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High-throughput binding characterization of RNA aptamer selections using a microplate-based multiplex microcolumn device

机译:使用基于微孔板的多重微柱装置对RNA适体选择进行高通量结合表征

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摘要

We describe a versatile 96-well microplate-based device that utilizes affinity microcolumn chromatography to complement downstream plate-based processing in aptamer selections. This device is reconfigurable and is able to operate in serial and/or parallel mode with up to 96 microcolumns. We demonstrate the utility of this device by simultaneously performing characterizations of target binding using five RNA aptamers and a random library. This was accomplished through 96 total selection tests. Three sets of selections tested the effects of target concentration on aptamer binding compared to the random RNA library using aptamers to the proteins green fluorescent protein (GFP), human heat shock factor 1 (hHSF1), and negative elongation factor E (NELF-E). For all three targets, we found significant effects consistent with steric hindrance with optimum enrichments at predictable target concentrations. In a fourth selection set, we tested the partitioning efficiency and binding specificity of our three proteins’ aptamers, as well as two suspected background binding sequences, to eight targets running serially. The targets included an empty microcolumn, three affinity resins, three specific proteins, and a non-specific protein control. The aptamers showed significant enrichments only on their intended targets. Specifically, the hHSF1 and NELF-E aptamers enriched over 200-fold on their protein targets, and the GFP aptamer enriched 750-fold. By utilizing our device’s plate-based format with other complementary plate-based systems for all downstream biochemical processes and analysis, high-throughput selections, characterizations, and optimization were performed to significantly reduce the time and cost for completing large-scale aptamer selections.>FigureSchematic breakdown of a microplate-based enrichment device for the selection of aptamers (MEDUSA), which can be customized and assembled in both parallel and serial configurations. Up to 96 selections can be performed simultaneously.
机译:我们描述了一种多功能的基于96孔微孔板的装置,该装置利用亲和力微柱色谱法来补充适体选择中的下游基于孔板的处理。该设备是可重新配置的,并能够以多达96个微柱的串行和/或并行模式运行。我们通过使用五个RNA适体和一个随机库同时执行目标结合的表征来证明该设备的实用性。这是通过96个总选择测试完成的。与使用绿色荧光蛋白(GFP),人热休克因子1(hHSF1)和负伸长因子E(NELF-E)的适体相比,三组选择测试了靶标浓度对与随机RNA文库相比对适体结合的影响。 。对于所有三个靶标,我们发现在可预测的靶标浓度下,通过最佳富集可以实现与位阻相符的显着效果。在第四个选择集中,我们测试了三种蛋白质适体以及两个可疑背景结合序列对连续运行的八个靶标的分配效率和结合特异性。目标包括一个空的微柱,三种亲和树脂,三种特异性蛋白和一种非特异性蛋白对照。适体仅在其预期目标上显示出明显的富集。具体而言,hHSF1和NELF-E适体在其蛋白质靶标上富集了200倍以上,而GFP适体富集了750倍。通过将我们设备的基于板的格式与其他基于互补板的系统一起用于所有下游生化过程和分析,进行了高通量选择,表征和优化,从而显着减少了完成大规模适体选择的时间和成本。 !-fig ft0-> <!-fig @ position =“ anchor” mode =文章f4-> <!-fig mode =“ anchred” f5-> > Figure <!-fig / graphic | fig / alternatives / graphic mode =“ anchored” m1-> <!-说明a7->用于选择适体(MEDUSA)的基于微孔板的富集装置的原理分解图,可对其进行定制和组装并行和串行配置。最多可以同时执行96个选择。

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