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从AlphaScreen高通量筛选中鉴定小分子常见命中物。

Identification of Small-Molecule Frequent Hitters from AlphaScreen High-Throughput Screens.

作者信息

Schorpp Kenji, Rothenaigner Ina, Salmina Elena, Reinshagen Jeanette, Low Terence, Brenke Jara K, Gopalakrishnan Jay, Tetko Igor V, Gul Sheraz, Hadian Kamyar

机构信息

Helmholtz Zentrum München für Gesundheit und Umwelt (HMGU), Institute of Molecular Toxicology and Pharmacology, Assay Development and Screening Platform, Neuherberg, Germany.

Helmholtz Zentrum München für Gesundheit und Umwelt (HMGU), Institute of Structural Biology, Neuherberg, Germany.

出版信息

J Biomol Screen. 2014 Jun;19(5):715-26. doi: 10.1177/1087057113516861. Epub 2013 Dec 26.

DOI:10.1177/1087057113516861
PMID:24371213
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4153540/
Abstract

Although small-molecule drug discovery efforts have focused largely on enzyme, receptor, and ion-channel targets, there has been an increase in such activities to search for protein-protein interaction (PPI) disruptors by applying high-throughout screening (HTS)-compatible protein-binding assays. However, a disadvantage of these assays is that many primary hits are frequent hitters regardless of the PPI being investigated. We have used the AlphaScreen technology to screen four different robust PPI assays each against 25,000 compounds. These activities led to the identification of 137 compounds that demonstrated repeated activity in all PPI assays. These compounds were subsequently evaluated in two AlphaScreen counter assays, leading to classification of compounds that either interfered with the AlphaScreen chemistry (60 compounds) or prevented the binding of the protein His-tag moiety to nickel chelate (Ni(2+)-NTA) beads of the AlphaScreen detection system (77 compounds). To further triage the 137 frequent hitters, we subsequently confirmed by a time-resolved fluorescence resonance energy transfer assay that most of these compounds were only frequent hitters in AlphaScreen assays. A chemoinformatics analysis of the apparent hits provided details of the compounds that can be flagged as frequent hitters of the AlphaScreen technology, and these data have broad applicability for users of these detection technologies.

摘要

尽管小分子药物研发工作主要集中在酶、受体和离子通道靶点上,但通过应用与高通量筛选(HTS)兼容的蛋白质结合测定法来寻找蛋白质-蛋白质相互作用(PPI)破坏剂的活动有所增加。然而,这些测定法的一个缺点是,许多初步筛选出的活性化合物是“频繁命中者”,而与所研究的PPI无关。我们使用AlphaScreen技术针对四种不同的可靠PPI测定法,每种测定法对25000种化合物进行筛选。这些活动导致鉴定出137种在所有PPI测定中均表现出重复活性的化合物。随后,这些化合物在两种AlphaScreen反测定中进行评估,从而对化合物进行分类,其中60种化合物干扰了AlphaScreen化学过程,77种化合物阻止了蛋白质His标签部分与AlphaScreen检测系统的镍螯合物(Ni(2+)-NTA)磁珠结合。为了进一步筛选这137种频繁命中的化合物,我们随后通过时间分辨荧光共振能量转移测定法确认,这些化合物中的大多数只是AlphaScreen测定中的频繁命中者。对明显命中的化合物进行的化学信息学分析提供了可被标记为AlphaScreen技术频繁命中者的化合物细节,这些数据对这些检测技术的用户具有广泛的适用性。

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