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微凝胶水包水乳液中多种酶的包封用于酶级联反应。

Encapsulation of multiple enzymes within a microgel water-in-water emulsions for enzymatic cascade reactions.

机构信息

Department of Chemistry and Materials Engineering, Kansai University, 3-3-35 Yamate-cho, Suita-shi, Osaka 564-8680, Japan.

Organization for Research & Development of Innovative Science & Technology, Kansai University, 3-3-35 Yamate-cho, Suita-shi, Osaka 564-8680, Japan.

出版信息

Soft Matter. 2024 Jan 31;20(5):1018-1024. doi: 10.1039/d3sm01309j.

Abstract

Enzyme-loaded spherical microgels with diameters of several micrometers have been explored for use in therapeutic microreactors and biosensors. Conventional preparation strategies for enzyme-loaded microgels utilized water-in-oil emulsions or flow chemistry techniques. The former damage enzyme activity using organic solvents and the latter are expensive and difficult to expand because of the complex system. In this study, we present a simple strategy for creating multiple enzyme-loaded gelatin-based microgels with tunable diameters in a single flask. This strategy was based on our finding that enzymes spontaneously partitioned in a dispersed methacryloyl gelatin aqueous solution in a poly(vinylpyrrolidone) (W/W) aqueous solution. The method achieved an encapsulation efficiency of over 70% even with four types of enzymes and retained their activity owing to the full aqueous system. Additionally, the encapsulated β-galactosidase activity was maintained for 24 hours at pH 6, although naked β-galactosidase lost approximately 60% of its activity, which was superior to that of previous enzyme-loaded gelatin gels. Moreover, this simple method enabled the production of 10 g-scale or more microgels in one batch. We also demonstrated that multiple enzyme-loaded gelatin microgels functioned as cascade microreactors for lactose and glucose sensing. This versatile strategy enables the production of enzyme-loaded microgels while maintaining the enzyme activity using very low technologies. This result contributes to the easy preparation of enzyme-loaded microgels and their applications in the biomedical and green catalytic fields.

摘要

直径为数微米的载酶球形微凝胶已被探索用于治疗性微反应器和生物传感器。用于载酶微凝胶的传统制备策略利用了水包油乳液或流动化学技术。前者使用有机溶剂破坏酶活性,后者由于系统复杂而昂贵且难以扩展。在这项研究中,我们提出了一种在单个烧瓶中创建具有可调直径的多个载酶明胶基微凝胶的简单策略。该策略基于我们的发现,即酶在聚(乙烯基吡咯烷酮)(W/W)水溶液中的分散甲基丙烯酰化明胶水溶液中自发分配。该方法即使使用四种酶也能实现超过 70%的包封效率,并且由于采用全水体系,保留了其活性。此外,即使在 pH 值为 6 下,包封的β-半乳糖苷酶活性也能维持 24 小时,而裸β-半乳糖苷酶的活性损失约 60%,优于以前的载酶明胶凝胶。此外,这种简单的方法能够在一批中生产 10 g 规模或更大的微凝胶。我们还证明了多个载酶明胶微凝胶可作为乳糖和葡萄糖传感的级联微反应器。这种多功能策略能够在使用非常低的技术保持酶活性的同时生产载酶微凝胶。该结果有助于制备载酶微凝胶及其在生物医学和绿色催化领域的应用。

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