3 resultados para Spontaneous Regression
em ArchiMeD - Elektronische Publikationen der Universität Mainz - Alemanha
Resumo:
Diese Arbeit befasst sich mit der Rolle des Fibronektins für die Entstehung und des Wachstums von Knochenmetastasen. rnrnTumorzellspezifische Faktoren bereiten entfernte Gewebe auf die Besiedelung durch disseminierte Tumorzellen vor. Dabei wird Fibronektin im Bereich der prämetastatischen Nische vermehrt gebildet. Dies führte zu der Annahme, dass Fibronektin eine wichtige Rolle bei der Entstehung von Tumoren einnimmt. Um die Bedeutung des Fibronektins bezüglich des Metastasierungsprozesses näher zu charakterisieren, wurde dieses im Bereich der vaskulären Nische über das Cre/loxP-System ausgeschaltet. Die Inaktivierung von zirkulierendem Fibronektin und Knochenmarks-Fibronektin in vivo hatte ein verlangsamtes Tumorwachstum zur Folge, welches auf eine um 22% verminderte Angiogenese zurückzuführen war. Im Gegensatz dazu beeinträchtigte die Ausschaltung des Osteoblasten-Fibronektins lediglich die frühen Entwicklungsstadien der Tumore. Diese Beobachtungen könnten einerseits mit der eingeschränkten Funktionsweise der Osteoblasten in Abwesenheit von Fibronektin erklärt werden, andererseits könnte der Einfluss auf das Fehlen osteoblastenspezifischer Fibronektin-Isoformen zurückgeführt werden, die die Metastasierung, Zelladhäsion, Proliferation und Motilität von Tumorzellen erhöhen. rnrnDie Deletion des Tumorzell-Fibronektins hatte eine durchschnittlich um 60% reduzierte Anzahl gebildeter Metastasen, ein eingeschränktes Tumorwachstum, hervorgerufen durch eine um 37% verminderte Blutgefäßanzahl, und letztendlich eine dreifache Verlängerung der mittleren Überlebensraten zur Folge. Die kombinierte Ausschaltung von lokalem Fibronektin und Tumorzell-Fibronektin vermochte den Einfluss auf die Etablierung und das Wachstum der Tumore zu verstärken. rnrnEin Drittel der Tiere, denen Metastasen induziert wurden, zeigten eine spontane Rückbildung der Tumore, ohne dass eine medizinische Intervention erfolgte. Dabei wurde zwischen einer kompletten Regression, bei der eine vollständige Rückbildung aller Tumore beobachtet werden konnte, und einer partiellen Regression, von der nur einzelne Tumore betroffen waren, unterschieden. Die spontane Regression war altersabhängig und trat 8-17 Wochen im Anschluss an die Applikation der Tumorzellen auf. Die vollständige Rückbildung der osteolytischen Knochenläsionen war mit dem Heilungsprozess des Knochengewebes verbunden, der sich in einer Verdichtung der Knochensubstanz äußerte. Erste Ergebnisse lieferten Hinweise darauf, dass die spontane Tumorregression auf eine mögliche Beteiligung von Granulozyten zurückzuführen war.rnrnZusammenfassend zeigten unsere Untersuchungen, dass sowohl Fibronektin der Mikroumgebung als auch Tumorzell-Fibronektin die Entwicklung und das Wachstum von Tumoren beeinträchtigte. Diese Arbeit lieferte erste Hinweise auf die Existenz eines sehr effektiven Mechanismus, der in Zusammenhang mit Fibronektin steht und dazu in der Lage ist, Tumorzellen selbst bei fortgeschrittenen Krebserkrankungen zu beseitigen. rn
Resumo:
Materials that can mold the flow of elastic waves of certain energy in certain directions are called phononic materials. The present thesis deals essentially with such phononic systems, which are structured in the mesoscale (<1 µm), and with their individual components. Such systems show interesting phononic properties in the hypersonic region, i.e., at frequencies in the GHz range. It is shown that colloidal systems are excellent model systems for the realization of such phononic materials. Therefore, different structures and particle architectures are investigated by Brillouin light scattering, the inelastic scattering of light by phonons.rnThe experimental part of this work is divided into three chapters: Chapter 4 is concerned with the localized mechanical waves in the individual spherical colloidal particles, i.e., with their resonance- or eigenvibrations. The investigation of these vibrations with regard to the environment of the particles, their chemical composition, and the influence of temperature on nanoscopically structured colloids allows novel insights into the physical properties of colloids at small length scales. Furthermore, some general questions concerning light scattering on such systems, in dispute so far, are convincingly addressed.rnChapter 5 is a study of the traveling of mechanical waves in colloidal systems, consisting of ordered and disordered colloids in liquid or elastic matrix. Such systems show acoustic band gaps, which can be explained geometrically (Bragg gap) or by the interaction of the acoustic band with the eigenvibrations of the individual spheres (hybridization gap).rnWhile the latter has no analogue in photonics, the presence of strong phonon scatterers, when a large elastic mismatch between the composite components exists, can largely impact phonon propagation in analogy to strong multiple light scattering systems. The former is exemplified in silica based phononic structures that opens the door to new ways of sound propagation manipulation.rnChapter 6 describes the first measurement of the elastic moduli in newly fabricated by physical vapor deposition so-called ‘stable organic glasses’. rnIn brief, this thesis explores novel phenomena in colloid-based hypersonic phononic structures, utilizing a versatile microfabrication technique along with different colloid architectures provided by material science, and applying a non-destructive optical experimental tool to record dispersion diagrams.rn
Resumo:
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.