4 resultados para Three-dimensional flow structure
em ArchiMeD - Elektronische Publikationen der Universität Mainz - Alemanha
Resumo:
Three-dimensional electron microscopy (3-D EM) provides a framework for the analysis of large protein quaternary structures. The advantage over the generally higher resolving meth- od of X-ray crystallography is the embedding of the proteins in their physiological environ- ment. However, results of the two methods can be combined to obtain superior structural information. In this work, three different protein types – (i) Myriapod hemocyanin, (ii) vesi- cle-inducing protein in plastids 1 (Vipp1) and (iii) acetylcholine-binding protein (AChBP) – were structurally analyzed by 2-D and 3-D EM and, where possible, functionally interpreted.rnMyriapod hemocyanins have been previously shown to be 6x6-meric assemblies that, in case of Scutigera coleoptrata hemocyanin (ScoHc), show two 3x6-mer planes whith a stag- gering angle of approximately 60°. Here, previously observed structural differences between oxy- and deoxy-ScoHc could be substantiated. A 4° rotation between hexamers of two dif- ferent 3x6-mer planes was measured, which originates at the most central inter-hexamer in- terface. Further information about allosteric behaviour in myriapod hemocyanin was gained by analyzing Polydesmus angustus hemocyanin (PanHc), which shows a stable 3x6-mer and divergent histidine patterns in the inter-hexamer interfaces when compared to ScoHc. Both findings would conclusively explain the very different oxygen binding properties of chilopod and diplopod hemocyanin.rnVipp1 is a protein found in cyanobacteria and higher plants which is essential for thyla- koid membrane function and forms highly variable ring-shaped structures. In the course of this study, the first 3-D analysis of Vipp1 was conducted and yielded reconstructions of six differently sized Vipp1 rings from negatively stained images at resolutions between 20 to 30 Å. Furthermore, mutational analyses identified specific N-terminal amino acids that are essential for ring formation. On the basis of these analyses and previously published results, a hypothetical model of the Vipp1 tertiary and quaternary structure was generated.rnAChBP is a water-soluble protein in the hemolymph of mollusks. It is a structural and functional homologue of the ligand-binding domain of nicotinic acetylcholine receptors. For the freshwater snail Biomphalaria glabrata, we previously described two types of AChBP (BgAChBP1 and BgAChBP2). In this work, a 6 Å 3-D reconstruction of native BgAChBP is presented, which shows a dodecahedral assembly that is unprecedented for an AChBP. Single particle analysis of recombinantely expressed BgAChBP types led to preliminary results show- ing a dodecahedral assembly of BgAChBP1 and a dipentameric assembly of BgAChBP2. This indicates divergent biological functions of the two types.
Resumo:
This thesis reports on the realization, characterization and analysis of ultracold bosonic and fermionic atoms in three-dimensional optical lattice potentials. Ultracold quantum gases in optical lattices can be regarded as ideal model systems to investigate quantum many-body physics. In this work interacting ensembles of bosonic 87Rb and fermionic 40K atoms are employed to study equilibrium phases and nonequilibrium dynamics. The investigations are enabled by a versatile experimental setup, whose core feature is a blue-detuned optical lattice that is combined with Feshbach resonances and a red-detuned dipole trap to allow for independent control of tunneling, interactions and external confinement. The Fermi-Hubbard model, which plays a central role in the theoretical description of strongly correlated electrons, is experimentally realized by loading interacting fermionic spin mixtures into the optical lattice. Using phase-contrast imaging the in-situ size of the atomic density distribution is measured, which allows to extract the global compressibility of the many-body state as a function of interaction and external confinement. Thereby, metallic and insulating phases are clearly identified. At strongly repulsive interaction, a vanishing compressibility and suppression of doubly occupied lattice sites signal the emergence of a fermionic Mott insulator. In a second series of experiments interaction effects in bosonic lattice quantum gases are analyzed. Typically, interactions between microscopic particles are described as two-body interactions. As such they are also contained in the single-band Bose-Hubbard model. However, our measurements demonstrate the presence of multi-body interactions that effectively emerge via virtual transitions of atoms to higher lattice bands. These findings are enabled by the development of a novel atom optical measurement technique: In quantum phase revival spectroscopy periodic collapse and revival dynamics of the bosonic matter wave field are induced. The frequencies of the dynamics are directly related to the on-site interaction energies of atomic Fock states and can be read out with high precision. The third part of this work deals with mixtures of bosons and fermions in optical lattices, in which the interspecies interactions are accurately controlled by means of a Feshbach resonance. Studies of the equilibrium phases show that the bosonic superfluid to Mott insulator transition is shifted towards lower lattice depths when bosons and fermions interact attractively. This observation is further analyzed by applying quantum phase revival spectroscopy to few-body systems consisting of a single fermion and a coherent bosonic field on individual lattice sites. In addition to the direct measurement of Bose-Fermi interaction energies, Bose-Bose interactions are proven to be modified by the presence of a fermion. This renormalization of bosonic interaction energies can explain the shift of the Mott insulator transition. The experiments of this thesis lay important foundations for future studies of quantum magnetism with fermionic spin mixtures as well as for the realization of complex quantum phases with Bose-Fermi mixtures. They furthermore point towards physics that reaches beyond the single-band Hubbard model.
Resumo:
Gegenstand und Ziel der vorliegenden Arbeit war die Synthese und Charakterisierung einer Hydrogelmatrix, welche für die Herstellung eines vielseitig verwendbaren Sensors, der mehrere Analyten (Proteine, DNA etc.) in hoher Verdünnung (c0 < 50 fM) aus kleinsten Probenmengen (Volumina <20 nl) schnell (t < 1 min) und parallel nachweisen kann, Verwendung finden soll. Der Fokus der Arbeit lag dabei in der Synthese und Charakterisierung von Copolymeren als Hydrogelmatrix, welche geeignetes temperaturabhängiges Verhalten zeigen. Die Copolymere wurden in eine dreidimensionale Netzwerkstruktur überführt und auf einer Goldoberfläche kovalent angebunden, um Delamination zu vermeiden und die Untersuchung mittels Oberflächenplasmonenresonanz-Spektroskopie (SPR) und Optischer Wellenleiter-Spektroskopie (OWS) zu erlauben. Weiterhin wurde das temperaturabhängige Verhalten der Polymernetzwerke in Wasser mittels optischen Messungen (SPR/OWS) untersucht, um Erkenntnisse über die Quell- und Kollabiereigenschaften des Hydrogels zu gewinnen. Um temperaturschaltbare Hydrogele herzustellen, wurden auf N-Isopropylacrylamid (NIPAAm) basierende Polymere synthetisiert. Es wurde sowohl die für Hydrogele übliche Methode der freien radikalischen Vernetzungspolymerisation in Wasser, wie eine neue, auf Benzophenoneinheiten basierende Syntheseroute, welche die freie radikalische Polymerisation in organischem Medium nutzt, verwendet. Die synthetisierten Polymere sind Copolymere aus N‑Isopropylacrylamid (NIPAAm) und 4-Methacryloyloxybenzophenon (MABP). NIPAAm ist dabei für das temperaturschaltbare Verhalten der Gele verantwortlich und MABP dient als Photovernetzer. Weitere Copolymere, die neben den genannten Monomeren noch andere Funktionen, wie z.B. ionische Gruppen oder Aktivesterfunktionen enthalten, wurden ebenfalls synthetisiert. Das temperaturabhängige Quellverhalten in Bezug auf die chemische Zusammensetzung wurde mit der Oberflächenplasmonenresonanz-Spektroskopie (SPR) und Optischen Wellenleiter-Spektroskopie (OWS) untersucht. Es zeigte sich, dass die Anwesenheit von Salz im Hydrogel (Natriumacrylat als Monomer, P4S) Inhomogenität, in Form eines Brechungsindexgradienten senkrecht zur Substratoberfläche, hervorruft. Dies ist nicht der Fall, wenn statt des Salzes die Säure (Methacrylsäure als Monomer, P4A) verwendet wird. Durch die Inhomogenität lassen sich die Filme mit dem Natriummethacrylat nicht mehr mit dem, üblicherweise zur Auswertung genutzten, Kastenmodell beschreiben. Die Anwendung der Wentzel-Kramers-Brillouin-Näherung (WKB) auf die Messdaten führt hingegen zu dem gewünschten Ergebnis. Man findet ein kastenähnliches Brechungsindexprofil für das Hydrogel mit der Säure (P4A) und ein Gradientenprofil für das Gel mit dem Salz (P4S). Letzteres ist nicht nur hydrophiler und insgesamt stärker gequollen, sondern ragt auch weiter in die überstehende Wasserphase hinein. Anhand eines säurehaltigen Hydrogels (P8A) konnte der quellungshemmende Einfluss von hohen Salzkonzentrationen gezeigt werden. Weiterhin wurde während des Quellvorgangs eine gewisse Anisotropie gefunden, die aber im vollständig gequollenen und vollständig kollabierten Zustand nicht mehr vorliegt. Anhand eines Hydrogels ohne ionisierbare Gruppen (P9) wurde die Reversibilität des Quell- und Kollabiervorgangs gezeigt. Bei einem Vergleich zwischen einem säurehaltigen Hydrogel (P8A, Quellgrad von 7,3) und einem ohne ionisierbare Gruppen (P9, Quellgrad von 6,1), hat die Anwesenheit der 8 mol% Säuregruppen eine leichte Verstärkung der Quellung um den Faktor 1,2 bewirkt. Rasterkraftmikroskopische Untersuchungen (AFM) an diesen beiden Hydrogelen im getrockneten Zustand, haben gezeigt, dass nach dem Quellen, Kollabieren und Trocknen bei beiden Gelen Porenstrukturen sehr unterschiedlicher Ausmaße vorliegen.
Resumo:
Among the different approaches for a construction of a fundamental quantum theory of gravity the Asymptotic Safety scenario conjectures that quantum gravity can be defined within the framework of conventional quantum field theory, but only non-perturbatively. In this case its high energy behavior is controlled by a non-Gaussian fixed point of the renormalization group flow, such that its infinite cutoff limit can be taken in a well defined way. A theory of this kind is referred to as non-perturbatively renormalizable. In the last decade a considerable amount of evidence has been collected that in four dimensional metric gravity such a fixed point, suitable for the Asymptotic Safety construction, indeed exists. This thesis extends the Asymptotic Safety program of quantum gravity by three independent studies that differ in the fundamental field variables the investigated quantum theory is based on, but all exhibit a gauge group of equivalent semi-direct product structure. It allows for the first time for a direct comparison of three asymptotically safe theories of gravity constructed from different field variables. The first study investigates metric gravity coupled to SU(N) Yang-Mills theory. In particular the gravitational effects to the running of the gauge coupling are analyzed and its implications for QED and the Standard Model are discussed. The second analysis amounts to the first investigation on an asymptotically safe theory of gravity in a pure tetrad formulation. Its renormalization group flow is compared to the corresponding approximation of the metric theory and the influence of its enlarged gauge group on the UV behavior of the theory is analyzed. The third study explores Asymptotic Safety of gravity in the Einstein-Cartan setting. Here, besides the tetrad, the spin connection is considered a second fundamental field. The larger number of independent field components and the enlarged gauge group render any RG analysis of this system much more difficult than the analog metric analysis. In order to reduce the complexity of this task a novel functional renormalization group equation is proposed, that allows for an evaluation of the flow in a purely algebraic manner. As a first example of its suitability it is applied to a three dimensional truncation of the form of the Holst action, with the Newton constant, the cosmological constant and the Immirzi parameter as its running couplings. A detailed comparison of the resulting renormalization group flow to a previous study of the same system demonstrates the reliability of the new equation and suggests its use for future studies of extended truncations in this framework.