5 resultados para ends-in-view

em ArchiMeD - Elektronische Publikationen der Universität Mainz - Alemanha


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One of the quickest plant movements ever known is made by the ´explosive´ style in Marantaceae in the service of secondary pollen presentation – herewith showing a striking apomorphy to the sister Cannaceae that might be of high evolutionary consequence. Though known already since the beginning of the 19th century the underlying mechanism of the movement has hitherto not been clarified. The present study reports about the biomechanics of the style-staminode complex and the hydraulic principles of the movement. For the first time it is shown by experiment that in Maranta noctiflora through longitudinal growth of the maturing style in the ´straitjacket´ of the hooded staminode both the hold of the style prior to its release and its tensioning for the movement are brought about. The longer the style grows in relation to the enclosing hooded staminode the more does its capacity for curling up for pollen transfer increase. Hereby I distinguish between the ´basic tension´ that a growing style builds up anyway, even when the hooded staminode is removed beforehand, and the ´induced tension´ which comes about only under the pressure of a ´too short´ hooded staminode and which enables the movement. The results of these investigations are discussed in view of previous interpretations ranging from possible biomechanical to electrophysiological mechanisms. To understand furthermore by which means the style gives way to the strong bending movement without suffering outwardly visible damage I examined its anatomical structure in several genera for its mechanical and hydraulic properties and for the determination of the entire curvature after release. The actual bending part contains tubulate cells whose walls are extraordinarily porous and large longitudinal intercellular spaces. SEM indicates the starting points of cell-wall loosening in primary walls and lysis of middle lamellae - probably through an intense pectinase activity in the maturing style. Fluorescence pictures of macerated and living style-tissue confirm cell-wall perforations that do apparently connect neighbouring cells, which leads to an extremely permeable parenchyma. The ´water-body´ can be shifted from central to dorsal cell layers to support the bending. The geometrical form of the curvature is determined by the vascular bundles. I conclude that the style in Marantaceae contains no ´antagonistic´ motile tissues as in Mimosa or Dionaea. Instead, through self-maceration it develops to a ´hydraulic tissue´ which carries out an irreversible movement through a sudden reshaping. To ascertain the evolutionary consequence of this apomorphic pollination mechanism the diversity and systematic value of hooded staminodes are examined. For this hooded staminodes of 24 genera are sorted according to a minimalistic selection of shape characters and eight morphological types are abstracted from the resulting groups. These types are mapped onto an already available maximally parsimonious tree comprising five major clades. An amazing correspondence is found between the morphological types and the clades; several sister-relationships are confirmed and in cases of uncertain position possible evolutionary pathways, such as convergence, dispersal or re-migration, are discussed, as well as the great evolutionary tendencies for the entire family in which – at least as regards the shape of hooded staminodes – there is obviously a tendency from complicated to strongly simplified forms. It suggests itself that such simplifying derivations may very likely have taken place as adaptations to pollinating animals about which at present too little is known. The value of morphological characters in relation to modern phylogenetic analysis is discussed and conditions for the selection of morphological characters valuable for a systematic grouping are proposed. Altogether, in view of the evolutionary success of Marantaceae compared with Cannaceae the movement mechanism of the style-staminode complex can safely be considered a key innovation within the order Zingiberales.

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In this study two ophiolites and a mafic-ultramafic complexes of the northeastern Aegean Sea, Greece, have been investigated to re-evaluate their petrogenetic evolution and tectonic setting. These complexes are: the mafic-ultramafic complex of Lesvos Island and the ophiolites of Samothraki Island and the Evros area. In order to examine these complexes in detail whole-rock major- and trace-elements as well as Sr and Nd isotopes, and minerals were analysed and U-Pb SHRIMP ages on zircons were determined. The mafic-ultramafic complex of Lesvos Island consists of mantle peridotite thrusted over a tectonic mélange containing metasediments, metabasalts and a few metagabbros. This succession had previously been interpreted as an ophiolite of Late Jurassic age. The new field and geochemical data allow a reinterpretation of this complex as representing an incipient continental rift setting that led to the subsequent formation of the Meliata-Maliac-Vardar branches of Neotethys in Upper Permian times (253 ± 6 Ma) and the term “Lesvos ophiolite” should be abandoned. With proceeding subduction and closure of the Maliac Ocean in Late Jurassic times (155 Ma) the Lesvos mafic-ultramafic complex was obducted. Zircon ages of 777, 539 and 338 Ma from a gabbro strongly suggest inheritance from the intruded basement and correspond to ages of distinct terranes recently recognized in the Hellenides (e.g. Florina terrane). Geochemical similar complexes which contain rift associations with Permo-Triassic ages can be found elsewhere in Greece and Turkey, namely the Teke Dere Thrust Sheet below the Lycian Nappes (SW Turkey), the Pindos subophiolitic mélange (W Greece), the Volcanosedimentary Complex on Central Evia Island (Greece) and the Karakaya Complex (NW Turkey). This infers that the rift-related rocks from Lesvos belong to an important Permo-Triassic rifting episode in the eastern Mediterranean. The ‘in-situ’ ophiolite of Samothraki Island comprises gabbros, sparse dykes and basalt flows as well as pillows cut by late dolerite dykes and had conventionally been interpreted as having formed in an ensialic back-arc basin. The results of this study revealed that none of the basalts and dolerites resemble mid-ocean ridge or back-arc basin basalts thus suggesting that the Samothraki ophiolite cannot represent mature back-arc basin crust. The age of the complex is regarded to be 160 ± 5 Ma (i.e. Oxfordian; early Upper Jurassic), which precludes any correlation with the Lesvos mafic-ultramafic complex further south (253 ± 6 Ma; Upper Permian). Restoration of the block configuration in NE Greece, before extensional collapse of the Hellenic hinterland and exhumation of the Rhodope Metamorphic Core Complex (mid-Eocene to mid-Miocene), results in a continuous ophiolite belt from Guevgueli in the NW to Samothraki in the SE, thus assigning the latter to the Innermost Hellenic Ophiolite Belt. In view of the data of this study, the Samothraki ophiolite represents a rift propagation of the Sithonia ophiolite spreading ridge into the Chortiatis calc-alkaline arc. The ophiolite of the Evros area consists of a plutonic sequence comprising cumulate and non-cumulate gabbros with plagiogranite veins, and an extrusive sequence of basalt dykes, massive and pillow lavas as well as pyroclastic rocks. Furthermore, in the Rhodope Massif tectonic lenses of harzburgites and dunites can be found. All rocks are spatially separated. The analytical results of this study revealed an intra-oceanic island arc setting for the Evros ophiolitic rocks. During late Middle Jurassic times (169 ± 2 Ma) an intra-oceanic arc has developed above a northwards directed intra-oceanic subduction zone of the Vardar Ocean in front of the Rhodope Massif. The boninitic, island arc tholeiitic and calc-alkaline rocks reflect the evolution of the Evros island arc. The obduction of the ophiolitic rocks onto the Rhodope basement margin took place during closure of the Vardar ocean basins. The harzburgites and dunites of the Rhodope Massif are strongly depleted and resemble harzburgites from recent oceanic island arcs. After melt extraction they underwent enrichment processes by percolating melts and fluids from the subducted slab. The relationship of the peridotites and the Evros ophiolite is still ambiguous, but the stratigraphic positions of the peridotites and the ophiolitic rocks indicate separated origin. The harzburgites and dunites most probably represent remnants of the mantle wedge of the island arc of the Rhodope terrane formed above subducted slab of the Nestos Ocean in late Middle Jurassic times. During collision of the Thracia terrane with the Rhodope terrane thrusting of the Rhodope terrane onto the Thracia terrane took place, whereas the harzburgites and dunites were pushed between the two terranes now cropping out on top of the Thracia terrane of the Rhodope Massif.

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Dendritic systems, and in particular polyphenylene dendrimers, have recently attracted considerable attention from the synthetic organic chemistry community, as well as from photophysicists, particularly in view of the search for synthetic model analogies to photoelectric materials to fabricate organic light-emitting diodes (OLEDs), and even more advanced areas of research such as light-harvesting system, energy transfer and non-host device. Geometrically, dendrimers are unique systems that consist of a core, one or more dendrons, and surface groups. The different parts of the macromolecule can be selected to give the desired optoelectronic and processing properties. Compared to small molecular or polymeric light-emitting materials, these dendritic materials can combine the benefits of both previous classes. The high molecular weights of these dendritic macromolecules, as well as the surface groups often attached to the distal ends of the dendrons, can improve the solution processability, and thus can be deposited from solution by simple processes such as spin-coating and ink-jet printing. Moreover, even better than the traditional polymeric light-emitting materials, the well-defined monodisperse distributed dendrimers possess a high purity comparable to that of small molecules, and as such can be fabricated into high performance OLEDs. Most importantly, the emissive chromophores can be located at the core of the dendrimer, within the dendrons, and/or at the surface of the dendrimers because of their unique dendritic architectures. The different parts of the macromolecule can be selected to give the desired optoelectronic and processing properties. Therefore, the main goals of this thesis are the design and synthesis, characterization of novel functional dendrimers, e.g. polytriphenylene dendrimers for blue fluorescent, as well as iridium(III) complex cored polyphenylene dendrimers for green and red phosphorescent light emitting diodes. In additional to the above mentioned advantages of dendrimer based OLEDs, the modular molecular architecture and various functionalized units at different locations in polyphenylene dendrimers open up a tremendous scope for tuning a wide range of properties in addition to color, such as intermolecular interactions, charge mobility, quantum yield, and exciton diffusion. In conclusion, research into dendrimer containing OLEDs combines fundamental aspects of organic semiconductor physics, novel and highly sophisticated organic synthetic chemistry and elaborate device technology.rn

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Die Entstehung und Aufrechterhaltung von Knorpel- und Knochengewebe wird durch eine Vielzahl von hemmenden oder fördernden Faktoren hoch komplex reguliert, wobei die dabei involvierten physiologischen Prozesse bisher nur teilweise verstanden werden. Auch die Ursachen sowohl degenerativer Erkrankungen, aber auch durch Mutationen im FGFR3-Gen verursachter Chondrodysplasien sind in ihrer Ätiopathogenese noch nicht vollständig erforscht. In dieser Arbeit wurden verschiedene experimentelle Ansätze verfolgt, die zur weiteren Aufklärung der Pathophysiologie zweier unterschiedlicher Skeletterkrankungen beitragen sollten.rnEin relevantes Charakteristikum der degenerativen Gelenkserkrankung Osteoarthrose ist der Verlust an Aggrekan, hauptverantwortlich verursacht durch die Aggrekanase ADAMTS5. Es wurde ein Tiermodell generiert, bei dem gezielt mittels des Tet-ON-Systems die Aggrekanase mAdamts-5 überexprimiert werden kann. Nach Konstruktherstellung und Generierung als auch Charakterisierung des in vitro-Modells wurde das Tiermodell hergestellt, um die Folgen der Überexpression im Hinblick auf einen verstärkten Aggrekanabbau im Knorpel der Mäuse zu analysieren. Nach initialer Charakterisierung auf Induzierbarkeit zeigte eine Gründerlinie eine induzierbare transgene mAdamts5-Expression. Die Überprüfung auf Knorpelspezifität zeigte, sowohl embryonal als auch im adulten Tier, dass sich der verwendete, zusammengesetzte Kollagen-Typ II Promotor wie der endogene verhielt und somit funktional war. Nach Doxyzyklininduktion wurde bei der optimalen Dosis von 1 mg/ml im Vergleich zum induzierten Wildtyp-Tier eine 15%ige Abnahme des Gesamt-Glykosamino-glykan(GAG)-Gehaltes und eine um 120% erhöhte GAG-Abgabe ins Medium detektiert, was eine verstärkte Spaltung von Aggrekan bedeutete. Die transgene Aggrekanase wurde überexprimiert und spaltete verstärkt Aggrekan. Da aufgrund der histologischen Untersuchungen jedoch keine Knorpelerosionen feststellbar waren, konnte im Umkehrschluss gefolgert werden, dass der Knorpel einen Verlust an Glykosaminoglykanen bis zu einer gewissen Grenze tolerieren kann. Mit dem generierten und charakterisierten Tiermodell konnte mit dem Verlust an GAG eine Osteoarthrose-ähnliche Situation simuliert werden, insbesondere im Hinblick auf frühe Stadien der Erkrankung, bei denen noch keine makroskopisch eindeutig sichtbare Knorpelerosionen vorliegen. rnIm zweiten Teil der Arbeit wurden Zellkulturexperimente zur weiteren Aufklärung FGFR3-regulierter Prozesse durchgeführt. Nach Generierung und Verifizierung der stabilen Zelllinien, die mittels des Tet-ON-Systems das FGFR3-Gen mit jeweils einer Chondrodysplasie-assoziierten Mutation (Achondroplasie-Mutation G380R, Thanatophore Dysplasie Typ II-Mutation K650E) induzierbar überexprimieren, wurden die Auswirkungen der zwei verschiedenen Mutationen anhand bereits beschriebener Signalwege untersucht. Über die Rekrutierung des ERK-Signalweges konnte bei beiden Zelllinien die Funktionalität nachgewiesen werden, wobei die Zelllinie mit der einen schwereren Phänotyp beim Menschen verursachenden TDII-Mutation eine stärkere Aktivierung zeigte. Bei der Aktivierung von STAT1 wies nur die TDII-Zelllinie eine Phosphorylierung auf, nicht jedoch die ACH-Zelllinie; dies deckte sich mit bereits publizierten Untersuchungen. Beide Kaskaden zeigten eine unterschiedliche Signalantwort aufgrund der verschiedenen Mutationen. Des Weiteren konnte eine unterschiedliche MMP13-Zielgenexpression nachgewiesen werden, wobei lediglich die ACH-Zelllinie eine erhöhte MMP13-Expression (6-fach) zeigte. Zur Identifizierung neuer involvierter FGFR3-Zielgene wurde die differentielle Genexpression der TDII-Zelllinie im Vergleich induziert/nicht induziert mittels Microarray-Hybridisierung untersucht. Als interessantes Zielgen fiel STC1 auf, welches ebenfalls eine Rolle in der Chondrogenese spielt und bislang nicht mit FGFR3 in Verbindung gebracht wurde. Es konnte jedoch nur auf RNA-Ebene eine Regulation nachgewiesen werden. Nachfolgend durchgeführte transiente Experimente zeigten, dass die Wildtyp-Variante von FGFR3 möglicherweise eine Funktion in der Sekretion des Proteins STC1 hat und dass durch die beiden eingefügten Mutationen (ACH, TDII) diese aufgehoben ist. Der Einfluss von FGFR3 auf die Sekretion von STC1 stellt ein neues Ergebnis dar, insbesondere auch die Auswirkungen der beiden für die unterschiedlichen Krankheitsbilder stehenden Mutationen. Welche Relevanz allerdings die STC1-Sekretion im Rahmen FGFR3-assoziierter Erkrankungen hat, kann nicht eindeutig beurteilt werden. Weitere Faktoren aus dem hoch komplexen Zusammenspiel während der Knorpel/Knochenentwicklung müssen untersucht werden, um eine definitive Einordnung zu ermöglichen.

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Efficient energy storage and conversion is playing a key role in overcoming the present and future challenges in energy supply. Batteries provide portable, electrochemical storage of green energy sources and potentially allow for a reduction of the dependence on fossil fuels, which is of great importance with respect to the issue of global warming. In view of both, energy density and energy drain, rechargeable lithium ion batteries outperform other present accumulator systems. However, despite great efforts over the last decades, the ideal electrolyte in terms of key characteristics such as capacity, cycle life, and most important reliable safety, has not yet been identified. rnrnSteps ahead in lithium ion battery technology require a fundamental understanding of lithium ion transport, salt association, and ion solvation within the electrolyte. Indeed, well-defined model compounds allow for systematic studies of molecular ion transport. Thus, in the present work, based on the concept of ‘immobilizing’ ion solvents, three main series with a cyclotriphosphazene (CTP), hexaphenylbenzene (HBP), and tetramethylcyclotetrasiloxane (TMS) scaffold were prepared. Lithium ion solvents, among others ethylene carbonate (EC), which has proven to fulfill together with pro-pylene carbonate safety and market concerns in commercial lithium ion batteries, were attached to the different cores via alkyl spacers of variable length.rnrnAll model compounds were fully characterized, pure and thermally stable up to at least 235 °C, covering the requested broad range of glass transition temperatures from -78.1 °C up to +6.2 °C. While the CTP models tend to rearrange at elevated temperatures over time, which questions the general stability of alkoxide related (poly)phosphazenes, both, the HPB and CTP based models show no evidence of core stacking. In particular the CTP derivatives represent good solvents for various lithium salts, exhibiting no significant differences in the ionic conductivity σ_dc and thus indicating comparable salt dissociation and rather independent motion of cations and ions.rnrnIn general, temperature-dependent bulk ionic conductivities investigated via impedance spectroscopy follow a William-Landel-Ferry (WLF) type behavior. Modifications of the alkyl spacer length were shown to influence ionic conductivities only in combination to changes in glass transition temperatures. Though the glass transition temperatures of the blends are low, their conductivities are only in the range of typical polymer electrolytes. The highest σ_dc obtained at ambient temperatures was 6.0 x 10-6 S•cm-1, strongly suggesting a rather tight coordination of the lithium ions to the solvating 2-oxo-1,3-dioxolane moieties, supported by the increased σ_dc values for the oligo(ethylene oxide) based analogues.rnrnFurther insights into the mechanism of lithium ion dynamics were derived from 7Li and 13C Solid- State NMR investigations. While localized ion motion was probed by i.e. 7Li spin-lattice relaxation measurements with apparent activation energies E_a of 20 to 40 kJ/mol, long-range macroscopic transport was monitored by Pulsed-Field Gradient (PFG) NMR, providing an E_a of 61 kJ/mol. The latter is in good agreement with the values determined from bulk conductivity data, indicating the major contribution of ion transport was only detected by PFG NMR. However, the μm-diffusion is rather slow, emphasizing the strong lithium coordination to the carbonyl oxygens, which hampers sufficient ion conductivities and suggests exploring ‘softer’ solvating moieties in future electrolytes.rn