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Hydrogel Microvalves as Control Elements for Parallelized Enzymatic Cascade Reactions in Microfluidics

机译:水凝胶微阀作为微流控中的并行酶联级联反应的控制元素。

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摘要

Compartmentalized microfluidic devices with immobilized catalysts are a valuable tool for overcoming the incompatibility challenge in (bio) catalytic cascade reactions and high-throughput screening of multiple reaction parameters. To achieve flow control in microfluidics, stimuli-responsive hydrogel microvalves were previously introduced. However, an application of this valve concept for the control of multistep reactions was not yet shown. To fill this gap, we show the integration of thermoresponsive poly( -isopropylacrylamide) (PNiPAAm) microvalves (diameter: 500 and 600 µm) into PDMS-on-glass microfluidic devices for the control of parallelized enzyme-catalyzed cascade reactions. As a proof-of-principle, the biocatalysts glucose oxidase (GOx), horseradish peroxidase (HRP) and myoglobin (Myo) were immobilized in photopatterned hydrogel dot arrays (diameter of the dots: 350 µm, amount of enzymes: 0.13–2.3 µg) within three compartments of the device. Switching of the microvalves was achieved within 4 to 6 s and thereby the fluid pathway of the enzyme substrate solution (5 mmol/L) in the device was determined. Consequently, either the enzyme cascade reaction GOx-HRP or GOx-Myo was performed and continuously quantified by ultraviolet-visible (UV-Vis) spectroscopy. The functionality of the microvalves was shown in four hourly switching cycles and visualized by the path-dependent substrate conversion.
机译:具有固定化催化剂的隔室微流控设备是克服(生物)催化级联反应和高通量筛选多个反应参数中不相容性挑战的宝贵工具。为了实现微流体中的流量控制,先前已引入了刺激响应水凝胶微阀。但是,该阀概念在控制多步反应中的应用尚未显示。为了填补这一空白,我们展示了将热响应性聚(-异丙基丙烯酰胺)(PNiPAAm)微阀(直径:500和600 µm)集成到玻璃上的PDMS微流体装置中,以控制平行化酶催化的级联反应。作为原理的证明,将生物催化剂葡萄糖氧化酶(GOx),辣根过氧化物酶(HRP)和肌红蛋白(Myo)固定在以光形成图案的水凝胶点阵列中(点的直径:350 µm,酶的量:0.13–2.3 µg) )放在设备的三个隔间中。在4至6 s内完成了微阀的切换,从而确定了装置中酶底物溶液(5 mmol / L)的流体路径。因此,进行了酶级联反应GOx-HRP或GOx-Myo,并通过紫外-可见(UV-Vis)光谱连续定量。微型阀的功能在四个小时的切换周期中显示,并通过依赖于路径的底物转化率可视化。

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