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Isotachophoresis-Based Surface Immunoassay

机译:基于同位状的基于等离子体免疫测定

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In the absence of amplification methods for proteins, the immune-detection of low-abundance proteins using antibodies is fundamentally limited by binding kinetic rates. Here, we present a new class of surface-based immunoassays in which protein-antibody reaction is accelerated by isotachophoresis (ITP). We demonstrate the use of ITP to preconcentrate and deliver target proteins to a surface decorated with specific antibodies, where effective utilization of the focused sample is achieved by modulating the driving electric field (stop-and-diffuse ITP mode) or applying a counter flow that opposes the ITP motion (counterflow ITP mode). Using enhanced green fluorescent protein (EGFP) as a model protein, we carry out an experimental optimization of the ITP-based immunoassay and demonstrate a 1300-fold improvement in limit of detection compared to a standard immunoassay, in a 6 min protein-antibody reaction. We discuss the design of buffer chemistries for other protein systems and, in concert with experiments, provide full analytical solutions for the two operation modes, elucidating the interplay between reaction, diffusion, and accumulation time scales and enabling the prediction and design of future immunoassays.
机译:在没有蛋白质的扩增方法的情况下,使用抗体的低丰度蛋白的免疫检测通过结合动力学速率基本限制。在这里,我们提出了一种新的基于表面的免疫测定,其中蛋白质 - 抗体反应通过同位变(ITP)加速。我们证明使用ITP将靶蛋白递送到用特异性抗体装饰的表面,其中通过调制驱动电场(停止和漫射ITP模式)或施加计数器流动来实现聚焦样品的有效利用反对ITP运动(逆流ITP模式)。使用增强的绿色荧光蛋白(EGFP)作为模型蛋白,我们对基于ITP的免疫测定进行了实验优化,并在6分钟的蛋白 - 抗体反应中显示了与标准免疫测定相比检测限的1300倍的改善。我们讨论对其他蛋白质系统的缓冲化学设计,并且在实验中,为两个操作模式提供完整的分析解决方案,阐明了反应,扩散和累积时间尺度之间的相互作用,并实现了未来免疫测定的预测和设计。

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