwortlich ist.
III. Die Salztoleranz von Phoenix dactylifera und Chenopodium quinoa
Sowohl Dattelpalmen als auch C. quinoa weisen, verglichen mit den meisten anderen Pflanzen, eine hohe Toleranz gegenüber NaCl-haltigen Böden auf. In dieser Arbeit habe ich die Salztoleranz beider Arten untersucht, um so Strategien zu identifizieren, die diesen Pflanzen diese gesteigerte Toleranz ermöglichen.
Dattelpalmen können natürlicherweise auf salzigen Böden wachsen. Makroskopisch weisen diese Pflanzen aber keine Anpassungen wie bspw. Salzdrüsen auf und bislang ist unklar wie Dattelpalmen mit dem NaCl aus dem Boden umgehen. In dieser Arbeit konnte ich zeigen, dass der Natriumgehalt der Fiederblätter der Datteln durch eine sechswöchige Bewässerung mit 600mM NaCl, was ungefähr der Konzentration von Meerwasser entspricht, nicht zunimmt. Demnach sind Datteln so genannte „Exkluder“, also Pflanzen, die eine übermäßige Natriumaufnahme in photosynthetisch aktives Gewebe vermeiden. Der Natriumgehalt der Wurzeln dagegen nahm unter Salzstress aber zu. Diese Zunahme war allerdings in unterschiedlichen Bereichen der Wurzeln verschieden stark. Flammenphotometrische Messungen ergaben einen vom Wurzelansatz ausgehenden graduellen Anstieg des Natriumgehalts, der an der Wurzelspitze am höchsten war. Darüber hinaus konnte eine Induktion von PdSOS1, einem putativen Na+/H+-Antiporter in diesen unteren, natriumhaltigen Bereichen nachgewiesen werden. Eine hohe SOS1-Aktivität gilt bereits in anderen toleranten Arten als Schlüsselmerkmal für deren Toleranz und die gesteigerte Expression von PdSOS1 deutet auf eine erhöhte Natrium-Exportrate aus der Wurzel zurück in den Boden in diesen unteren Bereichen hin, was schlussendlich den Ausschluss von Natrium vermitteln könnte.
In sensitiven Arten führt Salzstress häufig zu einer Abnahme der Kaliumkonzentration des Gewebes. Interessanterweise war dies weder für das Blatt- noch das Wurzelgewebe der Dattelpalmen der Fall. Der Kaliumgehalt beider Gewebe blieb trotz der Bewässerung der Pflanzen mit Salzwasser konstant. Auf expressioneller Ebene konnte ich darüber hinaus zeigen, dass PdHAK5, ein putativer hochaffiner Kaliumtransporter, der unter Kontrollbedingungen überwiegend in den oberen Wurzelabschnitten exprimiert wurde, durch den Salzstress dort reprimiert wurde. PdKT, ebenfalls ein putatives Kalium-Transportprotein dagegen, wurde nicht durch die Salzbehandlung beeinflusst, was zusammengenommen darauf hindeutet, dass das Aufrechterhalten des Kaliumgehalts bei Salzstress durch die differentielle Regulation verschiedener Kaliumaufnahmesysteme gewährleistet wird. Der effiziente Ausschluss von Natrium zusammen mit dem hohen K+/Na+-Verhältnis könnten demnach Schlüsselmerkmale für die hohe Salztoleranz von Phoenix dactylifera darstellen.
Quinoa ist, ähnlich wie die Dattelpalme, eine salztolerante Nutzpflanze. Im Gegensatz zu Dattelpalmen weist Quinoa allerdings besondere Strukturen auf der Epidermis auf, die so genannten epidermalen Blasenhaare (englisch: epidermal bladder cells, EBCs). Die Funktion dieser ballonartig vergrößerten Zellen als externe Salzspeicher wird seit längerem diskutiert.
Flammenphotometrische Messungen des Natriumgehalts von Quinoa unter Salzstressbedingungen ergaben, dass Quinoa anders als Dattelpalmen, Natrium in die oberirdischen, photosynthetisch aktiven Organe aufnimmt. Auch die Zunahme des Natriumgehalts der EBCs konnte ich nachweisen. Junge Blätter haben eine hohe Dichte an intakten EBCs, was deren Funktion als externe Salzspeicher besonders zum Schutz dieser jungen Blätter nahelegt. mRNA-Sequenzierungen ergaben darüber hinaus, dass die EBCs bereits unter Kontrollbedingungen viele in grundlegende Stoffwechselprozesse involvierte Gene sowie membranständige Transportproteine differentiell exprimieren. Diese Unterschiede im Transkriptom der EBCs zum Blattgewebe zeigen, dass katabole Stoffwechselwege nur eine untergeordnete Rolle in den hochspezialisierten EBCs spielen und deren Stoffwechsel auf dem Import energiereicher Zucker und Aminosäuren basiert.
Mittels qPCR-Messungen und RNA-Sequenzierungen konnte ich die gewebespezifische Expression verschiedener Transportproteine nachweisen, die eine gerichtete Aufnahme von Natrium in EBCs ermöglichen könnten. Besonders die differentielle Expression eines Natriumkanals der HKT1-Familie deutet auf dessen Beteiligung an der Natriumbeladung der EBCs hin. CqHKT1.2 wurde ausschließlich in EBCs exprimiert und die elektrophysiologische Charakterisierung dieses Transportproteins ergab eine spannungsabhängige Natriumleitfähigkeit. Dieser Natriumkanal kann demnach die Natriumaufnahme bei Membranspannungen nahe dem Ruhepotential in die EBCs vermitteln und die Deaktivierung des CqHKT1.2 bei depolarisierenden Membranspannungen kann darüber hinaus einen Efflux von Na+ aus den EBCs verhindern. Auch das Expressionsmuster eines putativen Na+/H+-Antiporters (CqSOS1) der nur sehr gering in EBCs aber deutlich höher in Blattgewebe exprimiert wurde, deutet auf eine indirekte Beteiligung dieses SOS1 an der Beladung der EBCs hin. Bereits charakterisierte SOS1-Proteine anderer Pflanzen zeigten unter physiologischen Bedingungen eine Natriumexport-Aktivität. CqSOS1 könnte demnach den Export von Natrium aus Mesophyll- und Epidermiszellen der Blätter in den Apoplasten vermitteln, welches dann über CqHKT1.2 in die EBCs aufgenommen wird.
Trotz der Natriumaufnahme in die oberirdischen Teile und die EBCs führte die Salzbehandlung ähnlich wie bei den Datteln nicht zu einer Abnahme des bemerkenswert hohen Kaliumgehalts. Mittels qPCR-Untersuchungen konnte ich die Expression verschiedener HAK-Orthologe nachweisen, deren Aktivität die Aufrechterhaltung des Kaliumgehalts unter Salzstress vermitteln könnten. Frühere Studien konnten zeigen, dass Salzstress bei Quinoa wie bei vielen salztoleranten Arten zu einem Anstieg der Konzentration von kompatiblen gelösten Substanzen und besonders von Prolin führt. In dieser Arbeit konnte ich die hohe Expression eines Prolintransporters in EBCs nachweisen, was eher auf einen importbasierten Anstieg der Prolinkonzentration als auf die Synthese innerhalb der EBCs schließen lässt.
Zusammengefasst ergaben der Anstieg des Natriumgehalts der EBCs in Verbindung mit den Ergebnissen der RNA-Sequenzierung und den ergänzenden qPCR Messungen, dass die EBCs von Quinoa bereits unter Kontrollbedingen für die Aufnahme von überschüssigen Ionen unter Salzstress spezialisierte Zellen sind, deren Spezialisierung auf dem Import von energiereichreichen Zucken und anderen Substanzen basiert.
Herein described is the discovery of three novel types of dimeric naphthylisoquinoline alkaloids, named mbandakamines, cyclombandakamines, and spirombandakamines. They were found in the leaves of a botanically as yet unidentified, potentially new Ancistrocladus species, collected in the rainforest of the Democratic Republic of the Congo (DRC). Mbandakamines showed an exceptional 6′,1′′-coupling, in the peri-position neighboring one of the outer axes, leading to an extremely high steric hindrance at the central axis, and to U-turn-like molecular shape, which – different from all other dimeric NIQs, whose basic structures are all quite linear – brings three of the four bicyclic ring systems in close proximity to each other. This created an unprecedented follow-up chemistry, involving ring closure reactions, leading to two further, structurally even more intriguing subclasses, the cyclo- and the spirombandakamines, displaying eight stereogenic elements (the highest total number ever found in naphthylisoquinoline alkaloids). The metabolites exhibited pronounced antiplasmodial and antitrypanosomal activities. Likewise reported in this doctoral thesis are the isolation and structural elucidation of naphthylisoquinoline alkaloids from two further potentially new Ancistrocladus species from DRC. Some of these metabolites have shown pronounced antiausterity activities against human pancreatic cancer PANC-1 cells.
Chronic inflammatory diseases such as rheumatoid arthritis, type 2 diabetes and cardiovascular diseases, are associated with the homeostatic imbalance of one of several physiological systems combined with the lack of spontaneous remission, which causes the disease to persevere throughout patients’ lives. The inflammatory response relies mainly on tissue-resident, pro-inflammatory M1 type macrophages and, consequently, a chance for therapeutic intervention lies in driving macrophage polarization towards the anti-inflammatory M2 phenotype. Therefore, anti-inflammatory cytokines that promote M2 polarization, including interleukin-4 (IL4), have promising therapeutic potential. Unfortunately, their systemic use is hampered by a short serum half-life and dose-limiting toxicity. On the way towards cytokine therapies with superior safety and efficacy, this thesis is focused on designing bioresponsive delivery systems for the anti-inflammatory cytokine IL4.
Chapter 1 describes how anti-inflammatory cytokines are tightly regulated in chronic, systemic inflammation as in rheumatoid arthritis but also in acute, local inflammation as in myocardial infarction. Both diseases show a characteristic progression during which anti-inflammatory cytokine delivery is of variable benefit. A conventional, passive drug delivery system is unlikely to release the cytokines such that the delivery matches the dynamic course of the (patho-)physiological progress. This chapter presents a blueprint for active drug delivery systems equipped with a 24/7 inflammation detector that continuously senses for matrix metalloproteinases (MMP) as surrogate markers of the disease progress and responds by releasing cytokines into the affected tissues at the right time and place. Because they are silent during phases of low disease activity, bioresponsive depots could be used to treat patients in asymptomatic states, as a preventive measure. The drug delivery system only gets activated during flares of inflammation, which are then immediately suppressed by the released cytokine drug and could prevent the steady damage of subclinical chronic inflammation, and therefore reduce hospitalization rates.
In a first proof of concept study on controlled cytokine delivery (chapter 2), we developed IL4-decorated particles aiming at sustained and localized cytokine activity. Genetic code expansion was deployed to generate muteins with the IL4’s lysine 42 replaced by two different unnatural amino acids bearing a side chain suitable for click chemistry modification. The new IL4 muteins were thoroughly characterized to ensure proper folding and full bioactivity. Both muteins showed cell-stimulating ability and binding affinity to IL4 receptor alpha similar to those of wild type IL4. Copper-catalyzed (CuAAC) and strain-promoted (SPAAC) azide–alkyne cycloadditions were used to site-selectively anchor IL4 to agarose particles. These particles had sustained IL4 activity, as demonstrated by the induction of TF-1 cell proliferation and anti-inflammatory M2 polarization of M-CSF-generated human macrophages. This approach of site-directed IL4 anchoring on particles demonstrates that cytokine-functionalized particles can provide sustained and spatially controlled immune-modulating stimuli.
The idea of a 24/7 sensing, MMP driven cytokine delivery system, as described in the introductory chapter, was applied in chapter 3. There, we simulated the natural process of cytokine storage in the extracellular matrix (ECM) by using an injectable solution of IL4 for depot formation by enzyme-catalyzed covalent attachment to ECM components such as fibronectin. The immobilized construct is meant to be cleaved from the ECM by matrix-metalloproteinases (MMPs) which are upregulated during flares of inflammation. These two functionalities are facilitated by a peptide containing two sequences: a protease-sensitive peptide linker (PSL) for MMP cleavage and a sequence for covalent attachment by activated human transglutaminase FXIIIa (TGase) included in the injection mix for co-administration. This peptide was site-selectively conjugated to the unnatural amino acid at IL4 position 42 allowing to preserve wild type bioactivity of IL4. In vitro experiments confirmed the anticipated MMP response towards the PSL and TGase-mediated construct attachment to fibronectin of the ECM. Furthermore, the IL4-peptide conjugates were able to reduce inflammation and protect non-load bearing cartilage along with the anterior cruciate ligament from degradation in an osteoarthritis model in rabbits. This represents the first step towards a minimally invasive treatment option using bioresponsive cytokine depots with potential clinical value for inflammatory conditions.
One of the challenges with this approach was the production of the cytokine conjugate, with incorporation of the unnatural amino acid into IL4 being the main bottleneck. Therefore, in chapter 4, we designed a simplified version of this depot system by genetically fusing the bifunctional peptide via a flexible peptide spacer to murine IL4. While human IL4 loses its activity upon C-terminal elongation, murine IL4 is not affected by this modification. The produced murine IL4 fusion protein could be effectively bound to in vitro grown extracellular matrix in presence of TGase. Moreover, the protease-sensitive linker was selectively recognized and cleaved by MMPs, liberating intact and active IL4, although at a slower rate than expected. Murine IL4 offers the advantage to evaluate the bioresponsive cytokine depot in many available mouse models, which was so far not possible with human IL4 due to species selectivity.
For murine IL4, the approach was further extended to systemic delivery in chapter 5. To increase the half-life and specifically target disease sites, we engineered a murine IL4 variant conjugated with a folate-bearing PEG chain for targeting of activated macrophages. The bioactive IL4 conjugate had a high serum stability and the PEGylation increased the half-life to 4 h in vivo. Surprisingly, the folate moiety did not improve targeting in an antigen-induced arthritis (AIA) mouse model. IL4-PEG performed better in targeting the inflamed joint, while IL4-PEG-folate showed stronger accumulation in the liver. Fortunately, the modular nature of the IL4 conjugate facilitates convenient adaption of PEG chain length and the targeting moiety to further improve the half-life and localization of the cytokine.
In summary, this thesis describes a platform technology for the controlled release of cytokines in response to inflammation. By restricting the release of the therapeutic to the site of inflammation, the benefit-risk ratio of this potent class of biologics can be positively influenced. Future research will help to deepen our understanding of how to perfectly combine cytokine, protease-sensitive linker and immobilization tag or targeting moiety to tackle different diseases.
Depressionen und Angststörungen sind die beiden häufigsten psychischen Erkrankungen. Für Angststörungen wurde in zahlreichen Untersuchungen die Bedeutung veränderter Muster in den basalen emotional-assoziativen Lernprozessen für die Ätiologie und Aufrechterhaltung der Erkrankung gezeigt. Hierzu zählen eine verstärkte Akquisitionsreaktion auf den konditionierten Stimulus, Defizite in der Inhibition der Furchtreaktion auf den Sicherheit signalisierenden Stimulus, Übergeneralisierung und Beeinträchtigungen in der Extinktion konditionierter Reaktionen.
Aufgrund der hohen Prävalenzen einer Komorbidität mit Depressionen rückte in den letzten Jahren zunehmend die Untersuchung der genannten Prozesse bei Depressionen in den Fokus. Hierfür konnten bisher keine einheitlichen Ergebnisse gezeigt werden.
Weiterhin wird der Subtyp der ängstlichen Depression einerseits mit hohen Prävalenzen beschrieben, andererseits zeigen Untersuchungen eine schlechtere Prognose, stärkere Einschränkungen in der Funktionalität und ein schlechteres Ansprechen auf die Therapie im Vergleich zu depressiven Patienten ohne hohes Ängstlichkeitsniveau.
In dieser Arbeit wurden die Akquisition, Generalisierung und Extinktion in einem differentiellen Konditionierungsparadigma bei schwer depressiven ängstlichen und nicht ängstlich-depressiven Patienten sowie einer gesunden Kontrollgruppe untersucht. Ängstliche und nicht ängstlich-depressive Patienten zeigten ein beeinträchtigtes Sicherheitslernen in der Akquisition und Beeinträchtigungen in der Extinktion der konditionierten Furcht. Es ergaben sich keine Unterschiede hinsichtlich der Stärke der Generalisierung zwischen Patienten und den gesunden Kontrollen und es konnten keine differenzierenden Muster zwischen den ängstlich- und den nicht ängstlich-depressiven Patienten gezeigt werden.
Zusammenfassend weisen die Ergebnisse auf Veränderungen im Furchtlernen bei Patienten mit Depressionen hin. Es konnten keine Belege für unterschiedliche Mechanismen im Furchtlernen von ängstlich- und nicht ängstlich-depressiven Patienten gefunden werden. Unsere Ergebnisse stützen somit die Klassifikation der ängstlichen Depression als Subtyp der Depression. Weiterhin weisen die Ergebnisse der beeinträchtigten Extinktion bei Patienten mit Depressionen darauf hin, dass Expositionselemente, welche bei der Therapie von Angststörungen als Verfahren der Wahl eingesetzt werden, auch bei der Behandlung von Depressionen integriert werden sollten, um so den Therapieerfolg zu verbessern.
One of the fascinating features of meiotic prophase I, is the highly conserved
vigorous movements of homologous chromosomes. These movements are
critical for the success of essential events as homologs alignment, synapsis and
recombination. Several organisms studied so far, including mammals, worms,
yeast and plants achieve these movements by anchoring the chromosome ends
to specialized sites in the nuclear envelope (NE). This attachment requires
telomere adaptor proteins which have to date been identified in fission yeast
and mice.
The mouse meiosis-specific telomere adaptor proteins TERB1, TERB2, and
MAJIN are involved in the attachment of ubiquitous shelterin telomere to the
LINC complex, in an analogous mechanism as those described in fission yeast.
Despite the essential role of meiosis-specific telomere adaptor proteins, the
precise mechanism of anchorage of telomeres to the nuclear envelope, as well
as their evolutionary history, are still not well understood. Therefore, the main
aim of this thesis is to investigate the organization of the mouse meiosis-specific
telomere adaptor complex TERB1-TERB2-MAJIN and its evolutionary history.
In the first part of this thesis high-resolution Structured Illumination Microscopy
(SIM), indirect immunofluorescence and Telo-FISH on mouse spermatocytes
were used to determine precisely how the telomere complex proteins are
localized with relation to the shelterin telomeric TRF1 protein and telomeric
DNA. During zygotene and pachytene stages staining patterns revealed
extensively overlapping of meiotic telomere complex proteins distributions in
which TERB2 organization is more heterogeneous than TERB1 and MAJIN at
the chromosome ends. Further, TRF1 localization was shown at the side of
lateral elements (LEs) ends with grasp-like distribution surrounding the TERB1
and MAJIN signals in zygotene and pachytene stages. Interestingly, telomeric
DNA was shown to be laterally distributed and partially overlapping with the
more central distribution displayed by meiotic telomere complex proteins of LEs
ends. The combination of these results allowed to describe an alternative model
of the telomere attachment to the NE during meiotic prophase I. The second part of this thesis, analyses mouse TERB1, TERB2, and MAJIN
evolutionary history. The lack of similarity between mouse and fission yeast
meiotic-specific telomere adaptor proteins has raised the question about the
origin of this specific complex through evolution. To identify mouse TERB1,
TERB2, and MAJIN putative orthologues, computational approaches and
phylogenetic analyses were performed. Besides, to test their potential function
during meiosis, expression studies were conducted. From these analyses, it was
revealed that mouse meiosis-specific telomere complex is ancient, as it
originated as early as eumetazoans pointing to a single origin. The absence of
any homologs in Nematoda and only a few candidates detected in Arthropoda
for meiosis-specific telomere complex, seemed, that these proteins have been
lost/replaced or highly diversified in these lineages. Remarkably, TERB1, TERB2,
and MAJIN protein domains involved in the formation of the complex as well as
those required for the interaction with the telomere shelterin protein and the
LINC complexes revealed high sequence similarity across all clades. Finally,
gene expression in the cnidarian Hydra Vulgaris provided evidence that the
TERB1-TERB2-MAJIN complex is selectively expressed in the germline
suggesting conservation of meiotic functions across metazoan evolution.
In summary, this thesis provides significant insights into the meiosis-specific
telomere complex mechanism to engage telomeres to the nuclear envelope and
the elucidation of its origin in metazoans.
In light of the rapidly increasing global demand of energy and the negative effects of climate change, innovative solutions that allow an efficient transition to a carbon-neutral economy are urgently needed. In this context, artificial photosynthesis is emerging as a promising technology to enable the storage of the fluctuating energy of sunlight in chemical bonds of transportable “solar fuels”. Thus, in recent years much efforts have been devoted to the development of robust water oxidation catalysts (WOCs) leading to the discovery of the highly reactive Ru(bda) (bda: 2,2’-bipyridine-6,6’-dicarboxylic acid) catalyst family. The aim of this thesis was the study of chemical and photocatalytic water oxidation with functionalized Ruthenium macrocycles to explore the impact of substituents on molecular properties and catalytic activities of trinuclear macrocyclic Ru(bda) catalysts. A further objective of this thesis comprises the elucidation of factors that influence the light-driven water oxidation process with this novel class of supramolecular WOCs.
Die vorliegende Arbeit behandelt im ersten Abschnitt die Synthese und Reaktivität neuartiger Diborane(4). Ebenfalls wurde die Reaktivität von Dihalogendiboranen(4) gegenüber Phenylazid untersucht, wobei symmetrische Vertreter unter Beibehalt der B-B-Bindung die fünfgliedrigen B2N3 Heterocyclen 14 und 15 lieferten. Der zweite Abschnitt dieser Arbeit beschäftigt sich mit der unerwarteten Reaktivität der NHC-stabilisierten μ-Hydridodiborane(5) XXIII und XXIV. Der abschließende Teil dieser Arbeit befasst sich mit den ersten Versuchen zur Darstellung eines CAAC-stabilisierten, Diboranyl-substituierten Borylens.
This thesis describes the synthesis and reactivity of NHC-stabilized Lewis-acid/Lewis-base adducts of alanes and gallanes (NHC = Me2ImMe, iPr2Im, iPr2ImMe, Dipp2Im, Dipp2ImH). As this field of research has developed tremendously, especially in the last five years, the first chapter provides an overview of the current state of knowledge.
The influence of electronegative π-donor-substituents on the stability of the NHC alane adducts is examined in chapter 2. For this purpose, the carbene stabilized alanes (NHC)∙AlH3 (NHC = iPr2Im, Dipp2Im) were reacted with secondary amines of different steric demand and with phenols. The π-donor substituents saturate the Lewis acidic aluminium center and coordination of a second NHC-ligand was not observed. The strongly electronegative N and O substituents increase the Lewis acidity of the aluminium atom, which leads to stronger Al-CNHC as well as Al-H bonds, which inhibits the insertion of the carbene into the Al-H bond.
In Chapter 3 the development of the synthesis and reactivity of carbene-stabilized gallanes is presented. The synthesis of NHC gallane adducts (NHC)∙GaH3, (NHC)∙GaH2Cl and (NHC)∙GaHCl2 and their reactivity towards NHCs and cAACMe were investigated in detail. The reaction of the mono- and dichlorogallanes (NHC)∙GaH2Cl and (NHC)∙GaHCl2 (NHC = iPr2ImMe, Dipp2Im) with cAACMe led to insertion of the cAACMe with formation of chiral and achiral compounds depending on the sterically demand of the used NHC. Furthermore, the formation of bis-alkylgallanes was observed for the insertion of two equivalents of cAACMe with release of the NHC ligand.
Chapter 4 describes investigations concerning the synthesis and reactivity of NHC-stabilized iodoalanes and iodogallanes, which are suitable for the formation of cationic aluminium and gallium dihydrides. The reaction of (NHC)∙EH2I (E = Al, Ga) stabilized by the sterically less demanding NHCs (NHC = Me2ImMe, iPr2Im, iPr2ImMe) with an additional equivalent of the NHC led to the formation of the cationic bis-NHC aluminium and gallium dihydrides [(NHC)2∙AlH2]+I- and [(NHC)2∙GaH2]+I-. Furthermore, the influence of the steric demand of the used NHC was investigated. The adduct (Dipp2Im)∙GaH2I was reacted with an additional equivalent of Dipp2Im. Due to the bulk of the NHC used, rearrangement of one of the NHC ligands from normal to abnormal coordination occurred and the cationic gallium dihydride [(Dipp2Im)∙GaH2(aDipp2Im)] was isolated.
Chapter 5 of this thesis reports investigations concerning the reduction of cyclopentadienyl-substituted alanes and gallanes with singlet carbenes. NHC stabilized pentamethylcyclopentadienyl aluminium and gallium dihydrides (NHC)∙Cp*MH2 (E = Al, Ga) were prepared by the reaction of (AlH2Cp*)3 with the corresponding NHCs or by the salt elimination of (NHC)∙GaH2I with KCp*. The gallane adducts decompose at higher temperatures with reductive elimination of Cp*H and formation of Cp*GaI. . The reductive elimination is preferred for sterically demanding NHCs (Dipp2Im > iPr2ImMe > Me2ImMe). In addition, NHC ring expansion of the backbone saturated carbene Dipp2ImH was observed for the reaction of the NHC with (AlH2Cp*)3, which led to (RER-Dipp2ImHH2)AlCp*. Furthermore, the reactivity of the adducts (NHC)∙Cp*EH2 (E = Al, Ga) towards cAACMe was investigated. The reaction of the alane adducts stabilized by the sterically more demanding NHCs iPr2ImMe and Dipp2Im afforded the exceptionally stable insertion product (cAACMeH)Cp*AlH V-10 with liberation of the NHC. The reaction of the gallium hydrides (NHC)∙Cp*GaH2 with cAACMe led to the reductive elimination of cAACMeH2 and formation of Cp*GaI.
A variety of neutral and cationic carbene-stabilized alanes and gallanes are presented in this work. The introduction of electronegative π-donor substituents (Cl-, I-, OR-, NR2-) and the investigations on the thermal stability of these compounds led to the conclusion that the stability of alanes and gallanes increased significantly by such a substitution. Investigations on the reactivity of the NHC adducts towards cAACMe resulted in various insertion products of the carbene into the Al-H or Ga-H bonds and the first cAACMe stabilized dichlorogallane was isolated. Furthermore, a first proof was provided that carbenes can be used specifically for the (formal) reduction of group 13 hydrides of the higher homologues. Thus, the synthesis of Cp*GaI from the reaction of (NHC)∙Cp*GaH2 with cAACMe was developed. In the future, this reaction pathway could be of interest for the preparation of other low-valent compounds of aluminium and gallium.
The present thesis demonstrates how different thermodynamic aspects of self-assembly and stimuli-responsive properties in water can be encoded on the structure of π-amphiphiles, consisting of perylene or naphthalene bisimide cores. Initially, quantitative thermodynamic insights into the entropically-driven self-assembly was studied for a series of naphthalene bisimides with UV/Vis and ITC measurements, which demonstrated that their thermodynamic profile of aggregation is heavily influenced by the OEG side chains. Subsequently, a control over the bifurcated thermal response of entropically driven and commonly observed enthalpically driven self-assembly was achieved by the modulation of glycol chain orientation. Finally, Lower Critical Solution Temperature (LCST) phenomenon observed for these dyes was investigated as a precise control of this behavior is quintessential for self-assembly studies as well as to generate ‘smart’ materials. It could be shown that the onset of phase separation for these molecules can be encoded in their imide substituents, and they are primarily determined by the supramolecular packing, rather than the hydrophobicity of individual monomers.
The aim of the first part of this thesis was to investigate (R,R)-PBI as a model system for polymorphism at its origin by a supramolecular approach. The pathway complexity of (R,R)-PBI was fine-tuned by experimental parameters such as solvent, temperature and concentration to make several supramolecular polymorphs accessible. Mechanistic and quantum chemical studies on the kinetics and thermodynamics of the supramolecular polymerization of (R,R)-PBI were conducted to shed light on the initial stages of polymorphism. The second part of this work deals with mechanistic investigations on the supramolecular polymerization of the racemic mixture of (R,R)- and (S,S)-PBI with regard to homochiral and heterochiral aggregation leading to conglomerates and a racemic supramolecular polymer, respectively.
Der erste Teil dieser Arbeit beschäftigt sich mit der "Synthese und Reaktivität sterisch anspruchsvoller Iminoborane". Dabei war es möglich, ausgehend von einem Terphenylamin geeignete Aminoborane zu synthetisieren, welche anschließend mit starken, nicht-nukleophilen Basen umgesetzt wurden. Mittels formaler HCl-Eliminierung mit LiTmp gelang auf diese Weise die Darstellung sterisch anspruchsvoller Iminoborane.
Der zweite Teil dieser Arbeit befasst sich mit der "Untersuchung von B-B-Doppelbindungen als Bestandteil konjugierter p-Systeme". Durch die Verwendung von sterisch wenig anspruchsvollen Liganden oder Boryl-Substituenten war es möglich planare Diboren-Systeme zu generieren und darüberhinaus Divinyldiborene darzustellen.