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Douglas S Auld

Publications and source records attributed to Douglas S Auld.

7 recordsLinked to original sources

Quantitative high-throughput screening: a titration-based approach that efficiently identifies biological activities in large chemical libraries.

High-throughput screening (HTS) of chemical compounds to identify modulators of molecular targets is a mainstay of pharmaceutical development. Increasingly, HTS is being used to identify chemical probes of gene, pathway, and cell functions, with the ultimate goal of comprehensively delineating relationships between chemical structures and biological activities. Achieving this goal will require methodologies that efficiently generate pharmacological data from the primary screen and reliably profile the range of biological activities associated with large chemical libraries. Traditional HTS, which tests compounds at a single concentration, is not suited to this task, because HTS is burdened by frequent false positives and false negatives and requires extensive follow-up testing. We have developed a paradigm, quantitative HTS (qHTS), tested with the enzyme pyruvate kinase, to generate concentration-response curves for >60,000 compounds in a single experiment. We show that this method is precise, refractory to variations in sample preparation, and identifies compounds with a wide range of activities. Concentration-response curves were classified to rapidly identify pyruvate kinase activators and inhibitors with a variety of potencies and efficacies and elucidate structure-activity relationships directly from the primary screen. Comparison of qHTS with traditional single-concentration HTS revealed a high prevalence of false negatives in the single-point screen. This study demonstrates the feasibility of qHTS for accurately profiling every compound in large chemical libraries (>10(5) compounds). qHTS produces rich data sets that can be immediately mined for reliable biological activities, thereby providing a platform for chemical genomics and accelerating the identification of leads for drug discovery.

Combinatorial Chemistry Techniques↗

Imidazolylpyrimidine based CXCR2 chemokine receptor antagonists.

An imidazolylpyrimidine was identified in a CXCR2 chemokine receptor antagonist screen and was optimized for potency, in vitro metabolic stability, and oral bioavailability. It was found that subtle structural modification within the series affected the oral bioavailability. Potent and orally available CXCR2 antagonists are herein reported.

Administration, Oral↗

Fluorescent protein-based cellular assays analyzed by laser-scanning microplate cytometry in 1536-well plate format.

Microtiter plate readers have evolved from photomultiplier and charged-coupled device-based readers, where a population-averaged signal is detected from each well, to microscope-based imaging systems, where cellular characteristics from individual cells are measured. For these systems, speed and ease of data analysis are inversely proportional to the amount of data collected from each well. Microplate laser cytometry is a technology compatible with a 1536-well plate format and capable of population distribution analysis. Microplate cytometers such as the Acumen Explorer can monitor up to four fluorescent signals from single objects in microtiter plates with densities as high as 1536 wells. These instruments can measure changes in fluorescent protein expression, cell shape, or simple cellular redistribution events such as cytoplasmic to nuclear translocation. To develop high-throughput screening applications using laser-scanning microplate cytometry, we used green fluorescent protein- and yellow fluorescent protein-expressing cell lines designed to measure diverse biological functions such as nuclear translocation, epigenetic signaling, and G protein-coupled receptor activation. This chapter illustrates the application of microplate laser cytometry to these assays in a manner that is suitable for screening large compound collections in high throughput.

Active Transport, Cell Nucleus↗

1,536-well assay development and screening using whole cell displacement binding and laser scanning imaging.

A screen of a GPCR against Pharmacopeia's combinatorial libraries was performed using 1,536-well plates in a 1.5-microl assay volume with an LSI that was specially modified to enable detection at these volumes. The screen encompassed approximately 4 x 10(6) compounds. The assay uses a CHO cell line that expresses human CXCR1. The plate format chosen was the Corning 1536 low-profile wafer plate. The performance of the screen is evaluated, and the necessity to obtain cytotoxicity data from the same well is described.

Animals↗

Evaluation of compound interference in immobilized metal ion affinity-based fluorescence polarization detection with a four million member compound collection.

IMAP is a non-separation-based, antibody-independent, FP assay that can be applied to many types of protein kinases and phosphatases. This technology is currently being used in many high-throughput screening campaigns throughout the industry. In this technology, a fluorescently labeled peptide substrate is phosphorylated and then captured on immobilized metal (M(III)) nanoparticles, an interaction that is enhanced at low pH (pH 5.5). The binding of the phosphorylated peptide to the nanoparticles is detected using FP. IMAP differs from other FP formats in that the polarization signal is antibody-independent and involves metal coordination complexes detected at low pH. Here, this technology is evaluated against a 4000000-member compound collection using a 1536-well assay design that is devoid of enzymes so that only interference of the compounds with the detection system is measured. Miniaturization of the assay to 1536-well plates is discussed. Compound interference due to inhibition of phosphopeptide binding to the M(III) nanoparticles is not observed. Additionally, it is concluded that the level of fluorescence compound interference is similar to typical FP formats for the majority of the compound collection.

Combinatorial Chemistry Techniques↗

Targeting signal transduction with large combinatorial collections.

The large-scale application of combinatorial chemistry to drug discovery is an endeavor that is now more than ten years old. The growth of chemical libraries together with the influx of novel genomic targets has led to a reconstruction of the drug-screening paradigm. The drug discovery industry faces a post-genomic world where the interplay between tens-of-thousands of proteins must be addressed. To compound this complexity, there now exists the ability to screen millions of compounds against a single target. This review focuses on the practice and use of selecting individual compounds from large chemical libraries that act on targets relevant to signal transduction.

Animals↗

Mechanistic studies with potent and selective inducible nitric-oxide synthase dimerization inhibitors.

A series of potent and selective inducible nitric-oxide synthase (iNOS) inhibitors was shown to prevent iNOS dimerization in cells and inhibit iNOS in vivo. These inhibitors are now shown to block dimerization of purified human iNOS monomers. A 3H-labeled inhibitor bound to full-length human iNOS monomer with apparent Kd approximately 1.8 nm and had a slow off rate, 1.2 x 10(-4) x s(-1). Inhibitors also bound with high affinity to both murine full-length and murine oxygenase domain iNOS monomers. Spectroscopy and competition binding with imidazole confirmed an inhibitor-heme interaction. Inhibitor affinity in the binding assay (apparent Kd values from 330 pm to 27 nm) correlated with potency in a cell-based iNOS assay (IC50 values from 290 pm to 270 nm). Inhibitor potency in cells was not prevented by medium supplementation with l-arginine or sepiapterin, but inhibition decreased with time of addition after cytokine stimulation. The results are consistent with a mechanism whereby inhibitors bind to a heme-containing iNOS monomer species to form an inactive iNOS monomer-heme-inhibitor complex in a pterin- and l-arginine-independent manner. The selectivity for inhibiting dimerization of iNOS versus endothelial and neuronal NOS suggests that the energetics and kinetics of monomer-dimer equilibria are substantially different for the mammalian NOS isoforms. These inhibitors provide new research tools to explore these processes.

Dimerization↗