2 resultados para human pathogenic bacteria
em ArchiMeD - Elektronische Publikationen der Universität Mainz - Alemanha
Resumo:
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.
Resumo:
Dendritic cells (DCs) are the most potent cell type for capture, processing, and presentation of antigens. They are able to activate naïve T cells as well as to initiate memory T-cell immune responses. T lymphocytes are key elements in eliciting cellular immunity against bacteria and viruses as well as in the generation of anti-tumor and anti-leukemia immune responses. Because of their central position in the immunological network, specific manipulations of these cell types provide promising possibilities for novel immunotherapies. Nanoparticles (NP) that have just recently been investigated for use as carriers of drugs or imaging agents, are well suited for therapeutic applications in vitro and also in vivo since they can be addressed to cells with a high target specificity upon surface functionalization. As a first prerequisite, an efficient in vitro labeling of cells with NP has to be established. In this work we developed protocols allowing an effective loading of human monocyte-derived DCs and primary antigen-specific T cells with newly designed NP without affecting biological cell functions. Polystyrene NP that have been synthesized by the miniemulsion technique contained perylenmonoimide (PMI) as a fluorochrome, allowing the rapid determination of intracellular uptake by flow cytometry. To confirm intracellular localization, NP-loaded cells were analyzed by confocal laser scanning microscopy (cLSM) and transmission electron microscopy (TEM). Functional analyses of NP-loaded cells were performed by IFN-γ ELISPOT, 51Chromium-release, and 3H-thymidine proliferation assays. In the first part of this study, we observed strong labeling of DCs with amino-functionalized NP. Even after 8 days 95% of DCs had retained nanoparticles with a median fluorescence intensity of 67% compared to day 1. NP loading did not influence expression of cell surface molecules that are specific for mature DCs (mDCs) nor did it influence the immunostimulatory capacity of mDCs. This procedure did also not impair the capability of DCs for uptake, processing and presentation of viral antigens that has not been shown before for NP in DCs. In the second part of this work, the protocol was adapted to the very different conditions with T lymphocytes. We used leukemia-, tumor-, and allo-human leukocyte antigen (HLA) reactive CD8+ or CD4+ T cells as model systems. Our data showed that amino-functionalized NP were taken up very efficiently also by T lymphocytes, which usually had a lower capacity for NP incorporation compared to other cell types. In contrast to DCs, T cells released 70-90% of incorporated NP during the first 24 h, which points to the need to escape from intracellular uptake pathways before export to the outside can occur. Preliminary data with biodegradable nanocapsules (NC) revealed that encapsulated cargo molecules could, in principle, escape from the endolysosomal compartment after loading into T lymphocytes. T cell function was not influenced by NP load at low to intermediate concentrations of 25 to 150 μg/mL. Overall, our data suggest that NP and NC are promising tools for the delivery of drugs, antigens, and other molecules into DCs and T lymphocytes.