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首页> 外文期刊>Journal of Laboratory Automation >Design of an Automated Enhanced-Throughput Platform for Functional Characterization of Positive Allosteric Modulator-Induced Leftward Shifts in Apparent Agonist Potency In Vitro
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Design of an Automated Enhanced-Throughput Platform for Functional Characterization of Positive Allosteric Modulator-Induced Leftward Shifts in Apparent Agonist Potency In Vitro

机译:一个自动增强通量平台的设计,用于表征体外变构调节剂诱导的表观激动剂效能向左移位的功能

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Prosecution of positive allosteric modulator (PAM) targets demands a specialized assay toolset. Many GPCR or ion channel targets are adaptable to functional assays whereby PAM efficacy can be inferred from left or rightward shifts in the concentration-response curves of orthosteric agonist. The inherent emphasis on throughput and occasional paucity of radioligands for a diverse array of allosteric modulator targets yields a need for an enhanced throughput agonist potency shift assay. Here, we describe a process by which such an assay was automated with robust, reproducible in vitro pharmacology. In direct comparison with a manual CRC shift assay, the enhanced throughput automated platform described here delivered near identical rank orders (r2 = 0.75) at ~4-fold throughput/assay iteration. Correspondingly, average cycle time/plate decreased from 104 to 72 minutes. We also observed reductions in assay interference associated with compounds exhibiting ago-allosterism, which we attribute to preread compound incubation periods which are more precisely time-constrained under automation control. By leveraging automated laboratory technology, we have achieved meaningful throughput with no sacrifice of precision. Rather than to be target-class specific, the present process was specifically designed to serve as a platform template for a variety of cell-based functional allosteric modulation assays.
机译:起诉正构构调节剂(PAM)靶标需要专门的分析工具集。许多GPCR或离子通道靶标都适用于功能测定,从而可以从正构激动剂的浓度-响应曲线中的左移或右移来推断PAM功效。对于多种别构调节剂靶标的通量的固有强调和偶尔的放射性配体的稀缺性导致需要增强的通量激动剂效价变化测定。在这里,我们描述了一种通过强大,可重现的体外药理学自动进行此类测定的过程。与手动CRC移位测定法直接比较,此处所述的增强通量自动化平台以约4倍的通量/测定迭代次数提供了几乎相同的等级顺序(r2 = 0.75)。相应地,平均循环时间/板从104分钟减少到72分钟。我们还观察到与显示前变构关系的化合物相关的测定干扰的减少,这归因于预读化合物的潜伏期,该潜伏期在自动化控制下更精确地受时间限制。通过利用自动化实验室技术,我们在不牺牲精度的情况下实现了有意义的吞吐量。并非特定于目标类别,本过程是专门设计为用作各种基于细胞的功能性变构调制测定的平台模板。

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