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R Bolger

Publications and source records attributed to R Bolger.

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Rapid screening of environmental chemicals for estrogen receptor binding capacity.

Over the last few years, an increased awareness of endocrine disrupting chemicals (EDCs) and their potential to affect wildlife and humans has produced a demand for practical screening methods to identify endocrine activity in a wide range of environmental and industrial chemicals. While it is clear that in vivo methods will be required to identify adverse effects produced by these chemicals, in vitro assays can define particular mechanisms of action and have the potential to be employed as rapid and low-cost screens for use in large scale EDC screening programs. Traditional estrogen receptor (ER) binding assays are useful for characterizing a chemical's potential to be an estrogen-acting EDC, but they involve displacement of a radioactive ligand from crude receptor preparations at low temperatures. The usefulness of these assays for realistically determining the ER binding interactions of weakly estrogenic environmental and industrial compounds that have low aqueous solubility is unclear. In this report, we present a novel fluorescence polarization (FP) method that measures the capacity of a competitor chemical to displace a high affinity fluorescent ligand from purified, recombinant human ER-[alpha] at room temperature. The ER-[alpha] binding interactions generated for 15 natural and synthetic compounds were found to be similar to those determined with traditional receptor binding assays. We also discuss the potential to employ this FP technology to binding studies involving ER-ss and other receptors. Thus, the assay introduced in this study is a nonradioactive receptor binding method that shows promise as a high throughput screening method for large-scale testing of environmental and industrial chemicals for ER binding interactions.

Environmental Pollutants

Fluorescent dye assay for detection of DNA in recombinant protein products.

A homogeneous fluorescence-based DNA detection system has been developed to measure DNA in protein solutions. The technique relies on the increase in fluorescence of a dye molecule when it intercalates into double-stranded (ds) DNA. The increased fluorescence is a direct measurement of the amount of DNA in the sample. The analysis time required per sample is less than 5 min. The dye has absorbance and emission maxima at 485 and 530 nm, respectively. The assay is linear from 98 pg/mL to 200 ng/mL of DNA in buffers containing no proteins with typical relative standard deviation values of less than 2.4%. The assay performance was evaluated under various matrix conditions, including buffers, pH, ionic salts, detergents, denaturants and organic solvents. Each reagent was tested at several concentrations to determine how the slope and linearity (r value) of the standard curve were affected. Even in the presence of matrix components and protein, the assay was able to quantitatively detect picogram to nanogram levels of DNA. The fluorescence can be removed by DNase treatment. This method is specific for dsDNA with RNA emitting less than 2% intensity of an equivalent mass of DNA.

Buffers

A new protease activity assay using fluorescence polarization.

Fluorescence polarization (FP) technology was used to develop an assay for protease activity that is more sensitive than other nonradioactive protease assays and requires no separations, precipitations or transfers of the reaction mixture. FP measures changes in the molecular volume of fluorescently labeled molecules. In the assay described in the present studies, changes in molecular volume due to the cleavage of intact fluorescein thiocarbamoyl (FTC)-casein molecules to smaller FTC peptides were measured. The sensitivity of the FP protease assay was compared with a non-FP fluorescent assay. The FP-based assay was twofold to twentyfold more sensitive than the non-FP assay, depending on the protease tested. Because measurements were taken in real time, the progress of the reaction was followed both kinetically and at a single time point. This assay provided a sensitive measure of activity for the three common protease classes: serine proteases, sulfhydryl proteases and acid proteases.

Animals

From practice to theory.

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