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Combined dielectrophoretic and impedance system for on-chip controlled bacteria concentration: Application to Escherichia coli

机译:芯片上受控细菌浓度的介电电泳和阻抗组合系统:在大肠杆菌中的应用

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摘要

The present paper reports a bacteria autonomous controlled concentrator prototype with a user-friendly interface for bench-top applications. It is based on a micro-fluidic lab-on-a-chip and its associated custom instrumentation, which consists in a dielectrophoretic actuator, to pre-concentrate the sample, and an impedance analyser, to measure concentrated bacteria levels. The system is composed by a single micro-fluidic chamber with interdigitated electrodes and a instrumentation with custom electronics. The prototype is supported by a real-time platform connected to a remote computer, which automatically controls the system and displays impedance data used to monitor the status of bacteria accumulation on-chip. The system automates the whole concentrating operation. Performance has been studied for controlled volumes of Escherichia coli (E. coli) samples injected into the micro-fluidic chip at constant flow rate of 10 μL/min. A media conductivity correcting protocol has been developed, as the preliminary results showed distortion of the impedance analyser measurement produced by bacterial media conductivity variations through time. With the correcting protocol, the measured impedance values were related to the quantity of bacteria concentrated with a correlation of 0.988 and a coefficient of variation of 3.1%. Feasibility of E. coli on-chip automated concentration, using the miniaturized system, has been demonstrated. Furthermore, the impedance monitoring protocol had been adjusted and optimized, to handle changes in the electrical properties of the bacteria media over time.
机译:本文报道了一种细菌自治控制的浓缩器原型,该原型具有用于台式应用的用户友好界面。它基于微流控芯片实验室及其相关的定制仪器,该仪器包含介电泳致动器(用于预浓缩样品)和阻抗分析仪(用于测量浓缩细菌水平)。该系统由带有指状电极的单个微流体腔室和带有定制电子设备的仪器组成。该原型由连接到远程计算机的实时平台支持,该平台可自动控制系统并显示用于监测芯片上细菌积累状态的阻抗数据。该系统使整个浓缩操作自动化。已对以10μL/ min的恒定流速注入微流控芯片中的受控体积的大肠杆菌(E. coli)样品的性能进行了研究。已开发出一种介质电导率校正方案,因为初步结果表明,细菌细菌电导率随时间变化会导致阻抗分析仪测量结果出现失真。通过校正方案,测得的阻抗值与浓缩的细菌数量相关,相关系数为0.988,变异系数为3.1%。已经证明了使用小型化系统进行大肠杆菌片上自动浓缩的可行性。此外,已经对阻抗监控协议进行了调整和优化,以处理细菌培养基电特性随时间的变化。

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