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Lab-on-chip systems for integrated bioanalyses

机译:用于集成生物分析的芯片实验室系统

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摘要

Biomolecular detection systems based on microfluidics are often called lab-on-chip systems. To fully benefit from the miniaturization resulting from microfluidics, one aims to develop ‘from sample-to-answer’ analytical systems, in which the input is a raw or minimally processed biological, food/feed or environmental sample and the output is a quantitative or qualitative assessment of one or more analytes of interest. In general, such systems will require the integration of several steps or operations to perform their function. This review will discuss these stages of operation, including fluidic handling, which assures that the desired fluid arrives at a specific location at the right time and under the appropriate flow conditions; molecular recognition, which allows the capture of specific analytes at precise locations on the chip; transduction of the molecular recognition event into a measurable signal; sample preparation upstream from analyte capture; and signal amplification procedures to increase sensitivity. Seamless integration of the different stages is required to achieve a point-of-care/point-of-use lab-on-chip device that allows analyte detection at the relevant sensitivity ranges, with a competitive analysis time and cost.
机译:基于微流体的生物分子检测系统通常被称为芯片实验室系统。为了充分受益于微流体技术带来的小型化,一个目标是开发“从样品到答案”的分析系统,其中输入的是原始或经过最少加工的生物,食品/饲料或环境样品,而输出则是定量的或定量的。定性评估一种或多种目标分析物。通常,这样的系统将需要集成多个步骤或操作来执行其功能。本文将讨论这些操作阶段,包括流体处理,以确保所需的流体在正确的时间和适当的流动条件下到达特定的位置;分子识别,可以在芯片上的精确位置捕获特定的分析物;将分子识别事件转化为可测量的信号;分析物捕获上游的样品制备;以及信号放大程序以提高灵敏度。需要实现不同阶段的无缝集成,以实现即时点/使用点芯片实验室设备,该设备允许在相关的灵敏度范围内进行分析物检测,并且具有竞争性的分析时间和成本。

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