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A versatile electrowetting-based digital microfluidic platform for quantitative homogeneous and heterogeneous bio-assays

机译:多功能的基于电润湿的数字微流控平台,用于定量均质和异质生物测定

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Electrowetting-on-dielectric (EWOD) lab-on-a-chip systems have already proven their potential within a broad range of bio-assays. Nevertheless, research on the analytical performance of those systems is limited, yet crucial for a further breakthrough in the diagnostic field. Therefore, this paper presents the intrinsic possibilities of an EWOD lab-on-a-chip as a versatile platform for homogeneous and heterogeneous bio-assays with high analytical performance. Both droplet dispensing and splitting cause variations in droplet size, thereby directly influencing the assay's performance. The extent to which they influence the performance is assessed by a theoretical sensitivity analysis, which allows the definition of a basic framework for the reduction of droplet size variability. Taking advantage of the optimized droplet manipulations, both homogeneous and heterogeneous bio-assays are implemented in the EWOD lab-on-a-chip to demonstrate the analytical capabilities and versatility of the device. A fully on-chip enzymatic assay is realized with high analytical performance. It demonstrates the promising capabilities of an EWOD lab-on-a-chip in food-related and medical applications, such as nutritional and blood analyses. Further, a magnetic bio-assay for IgE detection using superparamagnetic nanoparticles is presented whereby the nanoparticles are used as solid carriers during the bio-assay. Crucial elements are the precise manipulation of the superparamagnetic nanoparticles with respect to dispensing and separation. Although the principle of using nano-carriers is demonstrated for protein detection, it can be easily extended to a broader range of bio-related applications like DNA sensing. In heterogeneous bio-assays the chip surface is actively involved during the execution of the bio-assay. Through immobilization of specific biological compounds like DNA, proteins and cells a reactive chip surface is realized, which enhances the bio-assay performance. To demonstrate this potential, on-chip adhesion islands are fabricated to immobilize MCF-7 human breast cancer cells. Viability studies are performed to assess the functionalization efficiency.
机译:电介质上电润湿(EWOD)芯片实验室系统已在广泛的生物检测方法中证明了其潜力。然而,对那些系统的分析性能的研究是有限的,但对于诊断领域的进一步突破至关重要。因此,本文介绍了EWOD芯片实验室作为具有均一性和异质性生物测定的多功能平台,具有较高分析性能的内在可能性。液滴分配和分裂都会导致液滴大小变化,从而直接影响测定的性能。它们对性能的影响程度可通过理论敏感性分析来评估,该敏感性分析可为降低液滴尺寸变异性定义基本框架。利用优化的液滴操作,在EWOD芯片实验室中实施了均质和异质生物测定,以证明该设备的分析能力和多功能性。实现了具有高分析性能的全芯片酶促测定。它展示了EWOD芯片实验室在食品相关和医学应用(如营养和血液分析)中的有前途的功能。此外,提出了使用超顺磁性纳米粒子的用于IgE检测的磁性生物测定法,其中在生物测定法中将纳米粒子用作固体载体。至关重要的因素是超顺磁性纳米粒子在分配和分离方面的精确控制。尽管已经证明了使用纳米载体进行蛋白质检测的原理,但可以很容易地将其扩展到诸如DNA传感之类的生物相关应用的更广泛范围。在异质生物测定中,芯片表面在生物测定的执行过程中积极参与。通过固定特定的生物化合物(例如DNA,蛋白质和细胞),可以形成反应性芯片表面,从而增强了生物测定性能。为了证明这种潜力,制造了芯片上粘附岛以固定MCF-7人乳腺癌细胞。进行可行性研究以评估功能化效率。

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