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首页> 外文期刊>Acta Horticulturae >Modeling and optimization of a continuous-flow microfluidic biochip for food analysis.
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Modeling and optimization of a continuous-flow microfluidic biochip for food analysis.

机译:用于食品分析的连续流微流生物芯片的建模和优化。

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摘要

Microfluidic systems are increasingly popular for rapid and cheap biochemical analysis in different sectors. In this study Reduced Order Models (ROM) were developed for the optimization of enzymatic assays performed in a microchip. The model enzyme assay used was beta -galactosidase ( beta -Gal) that catalyzes the conversion of Resorufin beta -D-galactopyranoside (RBG) to a fluorescent product, resorufin. The assay was implemented in a microfluidic device as a continuous flow system controlled electrokinetically and with a fluorescence detection device. The results from ROM agreed well with both Computational Fluid Dynamic (CFD) simulations and experimental values. While the CFD model allowed for assessment of local transport phenomena, the CPU time was significantly reduced by the ROM approach. The operational parameters of the assay were optimized using the validated ROM to significantly reduce the amount of reagents consumed and the total biochip assay time. After optimization the analysis time was reduced from 20 min to 5.25 min, which also resulted in 50% reduction in reagent consumption. Hence, modeling is an important tool to transform existing and new bioassays in to high performance multiplexed biochips aimed at multi-component analysis systems that have a wide range of applications.
机译:微流体系统越来越广泛地用于不同领域的快速,廉价的生化分析。在这项研究中,开发了降序模型(ROM)以优化微芯片中进行的酶促测定。所用的模型酶测定法是β-半乳糖苷酶(β-Gal),其催化试卤灵β-D-吡喃半乳糖苷(RBG)转化为荧光产物试卤灵。该测定法在微流体装置中作为电动控制的连续流动系统和荧光检测装置实施。 ROM的结果与计算流体动力学(CFD)模拟和实验值都非常吻合。尽管CFD模型允许评估本地传输现象,但ROM方法显着减少了CPU时间。使用经过验证的ROM优化了测定的操作参数,以显着减少试剂消耗量和总生物芯片测定时间。优化后,分析时间从20分钟减少到5.25分钟,这也使试剂消耗减少了50%。因此,建模是一种重要的工具,可以将现有的和新的生物测定方法转变为针对具有广泛应用范围的多组分分析系统的高性能多重生物芯片。

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