数字微流控生物芯片系统级设计的最新研究和新挑战

P. Pop, E. Maftei, J. Madsen
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引用次数: 3

摘要

微流控生物芯片正在取代传统的生化分析仪,并能在芯片上集成生化分析的所有基本功能。“数字”生物芯片操纵的液体不是连续流动的,而是二维电极阵列上的离散液滴。基本的微流体操作,如混合和稀释,是在阵列上进行的,通过在一系列电极上排列相应的液滴。生物芯片面临的挑战与几十年前微电子所面临的挑战类似。微流体的计算机辅助设计工具还处于起步阶段,设计师目前正在使用手动的、自下而上的设计方法来实现这种生物芯片。考虑到它们的架构和必须执行的设计任务,数字生物芯片的设计与集成电路的高级合成有相似之处。受到这种相似性的启发,一些研究人员最近开始提出自上而下设计生物芯片的方法。到目前为止,他们假设操作是在矩形的虚拟模块上执行的,这些模块由相邻的电极分组组成,并且在阵列上有固定的位置。然而,操作实际上可以通过在生物芯片上的任何电极序列上放置液滴来执行。在本文中,我们概述了原始的基于模块的合成问题,然后我们介绍了最近的工作,消除了虚拟模块的概念,并允许液滴在操作执行期间在芯片上以任何路线移动。我们讨论了这种方法的优点,并确定了数字微流控生物芯片系统级设计的挑战和机遇。
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Recent research and emerging challenges in the System-Level Design of digital microfluidic biochips
Microfluidic biochips are replacing the conventional biochemical analyzers, and are able to integrate on-chip all the basic functions for biochemical analysis. The “digital” biochips are manipulating liquids not as a continuous flow, but as discrete droplets on a two-dimensional array of electrodes. Basic microfluidic operations, such as mixing and dilution, are performed on the array, by routing the corresponding droplets on a series of electrodes. The challenges facing biochips are similar to those faced by microelectronics some decades ago. Computer-Aided Design tools for microfluidics are in their infancy, and designers are currently using manual, bottom-up design approaches to implement such biochips. Considering their architecture and the design tasks that have to be performed, the design of digital biochips has similarities to the high-level synthesis of integrated circuits. Motivated by this similarity, a few researchers have recently started to propose approaches for the top-down design of biochips. So far, they have assumed that operations are executing on virtual modules of rectangular shape, formed by grouping adjacent electrodes, and which have a fixed placement on the array. However, operations can actually execute by routing the droplets on any sequence of electrodes on the biochip. In this paper, we outline the original module-based synthesis problem, and then we present recent work which eliminates the concept of virtual modules and allows droplets to move on the chip on any route during operation execution. We discuss the advantages of such an approach, and identify the challenges and opportunities of system-level design of digital microfluidic biochips.
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