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用于离心微流控平台上多步分析综合过程集成的事件触发逻辑流控制

Event-triggered logical flow control for comprehensive process integration of multi-step assays on centrifugal microfluidic platforms.

作者信息

Kinahan David J, Kearney Sinéad M, Dimov Nikolay, Glynn Macdara T, Ducrée Jens

机构信息

Biomedical Diagnostics Institute, Dublin City University, Glasnevin, Dublin 9, Ireland.

出版信息

Lab Chip. 2014 Jul 7;14(13):2249-58. doi: 10.1039/c4lc00380b. Epub 2014 May 9.

Abstract

The centrifugal "lab-on-a-disc" concept has proven to have great potential for process integration of bioanalytical assays, in particular where ease-of-use, ruggedness, portability, fast turn-around time and cost efficiency are of paramount importance. Yet, as all liquids residing on the disc are exposed to the same centrifugal field, an inherent challenge of these systems remains the automation of multi-step, multi-liquid sample processing and subsequent detection. In order to orchestrate the underlying bioanalytical protocols, an ample palette of rotationally and externally actuated valving schemes has been developed. While excelling with the level of flow control, externally actuated valves require interaction with peripheral instrumentation, thus compromising the conceptual simplicity of the centrifugal platform. In turn, for rotationally controlled schemes, such as common capillary burst valves, typical manufacturing tolerances tend to limit the number of consecutive laboratory unit operations (LUOs) that can be automated on a single disc. In this paper, a major advancement on recently established dissolvable film (DF) valving is presented; for the very first time, a liquid handling sequence can be controlled in response to completion of preceding liquid transfer event, i.e. completely independent of external stimulus or changes in speed of disc rotation. The basic, event-triggered valve configuration is further adapted to leverage conditional, large-scale process integration. First, we demonstrate a fluidic network on a disc encompassing 10 discrete valving steps including logical relationships such as an AND-conditional as well as serial and parallel flow control. Then we present a disc which is capable of implementing common laboratory unit operations such as metering and selective routing of flows. Finally, as a pilot study, these functions are integrated on a single disc to automate a common, multi-step lab protocol for the extraction of total RNA from mammalian cell homogenate.

摘要

离心式“芯片实验室”概念已被证明在生物分析检测的过程整合方面具有巨大潜力,特别是在易用性、耐用性、便携性、快速周转时间和成本效益至关重要的情况下。然而,由于芯片上的所有液体都处于相同的离心场中,这些系统的一个固有挑战仍然是多步、多液体样品处理及后续检测的自动化。为了编排基础的生物分析协议,已经开发出了大量旋转驱动和外部驱动的阀门方案。虽然外部驱动阀门在流量控制水平方面表现出色,但需要与外围仪器进行交互,从而损害了离心平台的概念简单性。反过来,对于旋转控制方案,如常见的毛细管破裂阀,典型的制造公差往往会限制在单个芯片上可自动化的连续实验室单元操作(LUO)的数量。在本文中,我们展示了最近建立的可溶解薄膜(DF)阀门的一项重大进展;首次可以根据先前液体转移事件的完成情况来控制液体处理顺序,即完全独立于外部刺激或芯片旋转速度的变化。基本的事件触发阀门配置进一步经过调整,以利用条件性的大规模过程整合。首先,我们展示了一个芯片上的流体网络,它包含10个离散的阀门步骤,包括逻辑关系,如“与”条件以及串行和并行流量控制。然后我们展示了一个能够实现常见实验室单元操作的芯片,如流量的计量和选择性路由。最后,作为一项初步研究,这些功能被整合到单个芯片上,以自动化从哺乳动物细胞匀浆中提取总RNA的常见多步实验室协议。

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