927 resultados para Retinal ganglion cell degeneration


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We studied the ultrastructural aspects of pre-pupae and pupae ovaries of Dermatobia hominis. Physiological degeneration of gonial cells was observed: (a) after the ovarioles differentiation, in the oogonia residing in the apical region of the ovary; (b) at the beginning of vitellogenesis, in the cystoblasts close to the terminal filament. The significance of gonial cell degeneration was correlated with the physiological changes wich occur in the ovary during development.

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Das Glaukom ist eine der führenden Erblindungsursachen weltweit. Trotzdem ist die Pathogenese, die zur Degeneration der retinalen Ganglienzellen führt, bisher nicht verstanden. In den letzten Jahren ergaben sich verschiedene Hinweise auf die Beteiligung einer immunologischen Komponente. Thema dieser Arbeit waren elektrophysiologische Untersuchungen, im Sinne von visuell evozierten Potentialen, am Tiermodell des Experimentellen Autoimmun Glaukoms und die Etablierung dieses Modells. Das Modell basiert auf einer Immunisierung von Lewisratten mit Pertussistoxin, inkompletten Freunds Adjuvant und potentiellen Antigenen, die zu einer Immunreaktion und einem Verlust von retinalen Ganglienzellen führen sollen. Zur Etablierung des Experimentellen Autoimmun Glaukom Modells wurde eine fünfwöchige Studie mit vier Gruppen durchgeführt. Als Antigene wurden Glia fibrilläres saures Protein (n= 10) und Myelin basisches Protein (n=10) verwendet, die beide in Studien zu Serum- und Kammerwasseranalysen bei Glaukompatienten eine Abweichung zur Kontrollgruppe gezeigt hatten. Außerdem wurde eine Gruppe mit selbst hergestelltem Sehnerv-Homogenat (n=12) immunisiert. Eine Gruppe erhielt keine Immunisierung und diente als Kontrolle (n=10). Zur Überprüfung der Effekte des Modells dienten verschiedene Untersuchungsmethoden, wie die Augeninnendruckmessung und die Untersuchung der Fundi. Des Weiteren wurden transiente und stationäre visuell evozierte Potentiale abgeleitet und die Latenzen, Amplituden und die Marker S (Steigung) und TR (Temporale Antworten) verglichen. Außerdem erfolgte nach Tötung der Tiere die Entnahme der Gehirne und Augen. Die Gehirne wurden nach Paraffineinbettung geschnitten, mit Luxol Fast Blue und Kresylviolett gefärbt und hinsichtlich etwaiger Entmarkungsherde oder anderer Pathologien unter dem Mikroskop bewertet. Der Verlauf des intraokulären Drucks zeigte sowohl zwischen den Gruppen als auch zwischen den verschiedenen Zeitpunkten keine signifikanten Unterschiede. Er bewegte sich im physiologischen Bereich mit durchschnittlich circa 12 mmHg. Die Funduskopien lieferten zu keinem Zeitpunkt krankhafte Veränderungen. Auch die visuell evozierten Potentiale lieferten zwischen den Gruppen keine signifikanten Unterschiede, sondern belegten normale visuelle Funktion bei allen Tieren. Die Auswertung der histologischen Untersuchung der Hirnschnitte zeigte keine Entmarkungsherde. Die erzielten Ergebnisse dieser Arbeit legen nahe, dass der retinale Ganglienzellverlust beim Experimentellen Autoimmun Glaukom Modell ohne eine Augeninnendruckerhöhung stattfindet. Die Fundusuntersuchung und die visuell evozierten Potentiale, wie in diesem Versuchsaufbau durchgeführt, scheinen nicht sensibel genug zu sein, diese Verluste nachzuweisen. In weiteren Arbeiten sollten andere Methoden zum Nachweis der retinalen Ganglienzellverluste erprobt werden. Neben elektrophysiologischen Methoden bieten sich für das weitere Vorgehen besonders immunhistologische Methoden an. Außerdem sollten die Mechanismen erforscht werden durch die es nach der Immunisierung zur Apoptose von retinalen Ganglienzellen kommt und welche Antikörper dazuführen können. Des Weiteren ist von Interesse, ob und wie eine zelluläre Komponente an der Pathogenese des Experimentellen Autoimmun Glaukoms beteiligt ist.

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It is increasingly recognised that chronically activated glia contribute to the pathology of various neurodegenerative diseases, including glaucoma. One means by which this can occur is through the release of neurotoxic, proinflammatory factors. In the current study, we therefore investigated the spatio-temporal patterns of expression of three such cytokines, IL-1β, TNFα and IL-6, in a validated rat model of experimental glaucoma. First, only weak evidence was found for increased expression of IL-1β and TNFα following induction of ocular hypertension. Second, and much more striking, was that robust evidence was uncovered showing IL-6 to be synthesised by injured retinal ganglion cells following elevation of intraocular pressure and transported in an orthograde fashion along the nerve, accumulating at sites of axonal disruption in the optic nerve head. Verification that IL-6 represents a novel marker of disrupted axonal transport in this model was obtained by performing double labelling immunofluorescence with recognised markers of fast axonal transport. The stimulus for IL-6 synthesis and axonal transport during experimental glaucoma arose from axonal injury rather than ocular hypertension, as the response was identical after optic nerve crush and bilateral occlusion of the carotid arteries, each of which is independent of elevated intraocular pressure. Moreover, the response of IL-6 was not a generalised feature of the gp130 family of cytokines, as it was not mimicked by another family member, ciliary neurotrophic factor. Finally, further study suggested that IL-6 may be an early part of the endogenous regenerative response as the cytokine colocalised with growth-associated membrane phosphoprotein-43 in some putative regenerating axons, and potently stimulated neuritogenesis in retinal ganglion cells in culture, an effect that was additive to that of ciliary neurotrophic factor. These data comprise clear evidence that IL-6 is actively involved in the attempt of injured retinal ganglion cells to regenerate their axons.

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Episcleral vein cauterization (EVC) is used in rats to generate a glaucoma model with high intraocular pressure (IOP). The long-term retinal damage in this glaucoma model, however, has not been accurately quantified. We report the location and amount of retinal ganglion cell (RGC) damage caused by (EVC) induced IOP elevation in two rat strains. IOP was raised in one eye of Wistar (N = 5) and Brown-Norway(B-N)(N = 7) rats by EVC and monitored monthly until IOP in contralateral eyes equalized at 5 months post-surgery. Animals were maintained for 3.5-4.5 additional months. B-N rats (N = 7) that had no EVC served as controls for this strain. Scotopic flash ERGs were recorded at baseline and just prior to euthanasia. Automated counts of all retrogradely labeled RGCs in retinal flat-mounts were determined and compared between contralateral eyes. RGC density maps were constructed and RGC size distribution was determined. Oscillatory potentials in the group of eyes which had elevated IOP were decreased at the time of euthanasia, when IOP had returned to normal. The group of normal B-N rats had similar RGC counts between contralateral eyes. In the experimental group the mean number of RGCs was not significantly different between control and experimental eyes, but 1 of 5 Wistar and 2 of 7 B-N experimental eyes had at least 30% fewer RGCs than contralateral control eyes. Total retinal area in B-N experimental eyes was higher compared to contralateral eyes. Cumulative IOP exposure of the experimental eyes was modestly correlated with RGC loss while oscillatory potentials appeared to be inversely related to RGC loss. In retinas with extensive (> 30% RGC loss) but not complete damage, smaller cells were preserved better than larger ones. The above results indicate that RGC loss in both Wistar and B-N strains is variable after a prolonged elevation of IOP via EVC. Such variability despite equivalent IOP levels and ERG abnormalities, suggests unknown factors that can protect IOP-stressed RGCs. Identification and enhancement of such factors could prove useful for glaucoma therapy.

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The semaphorins comprise a large family of membrane-bound and secreted proteins, some of which have been shown to function in axon guidance. We have cloned a transmembrane semaphorin, Sema W, that belongs to the class IV subgroup of the semaphorin family. The mouse and rat forms of Sema W show 97% amino acid sequence identity with each other, and each shows about 91% identity with the human form. The gene for Sema W is divided into 15 exons, up to 4 of which are absent in the human cDNAs that we sequenced. Unlike many other semaphorins, Sema W is expressed at low levels in the developing embryo but was found to be expressed at high levels in the adult central nervous system and lung. Functional studies with purified membrane fractions from COS7 cells transfected with a Sema W expression plasmid showed that Sema W has growth-cone collapse activity against retinal ganglion-cell axons, indicating that vertebrate transmembrane semaphorins, like secreted semaphorins, can collapse growth cones. Genetic mapping of human SEMAW with human/hamster radiation hybrids localized the gene to chromosome 2p13. Genetic mapping of mouse Semaw with mouse/hamster radiation hybrids localized the gene to chromosome 6, and physical mapping placed the gene on bacteria artificial chromosomes carrying microsatellite markers D6Mit70 and D6Mit189. This localization places Semaw within the locus for motor neuron degeneration 2, making it an attractive candidate gene for this disease.

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Application of L-glutamate to retinal glial (Müller) cells results in an inwardly rectifying current due to the net influx of one positive charge per molecule of glutamate transported into the cell. However, at positive potentials an outward current can be elicited by glutamate. This outward current is eliminated by removal of external chloride ions. Substitution of external chloride with the anions thiocyanate, perchlorate, nitrate, and iodide, which are known to be more permeant at other chloride channels, results in a considerably larger glutamate-elicited outward current at positive potentials. The large outward current in external nitrate has the same ionic dependence, apparent affinity for L-glutamate, and pharmacology as the glutamate transporter previously reported to exist in these cells. Varying the concentration of external nitrate shifts the reversal potential in a manner consistent with a conductance permeable to nitrate. Together, these results suggest that the glutamate transporter in retinal glial cells is associated with an anionic conductance. This anionic conductance may be important for preventing a reduction in the rate of transport due the depolarization that would otherwise occur as a result of electrogenic glutamate uptake.

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The visual world is presented to the brain through patterns of action potentials in the population of optic nerve fibers. Single-neuron recordings show that each retinal ganglion cell has a spatially restricted receptive field, a limited integration time, and a characteristic spectral sensitivity. Collectively, these response properties define the visual message conveyed by that neuron's action potentials. Since the size of the optic nerve is strictly constrained, one expects the retina to generate a highly efficient representation of the visual scene. By contrast, the receptive fields of nearby ganglion cells often overlap, suggesting great redundancy among the retinal output signals. Recent multineuron recordings may help resolve this paradox. They reveal concerted firing patterns among ganglion cells, in which small groups of nearby neurons fire synchronously with delays of only a few milliseconds. As there are many more such firing patterns than ganglion cells, such a distributed code might allow the retina to compress a large number of distinct visual messages into a small number of optic nerve fibers. This paper will review the evidence for a distributed coding scheme in the retinal output. The performance limits of such codes are analyzed with simple examples, illustrating that they allow a powerful trade-off between spatial and temporal resolution.

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Thèse numérisée par la Direction des bibliothèques de l'Université de Montréal.

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Thèse numérisée par la Direction des bibliothèques de l'Université de Montréal.