3 resultados para I Collagen

em ArchiMeD - Elektronische Publikationen der Universität Mainz - Alemanha


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The idea was to obtain nanowires in a chemical laboratory under convenient and simple conditions by employing templates. Thus it was possible to produce nanochains by interlinking of gold colloids synthesized by the two-phase-method of M. Brust with by making use of vanadiumoxide nanotubes as template. The length of the resulting nanowires is varying between 1100 nm and 200 nm with a diameter of about 16 nm. Due to a flexible linker the obtained nanowires are not completely rigid. These unique structural features could make them interesting objects for structuring and assembling in the nanoscale range. Another way to produce gold nanowires was realized by a two-step surface metallization procedure, using type I collagen fibres as a template. Gold colloids were used to label the collagen fibres by direct electrostatic interaction, followed by growth steps to enhance the size of the adsorbed colloidal gold crystals, resulting in a complete metallization of the template surface. The length of the resulting gold nanowires reaches several micrometers, with a diameter ~ 100 to 120 nm. To gain a deeper insight into the process of biomineralization the cooperative effect of self-assembled monolayers as substrate and a soluble counterpart on the nucleation and crystal growth of calcium phosphate was studied by diffusion techniques with a pH switch as initiator. As soluble component Perlucin and Nacrein were used. Both are proteins originally extracted from marine organisms, the first one from the Abalone shell and the second one from oyster pearls. Both are supposed to facilitate the calcium carbonate formation in vivo. Studies with Perlucin revealed that this protein shows a clear cooperative effect at a very low concentration with a hydrophobic surface promoting the calcium phosphate precipitation resulting in a sponge like structure of hydroxyapatite. The Perlucin molecule is very flexible and is unfolded by adsorbing to the hydrophobic surface and uncovers its active side. Hydrophilic surfaces did not have a deeper impact. Studies with Nacrein as additive have shown that the protein stabilizes octacalcium phosphate at room temperature on carboxylic self-assembled monolayer and at 34 °C on all other employed surfaces by interaction with the mineral. On the hydroxyl-, alkyl-, and amin-terminated self-assembled monolayers at room temperature the octacalcium phosphate get transformed to hydroxyapatite. Main analytical techniques which are used in this work are transmission electron microscopy, high resolution scanning electron microscopy, surface plasmon resonance spectroscopy, atomic force microscopy, Raman micro-spectroscopy and quartz crystal microbalance.

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Chondrocytes live isolated in the voluminous extracellular matrix of cartilage, which they secrete and is neither vascularized nor innervated. Nutrient and waste exchanges occur through diffusion leading to low oxygen tension around the cells. Consequently even normal cartilage under normal physiological conditions suffers from a poor reparative potential that predisposes to degenerative conditions, such as osteoarthritis of the joints, with significant clinical effects.rnOne of the key challenges in medicine is the structural and functional replacement of lost or damaged tissues. Current therapeutical approaches are to transplant cells, implant bioartificial tissues, and chemically induce regeneration at the site of the injury. None of them reproduces well the biological and biomechanical properties of hyaline cartilage.rnThis thesis investigates the re-differentiation of chondrocytes and the repair of cartilage mediated by signaling molecules, biomaterials, and factors provided in mixed cellular cultures (co-culture systems). As signaling molecules we have applied prostaglandin E2 (PGE2) and bone morphogenetic protein 1 (BMP-1) and we have transfected chondrocytes with BMP-1 expressing vectors. Our biomaterials have been hydrogels of type-I collagen and gelatin-based scaffolds designed to mimic the architecture and biochemistry of native cartilage and provide a suitable three-dimensional environment for the cells. We have brought chondrocytes to interact with osteosarcoma Cal 72 cells or with murine preosteoblastic KS483 cells, either in a cell-to-cell or in a paracrine manner.rnExogenous stimulation with PGE2 or BMP-1 did not improve the differentiation or the proliferation of human articular chondrocytes. BMP-1 induced chondrocytic de-differentiation in a dose-dependent manner. Prostaglandin stimulation from gelatin-based scaffolds (three-dimensional culture) showed a certain degree of chondrocyte re-differentiaton. Murine preosteoblastic KS483 cells had no beneficial effect on human articular chondrocytes jointly cultivated with them in hydrogels of type I collagen. Although the hydrogels provided the chondrocytes with a proper matrix in which the cells adopted their native morphology; additionally, the expression of chondrocytic proteoglycan increased in the co-cultures after two weeks. The co-culture of chondrocytes with osteoblast-like cells (in transwell systems) resulted in suppression of the regular de-differentiation program that passaged chondrocytes undergo when cultured in monolayers. Under these conditions, the extracellular matrix of the chondrocytes, rich in type-II collagen and aggrecan, was not transformed into the extracellular matrix characteristic of de-differentiated human articular chondrocytes, which is rich in type-I collagen and versican.rnThis thesis suggests novel strategies of tissue engineering for clinical attempts to improve cartilage repair. Since implants are prepared in vitro (ex-vivo) by expanding human articular chondrocytes (autologous or allogeneic), we conclude that it will be convenient to provide a proper three-dimensional support to the chondrocytes in culture, to supplement the culture medium with PGE2, and to stimulate chondrocytes with osteoblastic factors by cultivating them with osteoblasts.rn

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In dieser Arbeit wurden Zellkulturen primärer Hepatozyten von Ratte und Mensch hinsichtlich ihrer Eignung untersucht Speziesunterschiede der toxischen Wirkung und des Metabolismus von Substanzen darzustellen und inwieweit die in vitro-Ergebnisse in vivo vergleichbar bzw. übertragbar sind. Des Weiteren wurde ein Zellkulturmodell entwickelt, das eine Kultivierung von primären Hepatozyten aus Ratte, Mensch und Maus über einen Zeitraum von mindestens einer bis zwei Wochen erlaubt.rnrnDie Zellkulturen primärer Hepatozyten von Ratte und Mensch zeigten deutliche Unterschiede in der substanzinduzierten Veränderung der Genexpression nach Behandlung mit den, vor allem für den Menschen, lebertoxischen Substanzen Diclofenac und Troglitazon. Diese Unterschiede traten hauptsächlich in der Induktion fremdstoffmetabolisierender Enzyme sowie deren transkriptionsregulierenden Kernrezeptoren in den humanen Hepatozyten auf. Ebenso war eine verstärkte Stressantwort zu beobachten.rnDeutliche Speziesunterschiede konnten ebenso in der Wirkung der Arzneimittelentwicklungssubstanz EMD 392949 auf die Aktivität bzw. Genexpression von Cytochrom P450 Enzymen sowie deren Regulatoren nachgewiesen werden. Des Weiteren konnte hier eine sehr gute Übereinstimmung der Ergebnisse aus den Zellkulturen primärer Ratten- bzw. Humanhepatozyten mit jenen aus in vivo-Experimenten mit Ratten bzw. Affen (Macaca fascicularis) beobachtet werden, was die Aussagekraft der Primärkulturen verdeutlichte.rnDie große Übereinstimmung zwischen Enzymaktivität und Genexpression in der Induktion fremdstoffmetabolisierender Enzyme konnte durch die Behandlung mit einer Reihe speziesspezifischer Induktoren in Zellkulturen primärer Ratten- bzw. Humanhepatozyten bestätigt werden; vor allem nach dem von der amerikanischen Arzneimittelzulassungsbehörde (FDA, Food and Drug Administartion) vorgeschlagenen Bewertungsschema zur Untersuchung der CYP-Induktion.rnrnDie Lebensdauer sowie der Differenzierungsgrad von primären Hepatozyten in Kultur sind stark abhängig von den Zellkulturbedingungen. Durch diese Arbeit konnte gezeigt werden, dass spezifische Eigenschaften von Rattenleberzellen durch Kultivierung in einem Sandwich aus zwei hydratisierten Collagengelschichten und unter serumfreien Bedingungen für einen Zeitraum von mindestens zwei Wochen aufrechterhalten werden können. Dieses Kulturmodel konnte auf Primärhepatozyten von Mensch und Maus übertragen werden und erweitert die möglichen Anwendungen hin zu einer Behandlung über einen längeren Zeitraum und der Untersuchung von subchronischen Effekten.rn