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Cognition refers to the ability to of animals to acquire, process, store and use vital information from the environment. Cognitive processes are necessary to predict the future and reduce the uncertainty of the ever-changing environment. Classically, research on animal cognition focuses on decisive cognitive tests to determine the capacity of a species by the testing the ability of a few individuals. This approach views variability between these tested key individuals as unwanted noise and is thus often neglected. However, inter-individual variability provides important insights to behavioral plasticity, cognitive specialization and brain modularity. Honey bees Apis mellifera are a robust and traditional model for the study of learning, memory and cognition due to their impressive capabilities and rich behavioral repertoire. In this thesis I have applied a novel view on the learning abilities of honey bees by looking explicitly at individual differences in a variety of learning tasks. Are some individual bees consistently smarter than some of her sisters? If so, will a smart individual always perform good independent of the time, the context and the cognitive requirements or do bees show distinct isolated ‘cognitive modules’?
My thesis presents the first comprehensive investigation of consistent individual differences in the cognitive abilities of honey bees. To speak of an individual as behaving consistently, a crucial step is to test the individual multiple times to examine the repeatability of a behavior. I show that free-flying bees remain consistent in a visual discrimination task for three consecutive days. Successively, I explored individual consistency in cognitive proficiency across tasks involving different sensory modalities, contexts and cognitive requirements. I found that free-flying bees show a cognitive specialization between visual and olfactory learning but remained consistent across a simple discrimination task and a complex concept learning task. I wished to further explore individual consistency with respect to tasks of different cognitive complexity, a question that has never been tackled before in an insect. I thus performed a series of four experiments using either visual or olfactory stimuli and a different training context (free-flying and restrained) and tested bees in a discrimination task, reversal learning and negative patterning. Intriguingly, across all these experiments I evidenced the same results: The bees’ performances were consistent across the discrimination task and reversal learning and negative patterning respectively. No association was evidenced between reversal learning and negative patterning. After establishing the existence of consistent individual differences in the cognitive proficiency of honey bees I wished to determine factors which could underlie these differences. Since genetic components are known to underlie inter-individual variability in learning abilities, I studied the effects of genetics on consistency in cognitive proficiency by contrasting bees originating from either from a hive with a single patriline (low genetic diversity) or with multiple patrilines (high genetic diversity). These two groups of bees showed differences in the patterns of individually correlated performances, indicating a genetic component accounts for consistent cognitive individuality. Another major factor underlying variability in learning performances is the individual responsiveness to sucrose solution and to visual stimuli, as evidenced by many studies on restrained bees showing a positive correlation between responsiveness to task relevant stimuli and learning performances. I thus tested whether these relationships between sucrose/visual responsiveness and learning performances are applicable for free-flying bees. Free-flying bees were again subjected to reversal learning and negative patterning and subsequently tested in the laboratory for their responsiveness to sucrose and to light. There was no evidence of a positive relationship between sucrose/visual responsiveness and neither performances of free-flying bees in an elemental discrimination, reversal learning and negative patterning. These findings indicate that relationships established between responsiveness to task relevant stimuli and learning proficiency established in the laboratory with restrained bees might not hold true for a completely different behavioral context i.e. for free-flying bees in their natural environment.
These results show that the honey bee is an excellent insect model to study consistency in cognitive proficiency and to identify the underlying factors. I mainly discuss the results with respect to the question of brain modularity in insects and the adaptive significance of individuality in cognitive abilities for honey bee colonies. I also provide a proposition of research questions which tie in this theme of consistent cognitive proficiency and could provide fruitful areas for future research.
Division of labor represents a major advantage of social insect communities that accounts for their enormous ecological success. In colonies of the honeybee, Apis mellifera, division of labor comprises different tasks of fertile queens and drones (males) and, in general, sterile female workers. Division of labor also occurs among workers in form of an age-related polyethism. This helps them to deal with the great variety of tasks within the colony. After adult eclosion, workers spend around three weeks with various duties inside the hive such as tending the brood or cleaning and building cells. After this period workers switch to outdoor tasks and become foragers collecting nectar, pollen and water. With this behavioral transition, workers face tremendous changes in their sensory environment. In particular, visual sensory stimuli become important, but also the olfactory world changes. Foragers have to perform a completely new behavioral repertoire ranging from long distance navigation based on landmark orientation and polarized-skylight information to learning and memory tasks associated with finding profitable food sources. However, behavioral maturation is not a purely age-related internal program associated with a change, for example, in juvenile hormone titers. External factors such as primer pheromones like the brood pheromone or queen mandibular pheromone can modulate the timing of this transition. In this way colonies are able to flexibly adjust their work force distribution between indoor and outdoor tasks depending on the actual needs of the colony. Besides certain physiological changes, mainly affecting glandular tissue, the transition from indoor to outdoor tasks requires significant adaptations in sensory and higher-order integration centers of the brain.
The mushroom bodies integrate olfactory, visual, gustatory and mechanosensory information. Furthermore, they play important roles in learning and memory processes. It is therefore not surprising that the mushroom bodies, in particular their main input region, the calyx, undergo volumetric neuronal plasticity. Similar to behavioral maturation, plastic changes of the mushroom bodies are associated with age, but are also to be affected by modulating factors such as task and experience.
In my thesis, I analyzed in detail the neuronal processes underlying volumetric plasticity in the mushroom body. Immunohistochemical labeling of synaptic proteins combined with quantitative 3D confocal imaging revealed that the volume increase of the mushroom body calyx is largely caused by the growth of the Kenyon cell dendritic network. This outgrowth is accompanied by changes in the synaptic architecture of the mushroom body calyx, which is organized in a distinct pattern of synaptic complexes, so called microglomeruli. During the first week of natural adult maturation microglomeruli remain constant in total number. With subsequent behavioral transition from indoor duties to foraging, microglomeruli are pruned while the Kenyon cell dendritic network is still growing. As a result of these processes, the mushroom body calyx neuropil volume enlarges while the total number of microgloumeruli becomes reduced in foragers compared to indoor workers. In the visual subcompartments (calyx collar) this process is induced by visual sensory stimuli as the beginning of pruning correlates with the time window when workers start their first orientation flights. The high level of analysis of cellular and subcellular process underlying structural plasticity of the mushroom body calyx during natural maturation will serve as a framework for future investigations of behavioral plasticity in the honeybee.
The transition to foraging is not purely age-dependent, but gets modulated, for example, by the presence of foragers. Ethyl oleate, a primer pheromone that is present only in foragers, was shown to delay the onset of foraging in nurse bees. Using artificial application of additional ethyl oleate in triple cohort colonies, I tested whether it directly affects adult neuronal plasticity in the visual input region of the mushroom body calyx. As the pheromonal treatment failed to induce a clear behavioral phenotype (delayed onset of foraging) it was not possible to show a direct link between the exposure to additional ethyl oleate and neuronal plasticity in mushroom body calyx. However, the general results on synaptic maturation confirmed my data of natural maturation processes in the mushroom body calyx.
Given the result that dendritic plasticity is a major contributor to neuronal plasticity in the mushroom body calyx associated with division of labor, the question arose which proteins could be involved in mediating these effects. Calcium/calmodulin-dependent protein kinase II (CaMKII) especially in mammals, but also in insects (Drosophila, Cockroach), was shown to be involved in facilitating learning and memory processes like long-term synaptic potentiation. In addition to presynaptic effects, the protein was also revealed to directly interact with cytoskeleton elements in the postsynapse. It therefore is a likely candidate to mediate structural synaptic plasticity. As part of my thesis, the presence and distribution of CaMKII was analyzed, and the results showed that the protein is highly concentrated in a distinct subpopulation of the mushroom body intrinsic neurons, the noncompact Kenyon cells. The dendritic network of this population arborizes in two calyx subregions: one receiving mainly olfactory input – the lip – and the collar receiving visual input. This distribution pattern did not change with age or task. The high concentration of CaMKII in dendritic spines and its overlap with f-actin indicates that CaMKII could be a key player inducing structural neuronal plasticity associated with learning and memory formation and/or behavioral transitions related to division of labor. Interestingly CaMKII immunoreactivity was absent in the basal ring, another subregion of the mushroom body calyx formed almost exclusively by the inner compact Kenyon cells and known to receive combined visual and olfactory input. This indicates differences of this mushroom body subregion regarding the molecular mechanisms controlling plastic changes in corresponding Kenyon cells.
How is timing of behavioral and neuronal plasticity regulated? The primer pheromone ethyl oleate was found in high concentrations on foragers and was shown to influence behavioral maturation by delaying the onset of foraging when artificially applied in elevated concentrations. But how is ethyl oleate transferred and how does it shift the work force distribution between indoor and outdoor tasks? Previous work showed that ethyl oleate concentrations are highest in the honeycrop of foragers and suggested that it is transferred and communicated inside the colony via trophallaxis. The results of this thesis however clearly show, that ethyl oleate was not present inside the honey crop or the regurgitate, but rather in the surrounding tissue of the honey crop. As additionally the second highest concentration of ethyl oleate was measured on the surface of the cuticle of forgers, trophallaxis was ruled out as a mode of transmission. Neurophysiological measurements at the level of the antennae (electroantennogram recordings) and the first olfactory neuropil (calcium imaging of activity in the antennal lobe) revealed that the primer pheromone ethyl oleate is received and processed as an olfactory stimulus. Appetitive olfactory conditioning using the proboscis extension response as a behavioral paradigm showed that ethyl oleate can be associated with a sugar reward. This indicates that workers are able to perceive, learn and memorize the presence of this pheromone. As ethyl oleate had to be presented by a heated stimulation device at close range, it can be concluded that this primer pheromone acts via close range/contact chemoreception through the olfactory system. This is also supported by previous behavioral observations.
Taken together, the findings presented in this thesis revealed structural changes in the synaptic architecture of the mushroom body calyx associated with division of labor. For the primer pheromone ethyl oleate, which modulates the transition from nursing to foraging, the results clearly showed that it is received via the olfactory system and presumably acts via this pathway. However, manipulation experiments did not indicate a direct effect of ethyl oleate on synaptic plasticity. At the molecular level, CaMKII is a prime candidate to mediate structural synaptic plasticity in the mushroom body calyx. Future combined structural and functional experiments are needed to finally link the activity of primer pheromones like ethyl oleate to the molecular pathways mediating behavioral and synaptic plasticity associated with division of labor in Apis mellifera. The here identified underlying processes will serve as excellent models for a general understanding of fundamental mechanisms promoting behavioral plasticity.
Past experience contributes to behavioural organization mainly via learning: Animals learn otherwise ordinary cues as predictors for biologically significant events. This thesis studies such predictive, associative learning, using the fruit fly Drosophila melanogaster. I ask two main questions, which complement each other: One deals with the processing of those cues that are to be learned as predictors for an important event; the other one deals with the processing of the important event itself, which is to be predicted. Do fruit flies learn about combinations of olfactory and visual cues? I probe larval as well as adult fruit flies for the learning about combinations of olfactory and visual cues, using a so called ‘biconditional discrimination’ task: During training, one odour is paired with reinforcement only in light, but not in darkness; the other odour in turn is reinforced only in darkness, but not in light. Thus, neither the odours nor the visual conditions alone predict reinforcement, only combinations of both do. I find no evidence that either larval or adult fruit flies were to solve such task, speaking against a cross-talk between olfactory and visual modalities. Previous studies however suggest such cross-talk. To reconcile these results, I suggest classifying different kinds of interaction between sensory modalities, according to their site along the sensory-motor continuum: I consider an interaction ‘truly’ cross-modal, if it is between the specific features of the stimuli. I consider an interaction ’amodal’ if it instead engages the behavioural tendencies or ‘values’ elicited by each stimulus. Such reasoning brings me to conclude that different behavioural tasks require different kinds of interaction between sensory modalities; whether a given kind of interaction will be found depends on the neuronal infrastructure, which is a function of the species and the developmental stage. Predictive learning of pain-relief in fruit flies Fruit flies build two opposing kinds of memory, based on an experience with electric shock: Those odours that precede shock during training are learned as predictors for punishment and are subsequently avoided; those odours that follow shock during training on the other hand are learned as signals for relief and are subsequently approached. I focus on such relief learning. I start with a detailed parametric analysis of relief learning, testing for reproducibility as well as effects of gender, repetition of training, odour identity, odour concentration and shock intensity. I also characterize how relief memories, once formed, decay. In addition, concerning the psychological mechanisms of relief learning, first, I show that relief learning establishes genuinely associative conditioned approach behaviour and second, I report that it is most likely not mediated by context associations. These results enable the following neurobiological analysis of relief learning; further, they will form in the future the basis for a mathematical model; finally, they will guide the researchers aiming at uncovering relief learning in other experimental systems. Next, I embark upon neurogenetic analysis of relief learning. First, I report that fruit flies mutant for the so called white gene build overall more ‘negative’ memories about an experience with electric shock. That is, in the white mutants, learning about the painful onset of shock is enhanced, whereas learning about the relieving offset of shock is diminished. As they are coherently affected, these two kinds of learning should be in a balance. The molecular mechanism of the effect of white on this balance remains unresolved. Finally, as a first step towards a neuronal circuit analysis of relief learning, I compare it to reward learning and punishment learning. I find that relief learning is distinct from both in terms of the requirement for biogenic amine signaling: Reward and punishment are respectively signalled by octopamine and dopamine, for relief learning, either of these seem dispensible. Further, I find no evidence for roles for two other biogenic amines, tyramine and serotonin in relief learning. Based on these findings I give directions for further research.
Bispecific T cell engager (BiTE) display a novel design among the class of bispecific antibodies and hold great promise to fight diverse cancers. BiTE molecules consist of two different binding entities derived from two human IgG antibodies connected by a short peptide linker. Their binding arms are directed against the CD3e chain of the T cell receptor on T cells and against an antigen that is specific for (e.g., CD19 for lymphoma in MT103) or over-expressed on (e.g., EpCAM for epithelial cancer in MT110) tumor cells. Without requirement for pre- or co-stimulation, BiTE molecules efficiently redirect CD3+ T cells towards tumor cells expressing the relevant target antigen. Only a BiTE molecule simultaneously bound to both tumor cell and T cell activates the T cell to exert its cytolytic function resulting in tumor cell death. In T cells stimulated with both BiTE and target cells, elevated levels of caspase activation and increased expression of cytotoxic and signaling proteins are observed. These include cytolytic proteins granzyme B and perforin, activation markers CD69 and CD25 and adhesion molecules CD2 and LFA-1. Activated T cells secrete the usual mix of cytokines, among them pro-inflammatory cytokines IFN-g and TNF-a. The membrane of tumor cells expressing the relevant target antigen is perforated during the attack of BiTE-stimulated effector cells as can be concluded from adenylate kinase release from the cytosol of tumor cells. Ca2+-chelator EGTA completely blocked BiTE-mediated activation of caspases and tumor cell lysis. As perforin is strictly Ca2+-dependent, a major role for this pore-forming protein is assumed for the elimination of tumor cells via BiTE-stimulated T cells. Granzyme B and caspases are main players in BiTE-mediated elimination of tumor cells. Inhibitors of granzyme B or caspases reduce or block, respectively the activation of caspases. However, other signals of apoptosis (cleavage of PARP and fragmentation of DNA) were only reduced by granzyme B inhibitor or caspase inhibitor. Most interestingly, the lytic capacity of BiTE molecules was not impaired by granzyme B inhibitor or caspase inhibitor. It seems that there is no requirement for granzyme B and caspases to be present simultaneously. Instead the data presented provide evidence that they can be replaced one at a time by related proteins. Pre-incubation of effector cells with the glucocorticoids dexamethasone or methylprednisolone resulted in markedly decreased secretion of cytokines by T cells yet only a small reduction in the expression of activation markers and adhesion molecules on T cells and specific lysis of tumor cells upon BiTE stimulation. Soluble factors secreted in an undirected manner by BiTE-stimulated T cells do not mediate tumor cell death by themselves. Bystander cells negative for the antigen that is recognized by the BiTE molecule will not be compromised by BiTE activity. The cytokine TGF-b reduced proliferation as well as granzyme B and perforin expression of BiTE-stimulated T cells. Redirected lysis by BiTE-activated T cells was also decreased under the influence of TGF-b, however lysis was still performed at a reasonable rate (72 % of target cells). TGF-b does not exert a deleterious effect on lytic potential of BiTE-stimulated T cells. The minimal anticipated biological effect level for the BiTE MT110 was determined for the entry of MT110 into phase I clinical studies. Experiments analyzing redirected lysis of tumor cells, expression of activation marker CD25 and cytokine release by T cells revealed a MABEL value of 50 pg/ml for MT110.
Cellular responses to outer stimuli are the basis for all biological processes. Signal integration is achieved by protein cascades, recognizing and processing molecules from the environment. Factors released by pathogens or inflammation usually induce an inflammatory response, a signal often transduced by Tumour Necrosis Factor alpha (TNF). TNFα receptors TNF-R1 and TNF-R2 can in turn lead to apoptosis or proliferation via NF-B. These processes are closely regulated by membrane compartimentalization, protein interactions and trafficking. Fluorescence microscopy offers a reliable and non-invasive method to probe these cellular events. However, some processes on a native membrane are not resolvable, as they are well below the diffraction limit of microscopy. The recent development of super-resolution fluorescence microscopy methods enables the observation of these cellular players well below this limit: by localizing, tracking and counting molecules with high spatial and temporal resolution, these new fluorescence microscopy methods offer a previously unknown insight into protein interactions at the near-molecular level. Direct stochastic optical reconstruction microscopy (dSTORM) utilizes the reversible, stochastic blinking events of small commercially available fluorescent dyes, while photoactivated localization microscopy (PALM) utilizes phototransformation of genetically encoded fluorescent proteins. By photoactivating only a small fraction of the present fluorophores in each observation interval, single emitters can be localized with high precision and a super-resolved image can be reconstructed. Quantum Dot Triexciton imaging (QDTI) utilizes the three-photon absorption (triexcitonic) properties of quantum dots (QD) and to achieve a twofold resolution increase using conventional confocal microscopes. In this thesis, experimental approaches were implemented to achieve super-resolution microscopy in fixed and live-cells to study the spatial and temporal dynamics of TNF and other cellular signaling events. We introduce QDTI to study the three-dimensional cellular distribution of biological targets, offering an easy method to achieve resolution enhancement in combination with optical sectioning, allowing the preliminary quantification of labeled proteins. As QDs are electron dense, QDTI can be used for correlative fluorescence and transmission electron microscopy, proving the versatility of QD probes. Utilizing the phototransformation properties of fluorescent proteins, single-receptor tracking on live cells was achieved, applying the concept of single particle tracking PALM (sptPALM) to track the dynamics of a TNF-R1-tdEos chimera on the membrane. Lateral receptor dynamics can be tracked with high precision and the influences of ligand addition or lipid disruption on TNF-R1 mobility was observed. The results reveal complex receptor dynamics, implying internalization processes in response to TNFα stimulation and a role for membrane domains with reduced fluidity, so-called lipid raft domains, in TNF-R1 compartimentalization prior or post ligand induction. Comparisons with previously published FCS data show a good accordance, but stressing the increased data depth available in sptPALM experiments. Additionally, the active transport of NF-κB-tdEos fusions was observed in live neurons under chemical stimulation and/or inhibition. Contrary to phototransformable proteins that need no special buffers to exhibit photoconversion or photoactivation, dSTORM has previously been unsuitable for in vivo applications, as organic dyes relied on introducing the probes via immunostaining in concert with a reductive, oxygen-free medium for proper photoswitching behaviour. ATTO655 had been previously shown to be suitable for live-cell applications, as its switching behavior can be catalyzed by the reductive environment of the cytoplasm. By introducing the cell-permeant organic dye via a chemical tag system, a high specificity and low background was achieved. Here, the labeled histone H2B complex and thus single nucleosome movements in a live cell can be observed over long time periods and with ~20 nm resolution. Implementing these new approaches for imaging biological processes with high temporal and spatial resolution provides new insights into the dynamics and spatial heterogeneities of proteins, further elucidating their function in the organism and revealing properties that are usually only detectable in vitro.
Aufklärung der molekularen Struktur und Funktion des R-Typ Anionenkanals QUAC1 in Schließzellen
(2016)
Zum Gasaustausch mit Ihrer Umgebung besitzen höhere Pflanzen stomatäre Komplexe. Die Turgor-getrieben Atmungsöffnungen in der Epidermis der Blätter werden von zwei Schließzellen umsäumt. Um bei Trockenheit einen exzessiven Verlust von Wasser zu verhindern, synthetisieren/importieren Schließzellen das Stresshormon ABA (Abszisinsäure), das über eine schnelle ABA-Signalkaskade plasmamembrangebundene Ionenkanäle steuert. Dabei wird der Stomaschluss durch die Aktivität von R-(rapid) und S-(slow)Typ Anionenkanälen initiiert. Obwohl die R- und S-Typ Anionenströme in Schließzellen seit Jahrzehnten bekannt waren, konnte erst kürzlich das Gen identifiziert werden, das für den S-Typ Anionenkanal (SLAC1, Slow activating Anion Channel 1) kodiert. Daraufhin wurde schnell der Zusammenhang zwischen dem Stresshormon ABA, der ABA-Signalkette und der Aktivität des SLAC1 Anionenkanals im heterologen Expressionssystem der X. laevis Oozyten als auch in Schließzellprotoplasten aufgeklärt. Es konnte gezeigt werden, dass ABA durch einen zytosolischen Rezeptor/Phosphatasekomplex (RCAR1/ABI1) erkannt wird und die Aktivität von kalziumabhängigen Kinasen (CPK-Familie) sowie kalziumunabhängigen Kinasen der SnRK2-Familie (OST1) steuert. In Anwesenheit von ABA phosphorylieren diese Kinasen SLAC1 und sorgen so für die Aktivierung von Anionenströmen und damit für die Initiierung des Stomaschlusses.
Die genetische Herkunft der ABA-induzierten R-Typ Ströme in Schließzellen war zu Beginn der vorliegenden Arbeit noch nicht bekannt. R-Typ Ströme zeichnen sich durch eine strikte Spannungsabhängigkeit und sehr schnellen Aktivierungs- sowie Deaktivierungskinetiken aus. Die Charakterisierung von Verlustmutanten des Schließzell-exprimierten Gens ALMT12 (Aluminium-aktivierter Malattransporter 12) konnte in Zusammenarbeit mit der Arbeitsgruppe Martinoia (Zürich) erste Hinweise auf die Beteiligung dieses Gens an der Stomabewegung demonstrieren. Anschließende Patch-Clamp Untersuchungen an Schließzellprotoplasten aus Wildtyppflanzen und ALMT12-Verlustmutanten zeigten, dass ALMT12 für die Malat-aktivierte R-Typ Anionenstromkomponente verantwortlich ist. Deshalb wurde der Anionenkanal QUAC1 (Quickly activating Anion Channel 1) benannt - in Anlehnung an die Benennung des Anionenkanals SLAC1. Mit der Identifizierung von QUAC1 in planta war es nun meine Aufgabe, die elektrischen Eigenschaften von ALMT12/QUAC1 und dessen Aktivitätskontrolle durch die ABA-Signalkaskade im heterologen Expressionssystem der Xenopus Oozyten zu untersuchen.
Protein-Protein Interaktionsstudien mit der Hilfe der Bimolekularen Fluoreszenz-Technik, sowie die Beobachtung von markant erhöhten QUAC1 Anionenströmen in Anwesenheit der SnRK2 Kinase OST1 und den Calcium-abhängigen Kinasen CPK2 und CPK20, ließen den Schluss zu, dass QUAC1, ebenso wie SLAC1, unter der Kontrolle des schnellen ABA-Signalwegs steht. Eine zusätzliche Expression des negativen Regulators ABI1 unterdrückte die aktivierenden Eigenschaften der QUAC1-aktivierenden Kinasen, was die Hypothese der Koregulation von S- und R-Typ Anionenkanälen durch die gleiche ABA-Signalkaskade weiter unterstützt.
Zur weiteren Aufklärung der elektrischen Eigenschaften von QUAC1 wurden tiefgreifende elektrophysiologische Untersuchungen mit der Zwei-Elektroden-Spannungsklemmen Technik durchgeführt. Durch die Wahl von geschickten Spannungsprotokollen konnte sowohl die schnelle Aktivierungskinetik als auch die schnelle Deaktivierungskinetik von QUAC1 bestimmt und quantifiziert werden. Diese Stromantworten waren sehr ähnlich zu den R-Typ Strömen, die man von Patch-Clamp Untersuchungen an Schließzellprotoplasten kannte, was ein weiteres Indiz dafür war, dass es sich bei QUAC1 tatsächlich um eine Komponente des R-Typ Kanals aus Schließzellen handelt. Weiterführende Untersuchungen bezüglich der Spannungsabhängigkeit und der Selektivität von QUAC1 charakterisierten das Protein als einen Depolarisations-aktivierten Anionenkanal mit einer starken Präferenz für Dicarbonsäuren wie Malat und Fumarat. Zudem konnte auch eine Leitfähigkeit für Sulfat und Chlorid nachgewiesen werden. Interessanterweise erwies sich Malat nicht nur als ein permeierendes Ion, sondern auch als ein regulierendes Ion, welches das spannungsabhängige Schalten von QUAC1 maßgeblich beeinflusst. Extrazelluläres Malat verschob die Offenwahrscheinlichkeit von QUAC1 sehr stark zu negativeren Membranspannungen, so dass der Anionenkanal bereits bei typischen Ruhespannungen von Schließzellen (ca. -150 mV) aktiviert werden konnte. Eine Beladung von QUAC1-exprimierender Oozyten mit Malat bewirkte zum einen höhere Anioneneffluxströme, aber auch eine Verschiebung der spannungsabhängigen Offenwahrscheinlichkeit zu negativeren Membranpotentialen.
Struktur-Funktionsanalysen sollten die umstrittene Topologie von ALMT-ähnlichen Proteinen beleuchten und die molekulare Herkunft der Phosphorylierungsaktivierung aufzeigen, sowie die Malatabhängigkeit und die starke Spannungsabhängigkeit von QUAC1 aufklären. Es zeigte sich jedoch schnell, dass Punktmutationen und Deletionen im C-Terminus von QUAC1 sehr häufig zu nicht-funktionellen Mutanten führten. Diese Tatsache weist darauf hin, dass es sich um einen hoch-strukturierten und funktionell sehr wichtigen Bereich des Anionenkanals handelt. Auch die Topologie des Anionenkanalproteins wird in der Literatur kontrovers diskutiert. Sowohl die Lage des N- und C-Terminus (extrazellulär oder intrazellulär), als auch die Anzahl der membrandurchspannenden Domänen war nicht abschließend geklärt. Deshalb wurde in einem Fluoreszenz-basiertem Ansatz die Lage der Termini bestimmt. Im Rahmen meiner Arbeit konnte somit eindeutig gezeigt werden, dass sich beide Termini im Zytosol der Zelle befinden. Auf Grundlage von Modellen aus der Literatur und meiner Topologiebestimmungen konnte schließlich ein erweitertes Modell zur Struktur von QUAC1 entwickelt werden. Dieses Modell kann in Zukunft als Ausgangspunkt für weiterführende Struktur-Funktionsanalysen dienen.
Diese Arbeit hat somit gezeigt, dass das Gen QUAC1 tatsächlich eine Komponente der R-Typ Ströme in Schließzellen kodiert. Ebenso wie SLAC1 steht der Malat-induzierte Anionenkanal QUAC1 unter der Kontrolle der schnellen ABA-Signalkaskade. In Zukunft bleibt zu klären, welche weiteren Gene für die R-Typ Kanalproteine in Schließzellen kodieren und welche strukturelle Grundlage für die besonderen Eigenschaften von QUAC1 hinsichtlich seiner schnellen Kinetiken, seiner Selektivität und Aktivierbarkeit durch Malat.
Aufklärung der Struktur und Charakterisierung des ternären Komplexes aus BMP-2, BMPR-IA und ActR-IIB
(2006)
„Bone Morphogenetic Proteins“ (BMPs) kontrollieren eine Vielzahl unterschiedlichster Prozesse bei der Embryonalentwicklung und der postnatalen Gewebehomöostase. Wie TGF-betas, Activine und andere Mitglieder der TGF-beta Superfamilie vermitteln BMPs ihr Signal durch die Bildung eines aus dem Liganden und zwei Rezeptorsubtypen bestehenden Signalkomplexes. Für die Rezeptoraktivierung ist ein Zwei-Schritt Mechanismus allgemein akzeptiert. Bisher wurde nur der erste Schritt, die Bindung des Liganden an seinen hochaffinen Rezeptor, strukturell untersucht. Der molekulare Mechanismus der anschließenden Rekrutierung des niederaffinen Rezeptortyps war bisher nicht bekannt. Die vorliegende Arbeit beschreibt die Präparation, Kristallisation und Strukturaufklärung des ternären Komplexes aus BMP-2 und den extrazellulären Domänen von BMPR-IA und ActR-IIB. Mit der Kristallstruktur dieses ternären Komplexes kann erstmals der Mechanismus der BMP Rezeptoraktivierung von der Bindung des Liganden bis hin zur Transaktivierung untersucht werden. Der Ligand BMP-2 präsentiert sich hier, im Gegensatz zu anderen Mitgliedern der TGF-beta Superfamilie, als nahezu starre Komponente, um welche die beiden Rezeptortypen symmetrisch angelagert werden. Zwischen den extrazellulären Domänen der Rezeptoren können keine direkten Kontakte beobachtet werden. Die in Zellen beobachtete Kooperativität bei der Rekrutierung des niederaffinen Rezeptors im BMP-2 System ist folglich weder durch allosterische Effekte, noch durch direkte Rezeptor-Rezeptor-Kontakte erklärbar. Vielmehr repräsentiert die Bindung des niederaffinen Rezeptors von BMP-2 einen Minimalmechanismus, bei dem Kooperativität über die Verringerung der Freiheitsgrade durch Lokalisation des Liganden in der Zellmembran erzeugt wird. Die durchgeführten Mutations-/Interaktionsanalysen erlauben vertiefende Einblicke wie Affinität und Spezifität im BMP/Activin-System generiert werden. Es zeigt sich, dass sowohl bei der niederaffinen Interaktion von ActR-IIBecd mit BMP-2 bzw. BMP-7 als auch bei der hochaffinen Bindung von ActA mit ActR-IIBecd ein Großteil der freien Bindungsenergie von denselben hydrophoben Interaktionen getragen wird. Während polare Interaktionen bei der niederaffinen Bindung der BMPs an ActR-IIBecd kaum eine Rolle spielen, stellt die zentrale Wasserstoffbrücke zwischen ActA Ser90(OG) und ActR-IIB Leu61(N) bei der Bildung des Komplexes ActA/ActR-IIBecd eine entscheidende Determinante der hochaffinen Bindung dar. BMP-2 bindet an die Typ II Rezeptoren BMPR-II, ActR-II und ActR-IIB mit nahezu identischer Affinität, daher wird eine promiske Verwendung dieser Rezeptoren angenommen. In dieser Arbeit konnte gezeigt werden, dass die spezifische Erkennung und Bindung der Typ II Rezeptoren durch den Austausch einzelner Aminosäuren modulierbar ist. Mit den hier gewonnenen Kenntnissen über den molekularen Mechanismus der Typ II Rezeptorerkennung ist nun eine Generierung von BMPs mit definierter Typ II Rezeptorspezifität möglich. Diese BMP-2 Varianten können als Werkzeuge zur Aufklärung von Typ II Rezeptor-spezifischen Signalwegen verwendet werden. Ebenso wäre es denkbar, BMP-2 Varianten mit ausgeprägter Typ II Rezeptor Spezifität in vivo zur Modulation TypII Rezeptor spezifischer Signalwege zu benutzen. Beispielsweise könnte ein auf BMP-2 basierendes ActR-IIB-spezifisches Protein als Myostatin-Antagonist zur Behandlung von Muskeldystrophie eingesetzt werden.
Neuroblastoma is the most abundant, solid, extracranial tumor in early childhood and the leading cause of cancer-related childhood deaths worldwide. Patients with high-risk neuroblastoma often show MYCN-amplification and elevated levels of Aurora-A. They have a low overall survival and despite multimodal therapy options a poor therapeutic prognosis. MYCN-amplified neuroblastoma cells depend on Aurora-A functionality. Aurora-A stabilizes MYCN and prevents it from proteasomal degradation by competing with the E3 ligase SCFFBXW7. Interaction between Aurora-A and MYCN can be observed only in S phase of the cell cycle and activation of Aurora-A can be induced by MYCN in vitro. These findings suggest the existence of a profound interconnection between Aurora-A and MYCN in S phase. Nevertheless, the details remain elusive and were investigated in this study.
Fractionation experiments show that Aurora-A is recruited to chromatin in S phase in a MYCN-dependent manner. Albeit being unphosphorylated on the activating T288 residue, Aurora-A kinase activity was still present in S phase and several putative, novel targets were identified by phosphoproteomic analysis. Particularly, eight phosphosites dependent on MYCN-activated Aurora-A were identified. Additionally, phosphorylation of serine 10 on histone 3 was verified as a target of this complex in S phase. ChIP-sequencing experiments reveal that Aurora-A regulates transcription elongation as well as histone H3.3 variant incorporation in S phase. 4sU-sequencing as well as immunoblotting demonstrated that Aurora-A activity impacts splicing. PLA measurements between the transcription and replication machinery revealed that Aurora-A prevents the formation of transcription-replication conflicts, which activate of kinase ATR.
Aurora-A inhibitors are already used to treat neuroblastoma but display dose-limiting toxicity. To further improve Aurora-A based therapies, we investigated whether low doses of Aurora-A inhibitor combined with ATR inhibitor could increase the efficacy of the treatment albeit reducing toxicity. The study shows that the combination of both drugs leads to a reduction in cell growth as well as an increase in apoptosis in MYCN-amplified neuroblastoma cells, which is not observable in MYCN non-amplified neuroblastoma cells. This new approach was also tested by a collaboration partner in vivo resulting in a decrease in tumor burden, an increase in overall survival and a cure of 25% of TH-MYCN mice. These findings indicate indeed a therapeutic window for targeting MYCN-amplified neuroblastoma.
The FDA approval of targeted therapy with BRAFV600E inhibitors like vemurafenib and dabrafenib in 2011 has been the first major breakthrough in the treatment of metastatic melanoma since almost three decades. Despite increased progression free survival and elevated overall survival rates, complete responses are scarce due to resistance development approximately six months after the initial drug treatment. It was previously shown in our group that melanoma cells under vemurafenib pressure in vitro and in vivo exhibit features of drug-induced senescence. It is known that some cell types, which undergo this cell cycle arrest, develop a so-called senescence associated secretome and it has been reported that melanoma cell lines also upregulate the expression of different factors after senescence induction. This work describes the effect of the vemurafenib-induced secretome on cells. Conditioned supernatants of vemurafenib-treated cells increased the viability of naive fibroblast and melanoma cell lines. RNA analysis of donor melanoma cells revealed elevated transcriptional levels of FGF1, MMP2 and CCL2 in the majority of tested cell lines under vemurafenib pressure, and I could confirm the secretion of functional proteins. Similar observations were also done after MEK inhibition as well as in a combined BRAF and MEK inhibitor treatment situation. Interestingly, the transcription of other FGF ligands (FGF7, FGF17) was also elevated after MEK/ERK1/2 inhibition. As FGF receptors are therapeutically relevant, I focused on the analysis of FGFR-dependent processes in response to BRAF inhibition. Recombinant FGF1 increased the survival rate of melanoma cells under vemurafenib pressure, while inhibition of the FGFR pathway diminished the viability of melanoma cells in combination with vemurafenib and blocked the stimulatory effect of vemurafenib conditioned medium. The BRAF inhibitor induced secretome is regulated by active PI3K/AKT signaling, and the joint inhibition of mTor and BRAFV600E led to decreased senescence induction and to a diminished induction of the secretome-associated genes. In parallel, combined inhibition of MEK and PI3K also drastically decreased mRNA levels of the relevant secretome components back to basal levels.
In summary, I could demonstrate that BRAF inhibitor treated melanoma cell lines acquire a specific PI3K/AKT dependent secretome, which is characterized by FGF1, CCL2 and MMP2. This secretome is able to stimulate other cells such as naive melanoma cells and fibroblasts and contributes to a better survival under drug pressure. These data are therapeutically highly relevant, as they imply the usage of novel drug combinations, especially specific FGFR inhibitors, with BRAF inhibitors in the clinic.