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- Protein A (3) (entfernen)
Organisationseinheit der BAM
Das Ziel dieser Arbeit war es, die Vernetzung (Crosslinking) zwischen Protein G und einem Antikörper so durchzuführen, dass es zu keiner Modifikation der Antigen-Bindungsstelle des Antikörpers kommt. Zudem wurde im Rahmen dieser Arbeit ein Immunoassay entwickelt, mithilfe dessen zwanzig verschiedene Crosslinker in Hinblick auf ihre Fähigkeit Protein G zu funktionalisieren, untersucht werden konnten. Es konnten fünf Reagenzien identifiziert werden, die eine Derivatisierung von Protein G sowie eine anschließende Immobilisierung des Antikörpers auf dem Protein ermöglichen. Des Weiteren wurde gezeigt, dass mithilfe dieses Verfahrens sowohl die Immunpräzipitation als auch die massenspektrometrische Identifizierung und Charakterisierung von Proteinkomplexen erleichtert und verbessert werden kann.
Preactivation crosslinking – An efficient method for the oriented immobilization of antibodies
(2019)
Crosslinking of proteins for their irreversible immobilization on surfaces is a proven and popular method. However, many protocols lead to random orientation and the formation of undefined or even inactive by-products. Most concepts to obtain a more targeted conjugation or immobilization requires the recombinant modification of at least one binding partner, which is often impractical or prohibitively expensive. Here a novel method is presented, which is based on the chemical preactivation of Protein A or G with selected conventional crosslinkers. In a second step, the antibody is added, which is subsequently crosslinked in the Fc part. This leads to an oriented and covalent immobilization of the immunoglobulin with a very high yield. Protocols for Protein A and Protein G with murine and human IgG are presented. This method may be useful for the preparation of columns for affinity chromatography, immunoprecipitation, antibodies conjugated to magnetic particles, permanent and oriented immobilization of antibodies in biosensor systems, microarrays, microtitration plates or any other system, where the loss of antibodies needs to be avoided, and maximum binding capacity is desired. This method is directly applicable even to antibodies in crude cell culture supernatants, raw sera or protein-stabilized antibody preparations without any purification nor enrichment of the IgG. This new method delivered much higher signals as a traditional method and, hence, seems to be preferable in many applications.
The aim of this work was the preparation of a novel stationary monolithic phase for affinity chromatography and HPLC-applications. Therefore, we have chosen porous glass filters that are available with different pore sizes as raw materials to prepare monolithic columns. We purchased VitraPOR 4 (10-16 μm pore size) and VitraPOR 5 (1.0-1.6 μm pore size) monolithic glass filters. The physical properties of these glass filters were characterized. The surface area, pore size distribution and the porosity were determined using mercury intrusion porosimetry and BET. These glass filters only exhibit flow through pores and therefore show no bimodal pore size distribution in the mercury intrusion curves. Due to their low permeability, the applied filters that exhibit an inner diameter of 8.0 mm and a length of 15.0±0.1 mm could be operated at flow rates more than 10 ml/min. High flow rates are favorable for fast separation experiments.