New immunodiagnostic systems.
Two new systems for homogeneous plasma protein immunoassays, the Behring Nephelometer System and the Behring TurbiTimeSystem, as well as the Behring ELISA System for heterogeneous enzyme immunoassays are described.
Biomedical subjects
Publications and source records attributed to H E Pauly.
Two new systems for homogeneous plasma protein immunoassays, the Behring Nephelometer System and the Behring TurbiTimeSystem, as well as the Behring ELISA System for heterogeneous enzyme immunoassays are described.
A method is described which allows the demonstration of allergens in complex antigens and their respective antibodies. Schistosoma mansoni antigens are separated in agarose by 2-dimensional electrophoresis, using an anti-S. mansoni serum from goats in the second dimension. After extensive washing test serum is spread over the gel and allowed to bind to the precipitated antigens. After further extensive washing, horseradish peroxidase-coupled anti-IgE antibodies are put on the plate and allowed to react. Bound antiserum is visualized with tetramethylbenzidine as a substrate. In pooled sera from schistosomiasis patients at least 7 antigen fractions of adult S. mansoni and 2 of cercarial antigen reacted with IgE antibodies. No reaction was found in normal sera.
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Alkaline phosphatase from calf intestine (orthophosphoric-monoester phosphohydrolase (alkaline optimum), EC 3.1.3.1) is reversibly inhibited at pH 8.0 by incubation with chelating agents. Complete reactivation may be achieved by stoichiometric addition of Zn2+. Atomic absorption spectrometry was used to demonstrate the linear correlation between Zn2+ content and degree of reactivation. The reversibly inhibited enzyme contained 1 Zn2+ per subunit whereas 2 Zn2+ were found in both the reactivated and the native enzyme. At more alkaline pH-values, inactivation by chelating agents becomes irreversible; under such conditions the inactivated alkaline phosphatase still contains 1 Zn2+ per subunit. The conformational changes resulting from the loss of Zn2+ and leading to irreversible inactivation were investigated by optical rotatory dispersion, immunological techniques, and ultraviolet and fluorescence spectroscopy. Azocoupling of the alkaline phosphatase with diazonium-1-H-tetrazole and Zn2+ content measurement of azocoupled enzyme probes indicated that 2 histidine residues per subunit are involved in binding of the catalytically important Zn2+.
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1) Glucose dehydrogenase from Bacillus megaterium has been purified to a specific activity of 550 U per mg protein. The homogeneity of the purified enzyme was demonstrated by gel electrophoresis and isoelectric focusing. 2) The amino acid composition has been determined. 3) The molecular weight of the native enzyme was found to be 116000 by gel permeation chromatography, in good agreement with the values of 120000 and 118000, which were ascertained electrophoretically according to the method of Hedrick and Smith and by density gradient centrifugation, respectively. 4) In the presence of 0.1% sodium dodecylsulfate and 8M urea, the enzyme dissociates into subunits with a molecular weight of 30000 as determined by dodecylsulfate gel electrophoresis. These values indicate that the native enzyme is composed of four polypeptide chains, each probably possessing one coenzyme binding site, which can be concluded from fluorescent titration of the NADH binding sites. 5) In polyacrylamide disc electrophoresis, samples of the purified enzyme exhibit three bands of activity, which present the native (tetrameric) form of glucose dehydrogenase and two monomeric forms (molecular weight 30000), arising under the conditions of pH and ionic strength of this method. 6) The enzyme shows a sharp pH optimum at pH 8.0 in Tris/HCl buffer, and a shift of the pH optimum to pH 9.0 in acetate/borate buffer. The limiting Michaelis constant at pH 9.0 for NAD is 4.5 mM and 47.5 mM for glucose. The dissociation constant for NAD is 0.69 mM. 7) D-Glucose dehydrogenase is highly specific for beta-D-glucose and is capable of using either NAD or NADP. The enzyme is insensitive to sulfhydryl group inhibitors, heavy metal ions and chelating agents.
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