20 resultados para Biosensor


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Advanced optical biosensor platforms exploiting long range surface plasmons (LRSPs) and responsive N-isopropylacrylamide (NIPAAm) hydrogel binding matrix for the detection of protein and bacterial pathogen analytes were carried out. LRSPs are optical waves that originate from coupling of surface plasmons on the opposite sites of a thin metallic film embedded between two dielectrics with similar refractive indices. LRSPs exhibit orders of magnitude lower damping and more extended profile of field compared to regular surface plasmons (SPs). Their excitation is accompanied with narrow resonance and provides stronger enhancement of electromagnetic field intensity that can advance the sensitivity of surface plasmon resonance (SPR) and surface plasmon-enhanced fluorescence spectroscopy (SPFS) biosensors. Firstly, we investigated thin gold layers deposited on fluoropolymer surface for the excitation of LRSPs. The study indicates that the morphological, optical and electrical properties of gold film can be changed by the surface energy of fluoropolymer and affect the performance of a SPFS biosensor. A photo-crosslinkable NIPAAm hydrogel was grafted to the sensor surface in order to serve as a binding matrix. It was modified with bio-recognition elements (BREs) via amine coupling chemistry and offered the advantage of large binding capacity, stimuli responsive properties and good biocompatibility. Through experimental observations supported by numerical simulations describing diffusion mass transfer and affinity binding of target molecules in the hydrogel, the hydrogel binding matrix thickness, concentration of BREs and the profile of the probing evanescent field was optimized. Hydrogel with a up to micrometer thickness was shown to support additional hydrogel optical waveguide (HOW) mode which was employed for probing affinity binding events in the gel by means of refractometric and fluorescence measurements. These schemes allow to reach limits of detection (LODs) at picomolar and femtomolar levels, respectively. Besides hydrogel based experiments for detection of molecular analytes, long range surface plasmon-enhanced fluorescence spectroscopy (LRSP-FS) was employed for detection of bacterial pathogens. The influence of capture efficiency of bacteria on surfaces and the profile of the probing field on sensor response were investigated. The potential of LRSP-FS with extended evanescent field is demonstrated for detection of pathogenic E. coli O157:H7 on sandwich immunoassays . LOD as low as 6 cfu mL-1 with a detection time of 40 minutes was achieved.rn

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Antibody microarrays are of great research interest because of their potential application as biosensors for high-throughput protein and pathogen screening technologies. In this active area, there is still a need for novel structures and assemblies providing insight in binding interactions such as spherical and annulus-shaped protein structures, e.g. for the utilization of curved surfaces for the enhanced protein-protein interactions and detection of antigens. Therefore, the goal of the presented work was to establish a new technique for the label-free detection of bio-molecules and bacteria on topographically structured surfaces, suitable for antibody binding.rnIn the first part of the presented thesis, the fabrication of monolayers of inverse opals with 10 μm diameter and the immobilization of antibodies on their interior surface is described. For this purpose, several established methods for the linking of antibodies to glass, including Schiff bases, EDC/S-NHS chemistry and the biotin-streptavidin affinity system, were tested. The employed methods included immunofluorescence and image analysis by phase contrast microscopy. It could be shown that these methods were not successful in terms of antibody immobilization and adjacent bacteria binding. Hence, a method based on the application of an active-ester-silane was introduced. It showed promising results but also the need for further analysis. Especially the search for alternative antibodies addressing other antigens on the exterior of bacteria will be sought-after in the future.rnAs a consequence of the ability to control antibody-functionalized surfaces, a new technique employing colloidal templating to yield large scale (~cm2) 2D arrays of antibodies against E. coli K12, eGFP and human integrin αvβ3 on a versatile useful glass surface is presented. The antibodies were swept to reside around the templating microspheres during solution drying, and physisorbed on the glass. After removing the microspheres, the formation of annuli-shaped antibody structures was observed. The preserved antibody structure and functionality is shown by binding the specific antigens and secondary antibodies. The improved detection of specific bacteria from a crude solution compared to conventional “flat” antibody surfaces and the setting up of an integrin-binding platform for targeted recognition and surface interactions of eukaryotic cells is demonstrated. The structures were investigated by atomic force, confocal and fluorescence microscopy. Operational parameters like drying time, temperature, humidity and surfactants were optimized to obtain a stable antibody structure.

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Recently, the surface plasmon field-enhanced fluorescence spectroscopy (SPFS) was developed as a kinetic analysis and a detection method with dual- monitoring of the change of reflectivity and fluorescence signal for the interfacial phenomenon. A fundamental study of PNA and DNA interaction at the surface using surface plasmon fluorescence spectroscopy (SPFS) will be investigated in studies. Furthermore, several specific conditions to influence on PNA/DNA hybridization and affinity efficiency by monitoring reflective index changes and fluorescence variation at the same time will be considered. In order to identify the affinity degree of PNA/DNA hybridizaiton at the surface, the association constant (kon) and the dissociation constant (koff) will be obtained by titration experiment of various concentration of target DNA and kinetic investigation. In addition, for more enhancing the hybridization efficiency of PNA/DNA, a study of polarized electric field enhancement system will be introduced and performed in detail. DNA is well-known polyelectrolytes with naturally negative charged molecules in its structure. With polarized electrical treatment, applying DC field to the metal surface, which PNA probe would be immobilized at, negatively charged DNA molecules can be attracted by electromagnetic attraction force and manipulated to the close the surface area, and have more possibility to hybridize with probe PNA molecules by hydrogen bonding each corresponding base sequence. There are several major factors can be influenced on the hybridization efficiency.

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Die intrazelluläre Lokalisation von Proteinen und Makromolekülen unterliegt in Eukaryoten einer strengen Regulation. Insbesondere erlaubt die Kompartimentierung eukaryotischer Zellen in Zellkern und Zytoplasma den simultanen Ablauf räumlich getrennter biochemischer Reaktionen, und damit die unabhängige Regulation zellulärer Programme. Da trotz intensiver Forschungsbemühungen bis dato die molekularen Details sowie die (patho)biologische Bedeutung von Kern-Zytoplasma-Transportprozessen noch immer nicht vollkommen verstanden sind, wurde im Rahmen der vorliegenden Arbeit ein Fokus auf die Identifizierung von chemischen Transportinhibitoren gelegt. Das zu diesem Zweck entwickelte Translokations-Biosensor-System basiert auf der Kombination von autofluoreszierenden Proteinen, sowie spezifisch ausgewählten Kernexport- und Kernimportsignalen. Nach Etablierung geeigneter Zellmodelle, die effizient und stabil die Translokations-Biosensoren exprimieren, wurde die 17 000 Substanzen umfassende Bibliothek der ChemBioNet-Initiative nach Kernexportinhibitoren mittels einer Fluoreszenzmikroskopie-basierten Hochdurchsatzanalyse-Plattform durchmustert. Zunächst wurden Translokations-Algorithmen, welche eine zuverlässige automatisierte Erkennung von Zellkern und Zytoplasma erlauben, optimiert. Im Folgenden konnten acht neue niedermolekulare Kernexport-Inhibitoren identifiziert werden, die sich in der Stärke, der Geschwindigkeit, sowie in der Beständigkeit der vermittelten Inhibition unterscheiden. Die Aktivität der Inhibitoren konnte auf den isolierten nukleären Exportsignalen (NES) von HIV-1 Rev und Survivin als auch auf den entsprechenden Volllängeproteinen mittels Mikroinjektionsexperimenten sowie durch umfassende in vitro und biochemische Methoden bestätigt werden. Zur Untersuchung der funktionellen Einheiten der Inhibitoren wurden homologe Substanzen auf Ihre Aktivität hin getestet. Dabei konnten für die Aktivität wichtige chemische Gruppen definiert werden. Alle Substanzen stellen neue Inhibitoren des Crm1-abhängigen Exports dar und zeigen keine nachweisbare NES-Selektivität. Interessanterweise konnte jedoch eine zytotoxische und Apoptose-induzierende Wirkung auf verschiedene Krebszellarten festgestellt werden. Da diese Wirkung unabhängig vom p53-Status der Tumorzellen ist und die Inhibitoren C3 und C5 die Vitalität nicht-maligner humaner Zellen signifikant weniger beeinträchtigen, wurden diese Substanzen zum internationalen Patent angemeldet. Da der nukleäre Export besonders für Tumorzellen einen wichtigen Überlebenssignalweg darstellt, könnte dessen reversible Hemmung ausgenutzt werden, um besonders in Kombination mit gängigen Krebstherapien eine therapeutisch relevante Tumorinhibition zu erzeugen. Eine weitere Anwendungsmöglichkeit der neuen Exportinhibitoren ist auf dem Gebiet der Infektionskrankheiten zu sehen, da auch die Aktivität des essentiellen HIV-1 Rev-Proteins inhibiert wird. Zusätzlich konnte in der Arbeit gezeigt werden, dass der zelluläre Kofaktor des Crm1-abhängigen Exports des HIV-1 Rev-Proteins, die RNA-Helikase DDX3, ein eigenes NES enthält. Der Nachweis einer direkten Interaktion des HIV-1 Rev- mit dem DDX3-Protein impliziert, dass multiple Angriffstellen für chemische Modulatoren hinsichtlich einer antiviralen Therapie gegeben sind. Da die Vielfalt des chemischen Strukturraums es unmöglich macht diesen experimentell vollständig zu durchmustern, wurden im Rahmen dieser Arbeit auch Naturstoffe als vielversprechende Wirkstoffquelle untersucht. Um zukünftig umfassend bioaktive Substanzen aus diesen hochkomplexen Stoffgemischen experimentell identifizieren zu können, wurde eine Fluoreszenzmikroskopie-basierte Hochdurchsatzanalyse-Plattform am Mainz Screening Center (MSC) etabliert. Damit konnte bereits ein weiterer, bisher unbekannter Exportinhibitor aus Cyphellopsis anomala identifiziert werden. Neben einer Anwendung dieser Substanz als chemisches Werkzeug zur Aufklärung der Regulation von Transportvorgängen, stellt sich auch die evolutionsbiologisch relevante Frage, wie es dem Pilzproduzenten gelingt die Blockierung des eigenen Kernexports zu umgehen. Weiterführende Projekte müssen sich neben der Aufklärung der molekularen Wirkmechanismen der gefundenen Substanzen mit der Identifizierung spezifischer chemischer „Funktionseinheiten“ beschäftigen. Neben einem verbesserten mechanistischen Verständnis von Transportvorgängen stellen die erarbeiteten Transportinhibitoren Vorstufen zur Weiterentwicklung möglicher Wirkstoffe dar. Die im Rahmen dieser Arbeit etablierte Technologie-Plattform und molekularen Werkzeuge stellen darüber hinaus eine wichtige Voraussetzung dar, um eine systematische Suche nach möglichen Wirkstoffen im Forschungsfeld der „Chemischen Biomedizin“ voranzutreiben.

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This thesis investigates metallic nanostructures exhibiting surface plasmon resonance for the amplification of fluorescence signal in sandwich immunoassays. In this approach, an analyte is captured by an antibody immobilized on a plasmonic structure and detected by a subsequently bound fluorophore labeled detection antibody. The highly confined field of surface plasmons originates from collective charge oscillations which are associated with high electromagnetic field enhancements at the metal surface and allow for greatly increased fluorescence signal from the attached fluorophores. This feature allows for improving the signal-to-noise ratio in fluorescence measurements and thus advancing the sensitivity of the sensor platform. In particular, the thesis presents two plasmonic nanostructures that amplify fluorescence signal in devices that rely on epifluorescence geometry, in which the fluorophore absorbs and emits light from the same direction perpendicular to the substrate surface.rnThe first is a crossed relief gold grating that supports propagating surface plasmon polaritons (SPPs) and second, gold nanoparticles embedded in refractive index symmetric environment exhibiting collective localized surface plasmons (cLSPs). Finite-difference time-domain simulations are performed in order to design structures for the optimum amplification of established Cy5 and Alexa Fluor 647 fluorophore labels with the absorption and emission wavelengths in the red region of spectrum. The design takes into account combined effect of surface plasmon-enhanced excitation rate, directional surface plasmon-driven emission and modified quantum yield for characteristic distances in immunoassays. Homebuilt optical instruments are developed for the experimental observation of the surface plasmon mode spectrum, measurements of the angular distribution of surface plasmon-coupled fluorescence light and a setup mimicking commercial fluorescence reading systems in epifluorescence geometry.rnCrossed relief grating structures are prepared by interference lithography and multiple copies are made by UV nanoimprint lithography. The fabricated crossed diffraction gratings were utilized for sandwich immunoassay-based detection of the clinically relevant inflammation marker interleukin 6 (IL-6). The enhancement factor of the crossed grating reached EF=100 when compared to a flat gold substrate. This result is comparable to the highest reported enhancements to date, for fluorophores with relatively high intrinsic quantum yield. The measured enhancement factor excellently agrees with the predictions of the simulations and the mechanisms of the enhancement are explained in detail. Main contributions were the high electric field intensity enhancement (30-fold increase) and the directional fluorescence emission at (4-fold increase) compared to a flat gold substrate.rnCollective localized surface plasmons (cLSPs) hold potential for even stronger fluorescence enhancement of EF=1000, due to higher electric field intensity confinement. cLSPs are established by diffractive coupling of the localized surface plasmon resonance (LSPR) of metallic nanoparticles and result in a narrow resonance. Due to the narrow resonance, it is hard to overlap the cLSPs mode with the absorption and emission bands of the used fluorophore, simultaneously. Therefore, a novel two resonance structure that supports SPP and cLSP modes was proposed. It consists of a 2D array of cylindrical gold nanoparticles above a low refractive index polymer and a silver film. A structure that supports the proposed SPP and cLSP modes was prepared by employing laser interference lithography and the measured mode spectrum was compared to simulation results.rn