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Acceleration of Surface-Based Hybridization Reactions Using Isotachophoretic Focusing

机译:基于等速电泳聚焦的基于表面的杂交反应的加速

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摘要

We present a theoretical model and experimental demonstration of a novel method for acceleration of surface-based reactions using isotachophoresis (ITP). We use ITP to focus a sample of interest and deliver a high concentration target to a prefunctionalized surface, thus enabling rapid reaction at the sensor site. The concentration of the focused analyte is bound in space by the ITP interface and, upon reaction with the surface, continues electromigrating downstream, removing any contamination or reacted sample molecules from the surface. This constitutes a one-step react-and-wash assay which can be performed in a simple channel and does not require flow control elements or moving parts. We designed a novel microfluidic chip where reaction surfaces are formed by paramagnetic beads, immobilized at desired sites by an external magnetic field. Using this chip, we compared ITP-based surface hybridization to standard continuous flow-based hybridization and experimentally demonstrated a 2 orders of magnitude improvement in limit of detection (LoD) in a 3 min nucleic acid hybridization assay. The simple analytical model we present allows prediction of the rate of surface reaction under ITP and can be used to design and optimize such assays as a function of the physical properties of the system, including buffer chemistry, applied voltage, analyte mobility, analyte concentration, probe density, and surface length. The method, model, and experimental setup can be applied to various forms or surface reactions and may serve as the basis for highly genetic analysis and immunoassays.
机译:我们提出了一种利用等速电泳(ITP)加速基于表面的反应的新方法的理论模型和实验演示。我们使用ITP聚焦感兴趣的样品,并将高浓度的目标物传递至预功能化的表面,从而使传感器部位能够快速反应。聚焦分析物的浓度通过ITP界面在空间中结合,并且在与表面反应后继续向下游电迁移,从表面去除任何污染物或反应后的样品分子。这构成了一个一步的反应和洗涤测定,可以在简单的通道中进行,不需要流量控制元件或移动部件。我们设计了一种新型的微流控芯片,其中反应表面由顺磁珠形成,并通过外部磁场固定在所需位置。使用该芯片,我们将基于ITP的表面杂交与基于标准连续流的杂交进行了比较,并在3分钟的核酸杂交分析中实验证明了检测限(LoD)改善了2个数量级。我们提供的简单分析模型可以预测ITP条件下的表面反应速率,并且可以根据系统的物理特性(包括缓冲液化学性质,施加电压,分析物迁移率,分析物浓度,探针密度和表面长度。该方法,模型和实验设置可应用于各种形式或表面反应,并可作为高度遗传分析和免疫测定的基础。

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