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A Droplet-Manipulation Method for Achieving High-Throughput in Cross-Referencing-Based Digital Microfluidic Biochips

机译:在基于交叉引用的数字微流控生物芯片中实现高通量的液滴操纵方法

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摘要

Digital microfluidic biochips are revolutionizing high-throughput DNA, immunoassays, and clinical diagnostics. As high-throughput bioassays are mapped to digital microfluidic platforms, the need for design automation techniques for pin-constrained biochips is being increasingly felt. However, most prior work on biochips computer-aided design has assumed independent control of the underlying electrodes using a large number of (electrical) input pins. We propose a droplet-manipulation method based on a ldquocross-referencingrdquo addressing method that uses ldquorowrdquo and ldquocolumnsrdquo to access electrodes. By mapping the droplet-movement problem on a cross-referenced chip to the clique-partitioning problem from graph theory, the proposed method allows simultaneous movement of a large number of droplets on a microfluidic array. Concurrency is enhanced through the use of an efficient scheduling algorithm that determines the order in which groups of droplets are moved. The proposed design-automation method facilitates high-throughput applications on a pin-constrained biochip, and it is evaluated using random synthetic benchmarks and a set of multiplexed bioassays.
机译:数字微流控生物芯片正在彻底改变高通量DNA,免疫测定和临床诊断方法。随着高通量生物测定被映射到数字微流控平台,越来越多地需要针对引脚受限的生物芯片的设计自动化技术。但是,大多数有关生物芯片计算机辅助设计的现有工作都假设使用大量(电)输入引脚对底层电极进行独立控制。我们提出了一种基于“交叉引用”寻址方法的液滴操作方法,该方法使用“行”和“列”来访问电极。通过将交叉引用芯片上的液滴运动问题映射到图论中的集团划分问题,所提出的方法允许大量液滴在微流体阵列上同时运动。通过使用一种有效的调度算法来提高并发性,该算法可确定液滴组的移动顺序。所提出的设计自动化方法有助于在引脚受限的生物芯片上进行高通量应用,并使用随机合成基准和一组多重生物测定法对其进行评估。

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