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W J Riordan

Publications and source records attributed to W J Riordan.

4 recordsLinked to original sources

New noncompetitive immunoassays of small analytes.

We developed a novel noncompetitive immunoassay format for monoepitopic analytes and describe here a model assay for triiodothyronine (T3), performed on Ciba Corning's ACS:180 analyzer. Acridinium ester (AE)-labeled bivalent anti-T3 was incubated with the sample, producing AE-anti-T3/T3 complexes and unreacted AE-anti-T3. Controlled-pore glass particles (CPG) with immobilized diiodothyronine (T2) were then added in excess, to bind AE-anti-T3 possessing two unoccupied binding sites but not AE-anti-T3 bound to one or two T3 molecules. Paramagnetic particles (PMP) with immobilized anti-AE were then added to the same cuvette to capture AE-anti-T3/T3 complexes; AE-anti-T3 bound to the surface of CPG, however, was not captured, because of steric hindrance. After the incubation, the PMP was magnetically separated to remove the liquid phase and the suspended CPG from the cuvette. The chemiluminescence associate with the PMP remaining in the cuvette was then measured. This noncompetitive T3 assay exhibited a 10-fold lower detection limit than the equivalent competitive T3 assay, i.e., 0.3 vs pg/test. Imprecision (CV) in the clinically significant range was 6% or less. The assay also displayed two- to sevenfold lower cross-reactivities and a wider dynamic range.

Acridines↗

Effect of hapten heterology on thyroid hormone immunoassays.

We examined the effects of hapten heterology on triiodothyronine (T3) and thyroxine (T4) immunoassays configured with protein-conjugated diiodothyronine (T2), T3 or T4, using acridinium ester (AE) as a chemiluminescent label and paramagnetic particles (PMP) as a solid phase. Assays constructed with hapten-heterologous combinations, such as immobilized anti-T4 plus labeled T3 or immunobolized anti-T3 plus labeled T2, were superior to the homologous ones in their potential for attaining higher sensitivity. This was manifested in a shift of the displacement curves to lower analyte concentrations, accompanied by unexpectedly high bound-tracer/total-tracer (B/T) ratios. This effect of hapten heterology was apparent with the use of either monoclonal or polyclonal antibodies and did not depend upon which component (antibody or protein conjugated hormone) was immobilized on the solid phase. In contrast, heterologous displacement curves with unconjugated hormone (125I-labeled) or with a labeled Fab fragment exhibited both a shift to lower analyte concentration and the expected decrease of B/T ratios. These results can be explained by the existence of positive binding cooperativity in the interaction between antibodies and haptenated proteins. Assay specificity was not adversely affected by hapten heterology when utilizing monoclonal antibodies, and hormone levels measured in serum samples correlated well with values obtained in homologous immunoassays.

Animals↗

Dissociation rate constant of the biotin-streptavidin complex.

We measured the dissociation rate constants of the biotin/streptavidin and biotin/egg avidin complexes by following the release of radiolabeled biotin from the preformed complexes in the presence of excess unlabeled biotin. For separation of bound and free labeled biotin we employed ultrafiltration with disposable microconcentrators. The dissociation rate constant for underivatized streptavidin was 2.4 x 10(-6) s-1, or approximately 30-fold higher than that observed for egg avidin 7.5 x 10(-8) s-1). The value for streptavidin was further increased after derivatization with an acridinium ester label. Both biotin binding proteins exhibited a faster initial phase, suggesting binding site heterogeneity due to partial subunit dissociation or denaturation. The convenience of the method and the relatively fast dissociation of biotin from streptavidin render the dissociation rate constant a practical experimental criterion for monitoring the integrity of the binding site during purification and derivatization procedures.

Bacterial Proteins↗