Wu Yupan, Hu Bowen, Ma Xun, Wang Yucheng, Li Wei, Wang Shaoxi
School of Microelectronics, Northwestern Polytechnical University, Xi'an 710072, China.
Research & Development Institute of Northwestern Polytechnical University, Shenzhen 518000, China.
Micromachines (Basel). 2022 Jan 28;13(2):207. doi: 10.3390/mi13020207.
In the context of the COVID-19 epidemic, enhancing the transport of analyte to a sensor surface is crucial for rapid detection of biomolecules since common conditions, including low diffusion coefficients, cause inordinately long detection times. Integrated microfluidic immunoassay chips are receiving increasing attention for their low sample volume and fast response time. We herein take advantage of asymmetric ICEO flow at a bipolar sinusoidal electrode to improve the rate of antibody binding to the reaction surface based on finite element modeling. Three different microfluidic cavities are proposed by changing the positions of the surface reaction area. We further investigate the relationship between binding enhancement and reaction surface positions, Damkohler number, and the voltage and frequency of the AC signal applied to the driving electrodes. Furthermore, the influence of the AC signal applied to the sinusoidal bipolar electrode on antigen-antibody-binding performance is studied in detail. Above all, the simulation results demonstrate that the microfluidic immune-sensor with a sinusoidal bipolar electrode could not only significantly improve the heterogeneous immunoassays but also enable efficient enhancement of assays in a selected reaction region within the micro-cavity, providing a promising approach to a variety of immunoassay applications, such as medical diagnostics and environmental and food monitoring.
在新冠疫情背景下,由于包括低扩散系数在内的常见条件会导致检测时间过长,因此增强分析物向传感器表面的传输对于生物分子的快速检测至关重要。集成微流控免疫分析芯片因其低样品量和快速响应时间而受到越来越多的关注。在此,我们基于有限元建模,利用双极正弦电极处的不对称诱导电荷电渗流(ICEO)来提高抗体与反应表面的结合速率。通过改变表面反应区域的位置,提出了三种不同的微流控腔。我们进一步研究了结合增强与反应表面位置、达姆科勒数以及施加到驱动电极的交流信号的电压和频率之间的关系。此外,详细研究了施加到正弦双极电极的交流信号对抗抗原-抗体结合性能的影响。最重要的是,模拟结果表明,具有正弦双极电极的微流控免疫传感器不仅可以显著改善异相免疫分析,还能在微腔内选定的反应区域实现高效的分析增强,为医学诊断、环境和食品监测等各种免疫分析应用提供了一种有前景的方法。