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首页> 外文期刊>ACM Transactions on Design Automation of Electronic Systems >Architectural Design of Flow-Based Microfluidic Biochips for Multi-Target Dilution of Biochemical Fluids
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Architectural Design of Flow-Based Microfluidic Biochips for Multi-Target Dilution of Biochemical Fluids

机译:基于流动的微流体生物芯片的建筑设计,用于生化流体的多目标稀释

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摘要

Microfluidic technologies enable replacement of time-consuming and complex steps of biochemical laboratory protocols with a tiny chip. Sample preparation (i.e., dilution or mixing of fluids) is one of the primary tasks of any bioprotocol. In real-life applications where several assays need to be executed for different diagnostic purposes, the same sample fluid is often required with different target concentration factors (CFs). Although several multi-target dilution algorithms have been developed for digital microfluidic biochips, they are not efficient for implementation with continuous-flow-based microfluidic chips, which are preferred in the laboratories. In this article, we present a multi-target dilution algorithm (MTDA) for continuous-flow-based microfluidic biochips, which to the best of our knowledge is the first of its kind. We design a flow-based rotary mixer with a suitable number of segments depending on the target-CF profile, error tolerance, and optimization criteria. To schedule several intermediate fluid-mixing tasks, we develop a multi-target scheduling algorithm (MTSA) aiming to minimize the usage of storage units while producing dilutions with multiple CFs. Furthermore, we propose a storage architecture for efficiently loading (storing) of intermediate fluids from (to) the storage units.
机译:微流体技术能够更换耗时和复杂的生物化学实验室协议的耗时和复杂的步骤。样品制剂(即,流体的稀释或混合)是任何生物切选的主要任务之一。在实际应用中,需要针对不同的诊断目的执行几种测定,通常需要不同的目标浓度因子(CFS)。虽然已经为数字微流体生物芯片开发了几种多目标稀释算法,但它们对具有连续流动的微流体芯片的实施不有效,这在实验室中是优选的。在本文中,我们提出了一种用于连续流动的微流体生物芯片的多目标稀释算法(MTDA),这是我们最重要的是它的首先。我们根据目标-CF曲线,误差公差和优化标准设计具有合适数量的段的流动旋转混合器。为了安排几个中间流体混合任务,我们开发了一种多目标调度算法(MTSA),其目的是最小化存储单元的使用,同时产生具有多个CF的稀释。此外,我们提出了一种存储架构,用于从(至)存储单元的中间流体的有效加载(存储)。

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