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C Baggiani

Publications and source records attributed to C Baggiani.

5 recordsLinked to original sources

Strategy for fractionating high-affinity antibodies to steroid hormones by affinity chromatography.

A general strategy for fractionating high-affinity antibodies to steroid hormones has been developed and applied to the fractionation of an antiserum to testosterone 3-(O-carboxymethyl)oxime-bovine serum albumin. If the antibodies interacting with a stationary phase containing a low concentration of immobilized steroid are considered as monovalent binders, a simple equation can be applied to show that the affinity of the antibody-stationary phase interaction must be higher than about 2 x 10(6) l mol-1 in order to avoid the loss of antibodies during the loading and washing of the column. Conversely, to elute the retained antibodies, the affinity must be decreased to a value lower than about 2 x 10(5) l mol-1 and the dissociation rate constants of the antibody-steroid complexes must be >> 1 s-1. In order to prepare an affinity column that satisfies these conditions, the ligand to be immobilized was selected on the basis of the cross-reactions of the antiserum with several testosterone derivatives. Moreover, the dissociation rate constants of several antibodies of known affinity were measured, together with the effect of acidic buffers and various organic solvents on the antiserum-testosterone interaction. Then, an affinity column, prepared by coupling testosterone 17 beta-acetate to AH-Sepharose 4B, was used to load the antiserum without loss of antibodies during the washing step. The retained antibodies were successfully eluted by a mixture of 30% dioxane in phosphate-citrate buffer (pH 3.4). The affinity of the eluted antibodies was in the range 7 x 10(9)-2 x 10(11) l mol-1 and was linearly related to the retention volume. These results confirm that high-affinity antibodies can be fractionated to steroid hormones by a proper choice of the ligand on the stationary phase and the eluent composition.

Antibodies

Fractionation of an antiserum to progesterone by affinity chromatography: effect of pH, solvents and biospecific adsorbents.

Several progesterone-AH Sepharose 4B matrices were prepared as biospecific adsorbents suitable for affinity chromatography to fractionate antibodies of different affinity and specificity from a polyclonal antiserum to progesterone-11 alpha-hemisuccinate-BSA. From an affinity column of progesterone-11 alpha-hemisuccinate-AH Sepharose 4B no antibodies can be eluted, even with glycine buffer (pH 2.6) and 30% of 2-methoxyethanol. The use of biospecific adsorbents, prepared by coupling with AH Sepharose 4B progesterone derivatives [5-pregnene-3,20-dione di(ethyleneacetal)-11 alpha-ol-11 alpha-hemisuccinate; 4-pregnene-11,20 beta-diol-3-one-11 alpha-hemisuccinate 20 beta-benzoate; progesterone-3-carboxymethyloxime] having a low cross-reactivity with the antiserum, makes the elution of various antibody fractions of variable affinity and specificity possible. 2-Methoxyethanol or N,N-dimethylformamide gradients, in acetate or TRIS buffer, were equally efficient for fractionating the antiprogesterone serum, while a decreasing pH gradient was less effective and eluted antibody fractions that were further separated into various binding components by a solvent gradient. Antibodies eluted from the affinity columns by an eluent containing a high solvent concentration have affinities higher than antibodies eluted at lower solvent concentration.

Absorption

Immunochemical methods for environmental monitoring.

Immunochemical methods for environmental analysis must be taken into consideration more for their ability to expand the potential of analytical measures rather than for substituting current methodologies. Moreover, the full potential of these methods has yet to be realized. Indeed, the terms and concepts of immunology are new to most analytical chemists, even if environmental science has always been an interdisciplinary field. On the other hand, the clinical development of immunoassays means that much experience has been gained in the analysis of blood, urine, and tissue samples. The immunochemical analysis of samples from soils, ground water, waste chemicals, poses new challenges in sample preparation that have yet to be extensively studied, and in the future there may be immunoassays better suited for the particular problems associated with environmental monitoring.

Environmental Monitoring

Solvent effect on testosterone-antitestosterone interaction.

The inhibition of the binding between testosterone and antitestosterone antiserum caused by organic solvents was studied at pH 7.4, 298 K. Inhibition curves were obtained at variable ranges of molar fractions for the following solvents: methanol (range 0-0.4), ethanol (0-0.317), 1-propanol (0-0.082), 2-propan-ol (0-0.260), t-butanol (0-0.223), ethylenglycol (0-0.189), 2-methoxyethanol (0.036), 2-butoxyethanol (0-0.063), 1,4-dioxan (0-0.124), tetrahydrofuran (0-0.238) and acetonitrile (0-0.392). Steroid-antibody binding decreases with increasing molar fraction of solvent in the reaction mixture for all but tetrahydrofuran and acetonitrile, which enhance binding at low molar fraction then cause a sharp inhibition. Molar fraction of solvent that causes a 50% binding inhibition is uncorrelated to some solvent properties (i.e. dielectric constant, polarity index, dipole moment) but is inversely correlated to the molecular mass of the solvent. The correlation becomes better by taking into account the length of the solvent molecule, or the Randic molecular connectivity index, suggesting that binding inhibition could be related to the length of the solvent molecules that displace water around the steroid molecule. However, the increase of binding observed at low molar fraction with tetrahydrofuran and acetonitrile, together with very different shapes of inhibition curves suggest that a molecular mechanism based on the differential solvation of the steroid by solvent and water molecules must be taken into account to explain adequately the solvent effect on testosterone-antitestosterone interaction.

Antibodies

Separation and characterization of a yeast alcohol dehydrogenase conjugate with theophylline.

The purpose of this work is to characterize the structural difference of conjugates in order to condition the immunoreactivity of the enzymatic tracer in the homogeneous immunoassays. Conjugates between yeast alcohol dehydrogenase (ADH) and 7-theophyllincarboxyalkyl acids were obtained by the mixed-anhydride method, and characterized with kinetic, electrophoretic and chromatographic techniques (IEF, MCC, CF). The enzyme activities were found to be inversely proportional to the substitution grade but not correlated to the number of carbon atoms of the carboxyalkyl spacer arms. Only the oxidative form (ADH2) of the enzyme was found capable of reacting with theophylline derivatives in the experimental conditions. Enzyme conjugates were resolved into three components, due to the different distribution of theophylline moieties on the surface of the protein, as confirmed by examination of the tryptic patterns of the single components.

Alcohol Dehydrogenase