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Positional assembly of multi-enzyme cascade reaction in polyelectrolyte doped microcapsule through electrospray and layer-by-layer assembly

机译:聚电解质掺杂微胶囊通过电喷雾和逐层组装在聚电解质掺杂微胶囊的位置组装

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摘要

Polyelectrolyte-doped microcapsules (PDM) was fabricated by coaxial electrospray of a mixture of glycerol and water containing 10 mg/mL cationic polyelectrolyte poly(allylamine hydrochloride) (PAH) fed as the core phase solution, and a N,N-dimethylacetylamide solution of 10 wt% polyurethane fed as the shell phase solution. Multi-enzyme system involving Candida Antarctica lipase B (CALB), glucose oxidase (GOD), and horseradish peroxidase (HRP) for cascade reaction was assembled in the PDM at three different places, namely, surface, shell, and lumen. Placing of enzyme inside aqueous lumen of the PDM was realized by in situ encapsulation through adding the enzyme in the core-phase solution for coaxial electrospray. By ion-pairing of enzyme with cationic surfactant CTAB, an organic soluble enzyme-CTAB complex was prepared, so that in situ embedding of enzyme in the shell of the PDM was realized by adding it into the shell phase solution. Surface attachment of enzymes was achieved by layer-by-layer (LbL) technology, which is based on the ion-exchange interactions between oppositely charged enzymes and PAH that was doped in PDM. The enzyme-decorated microcapsule was then studied as a micro-bioreactor, in which 1-Oxododecyla-α-glucopyranoside was converted by CALB to glucose, which was oxidised by GOD to gluconolactone in a second step. The hydrogen peroxide produced was then used by HRP to oxidize ABTS to form coloured radical cation ABTS•+ for activity analysis. The successful fabrication of the PDM and precise localization of enzymes in the PDM by different strategies were fully characterized. By varying the immobilization strategy, totally six PDM bioreactors with three enzymes precisely positional assembled in different strategies were constructed and their activities for the cascade reaction were investigated and compared. The PDM micro-bioreactor prepared by novel electrospray technologies provide a smart platform for positional assembly of multi-enzyme cascade reaction in a precise and well-controlled manner.
机译:聚电解质掺杂的微胶囊(PDM)通过同轴电喷雾制成含有10mg / ml阳离子聚电解质聚(盐酸氨基丙酰胺)(PAH)作为核心相溶液的甘油和盐酸纳米氨基丙基丙基丙基丙基丙基丙基丙基丙基丙基酰胺(PAH)的混合物,以及N,N-二甲基乙酰胺溶液10wt%聚氨酯作为壳相溶液送入。在三种不同的地方,在PDM中组装涉及Candida Antarctica脂肪酶B(CALB),葡萄糖氧化酶(GO)和辣根过氧化物酶(HRP),即表面,壳和腔。通过在同轴电喷雾中加入核相溶液中的酶来实现PDM的含水内腔内的酶的放置。通过将酶与阳离子表面活性剂CTAB的离子配对,制备有机可溶性酶 - CTAB络合物,使原位嵌入在PDM的壳中,通过将其添加到壳相溶液中来实现。通过层 - 逐层(LBL)技术实现酶的表面附着,其基于在掺杂在PDM中的相反带电酶和PAH之间的离子交换相互作用。然后将酶装饰的微胶囊作为微生物反应器进行研究,其中通过CALB转化1-氧代癸基-α-吡喃葡萄糖苷至葡萄糖,其在第二步中被上帝通过上帝氧化至葡聚糖内酯。然后通过HRP使用过氧化氢,以氧化ABT以形成有色的自由基阳离子ABTS•+用于活性分析。通过不同策略的成功制造PDM和PDM中酶的精确定位的完全表征。通过改变固定策略,构建了具有三种酶的六个PDM生物反应器,并在不同策略中组装了三种酶,并研究了它们对级联反应的活性并进行比较。通过新型电喷雾技术制备的PDM微生物反应器为多酶级联反应的定位组装提供了一种精确且良好控制的方式提供了一种智能平台。

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