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首页> 外文期刊>The Analyst: The Analytical Journal of the Royal Society of Chemistry: A Monthly International Publication Dealing with All Branches of Analytical Chemistry >A simple and rapid approach for measurement of dissociation constants of DNA aptamers against proteins and small molecules via automated microchip electrophoresis
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A simple and rapid approach for measurement of dissociation constants of DNA aptamers against proteins and small molecules via automated microchip electrophoresis

机译:一种通过自动微芯片电泳测量DNA适体对蛋白质和小分子的解离常数的简单快速方法

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摘要

Automated microchip electrophoresis was used as a simple and rapid method to measure effective dissociation constants (K_(d,eff)) of aptamers against both large and small molecule targets. Human thrombin, immunoglobulin E (IgE), and adenosine triphosphate (ATP) were selected as model analytes to validate the method, with four ligands including two DNA aptamers for thrombin (two distinct epitopes), an IgE aptamer, and an ATP aptamer. The approach is based on a microchip version of a DNA mobility shift assay. Non-denaturing microchip gel electrophoresis separations of DNA could resolve and quantify unbound from target-bound aptamers when using large molecules as targets. To extend the technique to small molecule targets such as ATP, an aptamer/competitor strategy was used, in which a DNA competitor complementary to the aptamer could be displaced by ATP and electrophoretically resolved. Using an automated microchip electrophoresis platform, parallel separations of 11 titration samples were completed in ~0.5 h. Analytical performance comparisons show that our approach provides significant advantages in minimized reagent consumption (typically tens of pmol of aptamer and target), reduced analysis time, and minimized user interaction when compared to previously reported methods for aptamer K_d measurement. Moreover, the flexibility and ease of K_(d,eff) measurement for aptamers against large and small targets make this a unique and valuable approach that should find widespread use. Finally, the feasibility of using this method during aptamer selection processes (e.g. SELEX) was shown by accurate bulk K_(d,eff) measurement of a known thrombin aptamer (THRaptA) spiked into a random-sequence DNA pool at as low as 5.0% (molar %) of the total pool; only ~825 fmol of total binding sequences were needed for an 11-point titration curve.
机译:自动化微芯片电泳被用作一种简单而快速的方法来测量针对大分子和小分子靶的适体的有效解离常数(K_(d,eff))。选择人凝血酶,免疫球蛋白E(IgE)和三磷酸腺苷(ATP)作为模型分析物以验证该方法,并采用四个配体,包括用于凝血酶的两个DNA适体(两个不同的表位),一个IgE适体和一个ATP适体。该方法基于DNA迁移率变动分析的微芯片版本。使用大分子作为靶标时,DNA的非变性微芯片凝胶电泳分离可以解析和定量未结合靶标适体。为了将技术扩展到小分子靶标(例如ATP),使用了适体/竞争策略,其中与适体互补的DNA竞争剂可以被ATP置换并电泳分离。使用自动微芯片电泳平台,在约0.5小时内完成了11个滴定样品的平行分离。分析性能比较表明,与以前报道的适体K_d测量方法相比,我们的方法在减少试剂消耗(通常为数十pmol的适体和靶标),减少分析时间以及最小化用户交互方面具有显着优势。而且,针对大大小小的靶标的适体的K_(d,eff)测量的灵活性和简便性使其成为一种独特而有价值的方法,应该得到广泛的应用。最后,通过对掺入低至5.0%的随机序列DNA池中的已知凝血酶适体(THRaptA)进行准确的批量K_(d,eff)测量,可以证明在适体选择过程(例如SELEX)中使用此方法的可行性。总摩尔量(摩尔%); 11点滴定曲线只需要约825 fmol的总结合序列。

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