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首页> 外文期刊>Analytical chemistry >Photopatterning Enzymes on Polymer Monoliths in Microfluidic Devices for Steady-State Kinetic Analysis and Spatially Separated Multi-Enzyme Reactions
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Photopatterning Enzymes on Polymer Monoliths in Microfluidic Devices for Steady-State Kinetic Analysis and Spatially Separated Multi-Enzyme Reactions

机译:稳态动力学分析和空间分离多酶反应的微流控装置中聚合物整料上的光图案化酶

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摘要

A method for photopatterning multiple enzymes on porouspolymer monoliths within microfluidic devices has been developed and used to perform spatially separated multienzymatic reactions. To reduce nonspecific adsorption of enzymes on the monolith, its pore surface was modified by grafting poly(ethylene glycol), followed by surface photoactivation and enzyme immobilization in the presence of a nonionic surfactant. Characterization of bound horseradish peroxidase (HRP) was carried out using a reaction in which the steady-state profiles of the fluorescent reaction product could be measured in situ and then analyzed using a plug-flow bioreactor model to determine the observed maximum reaction rate and Michaelis constant. The Michaelis constant of 1.9 (mu)mol/L agrees with previously published values. Mass-transfer limitations were evident at relatively low flow rates but were absent at higher flow rates. Sequential multienzymatic reactions were demonstrated using the patternwise assembly of two- and three-enzyme systems. Glucose oxidase (GOX) and HRP were patterned in separate regions of a single channel, and product formation was analyzed as a function of flow direction. Significant product formation occurred only in the GOX to HRP direction. A three-enzyme sequential reaction was performed using invertase, GOX, and HRP. All possible arrangements of the three enzymes were tested, but significant product formation was only observed when the enzymes were in the correct sequential order. Photopatterning enzymes on polymer monoliths provides a simple technique for preparing spatially localized multiple-enzyme microreactors capable of directional synthesis.
机译:已经开发了一种用于在微流体装置内的多孔聚合物整料上对多种酶进行光图案化的方法,并用于进行空间分离的多酶反应。为了减少酶在整料上的非特异性吸附,通过接枝聚乙二醇修饰其孔表面,然后在非离子表面活性剂的存在下进行表面光活化和酶固定。使用反应进行结合辣根过氧化物酶(HRP)的表征,在该反应中可以原位测量荧光反应产物的稳态图,然后使用推流生物反应器模型进行分析,以确定观察到的最大反应速率和米氏反应不变。 1.9μmol/ L的米氏常数与先前公开的值一致。传质限制在较低的流速下很明显,而在较高的流速下则没有。使用两个和三个酶系统的模式组装证明了顺序的多酶反应。葡萄糖氧化酶(GOX)和HRP在单个通道的不同区域中进行了图案化,并分析了产物形成随流动方向的变化。仅在GOX到HRP方向上发生了明显的产物形成。使用转化酶,GOX和HRP进行三酶顺序反应。测试了这三种酶的所有可能排列,但是只有当酶以正确的顺序排列时,才观察到明显的产物形成。在聚合物整料上进行光图案化酶为制备能够定向合成的空间定位多酶微反应器提供了一种简单的技术。

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