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Microarray-integrated optoelectrofluidic immunoassay system

机译:芯片集成的光电光免疫测定系统

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摘要

A microarray-based analytical platform has been utilized as a powerful tool in biological assay fields. However, an analyte depletion problem due to the slow mass transport based on molecular diffusion causes low reaction efficiency, resulting in a limitation for practical applications. This paper presents a novel method to improve the efficiency of microarray-based immunoassay via an optically induced electrokinetic phenomenon by integrating an optoelectrofluidic device with a conventional glass slide-based microarray format. A sample droplet was loaded between the microarray slide and the optoelectrofluidic device on which a photoconductive layer was deposited. Under the application of an AC voltage, optically induced AC electroosmotic flows caused by a microarray-patterned light actively enhanced the mass transport of target molecules at the multiple assay spots of the microarray simultaneously, which reduced tedious reaction time from more than 30 min to 10 min. Based on this enhancing effect, a heterogeneous immunoassay with a tiny volume of sample (5 μl) was successfully performed in the microarray-integrated optoelectrofluidic system using immunoglobulin G (IgG) and anti-IgG, resulting in improved efficiency compared to the static environment. Furthermore, the application of multiplex assays was also demonstrated by multiple protein detection.
机译:基于微阵列的分析平台已被用作生物测定领域的强大工具。然而,由于基于分子扩散的缓慢的质量传输而导致的分析物耗竭问题导致低的反应效率,从而导致对实际应用的限制。本文提出了一种新的方法,通过将光电流体装置与传统的基于载玻片的微阵列形式相结合,通过光诱导的电动现象来提高基于微阵列的免疫测定的效率。将样品液滴装载在微阵列载玻片和其上沉积有光导层的光电流体装置之间。在施加交流电压的情况下,由微阵列图案的光引起的光诱导的交流电渗流可有效地提高目标分子同时在微阵列的多个测定点处的质量传输,从而将乏味的反应时间从30分钟以上减少至10分钟分钟基于这种增强效果,使用免疫球蛋白G(IgG)和抗IgG在微阵列整合的光电流系统中成功进行了微量样品(5μl)的异质免疫测定,与静态环境相比,效率得到了提高。此外,多种蛋白检测也证明了多重分析的应用。

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