5 resultados para SENSORY PHENOMENA

em ArchiMeD - Elektronische Publikationen der Universität Mainz - Alemanha


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The cooperative motion algorithm was applied on the molecular simulation of complex chemical reactions and macromolecular orientation phenomena in confined geometries. First, we investigated the case of equilibrium step-growth polymerization in lamellae, pores and droplets. In such systems, confinement was quantified as the area/volume ratio. Results showed that, as confinement increases, polymerization becomes slower and the average molecular weight (MW) at equilibrium decreases. This is caused by the sterical hindrance imposed by the walls since chain growth reactions in their close vicinity have less realization possibilities. For reactions inside droplets at surfaces, contact angles usually increased after polymerization to compensate conformation restrictions imposed by confinement upon growing chains. In a second investigation, we considered monodisperse and chemically inert chains and focused on the effect of confinement on chain orientation. Simulations of thin polymer films showed that chains are preferably oriented parallel to the surface. Orientation increases as MW increases or as film thickness d decreases, in qualitative agreement with experiments with low MW polystyrene. It is demonstrated that the orientation of simulated chains results from a size effect, being a function of the ratio between chain end-to-end distance and d. This study was complemented by experiments with thin films of pi-conjugated polymers like MEH-PPV. Anisotropic refractive index measurements were used to analyze chain orientation. With increasing MW, orientation is enhanced. However, for MEH-PPV, orientation does not depend on d even at thicknesses much larger than the chain contour length. This contradiction with simulations was discussed by considering additional causes for orientation, for instance the appearance of nematic-like ordering in polymer films. In another investigation, we simulated droplet evaporation at soluble surfaces and reproduced the formation of wells surrounded by ringlike deposits at the surface, as observed experimentally. In our simulations, swollen substrate particles migrate to the border of the droplet to minimize the contact between solvent and vacuum, which costs the most energy. Deposit formation in the beginning of evaporation results in pinning of the droplet. When polymer chains at the substrate surface have strong uniaxial orientation, the resulting pattern is no longer similar to a ring but to a pair of half-moons. In a final stage, as an extension for the model developed for polymerization in nanoreactors, we studied the effect of geometrical confinement on a hypothetical oscillating reaction following the mechanism of the so called periodically forced Brusselator. It was shown that a reaction which is chaotic in the bulk may be driven to periodicity by confinement and vice-versa, opening new perspectives for chaos control.

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DcuS is a membrane-integral sensory histidine kinase involved in the DcuSR two-component regulatory system in Escherichia coli by regulating the gene expression of C4-dicarboxylate metabolism in response to external stimuli. How DcuS mediates the signal transduction across the membrane remains little understood. This study focused on the oligomerization and protein-protein interactions of DcuS by using quantitative Fluorescence Resonance Energy Transfer (FRET) spectroscopy. A quantitative FRET analysis for fluorescence spectroscopy has been developed in this study, consisting of three steps: (1) flexible background subtraction to yield background-free spectra, (2) a FRET quantification method to determine FRET efficiency (E) and donor fraction (fD = [donor] / ([donor]+[acceptor])) from the spectra, and (3) a model to determine the degree of oligomerization (interaction stoichiometry) in the protein complexes based on E vs. fD. The accuracy and applicability of this analysis was validated by theoretical simulations and experimental systems. These three steps were integrated into a computer procedure as an automatic quantitative FRET analysis which is easy, fast, and allows high-throughout to quantify FRET accurately and robustly, even in living cells. This method was subsequently applied to investigate oligomerization and protein-protein interactions, in particular in living cells. Cyan (CFP) and yellow fluorescent protein (YFP), two spectral variants of green fluorescent protein, were used as a donor-acceptor pair for in vivo measurements. Based on CFP- and YFP-fusions of non-interacting membrane proteins in the cell membrane, a minor FRET signal (E = 0.06 ± 0.01) can be regarded as an estimate of direct interaction between CFP and YFP moieties of fusion proteins co-localized in the cell membrane (false-positive). To confirm if the FRET occurrence is specific to the interaction of the investigated proteins, their FRET efficiency should be clearly above E = 0.06. The oligomeric state of DcuS was examined both in vivo (CFP/YFP) and in vitro (two different donor-acceptor pairs of organic dyes) by three independent experimental systems. The consistent occurrence of FRET in vitro and in vivo provides the evidence for the homo-dimerization of DcuS as full-length protein for the first time. Moreover, novel interactions (hetero-complexes) between DcuS and its functionally related proteins, citrate-specific sensor kinase CitA and aerobic dicarboxylate transporter DctA respectively, have been identified for the first time by intermolecular FRET in vivo. This analysis can be widely applied as a robust method to determine the interaction stoichiometry of protein complexes for other proteins of interest labeled with adequate fluorophores in vitro or in vivo.

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Polymer-nanoparticle hybrids show synergistic effects, demonstrating both, the unique properties of nanosized structures and the good processability and functionalities of polymeric materials. This work shows the synthesis and application of block copolymers containing a soluble, functional block and a short anchor block, which efficiently binds to the surface of nanocrystals. We functionalized anisotropic, semiconducting nanoparticles, which can be dissolved in organic and polymeric matrices upon modification. The modified nanorods have the ability to form liquid crystalline phases, which behave similar to low molecular liquid crystals with a reversible clearing behaviour. These liquid crystalline phases could also be obtained in hole conducting matrices. For a macroscopic orientation of the nanorods, electric fields were applied and a switching (in analogy to known liquid crystals) to a homeotropic orientation was observed.rnBy introduction of dye molecules in the anchor block of a hole conducting block copolymer, all essential components of a solar cell can be combined in a single particle. Light absorption of the dye induces the injection of electrons into the particles, followed by a charging, that was monitored by a special AFM technique.rnLight emitting nanocrystals were functionalized analogously with a hole transporting polymer. The stability of the particles could be enhanced by the sterically stabilizing polymer corona and the particles showed improved properties in terms of processing. We applied these hybrid materials in light emitting devices, which showed better characteristics due to an improved hole injection and well dispersed emitting particles in the active device layer.rnThe work shows the broad spectrum of properties and applications based on the synergistic effects in hybrid and composite materials.

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Synästhetiker schmecken Berührungen, sehen Farben und Formen, wenn sie Musik hören oder einen Duft riechen. Es wurden auch so außergewöhnliche Formen wie Wochentage-Farben-, Berührung-Geruch- oder Schmerz-Farben-Synästhesien gefunden. Die von Neuro- wissenschaftlern und Philosophen als „Bindung“ genannte Fähigkeit mehrere Reize, die in verschiedenen Hirnarealen verarbeitet werden, miteinander zu koppeln und zu einer einheitlichen Repräsentation bzw. erfahrenen Einheit des Bewusstseins zusammenzufassen, betrifft jeden gesunden Mensch. Synästhetiker sind aber Menschen, deren Gehirne zur „Hyperbindung“ oder zum hyperkohärentem Erleben befähigt sind, da bei ihnen wesentlich mehr solcher Kopplungen entstehen. Das Phänomen der Synästhesie ist schon seit mehreren Jahrhunderten bekannt, aber immer noch ein Rätsel. Bisher glaubten Forscher, solche Phänomene beruhten bloß auf überdurchschnittlich dichten neuronalen Verdrahtungen zwischen sensorischen Hirnregionen. Aus der aktuellen Forschung kann man jedoch schließen, dass die Ursache der Synästhesie nicht allein eine verstärkte Verbindung zwischen zwei Sinneskanälen ist. Laut eigener Studien ist der Sinnesreiz selbst sowie seine fest verdrahteten sensorischen Pfade nicht notwendig für die Auslösung des synästhetischen Erlebens. Eine grundlegende Rolle spielt dabei dessen Bedeutung für einen Synästhetiker. Für die Annahme, dass die Semantik für die synästhetische Wahrnehmung das Entscheidende ist, müssten synästhetische Assoziationen ziemlich flexibel sein. Und genau das wurde herausgefunden, nämlich, dass normalerweise sehr stabile synästhetische Assoziationen unter bestimmten Bedingungen sich auf neue Auslöser übertragen lassen. Weitere Untersuchung betraf die neu entdeckte Schwimmstil-Farbe-Synästhesie, die tritt hervor nicht nur wenn Synästhetiker schwimmen, aber auch wenn sie über das Schwimmen denken. Sogar die Namen dieser charakteristischen Bewegungen können ihre Farbempfindungen auslösen, sobald sie im stimmigen Kontext auftauchen. Wie man von anderen Beispielen in der Hirnforschung weiß, werden häufig benutzte neuronale Pfade im Laufe der Zeit immer stärker ausgebaut. Wenn also ein Synästhetiker auf bestimmte Stimuli häufig stoßt und dabei eine entsprechende Mitempfindung bekommt, kann das mit der Zeit auch seine Hirnanatomie verändern, so dass die angemessenen strukturellen Verknüpfungen entstehen. Die angebotene Erklärung steht also im Einklang mit den bisherigen Ergebnissen. Die vorliegende Dissertation veranschaulicht, wie einheitlich und kohärent Wahrnehmung, Motorik, Emotionen und Denken (sensorische und kognitive Prozesse) im Phänomen der Synästhesie miteinander zusammenhängen. Das synästhetische nicht-konzeptuelle Begleiterlebnis geht mit dem konzeptuellen Inhalt des Auslösers einher. Ähnlich schreiben wir übliche, nicht-synästhetische phänomenale Eigenschaften den bestimmten Begriffen zu. Die Synästhesie bringt solche Verschaltungen einfach auf beeindruckende Weise zum Ausdruck und lässt das mannigfaltige Erleben stärker integrieren.

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The Standard Model of particle physics is a very successful theory which describes nearly all known processes of particle physics very precisely. Nevertheless, there are several observations which cannot be explained within the existing theory. In this thesis, two analyses with high energy electrons and positrons using data of the ATLAS detector are presented. One, probing the Standard Model of particle physics and another searching for phenomena beyond the Standard Model.rnThe production of an electron-positron pair via the Drell-Yan process leads to a very clean signature in the detector with low background contributions. This allows for a very precise measurement of the cross-section and can be used as a precision test of perturbative quantum chromodynamics (pQCD) where this process has been calculated at next-to-next-to-leading order (NNLO). The invariant mass spectrum mee is sensitive to parton distribution functions (PFDs), in particular to the poorly known distribution of antiquarks at large momentum fraction (Bjoerken x). The measurementrnof the high-mass Drell-Yan cross-section in proton-proton collisions at a center-of-mass energy of sqrt(s) = 7 TeV is performed on a dataset collected with the ATLAS detector, corresponding to an integrated luminosity of 4.7 fb-1. The differential cross-section of pp -> Z/gamma + X -> e+e- + X is measured as a function of the invariant mass in the range 116 GeV < mee < 1500 GeV. The background is estimated using a data driven method and Monte Carlo simulations. The final cross-section is corrected for detector effects and different levels of final state radiation corrections. A comparison isrnmade to various event generators and to predictions of pQCD calculations at NNLO. A good agreement within the uncertainties between measured cross-sections and Standard Model predictions is observed.rnExamples of observed phenomena which can not be explained by the Standard Model are the amount of dark matter in the universe and neutrino oscillations. To explain these phenomena several extensions of the Standard Model are proposed, some of them leading to new processes with a high multiplicity of electrons and/or positrons in the final state. A model independent search in multi-object final states, with objects defined as electrons and positrons, is performed to search for these phenomenas. Therndataset collected at a center-of-mass energy of sqrt(s) = 8 TeV, corresponding to an integrated luminosity of 20.3 fb-1 is used. The events are separated in different categories using the object multiplicity. The data-driven background method, already used for the cross-section measurement was developed further for up to five objects to get an estimation of the number of events including fake contributions. Within the uncertainties the comparison between data and Standard Model predictions shows no significant deviations.