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Coupling Isotachophoresis with Affinity Chromatography for Rapid and Selective Purification with High Column Utilization, Part 2: Experimental Study

机译:等速电泳与亲和色谱联用,用于高柱利用率的快速选择性纯化,第2部分:实验研究

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We present an experimental study of coupling of isotachophoresis (ITP) and affinity chromatography (AC) to effect rapid, selective purification with high column utilization and high resolution. We provide a detailed protocol for performing ITP-AC and describe the design of a buffer system to perform sequence specific separation of nucleic acids. We describe the synthesis and functionalization of our affinity substrate, poly(glycidyl methacrylate-co-ethylene dimethacrylate) porous polymer monolith (GMA-EDMA PPM). This substrate allows easy immobilization of affinity probes, is nonsieving (even to macromolecules), and exhibits negligible nonspecific binding. We demonstrate ITP-AC with 25 nt, Cy5 labeled DNA target and a DNA probe and study the spatiotemporal dynamics using epifluorescence imaging. We make qualitative and quantitative comparisons between these data and the model presented in the first part of this two-paper series. We vary the target concentration from 1 pg μL~(-1) to 100 pg μL~(-1) and ITP velocity over the range of 10-50 μm s~(-1), and thereby explore over 4 orders of magnitude of scaled target amount. We observe very good agreement between predictions and experimental data for the spatiotemporal behavior of the coupled ITP and affinity process, and for key figures of merit, including scaled capture length and maximum capture efficiency. Lastly, we demonstrate that the resolution of ITP-AC increases linearly with time and purify 25 nt target DNA from 10 000-fold higher abundance background (contaminating) genomic fish sperm DNA. We perform this capture from 200 μL of sample in under 1 mm column length and within <10 min.
机译:我们目前进行等速电泳(ITP)和亲和色谱(AC)耦合以实现快速,选择性纯化以及高色谱柱利用率和高分辨率的实验研究。我们提供了执行ITP-AC的详细协议,并描述了执行核酸序列特异性分离的缓冲系统的设计。我们描述了我们的亲和基质,聚(甲基丙烯酸缩水甘油酯-共聚二甲基丙烯酸乙烯酯)多孔聚合物整料(GMA-EDMA PPM)的合成和功能化。该底物可以轻松固定亲和探针,不筛分(甚至不筛分大分子),并且表现出微不足道的非特异性结合。我们展示了具有25 nt,Cy5标记的DNA靶标和DNA探针的ITP-AC,并使用落射荧光成像研究了时空动力学。我们将这些数据与本两篇文章系列的第一部分中介绍的模型进行定性和定量比较。我们在10-50μms〜(-1)的范围内将目标浓度从1 pgμL〜(-1)更改为100 pgμL〜(-1)和ITP速度,从而探索了4个数量级的标定目标金额。对于耦合的ITP和亲和过程的时空行为,以及关键的品质因数,包括缩放的捕获长度和最大捕获效率,我们在预测和实验数据之间观察到非常好的一致性。最后,我们证明ITP-AC的分辨率随时间线性增加,并从10,000倍高丰度背景(污染)基因组鱼精子DNA中纯化25 nt靶DNA。我们在不到1分钟的色谱柱长度内且在<10分钟内从200μL样品中进行了捕获。

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