微流控
聚合物囊泡
纳米技术
微型反应器
葡萄糖氧化酶
化学
生物传感器
级联
材料科学
两亲性
色谱法
聚合物
有机化学
共聚物
催化作用
作者
Andrea Koball,Franziska Obst,Jens Gaitzsch,Brigitte Voit,Dietmar Appelhans
出处
期刊:Small methods
[Wiley]
日期:2024-07-11
卷期号:8 (12): e2400282-e2400282
被引量:6
标识
DOI:10.1002/smtd.202400282
摘要
Abstract Microfluidic flow reactors permit the implementation of sensitive biocatalysts in polymeric environments (e.g., hydrogel dots), mimicking nature through the use of diverse microstructures within defined confinements. However, establishing complex hybrid structures to mimic biological processes and functions under continuous flow with optimal utilization of all components involved in the reaction process represents a significant scientific challenge. To achieve spatial, chemical, and temporal control for any microfluidic application, compartmentalization is required, as well as the unification of different sensitive compartments in the reaction chamber for the microfluidic flow design. This study presents a self‐regulating microfluidic system fabricated by a sequential photostructuring process with an intermediate chemical process step to realize pH‐sensitive hybrid structures for the fabrication of a microfluidic double chamber reactor for controlled enzymatic cascade reaction (ECR). The key point is the adaptation and retention of the function of pH‐responsive horseradish peroxidase‐loaded polymersomes in a microfluidic chip under continuous flow. ECR is successfully triggered and controlled by an interplay between glucose oxidase‐converted glucose, the membrane state of pH‐responsive polymersomes, and other parameters (e.g., flow rate and fluid composition). This study establishes a promising noninvasive regulatory platform for extended spatio–chemical control of current and future ECR and other cascade reaction systems.
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