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  • About
  • The Global ETD Search service is a free service for researchers to find electronic theses and dissertations. This service is provided by the Networked Digital Library of Theses and Dissertations.
    Our metadata is collected from universities around the world. If you manage a university/consortium/country archive and want to be added, details can be found on the NDLTD website.
161

Cadherin involvement in axonal branch stability in the Xenopus retinotectal system

Tavakoli, Aydin. January 2008 (has links)
No description available.
162

Neurodegeneration in toxin-mediated demyelinating animal models of Multiple Sclerosis / Neurodegeneration in Toxin-vermittelte demyelinisierende Tiermodellen der Multiplen Sklerose

Manrique Hoyos, Natalia 16 October 2012 (has links)
Myelin wird durch einem speziellen Membran von Oligodendrozyten im ZNS hergestellt. Diese mehrschichtige Struktur umhüllt Axonen mit ihner trophischen Unterstützung und erleichtert die schnelle Übertragung von elektrischen Signalen. Um die kurzfristigen Auswirkungen der Demyelinisierung zu untersuchen, die histologische Analyse in einem Maus-Modell wurde durchgeführt, wo die myelinisierende Oligodendrozyten wurden abgetragen durch die Expression von Diphtherie-Toxin-Rezeptor in reifen Oligodendrozyten und systemische Diphtherie-Toxin Injektionen. Wir beobachteten, dass so eine Abtragung in einer tödlichen Krankheit resultiert, wo Demyelinisierung der weißen Substanz Bahnen durch Mikroglia Aktivierung von der axonalen Schäden begleitet wurde. Wir haben gezeigt, dass dieses Modell daher auch für das Studium von der kurzfristigen Demyelinisierung-vermittelte axonale Schädigung und Myelin Abbau geeignet ist. Um die Auswirkungen der reversibel Demyelinisierungepisoden auf langfristige Bewegungsapparates Leistung und neuro-axonalen Integrität zu untersuchen, wurden Cuprizon-behandelten Tieren mit motorischen Sequenz (MOSS) überwachtet. Mit MOSS haben wir beobachtet, ob eine funktionelle Erholung erreicht und in langfristig erhalten konnte. Trotz die komplette scheinbare Erholung, die behandelte Tieren zeigten eine late-onset motorischen Beeinträchtigung und laufenden akuten axonalen Schädigung. Dieses Modell imitiert viele Aspekte der axonalen Pathologie bei chronisch progredienter MS und könnte daher bei der Untersuchung der Faktoren, die Initiierung, Aufrechterhaltung oder Kompensation axonalen Schädigunggenutzt werden. Schließlich, weil Myelin Neuroprotektionwahrscheinlich eine direkte Kommunikation zwischen Axonen und Oligodendrozyten beinhaltet/braucht , Proteomanalyse der Myelin-Fraktionen in axo glialen Regionen ist durchgeführt, um neue Kandidaten in axo-glialen Interaktion im Rahmen des Myelin Biogenese beteiligt sind zu finden. Zahlreiche funktionalle Assays wurden gegründet und verwenden, um identifizierten Kandidaten zu bewerten, um ihre Rolle in axoglial Kommunikation und Myelinbildung zu bestimmen. Wir haben festgestellt, dass einige Mitglieder der IgLON Familie binden beide Oligodendrozyten und Axone. Wir beobachteten, dass diese Proteine kein Effekt auf die Migration, Proliferation, Differenzierung von der Oligodendrozyte-Vorläuferzellen haben. Allerdings beobachteten wir, dass ein Mitglied, Ntm wirkt sich negativ auf die frühen Phasen der Myelinisierung.
163

Diffusion directions imaging : reconstruction haute résolution des faisceaux de matière blanche par IRM de diffusion basse résolution angulaire / Diffusion directions imaging : high resolution reconstruction of white matter fascicles from low angular resolution diffusion MRI

Stamm, Aymeric 29 November 2013 (has links)
L'objectif de cette thèse est de fournir une chaine de traitement complète pour la reconstruction des faisceaux de la matière blanche à partir d'images pondérées en diffusion caractérisées par une faible résolution angulaire. Cela implique (i) d'inférer en chaque voxel un modèle de diffusion à partir des images de diffusion et (ii) d'accomplir une ''tractographie", i.e., la reconstruction des faisceaux à partir de ces modèles locaux. Notre contribution en modélisation de la diffusion est une nouvelle distribution statistique dont les propriétés sont étudiées en détail. Nous modélisons le phénomène de diffusion par un mélange de telles distributions incluant un outil de sélection de modèle destiné à estimer le nombre de composantes du mélange. Nous montrons que le modèle peut être correctement estimé à partir d'images de diffusion ''single-shell" à faible résolution angulaire et qu'il fournit des biomarqueurs spécifiques pour l'étude des tumeurs. Notre contribution en tractographie est un algorithme qui approxime la distribution des faisceaux émanant d'un voxel donné. Pour cela, nous élaborons un filtre particulaire mieux adapté aux distributions multi-modales que les filtres traditionnels. Pour démontrer l'applicabilité de nos outils en usage clinique, nous avons participé aux trois éditions du MICCAI DTI Tractography challenge visant à reconstruire le faisceau cortico-spinal à partir d'images de diffusion ''single-shell" à faibles résolutions angulaire et spatiale. Les résultats montrent que nos outils permettent de reconstruire toute l'étendue de ce faisceau. / The objective of this thesis is to provide a complete pipeline that achieves an accurate reconstruction of the white matter fascicles using clinical diffusion images characterized by a low angular resolution. This involves (i) a diffusion model inferred in each voxel from the diffusion images and (ii) a tractography algorithm fed with these local models to perform the actual reconstruction of fascicles. Our contribution in diffusion modeling is a new statistical distribution, the properties of which are extensively studied. We model the diffusion as a mixture of such distributions, for which we design a model selection tool that estimates the number of mixture components. We show that the model can be accurately estimated from single shell low angular resolution diffusion images and that it provides specific biomarkers for studying tumors. Our contribution in tractography is an algorithm that approximates the distribution of fascicles emanating from a seed voxel. We achieve that by means of a particle filter better adapted to multi-modal distributions than the traditional filters. To demonstrate the clinical applicability of our tools, we participated to all three editions of the MICCAI DTI Tractography challenge aiming at reconstructing the cortico-spinal tract from single-shell low angular and low spatial resolution diffusion images. Results show that our pipeline provides a reconstruction of the full extent of the CST.
164

The Molecular Mechanisms Underlying the Polarized Distribution of Drosophila Dscam in Neurons: A Dissertation

Yang, Shun-Jen 14 October 2008 (has links)
Neurons exhibit highly polarized structures, including two morphologically and functionally distinct domains, axons and dendrites. Dendrites and axons receive versus send information, and proper execution of each requires different sets of molecules. Differential distribution of membrane proteins in distinct neuronal compartments plays essential roles in neuronal functions. The major goal of my doctoral thesis was to study the molecular mechanisms that govern the differential distribution of membrane proteins in neurons, using the Drosophilalarval mushroom body (MB) as a model system. My work was initiated by an observation of differential distribution of distinct Dscam isoforms in neurons. Dscam stands for Down Syndrome Cell Adhesion Molecule, which is a Drosophila homolog of human DSCAM. According to genomic analysis, DrosophilaDscam gene can generate more than 38,000 isoforms through alternative splicing in its exons 4, 6, 9 and 17. All Dscam isoforms share similar domain structures, with 10 immunoglobulin domains and 6 fibronectin type III repeats in the ectodomain, a single transmembrane domain and a cytoplasmic endodomain. There are two alternative exons in exon 17 (17.1 and 17.2), which encodes Dscam’s transmembrane domain. Interestingly, in ectopic expression, Dscam isoforms carrying exon 17.1 (Dscam[TM1]) can be preferentially localized to dendrites and cell bodies, while Dscam isoforms carrying exon 17.2 (Dscam[TM2]) are distributed throughout the entire neuron including axons and dendrites. To unravel the mechanisms involved in the differential distribution of Dscam[TM1] versus Dscam[TM2], I conducted a mosaic genetic screening to identify the possible factors affecting dendritic distribution of Dscam[TM1], established an in vivoTARGET system to better distinguish the differential distribution of Dscam, identified the axonal and dendritic targeting motifs of Dscam molecules and further showed that Dscam’s differential roles in dendrites versus axons are correlated with its localization. Several mutants affecting dendritic distribution of Dscam[TM1] have been identified using a MARCM genetic screen. Three of these mutants (Dlis1, Dmn and p24) are components of the dynein/dynactin complex. Silencing of other dynein/dynactin subunits and blocking dynein function with a dominant-negative Glued mutant also resulted in mislocalization of Dscam[TM1] from dendrites to axons. However, microtubule polarity in the mutant axons was maintained. Taken together, this was the first demonstration that the dynein/dynactin complex is involved in the polarized distribution of membrane proteins in neurons. To further examine how dynein/dynactin is involved in the dendritic distribution of Dscam[TM1], I compromised dynenin/dynactin function with dominant-negative Glued and transiently induced Dscam[TM1] expression. The results suggested that dynein/dynactin may not be directly involved in the targeting of newly synthesized Dscam[TM1] to dendrites. Instead, it plays a role in maintaining dendritic restriction of Dscam[TM1]. Notably, dynein/dynactin dysfunction did not alter distribution of another dendritic transmembrane protein Rdl (Resistant to Dieldrin), supporting involvement of diverse mechanisms in distributing distinct molecules to the dendritic membrane. To identify the targeting motifs of Dscam, I incorporated the TARGET (Temporal and regional gene expression targeting) system into mushroom body (MB) neurons, and this allowed the demonstration of the differential distribution of Dscam[TM1] and Dscam[TM2] with more clarity than conventional overexpression techniques. Using the TARGET system, I identified an axonal targeting motif located in the cytoplasmic juxtamemebrane domain of Dscam[TM2]. This axonal targeting motif is dominant over the dendritic targeting motif located in Dscam’s ectodomain. Scanning alanine mutagenesis demonstrated that two amino acids in the axonal targeting motif were essential for Dscam’s axonal distribution. Interestingly, swapping the cytoplasmic juxtamembrane portions between TM1 and TM2 not only reversed TM1’s and TM2’s differential distribution patterns but also their functional properties in dendrites versus axons. My thesis research also involved studying endodomain diversity of Dscam isoforms. Besides the diversity originally found in the ectodomain and transmembrane domain of Dscam, my colleagues and I further demonstrated the existence of four additional endodomain variants. These four variants are generated by skipping or retaining exon 19 or exon 23 through independent alternative splicing. Interestingly, different Dscam endodomain isoforms are expressed at different developmental stages and in different areas of the nervous system. Through isoform-specific RNA interference, we showed the differential involvement of distinct Dscam endodomains in specific neuronal morphogenetic processes. Analysis of the primary sequence of the Dscam endodomain indicated that endodomain variants may confer activation of different signaling pathways and functional roles in neuronal morphogenesis. In Summary, my thesis work identified and characterized several previously unknown mechanisms related to the differential distribution of membrane proteins in neurons. I showed that there may be a dynein/dynactin-independent mechanism for selective transport of dendritic membrane proteins to dendrites. Second, dynein/dynactin plays a maintenance role in dendritic restriction of Dscam[TM1]. Third, different membrane proteins may require distinct combinations of mechanisms to be properly targeted and maintained in certain neuronal compartments. Further analysis of the mutants indentified from my genetic screen will definitely help to resolve the missing pieces of the puzzle. These findings provide novel mechanistic insight into the differential distribution of membrane proteins in polarized neurons.
165

Regeneration and plasticity of descending propriospinal neurons after transplantation of Schwann cells overexpressing glial cell line-derived neurotrophic factor following thoracic spinal cord injury in adult rats

Deng, Lingxiao 18 May 2015 (has links)
Indiana University-Purdue University Indianapolis (IUPUI) / After spinal cord injury (SCI), poor axonal regeneration of the central nervous system, which mainly attributed to glial scar and low intrinsic regenerating capacity of severely injured neurons, causes limited functional recovery. Combinatory strategy has been applied to target multiple mechanisms. Schwann cells (SCs) have been explored as promising donors for transplantation to promote axonal regeneration. Among the central neurons, descending propriospinal neurons (DPSN) displayed the impressive regeneration response to SCs graft. Glial cell line-derived neurotrophic factor (GDNF), which receptor is widely expressed in nervous system, possesses the ability to promote neuronal survival, axonal regeneration/sprouting, remyelination, synaptic formation and modulate the glial response. We constructed a novel axonal permissive pathway in rat model of thoracic complete transection injury by grafting SCs over-expressing GDNF (SCs-GDNF) both inside and caudal to the lesion gap. Behavior evaluation and histological analyses have been applied to this study. Our results indicated that tremendous DPSN axons as well as brain stem axons regenerated across the lesion gap back to the caudal spinal cord. In addition to direct promotion on axonal regeneration, GDNF also significantly improved the astroglial environment around the lesion. These regenerations caused motor functional recovery. The dendritic plasticity of axotomized DPSN also contributed to the functional recovery. We applied a G-mutated rabies virus (G-Rabies) co-expressing green fluorescence protein (GFP) to reveal Golgi-like dendritic morphology of DPSNs and its response to axotomy injury and GDNF treatment. We also investigated the neurotransmitters phenotype of FluoroGold (FG) labeled DPSNs. Our results indicated that over 90 percent of FG-labeled DPSNs were glutamatergic neurons. DPSNs in sham animals had a predominantly dorsal-ventral distribution of dendrites. Transection injury resulted in alterations in the dendritic distribution, with dorsal-ventral retraction and lateral-medial extension of dendrites. Treatment with GDNF significantly increased the terminal dendritic length of DPSNs. The density of spine-like structures was increased after injury and treatment with GDNF enhanced this effect.
166

Expression of Kruppel-like factors 6 & 7 in Central Visual Structures of Adult Zebrafish Following Optic Nerve Crush

Davis, Reed 08 June 2018 (has links)
No description available.
167

Konditionale Inaktivierung von Pten in einem neuen Mausmodell für tomaculöse Neuropathien / Conditional inactivation of Pten in a new mouse model of tomaculous neuropathies

Oltrogge, Jan Hendrik 01 February 2017 (has links)
In der Entwicklung des peripheren Nervensystems formen Schwannzellen eine Myelinscheide um Axone mit einem Durchmesser von mehr als 1 μm durch die Bildung multipler kompakter Membranschichten. Voraussetzung einer optimalen Nervenleitgeschwindigkeit ist dabei ein physiologisches Verhältnis der Dicke der Myelinscheide zu dem jeweiligen Axondurchmesser. Eine zentrale Rolle spielt dabei der axonale EGF-like growth factor NRG1 Typ III, der ErbB2/3- Rezeptoren der Schwannzelle bindet. Der PI3K-AKT-Signalweg ist ein bekannter intrazellulärer Effektor des ErbB2/3-Rezeptors und wurde bereits mit dem Prozess der Myelinisierung in Verbindung gebracht. Um die spezifische Funktion des PI3K-AKT-Signalwegs in Schwannzellen zu erforschen, generierten wir mit Hilfe des Cre/LoxP-Systems Mausmutanten, die eine zellspezifische Inaktivierung des Gens Phosphatase and Tensin Homolog (Pten) in myelinisierenden Gliazellen aufweisen (Pten-Mutanten). Der Verlust der Lipidphosphatase PTEN führte zu einer Anreicherung ihres Substrates, des second messenger Phosphatidyl-(3,4,5)-Trisphosphat (PIP3), und damit zu einer gesteigerten Aktivität des PI3K-AKT-Signalwegs in den Schwannzellen der Pten-Mutanten. Wir beobachteten in den Pten-Mutanten eine ektopische Myelinisierung von unmyelinisierten C- Faser-Axonen sowie eine Hypermyelinisierung von Axonen bis 2 μm Durchmesser. Bei Axonen über 2 μm Durchmesser kam es zu Myelinausfaltungen und fokalen Hypermyelinisierungen (Tomacula) anliegend an Regionen des unkompakten Myelins (Paranodien und Schmidt- Lantermann-Inzisuren). Weiterhin bildeten die mutanten Remak-Schwannzellen unkompakte Membranwicklungen um nicht-myelinisierte C-Faser-Axone und um Kollagenfaserbündel aus („Remak-Myelin“). Sowohl in den Regionen unkompakten Myelins als auch in Remak- Schwannzellen konnte eine erhöhte Aktivität des PI3K-AKT-Signalwegs nachgewiesen werden. Vermutlich setzt die Anreicherung von PIP3 mit Überaktivierung des PI3K-AKT-Signalwegs in den mutanten Gliazellen einen zellautonomen Prozess der Umwicklung von Axonen in Gang. Die zusätzliche Bildung von „Remak-Myelin“ um Kollagenfasern, die keine Membranoberfläche besitzen, weist darauf hin, dass dieser Prozess nicht von einer bidirektionalen axo-glialen Kommunikation abzuhängen scheint. Die beobachteten Tomacula und Myelinausfaltungen zeigten Ähnlichkeiten mit Mausmodellen für hereditäre Neuropathien des Menschen, wie HNPP und CMT4B. Wir vermuten, dass PTEN im unkompakten Myelin unkontrolliertes Membranwachstum verhindert und dass eine gestörte Balance von Phosphoinositiden einen Pathomechanismus von tomaculösen Neuropathien darstellt. Somit identifizieren wir den PI3K-AKT-Signalweg als ein mögliches Ziel zukünftiger Therapiekonzepte für hereditäre Neuropathien des Menschen.
168

Involvement of Collapsin Response Mediator Protein 2 in Posttraumatic Sprouting in Acquired Epilepsy

Wilson, Sarah Marie January 2014 (has links)
Indiana University-Purdue University Indianapolis (IUPUI) / Posttraumatic epilepsy, the development of temporal lobe epilepsy (TLE) following traumatic brain injury, accounts for 20% of symptomatic epilepsy. Reorganization of mossy fibers within the hippocampus is a common pathological finding of TLE. Normal mossy fibers project into the CA3 region of the hippocampus where they form synapses with pyramidal cells. During TLE, mossy fibers are observed to innervate the inner molecular layer where they synapse onto the dendrites of other dentate granule cells, leading to the formation of recurrent excitatory circuits. To date, the molecular mechanisms contributing to mossy fiber sprouting are relatively unknown. Recent focus has centered on the involvement of tropomycin-related kinase receptor B (TrkB), which culminates in glycogen synthase kinase 3β (GSK3β) inactivation. As the neurite outgrowth promoting collapsin response mediator protein 2 (CRMP2) is rendered inactive by GSK3β phosphorylation, events leading to inactivation of GSK3β should therefore increase CRMP2 activity. To determine the involvement of CRMP2 in mossy fiber sprouting, I developed a novel tool ((S)-LCM) for selectively targeting the ability of CRMP2 to enhance tubulin polymerization. Using (S)-LCM, it was demonstrated that increased neurite outgrowth following GSK3β inactivation is CRMP2 dependent. Importantly, TBI led to a decrease in GSK3β-phosphorylated CRMP2 within 24 hours which was secondary to the inactivation of GSK3β. The loss of GSK3β-phosphorylated CRMP2 was maintained even at 4 weeks post-injury, despite the transience of GSK3β-inactivation. Based on previous work, it was hypothesized that activity-dependent mechanisms may be responsible for the sustained loss of CRMP2 phosphorylation. Activity-dependent regulation of GSK3β-phosphorylated CRMP2 levels was observed that was attributed to a loss of priming by cyclin dependent kinase 5 (CDK5), which is required for subsequent phosphorylation by GSK3β. It was confirmed that the loss of GSK3β-phosphorylated CRMP2 at 4 weeks post-injury was likely due to decreased phosphorylation by CDK5. As TBI resulted in a sustained increase in CRMP2 activity, I attempted to prevent mossy fiber sprouting by targeting CRMP2 in vivo following TBI. While (S)-LCM treatment dramatically reduced mossy fiber sprouting following TBI, it did not differ significantly from vehicle-treated animals. Therefore, the necessity of CRMP2 in mossy fiber sprouting following TBI remains unknown.
169

Prospektivní studie dlouhodobých zrakových následků akutních intoxikací metanolem / Prospective study of long-term visual sequelae of acute methanol poisonings

Nurieva, Olga January 2019 (has links)
Background: Methanol poisoning is a life-threatening condition which induces acute toxic optic neuropathy with possible long-term visual sequelae in survivors. Aim: To study the prevalence, character, dynamics, and key determinants of chronic morphological and functional visual pathway changes during 4 years after methanol-induced optic neuropathy. Methods: A total of 55 patients with confirmed methanol poisoning with mean age 46.7 ± 3.6 years (46 males and 9 females), and 41 controls were included in this prospective longitudinal cohort study. The patients were examined 4.9 ± 0.6, 25.0 ± 0.6, and 49.9 ± 0.5 months after discharge. The following tests were performed: visual evoked potential (VEP), optical coherence tomography with retinal nerve fiber layer (RNFL) measurement, brain magnetic resonance imaging (MRI), complete ocular examination, biochemical tests, and apolipoprotein E (ApoE) genotyping. Results: Of 42/55 patients with all three consecutive examinations, abnormal RNFL thickness was registered in 13 (31%) and chronic axonal loss during the observation period was found in 10 (24%) patients. The risk estimate of chronic global RNFL loss for arterial blood pH<7.3 at admission was: 11.65 (1.91-71.12; 95% CI) after adjusting for age and sex. The patients with chronic axonal degeneration demonstrated...
170

Nerve guides manufactured from photocurable polymers to aid peripheral nerve repair

Pateman, C.J., Harding, A.J., Glen, A., Taylor, C.S., Christmas, C.R., Robinson, P.P., Rimmer, Stephen, Boissonade, F.M., Claeyssens, F., Haycock, J.W. 2015 February 1914 (has links)
Yes / The peripheral nervous system has a limited innate capacity for self-repair following injury, and surgical intervention is often required. For injuries greater than a few millimeters autografting is standard practice although it is associated with donor site morbidity and is limited in its availability. Because of this, nerve guidance conduits (NGCs) can be viewed as an advantageous alternative, but currently have limited efficacy for short and large injury gaps in comparison to autograft. Current commercially available NGC designs rely on existing regulatory approved materials and traditional production methods, limiting improvement of their design. The aim of this study was to establish a novel method for NGC manufacture using a custom built laser-based microstereolithography (muSL) setup that incorporated a 405 nm laser source to produce 3D constructs with approximately 50 mum resolution from a photocurable poly(ethylene glycol) resin. These were evaluated by SEM, in vitro neuronal, Schwann and dorsal root ganglion culture and in vivo using a thy-1-YFP-H mouse common fibular nerve injury model. NGCs with dimensions of 1 mm internal diameter x 5 mm length with a wall thickness of 250 mum were fabricated and capable of supporting re-innervation across a 3 mm injury gap after 21 days, with results close to that of an autograft control. The study provides a technology platform for the rapid microfabrication of biocompatible materials, a novel method for in vivo evaluation, and a benchmark for future development in more advanced NGC designs, biodegradable and larger device sizes, and longer-term implantation studies.

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