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Energetische Modellierung neuronaler Signalverarbeitung /Löffler, Axel. January 2000 (has links)
Zugl.: Paderborn, Universiẗat, Diss., 2000.
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Capacitive stimulation of mammalian cells on silicon chips imaged at optical resolution with voltage-sensitive dyesBraun, Dieter. January 2000 (has links) (PDF)
München, Techn. Univ., Diss., 2000.
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Molekulare und funktionelle Analyse der Drosophila-Mutante löchrig Neurodegeneration durch Deregulation des Cholesterinstoffwechsels /Tschäpe, Jakob-Andreas. January 2002 (has links) (PDF)
Würzburg, Univ., Diss., 2002.
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Computer aided image segmentation and graph construction of nerve cells from 3D confocal microscopy scansDima, Anca. Unknown Date (has links) (PDF)
Techn. University, Diss., 2002--Berlin.
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Elektrophysiologische Charakterisierung und morphologische Darstellung von Neuronen des tecto-bulbären und bulbo-tectalen Systems von lungenlosen Salamandern (Fam. Plethodontidae)Heimbuch, Jörg. Unknown Date (has links) (PDF)
Universiẗat, Diss., 2001--Bremen.
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Zur Entstehung einer Imbalance im limbo-präfrontalen System bei Meriones unguiculatus der Einfluss restriktiver Isolationsaufzucht und einer postnatalen Methamphetamin-Intoxikation auf die monoaminergen Transmitter Dopamin und Serotonin in limbischen Regionen ; eine Bewertung quantitativer Datenerhebungen /Busche, Andrea. Unknown Date (has links) (PDF)
Universiẗat, Diss., 2004--Bielefeld.
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Gene expression analysis of neuronal precursors from adult mouse brain and differential screen for neural stem cell markersPennartz, Sandra. Unknown Date (has links) (PDF)
University, Diss., 2004--Köln.
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Neuronal Growth Cone DynamicsRauch, Philipp 30 September 2013 (has links) (PDF)
Sensory-motile cells fulfill various biological functions ranging from immune activity or wound healing to the formation of the highly complex nervous systems of vertebrates. In the case of neurons, a dynamic structure at the tip of outgrowing processes navigates towards target cells or areas during the generation of neural networks. These fan shaped growth cones are equipped with a highly complex molecular machinery able to detect various external stimuli and to translate them into directed motion. Receptor and adhesion molecules trigger signaling cascades that regulate the dynamics of an internal polymeric scaffold, the cytoskeleton. It plays a crucial role in morphology maintenance as well as in the generation and distribution of growth cone forces. The two major components, actin and microtubules (MTs) connect on multiple levels through interwoven biochemical and mechanical interactions. Actin monomers assemble into semiflexible filaments (F-actin) which in turn are either arranged in entangled networks in the flat outer region of the growth cone (lamellipodium) or in radial bundles termed filopodia. The dynamic network of actin filaments extends through polymerization at the front edge of the lamellipodium and is simultaneously moving towards the center (C-domain) of the growth cone. This retrograde flow (RF) of the actin network is driven by the polymerizing filaments themselves pushing against the cell membrane and the contractile activity of motor proteins (myosins), mainly in the more central transition zone (T-zone). Through transmembrane adhesion molecules, a fraction of the retrograde flow forces is mechanically transmitted to the cellular substrate in a clutch-like mechanism generating traction and moving the GC forward. MTs are tubular polymeric structures assembled from two types of tubulin protein subunits. They are densely bundled in the neurite and at the growth cone “neck” (where the neurite opens out into the growth cone) they splay apart entering the C-domain and more peripheral regions (P-domain). Their advancement is driven by polymerization and dynein motor protein activity. The two subsystems, an extending array of MTs and the centripetal moving actin network are antagonistic players regulating GC morphology and motility. Numerous experimental findings suggest that MTs pushing from the rear interact with actin structures and contribute to GC advancement. Nevertheless, the amount of force generated or transmitted through these rigid structures has not been investigated yet. In the present dissertation, the deformation of MTs under the influence of intracellular load is analyzed with fluorescence microscopy techniques to estimate these forces. RF mechanically couples to MTs in the GC periphery through friction and molecular cross-linkers. This leads to MT buckling which in turn allows the calculation of the underlying force. It turns out that forces of at least act on individual MT filaments in the GC periphery. Compared to the relatively low overall protrusion force of neuronal GCs, this is a substantial contribution. Interestingly, two populations of MTs buckle under different loads suggesting different buckling conditions. These could be ascribed to either the length-dependent flexural rigidity of MTs or local variations in the mechanical properties of the lamellipodial actin network. Furthermore, the relation between MT deformation levels and GC morphology and advancement was investigated. A clear trend evolves that links higher MT deformation in certain areas to their advancement. Interactions between RF and MTs also influence flow velocity and MT deformation. It is shown that transient RF bursts are related to higher MT deformation in the same region. An internal molecular clutch mechanism is proposed that links MT deformation to GC advancement.
When focusing on GC dynamics it is often neglected that the retraction of neurites and the controlled collapse of GCs are as important for proper neural network formation as oriented outgrowth. Since erroneous connections can cause equally severe malfunctions as missing ones, the pruning of aberrant processes or the transient stalling of outgrowth at pivotal locations are common events in neuronal growth. To date, mainly short term pausing with minor cytoskeletal rearrangements or the full detachment and retraction of neurite segments were described. It is likely that these two variants do not cover the full range of possible events during neuronal pathfinding and that pausing on intermediate time scales is an appropriate means to avoid the misdetection of faint or ambiguous external signals. In the NG108-15 neuroblastoma cells investigated here, a novel type of collapse was observed. It is characterized by the degradation of actin network structures in the periphery while radial filopodia and the C-domain persist. Actin bundles in filopodia are segmented at one or multiple breaking points and subsequently fold onto the edge of the C-domain where they form an actin-rich barrier blocking MT extension. Due to this characteristic, this type of collapse was termed fold collapse. Possible molecular players responsible for this remarkable process are discussed. Throughout fold collapse, GC C-domain area and position remain stable and only the turnover of peripheral actin structures is abolished. At the same time, MT driven neurite elongation is hindered, causing the GC to stall on a time scale of several to tens of minutes. In many cases, new lamellipodial structures emerge after some time, indicating the transient nature of this collapse variant. From the detailed description of the cytoskeletal dynamics during collapse a working model including substrate contacts and contractile actin-myosin activity is derived. Within this model, the known and newly found types of GC collapse and retraction can be reduced to variations in local adhesion and motor protein activity.
Altogether the results of this work indicate a more prominent role of forward directed MT-based forces in neuronal growth than previously assumed. Their regulation and distribution during outgrowth has significant impact on neurite orientation and advancement. The deformation of MT filaments is closely related to retrograde actin flow which in turn is a regulator of edge protrusion. For the stalling of GCs it is not only required that actin dynamics are decoupled from the environment but also that MT pushing is suppressed. In the case of fold collapse, this is achieved through a robust barrier assembled from filopodial actin bundles.
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Untersuchungen zur axialen Musterbildung in der Retina des HühnchensMühleisen, Thomas W. Unknown Date (has links)
Techn. Universiẗat, Diss., 2005--Darmstadt.
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Synaptic arrangements and potential communication partners of \(Drosophila’s\) PDF-containing clock neurons within the accessory medulla / Synaptische Konstellationen und potentielle Kommunikationspartner von \(Drosophila’s\) PDF-enthaltenden Uhrneuronen innerhalb der akzessorischen MedullaHieke, Marie January 2019 (has links) (PDF)
Endogenous clocks regulate physiological as well as behavioral rhythms within all organisms. They are well investigated in D. melanogaster on a molecular as well as anatomical level. The neuronal clock network within the brain represents the center for rhythmic activity control. One neuronal clock subgroup, the pigment dispersing factor (PDF) neurons, stands out for its importance in regulating rhythmic behavior. These neurons express the neuropeptide PDF (pigment dispersing factor). A small neuropil at the medulla’s edge, the accessory medulla (AME), is of special interest, as it has been determined as the main center for clock control. It is not only highly innervated by the PDF neurons but also by terminals of all other clock neuron subgroups. Furthermore, terminals of the photoreceptors provide light information to the AME. Many different types of neurons converge within the AME and afterward spread to their next target. Thereby the AME is supplied with information from a variety of brain regions. Among these neurons are the aminergic ones whose receptors’ are expressed in the PDF neurons. The present study sheds light onto putative synaptic partners and anatomical arrangements within the neuronal clock network, especially within the AME, as such knowledge is a prerequisite to understand circadian behavior. The aminergic neurons’ conspicuous vicinity to the PDF neurons suggests synaptic communication among them. Thus, based on former anatomical studies regarding this issue detailed light microscopic studies have been performed. Double immunolabellings, analyses of the spatial relation of pre- and postsynaptic sites of the individual neuron populations with respect to each other and the identification of putative synaptic partners using GRASP reenforce the hypothesis of synaptic interactions within the AME between dopaminergic/ serotonergic neurons and the PDF neurons. To shed light on the synaptic partners I performed first steps in array tomography, as it allows terrific informative analyses of fluorescent signals on an ultrastructural level. Therefore, I tested different ways of sample preparation in order to achieve and optimize fluorescent signals on 100 nm thin tissue sections and I made overlays with electron microscopic images. Furthermore, I made assumptions about synaptic modulations within the neuronal clock network via glial cells. I detected their cell bodies in close vicinity to the AME and PDFcontaining clock neurons. It has already been shown that glial cells modulate the release of PDF from s-LNvs’ terminals within the dorsal brain. On an anatomical level this modulation appears to exist also within the AME, as synaptic contacts that involve PDF-positive dendritic terminals are embedded into glial fibers. Intriguingly, these postsynaptic PDF fibers are often VIIAbstract part of dyadic or even multiple-contact sites in opposite to prolonged presynaptic active zonesimplicating complex neuronal interactions within the AME. To unravel possible mechanisms of such synaptic arrangements, I tried to localize the ABC transporter White. Its presence within glial cells would indicate a recycling mechanism of transmitted amines which allows their fast re-provision. Taken together, synapses accompanied by glial cells appear to be a common arrangement within the AME to regulate circadian behavior. The complexity of mechanisms that contribute in modulation of circadian information is reflected by the complex diversity of synaptic arrangements that involves obviously several types of neuron populations / Endogene Uhren steuern sowohl physiologische als auch verhaltensbedingte Rhythmen bei allen Organismen. In D. melanogaster sind sie nicht nur auf molekularer sondern auch auf anatomischer Ebene bereits gut erforscht. Das neuronale Uhrnetzwerk im Gehirn stellt das Zentrum der Steuerung der rhythmischen Aktivität dar. Eine Uhrneuronengruppe sticht allein schon durch ihre besonderen anatomischen Eigenschaften hervor. Diese Neurone exprimieren das Neuropeptid PDF (pigment dispersing factor), welches zudem besonderen Einfluss auf die Lokomotionsaktivität der Fliege hat. Ein kleines Neuropil am Rande der Medulla, die akzessorische Medulla (AME) ist von besonderem Interesse, da neben seiner intensiven Innervation durch die PDF-Neurone auch Terminale aller anderen Uhrneuronengruppen zu finden sind. Zudem wird sie durch Terminale der Photorezeptoren mit Informatonen über die Lichtverhätnisse versorgt. Die AME erreichen des Weiteren Informationen aus vielen anderen Hirnregionen. Eine Vielzahl von Neuronentypen laufen in ihr zusammen, um sich anschließend wieder in verschiedenste Hirnareale zu verteilen. So wird die AME auch durchzogen von Fasern mit aminergem Inhalt, dessen Rezeptoren wiederum auf den PDF-Neuronen zu finden sind. Die vorliegende Arbeit gibt Aufschluss über vermutliche synaptische Partner und anatomische Anordnungen innerhalb des neuronalen Uhrnetzwerkes, insbesondere innerhalb der AME. Solch Wissen stellt eine Grundvoraussetzung dar, um zirkadianes Verhalten verstehen zu können. Die auffällige Nähe der aminergen Neurone zu den PDF Neuronen lässt eine synaptische Interaktion zwischen ihnen vermuten. Deshalb wurden basierend auf vorangegangen Studien detailiertere Untersuchungen dieser Thematik durchgeführt. So wird die Hypothese über synaptische Interaktionen innerhalb der AME zwischen dopaminergen/ serotonergen Neuronen und den PDF Neuronen bestärkt mittels Doppelimmunofärbungen, gegenüberstellende Analysen über die räumlichen Nähe von prä- und postsynaptischen Stellen der jeweiligen Neuronenpopulationen und durch die Identifikation vermutlicher synaptischer Partner unter Verwendung von GRASP. Zur möglichen Identifikation der synaptischen Partner unternahm ich erste Schritte in der Array Tomographie, welche hochinformative Analysen von fluoreszierenden Signalen auf einem ultrastrukturellen Level ermöglicht. Dazu testete ich verschieden Wege der Gewebepräparation, um Flureszenzsignale zu erhalten bzw. zu optimieren und bildete erste Überlagerungen der Fluoreszenz- und Elektronenmikrskopbilder. Die Auswertung der elektronenmikroskopischen Bilder erlaubten Mutmaßungen über mö- gliche synaptische Modulationen innerhalb des neuronalen Uhrnetzwerkes durch Gliazellen. Ihre Zellkörper fand ich in unmittelbarer Nähe zu den PDF Neuronen. Im dorsalen Hirn wurden neuronale Modulationen an den kleinen PDF Neuronen durch Gliazellen bereits festgestellt. Auf anatomischer Ebene scheint diese Modulation auch innerhalb der AME zu erfolgen, da synaptische Kontakte, welche PDF-positive Dendriten involvieren, von Gliafasern umgeben sind. Interessanterweise sind diese postsynaptischen PDF Fasern dabei oftmals Teil dyadischer oder sogar multipler Kontakte, die sich gegenüber einer ausgedehnten aktiven Zone befinden. Um mögliche Mechanismen solcher synaptischer Anordnungen zu erklären, versuchte ich den ABC Transporter White im Hirn von Drosophila zu lokalisieren. Seine Präsenz in Gliazellen würde auf einen Recyclingmechanismus hindeuten, welcher eine schnelle Wiederbereitstellung des Transmiters ermöglichen würde. Zusammengefasst scheinen Synapsen mit postsynaptischen PDF-Neuronen in Begleitung von Gliazellen, ein gebräuchliches synaptisches Arrangement innerhalb der AME dazustellen. Diese komplexe Diversität der synaptischen Anordnung reflektiert die komplexen Mechanismen, welche der Verarbeitung der zirkadianen Informationen zugrunde liegen
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