4 resultados para DISEASE-ACTIVITY

em ArchiMeD - Elektronische Publikationen der Universität Mainz - Alemanha


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Die Multiple Sklerose (MS) ist eine Autoimmunkrankheit des zentralen Nervensystems, bei der sich autoreaktive T-Effektorzellen der Kontrolle durch regulatorische T-Zellen (Treg) entziehen. Innerhalb dieser Arbeit wurde gezeigt, dass T-Effektorzellen von MS-Patienten insensitiv gegenüber der Suppression durch Treg sind. Hervorgerufen wird diese Treg-Resistenz durch Interleukin-6 (IL-6). Die Inhibition des IL-6-Signalweges stellt die Treg-vermittelte Suppression der T-Effektorzellen wieder her. Es zeigte sich, dass die Bildung von IL-6 und die Expression des IL-6-Rezeptors in MS-Patienten in einer positiven Rückkopplungsschleife von IL-6 selbst induziert werden.rnZur Analyse humaner Immunantworten in vivo und deren Modulation durch humanspezifische Therapeutika wurden humanisierte Mausmodelle etabliert. Der adoptive Transfer humaner Immunzellen in immundefiziente Mäuse erlaubte die Untersuchung von T-Lymphozyten, die aus dem Blut von MS-Patienten isoliert wurden. Es zeigte sich, dass Treg-resistente T-Effektorzellen aus den MS-Patienten in den Tieren eine letale Graft-versus-Host-Erkrankung auslösten, die nicht durch aktivierte Treg therapiert werden konnte. Erst eine Behandlung mit dem humanspezifischen anti-IL-6-Antikörper Tocilizumab in vivo konnte die Erkrankung der Tiere deutlich abmildern.rnIm zweiten Modell wurden immundefiziente Mäuse mit humanen CD34+ Blutstammzellen immunologisch rekonstituiert. Diese Tiere entwickelten ein nahezu vollständig humanes Immunsystem. Die Immunisierung mit dem murinen Myelin-Oligodenrozyten-Glykoprotein löste in den humanisierten Mäusen eine MS-ähnliche Autoimmunität aus. Die Neuroinflammation wurde durch humane T- und B-Zellen vermittelt, korrelierte mit erhöhter IL-17-Produktion und führte zu einer IL-6-abhängigen Treg-Resistenz der T-Effektorzellen. Somit eignen sich die etablierten Modelle, um zukünftig die Wirksamkeit neuer Therapeutika zur Behandlung der MS präklinisch zu testen.rn

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Untersuchung zur Pathogenese der 'Bypass graft disease' Histomorphologische Untersuchungen und in vitro Zellkulturanalysen bilden die Grundlage für Fortschritte im Verständnis der pathologischen Mechanismen der aortokoronaren 'Bypass graft disease'. In der vorliegenden Arbeit wurde die pathomorphologische Veränderung der Gefäßanatomie im Verlauf der 'Bypass graft disease' an Hand histologischer Präparate explantierter humaner venöser Bypass-Läsionen analysiert. Erstmalig wurde ein histomorphologisches Klassifizierungsschema (Typ I - Typ III) beschrieben. Morphometrische Analysen zeigten, dass die Fläche der Neointima und Media im Verlauf der pathologischen Umgestaltung der Bypass-Architektur (Typ I zu Typ III) deutlich zunimmt. Bestimmungen der Zelldichte dokumentierten eine deutlich größere Zellzahl in allen Gefäßwandschichten der Bypass-Läsionen bei der Gegenüberstellung mit einer Kontrollgruppe nativer Venen, wobei im Verlauf der 'Bypass graft disease' (Typ I zu Typ III) eine Abnahme der Zelldichte zu beobachten war. Erstmalig durchgeführte Untersuchungen zur Proliferationsaktivität in aortokoronaren Bypass-Läsionen im Vergleich zu nativen Gefäßen präsentierten eine deutlich höhere zelluläre Proliferation in den Bypass-Präparaten. Diese war am stärksten in Typ III Läsionen ausgeprägt. Expressionsstudien im in vitro Zellkulturmodellsystem identifiziereten die homodimeren Isotypen (AA / BB) des Wachstumsfaktors PDGF als Stimulatoren der Transkriptionsfaktoren c-fos und c-myc in primärkultivierten humanen Muskelzellen der Aorta.

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According to the amyloid hypothesis, Alzheimer’s disease (AD) is caused by aberrant production or clearance of the amyloid-β (Aβ) peptides, and in particular of the longer more aggregation-prone Aβ42. The Aβ peptides are generated through successive proteolytic cleavage of the amyloid precursor protein (APP) by the β-site APP cleaving enzyme (BACE) and γ-secretase. γ-secretase produces Aβ peptides with variable C-termini ranging from Aβ34 to Aβ48, presumably by sequential trimming of longer into shorter peptides. γ-secretase is a multiprotein complex consisting of at least four different proteins and the presenilin proteins (PS1 or PS2) contain the catalytic center of the complex. In 2001 several non-steroidal anti-inflammatory drugs were identified as the founding members of a new class of γ-secretase modulators (GSMs) that can selectively reduce production of Aβ42. Concomitantly, these GSMs increase Aβ38 production indicating closely coordinated generation of Aβ42 and Aβ38 and a potential precursor-product relationship between these peptides. GSMs seem to exert their activity by direct modulation of γ-secretase. Support for this hypothesis is drawn from the finding that some PS mutations associated with early-onset familial AD (FAD) can modulate the cellular response to GSMs and to γ-secretase inhibitors (GSIs), which inhibit production of all Aβ peptides and are known to directly interact with PS. A particularly interesting FAD PS mutation is PS1-ΔExon9, a complex deletion mutant that blocks endoproteolysis of PS1 and renders cells completely non-responsive to GSMs. Studies presented in this thesis show that the diminished response of PS1-ΔExon9 to GSMs is mainly caused by its lack of endoproteolytic cleavage. Furthermore, we were able to demonstrate that a reduced response to GSMs and GSIs is not limited to PS1-ΔExon9 but is a common effect of aggressive FAD-associated PS1 mutations. Surprisingly, we also found that while the Aβ42 response to GSMs is almost completely abolished by these PS1 mutations, the accompanying Aβ38 increase was indistinguishable to wild-type PS1. Finally, the reduced response to GSIs was confirmed in a mouse model with transgenic expression of an aggressive FAD-associated PS1 mutation as a highly potent GSI failed to reduce Aβ42 levels in brain of these mice. Taken together, our findings provide clear evidence for independent generation of Aβ42 and Aβ38 peptides, and argue that the sequential cleavage model might be an oversimplification of the molecular mechanism of γ-secretase. Most importantly, our results highlight the significance of genetic background in drug discovery efforts aimed at γ-secretase, and indicate that the use of cellular models with transgenic expression of FAD-associated PS mutations might confound studies of the potency and efficacy of GSMs and GSIs. Therefore, such models should be strictly avoided in the ongoing preclinical development of these promising and potentially disease-modifying therapeutics for AD.

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During the perinatal period the developing brain is most vulnerable to inflammation. Prenatal infection or exposure to inflammatory factors can have a profound impact on fetal neurodevelopment with long-term neurological deficits, such as cognitive impairment, learning deficits, perinatal brain damage and cerebral palsy. Inflammation in the brain is characterized by activation of resident immune cells, especially microglia and astrocytes whose activation is associated with a variety of neurodegenerative disorders like Alzheimer´s disease and Multiple sclerosis. These cell types express, release and respond to pro-inflammatory mediators such as cytokines, which are critically involved in the immune response to infection. It has been demonstrated recently that cytokines also directly influence neuronal function. Glial cells are capable of releaseing the pro-inflammatory cytokines MIP-2, which is involved in cell death, and tumor necrosis factor alpha (TNFalpha), which enhances excitatory synaptic function by increasing the surface expression of AMPA receptors. Thus constitutively released TNFalpha homeostatically regulates the balance between neuronal excitation and inhibition in an activity-dependent manner. Since TNFalpha is also involved in neuronal cell death, the interplay between neuronal activity MIP-2 and TNFalpha may control the process of cell death and cell survival in developing neuronal networks. An increasing body of evidence suggests that neuronal activity is important in the regulation of neuronal survival during early development, e.g. programmed cell death (apoptosis) is augmented when neuronal activity is blocked. In our study we were interested on the impact of inflammation on neuronal activity and cell survival during early cortical development. To address this question, we investigated the impact of inflammation on neuronal activity and cell survival during early cortical development in vivo and in vitro. Inflammation was experimentally induced by application of the endotoxin lipopolysaccharide (LPS), which initiates a rapid and well-characterized immune response. I studied the consequences of inflammation on spontaneous neuronal network activity and cell death by combining electrophysiological recordings with multi-electrode arrays and quantitative analyses of apoptosis. In addition, I used a cytokine array and antibodies directed against specific cytokines allowing the identification of the pro-inflammatory factors, which are critically involved in these processes. In this study I demonstrated a direct link between inflammation-induced modifications in neuronal network activity and the control of cell survival in a developing neuronal network for the first time. Our in vivo and in vitro recordings showed a fast LPS-induced reduction in occurrence of spontaneous oscillatory activity. It is indicated that LPS-induced inflammation causes fast release of proinflammatory factors which modify neuronal network activity. My experiments with specific antibodies demonstrate that TNFalpha and to a lesser extent MIP-2 seem to be the key mediators causing activity-dependent neuronal cell death in developing brain. These data may be of important clinical relevance, since spontaneous synchronized activity is also a hallmark of the developing human brain and inflammation-induced alterations in this early network activity may have a critical impact on the survival of immature neurons.